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	<title>holes &#8211; Fountain Magazine</title>
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		<title>Gravitational Waves: A Universal Force</title>
		<link>https://fountainmagazine.com/all-issues/2018/issue-126-november-december-2018/gravitational-waves-a-universal-force/</link>
		
		<dc:creator><![CDATA[Haci Kerem]]></dc:creator>
		<pubDate>Thu, 01 Nov 2018 20:04:32 +0000</pubDate>
				<category><![CDATA[Issue 126 (Nov - Dec 2018)]]></category>
		<category><![CDATA[beams]]></category>
		<category><![CDATA[black]]></category>
		<category><![CDATA[collision]]></category>
		<category><![CDATA[detect]]></category>
		<category><![CDATA[difference]]></category>
		<category><![CDATA[discovery]]></category>
		<category><![CDATA[generated]]></category>
		<category><![CDATA[gravitational]]></category>
		<category><![CDATA[holes]]></category>
		<category><![CDATA[interferometer]]></category>
		<category><![CDATA[laser]]></category>
		<category><![CDATA[ligo]]></category>
		<category><![CDATA[mechanism]]></category>
		<category><![CDATA[sensitive]]></category>
		<category><![CDATA[space]]></category>
		<category><![CDATA[sun]]></category>
		<category><![CDATA[time]]></category>
		<category><![CDATA[water]]></category>
		<category><![CDATA[wave]]></category>
		<category><![CDATA[waves]]></category>
		<guid isPermaLink="false">http://107.21.79.195/all-issues/2018/issue-126-november-december-2018/gravitational-waves-a-universal-force/</guid>

					<description><![CDATA[Gravitational waves can be defined as the vibration of space-time. Sky is an ocean in which the waves are stationary. When you throw a rock into the water, when a taut rope is plucked, when a spring is compressed and then released, or when our larynx vibrates, what forms is a wave. In each case, [&#8230;]]]></description>
										<content:encoded><![CDATA[<p><img fetchpriority="high" decoding="async" class=" size-full wp-image-6624" src="https://fountainmagazine.com/wp-content/uploads/2018/11/48-d07.jpg" alt="Gravitational Waves: A Universal Force" width="1920" height="1200" srcset="https://fountainmagazine.com/wp-content/uploads/2018/11/48-d07.jpg 1920w, https://fountainmagazine.com/wp-content/uploads/2018/11/48-d07-300x188.jpg 300w, https://fountainmagazine.com/wp-content/uploads/2018/11/48-d07-1024x640.jpg 1024w, https://fountainmagazine.com/wp-content/uploads/2018/11/48-d07-768x480.jpg 768w, https://fountainmagazine.com/wp-content/uploads/2018/11/48-d07-1536x960.jpg 1536w" sizes="(max-width: 1920px) 100vw, 1920px" /></p>
<blockquote>
<p>Gravitational waves can be defined as the vibration of space-time. Sky is an ocean in which the waves are stationary.</p>
</blockquote>
<p>When you throw a rock into the water, when a taut rope is plucked, when a spring is compressed and then released, or when our larynx vibrates, what forms is a wave. In each case, the medium where the wave forms is different: water, air, etc. Interestingly, light waves do not need a medium to travel.  A common feature of all kinds of waves is that they have wavelengths, frequencies and amplitudes. Another important feature they have is that there needs to be a source that triggers the wave. A spring, for example, needs to be compressed to produce the wave.</p>
<p><span id="more-5438"></span></p>
<p>Gravitational waves, on the other hand, can be defined as the vibration of space-time. These waves were predicted by Einstein in 1916 in relation to the general theory of relativity. Let us consider that all interstellar and intergalactic space is filled up with a substance similar to water. Then when, say, two black holes collide, space itself ripples like water. In fact, discussions have long continued over the existence of ether, a substance that forms the texture and essence of matter. If there are waves in space, then it is highly likely that there is ether that fills up space as well.</p>
<p>In a very interesting narration, the Prophet Muhammad, peace be upon him, is reported to have suggested that heavens are not a vacuum: “The sky is a wave held back” (Tirmidhi, Tafsir surah, 57/1). Bediuzzaman Said Nursi, in his interpretation of this hadith, says, “[Sky] is an ocean in which the waves are stationary” (<em>The Gleams</em>, Twelfth Gleam); in other words, heavens are a sea whose waves have settled, calmed and become still. The Qur’anic verse 36:40 reads “It is not for the sun to overtake the moon, nor does the night outstrip the day. All (the celestial bodies and systems) float (swim) in an orbit (determined for each).” We can infer from this verse that space is likened to a sea because floating or swimming can occur in a substance but not in a vacuum.</p>
<h3>The discovery of gravitational waves</h3>
<p>Gravitational waves were discovered by a team of experimental physicists on February 11, 2016, that is, exactly one hundred years after they were predicted by Einstein in 1916, and the discovery earned three physicists, Rainer Weiss, Barry C. Barish, Kip S. Thorne, the Nobel Prize in 2017. The LIGO observatory (<a href="http://www.ligo.caltech.edu/page/what-are-gw">www.ligo.caltech.edu/page/what-are-gw</a>) used an extremely sensitive interferometer to detect the gravitational waves produced by the collision of two black holes, one having 29 times the mass of the sun and the other 36, 1.3 billion years ago. The researchers used such a precise mechanism that it (the interferometer) could measure the distance to the nearest star to an accuracy smaller than the width of a human hair.</p>
<blockquote>
<p>The LIGO observatory used an extremely sensitive interferometer to detect the gravitational waves produced by the collision of two black holes, one having 29 times the mass of the sun and the other 36, 1.3 billion years ago.</p>
</blockquote>
<p>The working principle of an interferometer is based on the idea of splitting a laser beam from a single source into two components and then recombining them. The split beams get to the target at the same time after diverging at a right angle and being reflected back from two mirrors. Scientifically speaking, there is not any phase difference between the two. However, if the beams are subject to an effect like gravitational waves, the waves cannot get to the target at the same time, or in scientific terms, an interference pattern is formed on the screen because of the phase difference. In the same way, the waves generated by the collision of two black holes had an impact on the movements of the perpendicular laser beams as they ran past the area that housed the interferometer built by the LIGO team and caused a time difference in their arrival at the detector. In this experiment, the effect of the gravitational waves was measured by directing laser lights through L-shaped vacuum tunnels four kilometers long. The length of the tunnels was so precisely adjusted as to measure a difference, if any, as small as a proton.</p>
<p>The reason why the laser interferometer was so finely tuned is that the waves generated by two colliding black holes are so infinitesimally weak that only such an experimental mechanism could capture them. In other words, the experiment had to be precise beyond the atomic scale because the gravitational waves that reached the solar system could change the distance between the sun and the earth by just the size of an atom. To reiterate, the mechanism was designed so precisely that it can detect differences between laser beams as short as ten-thousandths the size of a proton. It should be remembered that a proton is a very, very small particle in the nucleus of an atom with a diameter of 10<sup>-15</sup> (one-million millionth) of a millimeter.</p>
<p>Furthermore, the gravitational waves were discovered simultaneously by two separate interferometers, which were located at a distance of 3220 km from each other. The reason for the dual measurement tools was to ensure that the waves were indeed gravitational waves.</p>
<p>What has excited scientists most about the discovery of gravitational waves, besides their confirmation of Einstein’s theory, is the fact that we will be able to exploit gravitational waves in addition to light and radio waves in order to explore space. It can be foreseen that telescopes working with gravitational waves can be developed or advanced laser interferometers can be built in space and discover other gravitational waves.</p>
<p>Gravitational waves are generated in space all the time. Large-scale phenomena such as the collision of two black holes or the explosion of supernovae cause ripples in the sea of space. It is highly likely that systems that can detect these waves will provide us with new information about the fabric of space and thus lead to new discoveries.</p>
<p>The fact that gravitational waves were discovered using technological tools is an excellent example of how technology can nurture science. Moreover, this study proves that some discoveries can only be made by big teams like those in the CERN experiments.</p>
<p>It is postulated that the universe rippled violently during the first creation as a result of the tremendous expansion, the effects of which might still exist and should warrant new studies. It is only a matter of time that a super-sensitive mechanism could confirm the Big Bang theory. It is believed that the gravitational waves generated at the very beginning of this expansion are still present and experimental designs such as that in the LIGO are likely to discover them. The Qur’anic verse 51: 47 is considered to be referring to this expansion: “And the heaven, We have constructed it mightily; and it is surely We Who have vast power, and keep expanding it.”</p>
<p>It is almost certain that technological progress will lead to new discoveries that will provide us with deeper insights into the incredible composition of the universe. Bediuzzaman describes the universe as “a rosebud, wrapped in thousands a variety of veils of unity” (<em>The Rays</em>, Second Ray, Third Station). Every new discovery is going to show us the magnificent secrets of this rosebud.</p>
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		<title>Will Cern Reveal The Origin of The Universe or cause the end?</title>
		<link>https://fountainmagazine.com/all-issues/2013/issue-92-march-april-2013/will-cern-reveal-the-origin-of-the-universe-or-cause-the-end/</link>
		
		<dc:creator><![CDATA[Louima Cunningham]]></dc:creator>
		<pubDate>Fri, 01 Mar 2013 00:00:00 +0000</pubDate>
				<category><![CDATA[Issue 92 (March - April 2013)]]></category>
		<category><![CDATA[Black holes]]></category>
		<category><![CDATA[boson]]></category>
		<category><![CDATA[cern]]></category>
		<category><![CDATA[energy]]></category>
		<category><![CDATA[god]]></category>
		<category><![CDATA[higgs]]></category>
		<category><![CDATA[Higgs Boson]]></category>
		<category><![CDATA[high]]></category>
		<category><![CDATA[hole]]></category>
		<category><![CDATA[holes]]></category>
		<category><![CDATA[mass]]></category>
		<category><![CDATA[micro]]></category>
		<category><![CDATA[particle]]></category>
		<category><![CDATA[particles]]></category>
		<category><![CDATA[physicists]]></category>
		<category><![CDATA[physics]]></category>
		<category><![CDATA[Science]]></category>
		<category><![CDATA[scientists]]></category>
		<category><![CDATA[universe]]></category>
		<category><![CDATA[world]]></category>
		<guid isPermaLink="false">http://107.21.79.195/all-issues/2013/issue-92-march-april-2013/will-cern-reveal-the-origin-of-the-universe-or-cause-the-end/</guid>

					<description><![CDATA[CERN, the most advanced physics laboratory on earth, announced on July 2012 that they had found a particle that behaved like the Higgs boson, a particle predicted almost 50 years ago to exist. This discovery has brought with it the possibility that the Higgs boson may be responsible for all the mass in the universe [&#8230;]]]></description>
										<content:encoded><![CDATA[<blockquote>
<p><em>CERN, the most advanced physics laboratory on earth, announced on July 2012 that they had found a particle that behaved like the Higgs boson, a particle predicted almost 50 years ago to exist. This discovery has brought with it the possibility that the Higgs boson may be responsible for all the mass in the universe and that if it does really exist scientists can unravel the mystery and origins of the universe a little more.</em></p>
</blockquote>
<p>Until the 18th century there was no precise distinction between philosophers and scientists. Philosophy and science merged when the ancient philosophers shaped science and improved scientific methods as we know today. Confucius, Plato, Aristotle, Avicenna (Ibn-i Sina) and Descartes are a few of the greatest known philosophers in history. Most of the prospering scientists in different disciplines have been inspired by their works. For instance, Johannes Kepler, Galileo Galilee, Isaac Newton, James Clerk Maxwell and Albert Einstein, all highly regarded physicists, were heavily influenced by the works of ancient philosophers. All of the aforementioned physicists tried to understand the physical laws that governed energy, time, and space. Even now, modern physicists are still trying to answer some of the most important questions: What is the nature of the universe and what is it made of? Are there undiscovered physical laws of nature? Are there extra dimensions of space? How can we solve the mystery of dark energy?</p>
<p><span id="more-1471"></span></p>
<p>Today, in order to understand the composition of matter and how the universe was created, the most prominent particle and high energy physicists are designing huge particle accelerators and detectors. Particle accelerators, also known as atom smashers, are devices that use electromagnetic fields to propel a group of charged particles (ions) to high speeds and collides them with other moving particles or a stationary target composed of a bunch of particles (<a href="http://public.web.cern.ch">http://public.web.cern.ch</a>). Particle detectors (radiation detectors) are used to detect, track, visualize and identify particles produced from reactions in accelerators. Scientists analyze the results of the collisions and try to understand interactions between the basic constituents of matter. This is the basis of understanding the components of the universe. The largest and most complex of these scientific instruments is located at CERN, the most advanced physics laboratory on earth. Egin Lillestol, a particle physicist from the University of Bergen (Norway), says that [1] there is nothing quite like CERN anywhere else on earth.</p>
<p>What does CERN stand for? CERN is the French acronym of Conseil Européen pour la Recherche Nucléaire which means European Council for Nuclear Research. It was founded in 1954. It attracts physicists and engineers from all over the world. According to CERN’s sources, half of the world’s particle physicists, about ten thousand scientists, are either doing active research or visiting there. They all work together toward their common goals of advancing technology, answering questions for better understanding the material world and training future scientists. CERN has also seen the development of many practical scientific applications other than those involved with high energy and particle physics. For instance, the world-wide-web was invented at CERN to allow international scientists to communicate and share their ideas more easily. From 1954 to present, scientists at CERN have received Nobel Prizes in Physics including Sam Ting, Burt Richter, Jack Steinberg and Georges Charpak.</p>
<p>CERN hosts the largest and highest energy particle accelerator, the Large Hadron Collider (LHC), which is twenty-seven kilometers in circumference and about one hundred meters under the ground. The LHC enables scientists to collide two groups of particles such as protons and lead ions. Physicists analyze and study the particles that are created in the collisions to study conditions just after the Big Bang, the phenomenon that is believed to form the universe 13.7 billion years ago. Many people in the world are looking forward to see the results the LHC will be producing.</p>
<h3><b>CERN: Black holes </b></h3>
<p>Some people have expressed concerns about the safety of the collider at CERN. The biggest concern is whether or not an atom-smasher as big as the LHC could create black holes and destroy the earth. In 2003, LHC Safety Assessment Group (LSAG) reported that the possible production of vacuum bubbles, magnetic monopoles and magnetic black holes at the LHC have no real risk. However, concerns about the safety of creating micro black holes in such a high energy particle accelerator have surfaced in the media for many years. Some media sites claimed that a black hole would be formed and destroy everything. Others announced that the LHC might cause earthquakes. According to the administrator of lhcfacts.org, a website in which scientists discuss the lack of safety at the LHC, the possibility of creating a micro black hole at CERN cannot be ignored, and there are two predictions about what that micro hole would be: according to the more optimistic outcome, the micro black hole evaporates before becoming a threat. According to the second prediction, however, the hole could grow quickly and endanger Earth. Eventually, the LSAG finished the discussion by reaffirming and publishing a second review which reports:</p>
<p>“The possibility of creating micro black holes at the LHC is at the rate of the order of one per second. These are harmless because they would quickly decay by hawking radiation (thermal radiation) according to standard calculations. They decay before even reaching the detector.”</p>
<p>Moreover, these kind of events, even with higher energies than those created in any man-made atom smasher, occur naturally and routinely in the universe. For example, ultra high energy cosmic rays (particles created in outer-space) come into contact with Earth’s atmosphere without any hazardous consequences. In brief, American physicist Karen D. Camarda said &#8220;If anything bad was going to happen, nature would have already done it.”</p>
<h3><b>CERN: Higgs Boson </b></h3>
<p>Another case which has dominated world news headlines mid-2012 was the Higgs boson, otherwise known as the “God particle.” What exactly is the Higgs boson and why is it called the God particle? The Higgs boson is a yet undiscovered particle which is taught to be a mechanism for how subatomic particles acquire mass. Most likely, it has a mass between the regions 115-130 GeV of energy. The Higgs mechanism was postulated by British physicist Peter Higgs in 1960s. The theory hypothesizes that the Higgs field, a kind of three dimensional frameworks, fills the universe. A particle borrows mass from the Higgs field when it moves through it. This is similar to the process that an electron undergoes as it gains mass when it passes through a positively charged crystal lattice of atoms. The “God particle” was coined as a nickname of the Higgs boson after Nobel prize winning physicist Leon Lederman published his popular science book in 1993 with the title of The God Particle: If the Universe Is the Answer, What Is the Question? Lederman said he gave the particle this nickname because it is &#8220;so central to the state of physics today, so crucial to our understanding of the structure of matter” [2]. To explain further, the term “God particle” is more applicable to marketing than to science and theology. According to many scientists, calling it the “God particle” is inappropriate because it does not have any connection with God or any religion. Many wonder what will happen if scientists find the Higgs boson. Brad Hirschfield, President of the National Jewish Center for Learning and Leadership said in his article [3] in The Washington Post:</p>
<p>“While not exactly a theory of creation, finding the God Particle would bring us closer to an understanding of the fundamental processes that govern physical existence.”</p>
<p>Furthermore, some scientists admit that exploration in this field will be far from over even after the Higgs boson is found. Instead, the discovery will open doors to newer and more complex questions. For instance, Michio Kaku, the co-founder of String Theory, asserts [4] that finding the Higgs boson is not enough. He says that “we are at the beginning, not the end of physics. The adventure continues.” In spite of these sentiments, some people, including myself, believe that the discovery of the Higgs boson might reveal a very large missing piece in the physics puzzle.</p>
<p>Acknowledgment: This article is produced at Mergeous [5], an online article and project development service for authors and publishers dedicated to the advancement of technologies in the merging realms of science and religion.</p>
<p><em>Kara is a freelance pop-sci writer pursuing a PhD in Physics.</em></p>
<h3><b>References</b></h3>
<p>[1] CERN, “A Unique Experience,” <a href="http://user.web.cern.ch/">http://user.web.cern.ch/</a></p>
<p>[2] Lederman, Leon M. 1993. The God Particle: If the Universe Is the Answer, What Is the Question?: A Tale of Two Particles and the Ultimate T-Shirt, Bantam Doubleday Publishing Group.</p>
<p>[3] Hirschfield, Brad. 2011. “The ‘God Particle’ and God,” The Washington Post.</p>
<p>[4] Kaku, Michio. 2011. “The ‘God Particle’ and the Origins of the Universe,” The Wall Street Journal.</p>
<p>[5] Mergeous, Online article and project development platform, <a href="http://www.mergeous.com">http://www.mergeous.com</a></p>
<p>[11] DOE/NSF, High Energy Physics Advisory Panel, Quantum Universe, The Revolution in 23st Century Particle Physics, 2003.</p>
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		<title>Can Black Holes Cause an Apocalypse?</title>
		<link>https://fountainmagazine.com/all-issues/2013/issue-91-january-february-2013/can-black-holes-cause-an-apocalypse/</link>
		
		<dc:creator><![CDATA[Louima Cunningham]]></dc:creator>
		<pubDate>Tue, 01 Jan 2013 00:00:00 +0000</pubDate>
				<category><![CDATA[Issue 91 (January - February 2013)]]></category>
		<category><![CDATA[apocalypse]]></category>
		<category><![CDATA[atmosphere]]></category>
		<category><![CDATA[black]]></category>
		<category><![CDATA[Black holes]]></category>
		<category><![CDATA[direction]]></category>
		<category><![CDATA[earth]]></category>
		<category><![CDATA[east]]></category>
		<category><![CDATA[force]]></category>
		<category><![CDATA[gravitational]]></category>
		<category><![CDATA[Gravitational balance]]></category>
		<category><![CDATA[gravity]]></category>
		<category><![CDATA[hole]]></category>
		<category><![CDATA[holes]]></category>
		<category><![CDATA[planet]]></category>
		<category><![CDATA[qur’an]]></category>
		<category><![CDATA[Science]]></category>
		<category><![CDATA[space]]></category>
		<category><![CDATA[stars]]></category>
		<category><![CDATA[sun]]></category>
		<category><![CDATA[time]]></category>
		<category><![CDATA[universe]]></category>
		<category><![CDATA[verses]]></category>
		<category><![CDATA[west]]></category>
		<guid isPermaLink="false">http://107.21.79.195/all-issues/2013/issue-91-january-february-2013/can-black-holes-cause-an-apocalypse/</guid>

					<description><![CDATA[The world may not have ended on December 21, 2012, but that does not mean it won’t end at all. So what will be the force that will disperse this robust system of ours, rendering all forces including gravity obsolete, and forcing the sun and planets out of their orbits? The universe contains billions of [&#8230;]]]></description>
										<content:encoded><![CDATA[<blockquote>
<p>The world may not have ended on December 21, 2012, but that does not mean it won’t end at all. So what will be the force that will disperse this robust system of ours, rendering all forces including gravity obsolete, and forcing the sun and planets out of their orbits?</p>
</blockquote>
<p>The universe contains billions of heavenly systems that travel interdependently in a perfect and harmonious fashion. What could be the obvious cause or force that could disrupt this great arrangement, deorbit the stars and planets, and make every other force ineffective including gravity? If we ponder upon the verses of the Holy Qur’an, “When the sun is folded up (and darkened). And when the stars fall (losing their luster)” (At-Takwir, 81:1−2), “And when the heaven is torn away (with all the truths becoming manifest)” (At-Takwir, 81:11) with our current cosmological advances, will Black holes be the cause that will likely destroy the Sun and even devour the light of stars so that they are unable to function?</p>
<p>Black holes are considered to have the potential to cause a universal apocalypse. It seems plausible that with such gravitational power of Black holes, mountains would be casted away, and magma displacement via volcanic eruptions could lead to major earthquakes. There are a couple of recent geologic studies pointing out the possibility that the gravity of the sun and moon play a role in development of earthquakes. The 7-8 meter rise in seas and 35-40 cm rise in land caused by lunar and solar eclipses are considered to be a possible factor among many factors that triggers an earthquake. Earthquakes of 12-15 Richter scale magnitude can occur because of the gravitational force of Black holes. The biggest earthquake ever recorded was of 9.2 magnitude; such that if it happens again, it can lead to a major catastrophe in a very short time.</p>
<p>Let’s not forget that we are residing on a globe filled with fire in its center. Gases that make up the atmosphere are held only with help of planetary gravity. One of the forces that will boil all the waters away and let all the gases escape the planet could be Black hole gravitation. The air in our atmosphere and resulting “air pressure” can be destroyed by Black hole gravity. Oceans would start boiling violently and then might evaporate off the planet. In this case, living things would suffer severe structural damages since all life forms are composed mostly of water (~70%). That is why astronauts wear a special space suit filled with air made up of normal atmospheric pressure when they leave the atmosphere. We should also keep in mind that trillions of heavenly bodies (asteroids, meteors, and comets) located in the two asteroid belts (Orion and Kuiper) may be freed from their gravitational control by the vacuum impact of the Black hole, causing colossal cosmic collisions.</p>
<h3>The disruption of gravitational balance</h3>
<p>There is a sensitive relationship between the elements of the universe, such as electromagnetic, nuclear forces and an apocalypse may result from a disruption of these.</p>
<p>According to the general relativity theory, the time-space plane can be rolled or wrinkled up like a paper. The gravitational force of black holes can cause the displacement of stars which are interconnected through weak web of attractions. As if a piece of net takes a specific shape when loaded with heavy objects, the web of space-time, also known as the cosmos, could be distorted and even torn apart by black holes with their infinite mass “sitting” in it. This is a characteristic of black holes. A possible explanation for this might be that via elimination of common physical laws, the black hole region could become the gateway to metaphysical dimensions. Cosmos of space and time is described as strong-built, fracture-free in the Qur’an; “You do not see any fault or incongruity in the creation of the all Merciful. Look yet again: can you see any rifts?” (Al-Mulk, 67:3). However, in verses about the apocalypse, cosmic fractures that will occur is constantly repeated; “Day will come, land to be transformed into another, skies to be converted into others” (Ibrahim, 14:48)”On the day when the earth is changed into another earth, and the heavens (also)” (Abraham, 14:48), ”And the sky split asunder, and so, on that day it will be most frail” (Al-Haqqah, 69:16), and “The sky will cleft open thereby” (Al-Muzzammil, 73:18). We can conclude from these verses that new heavens would be created from these “fractures.”</p>
<p>The way that doomsday will actually take place is in the knowledge and control of Our Creator who executes these acts and maintains the order of the universe. Approaches and conclusions made with current physical and cosmic sciences will enable a better understanding of the verses related to doomsday.</p>
<h3>The Sun rising in the West and the apocalypse</h3>
<p>Can a comet or a planet change the direction of the earth’s rotation by colliding with it? Can the earth change direction and start to rotate from East to West instead of West to East? A catastrophic event like this may cause colossal destruction and end the lives of many organisms. As a matter of fact, a comet impact in recent years was detected to slow down the rotational speed of planet Jupiter.</p>
<p>Venus is a mysterious planet on many levels. For example it rotates in the opposite direction compared to other planets. Sun rises in the West on Jupiter. Dense rock and dust layers of Venusian atmosphere is theorized to be formed as a result of a collision, and because of this collision, it is thought to have started spinning in the opposite direction. A day in Venus is longer than a year. In other words Venus revolves around the Sun faster than it rotates around itself.</p>
<p>Bediuzzaman Said Nursi explains the sun rising in the West rather metaphorically as follows:</p>
<blockquote>
<p>“While God knows best, the Qur’an, which is in effect the intellect of the earth, will disappear from its head at the end of time and, as a result, the earth will go mad. With Divine leave, it will collide with another planet and its rotation will be reversed. Through Divine Will, its journey from west to east will be reversed from east to west, and the sun will start to rise in the west. Truly, if the gravity of the Qur’an, which is the firm rope of God that binds the earth to the sun and the ground to the Divine Supreme Throne, is broken, the tether holding the earth will come unfastened. The earth will consequently become dizzy and deranged: on account of the reversal of its usual motion, the sun will rise in the west. Through its collision with another planet, Doomsday will begin at the Divine command.” (The Rays, p. 365)</p>
</blockquote>
<p>Whichever way the earth comes to an end, even if the universe is not destroyed by an external destructive event, an apocalypse is foretold as something that will eventually happen with some mind-blowing descriptions in the Qur’an. What science speaks of black holes and other astrophysical possibilities in the universe seems to confirm these descriptions:</p>
<blockquote>
<p>When the sun is folded up, and when the stars fall, and when the mountains are set moving. (At-Takwir, 81:1-3)<br />When heaven is cleft open, and when the stars fall in disorder and are scattered, and when the seas burst forth. (At-Taqwir, 81:1-3)</p>
</blockquote>
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		<title>The Story of a Lie</title>
		<link>https://fountainmagazine.com/all-issues/2011/issue-79-january-february-2011/the-story-of-a-lie/</link>
		
		<dc:creator><![CDATA[Louima Cunningham]]></dc:creator>
		<pubDate>Sat, 01 Jan 2011 00:00:00 +0000</pubDate>
				<category><![CDATA[Issue 79 (January - February 2011)]]></category>
		<category><![CDATA[auntie]]></category>
		<category><![CDATA[bag]]></category>
		<category><![CDATA[day]]></category>
		<category><![CDATA[door]]></category>
		<category><![CDATA[eyes]]></category>
		<category><![CDATA[father]]></category>
		<category><![CDATA[holes]]></category>
		<category><![CDATA[house]]></category>
		<category><![CDATA[lie]]></category>
		<category><![CDATA[Literature & Languages]]></category>
		<category><![CDATA[parents]]></category>
		<category><![CDATA[seamstress]]></category>
		<category><![CDATA[teacher]]></category>
		<category><![CDATA[time]]></category>
		<category><![CDATA[trousers]]></category>
		<guid isPermaLink="false">http://107.21.79.195/all-issues/2011/issue-79-january-february-2011/the-story-of-a-lie/</guid>

					<description><![CDATA[“Take these trousers to Kristina, the old seamstress,” my teacher instructed me, “and tell her they need mending. I have also put some extra fabric in the bag,” she added. This wasn’t the first time I was being sent on an errand for my teacher. I had run to fetch her lunch, pick up her [&#8230;]]]></description>
										<content:encoded><![CDATA[<p>“Take these trousers to Kristina, the old seamstress,” my teacher instructed me, “and tell her they need mending. I have also put some extra fabric in the bag,” she added. This wasn’t the first time I was being sent on an errand for my teacher. I had run to fetch her lunch, pick up her prescription from the pharmacy, tell her mother to take the chicken out of the freezer, pick her son up from day care, you name it. But this task was different. It was exciting. What’s so exciting about going to a seamstress you may wonder; she was no ordinary seamstress.</p>
<p>You see, Auntie Kristina (that’s what a girl with manners should call her) was a friend of my family. She had visited us more times than I could count, but I had never been allowed to visit her, because her husband was unwell (and, I thought, probably couldn’t stand noise). They had no relatives in town. Their only daughter had married and moved to a distant city. So they lived alone in our small town, where everyone else had been there since Adam. It seemed to me that as outsiders they really appreciated the friendship of my parents. Also my father would fix any electrical appliance that broke in their house, free of charge. I guess Auntie Kristina and her husband loved my father like the son they had never had.</p>
<p>Auntie Kristina had the strangest ability to mend clothing like no one else could. She could patch a hole or sew a tear so that it was no longer there, as long as you had extra fabric. You couldn’t detect where a patch had been, even with my grandpa’s glasses on. Ask my mom if you don’t believe me.</p>
<p>So, I was ready to sprint toward her house when my teacher delivered her final instruction. “Be careful. Don’t drop the trousers anywhere. They are very expensive. And,”-that’s when my heart froze-“tell her these are your father’s trousers.”</p>
<p>You might have asked why, but I didn’t. I knew the reason. Auntie Kristina had stopped doing this kind of work for quite some time now. She had turned down such requests lately because the job put a strain on her aging eyes. But there was only one person she wouldn’t turn down: a dear friend asking a favor. And that was my father. If you wonder how my teacher knew that, then I suppose you’ve never lived in a small town full of gossip.</p>
<p>Yes. I knew it was a lie, but after having had this same neurotic teacher for 3 years, a teacher who had pulled my hair in first grade for writing crooked letters, I knew better than to say no.</p>
<p>I lowered my head and dragged myself out of the school. As I watched my shadow slide over the stones on the dusty road, I tried to think of a way out. The first scenario that played in my head was telling Auntie Kristina the whole truth and nothing but the truth.</p>
<p>“Auntie, my teacher sent me with a pair of trousers which have two holes, one big and one small on the left leg. These trousers belong to my teacher’s brother-in-law, who is our ambassador in some far away country and who burned them accidentally during a reception. (No, I am not making anything up. I overheard my teacher talking to her assistant during recess.) Since these trousers are far too expensive to throw away and since it is very, very important that the representative of our glorious country doesn’t go around with holes in his trousers, would you kindly repair them, please?”</p>
<p>She would politely decline and I wouldn’t blame her. Why strain one’s eyes to save the fancy pants of a careless diplomat?! However, this kind of answer would spell disaster for me. I abandoned this scenario and switched to the next.</p>
<p>I would go to her house; pretend I had knocked till my knuckles hurt, then turn back to tell my teacher that the seamstress wasn’t home. My teacher would believe me because: number one, I hadn’t lied before, and number two, she believed that the child who could lie to her had not yet been born. (She told us this herself, but if you can keep a secret, I will tell you-she is wrong. Two of my friends lied to her once, and they didn’t even flinch when faced with her lie-detecting stare.)</p>
<p>Anyhow, I would try, if it would end my misery. Yet, I knew like two plus two equals four that she would send me again the next day and then the next until I found the seamstress home. Chances are she would send another envoy with me after the second attempt. Then, I would have to convert that classmate into an accomplice, which was about as easy as swallowing a bull.</p>
<p>As I swallowed my saliva and wiped my sweaty forehead I realized that I had arrived at Auntie’s house. Standing in front of her door with my fist raised to knock, I couldn’t think of a way out of this dilemma: Shall I lie to my teacher or to Auntie Kristina? To tell the truth, the first seemed a lesser wrong but with greater consequences. I would have the same teacher for another two whole years.</p>
<p>I knocked twice, wishing hard that Auntie Kristina had moved to another city without letting anyone know, or had gone to see her daughter long enough for his Corpus Diplomaticus to go back to that far-away country. Have I told you that I am not that lucky? Well it’s time you knew.</p>
<p>Auntie Kristina opened the door with a big smile that made me blush to the tip of my ears.</p>
<p>“Hello Auntie! My parents send their regards to you. My father’s trousers need some repairs.” My voice trembled like I was begging for food. “Some extra fabric is in the bag.” I handed the bag to her with shaky hands. As soon as Auntie saw the shiny, high quality pants she looked at me over her spectacles, perplexed. She inspected the holes and fell silent. The longer the silence lasted, the hotter my face got. Auntie Kristina, who probably knew how many fillings my father had in his mouth, could quite easily guess that my father, a modest electrician, would more likely land on the moon than own those fancy trousers. I lowered my head and waited for a shame-on-you slap but instead I got:</p>
<p>“O.K. Come and pick them up tomorrow.”</p>
<p>Tomorrow? I was worried. I will have to go through all this again my mind protested.</p>
<p>“Yes, “she said. “I don’t have time today.”</p>
<p>“Tell your parents I said hi,” she reminded me. I nodded. You would expect me to take a deep breath once she closed the door, right? Instead I felt like I was choking and there was only one way for my lungs to get air: let the tears that were knotted in my throat flow. And I did. I didn’t care who might be watching. I hated my teacher. I detested her mindless brother-in-law. I loathed pant-burning cigars. I hated myself. I was a bad girl. I was a liar. I continued to cry to my heart’s content, until my eyes were dry and I could breathe again.</p>
<p>The next day my teacher’s face brightened up when she examined the repaired trousers.</p>
<p>“Unbelievable!” she exclaimed. “One thousand witnesses are needed to prove that there was a hole in these pants.” She turned to me with a smile and said, “Well done.” Her praise, rare as rain in the desert, didn’t make me at all happy this time. In fact, it inflamed my guilt which was burning holes inside me. All I could do was to wait for the flame to die out.</p>
<p>Three weeks later, when the fire of my guilt had somewhat subdued, something happened that blew the ashes away and exposed the embers. It was the day of my older sister’s wedding. As I was busying myself, getting into everybody’s way, I heard Auntie Kristina’s voice greet my father. I jumped out of my skin and hid behind my bedroom door. Peaking through the keyhole, I saw her hand Mom a wrapped gift for my sister. Only for a split of a second did she scrutinize the outfit my father had on. Although it was his best gray suit, it stood a hundred light-years away from those fancy trousers.</p>
<p>She smiled at him and proceeded to the sitting room. She sat on the sofa exchanging pleasantries with both my parents while her coffee was being made. I glued my ear to the wall so that I could hear and started to reconstruct the puzzle of their conversation from what I could hear. When she asked where I was, suddenly finding a hiding place was more urgent than hearing what she had to say next. If I knew one thing about my mother, who stuck to the rules of manners like no other, it was that she would be looking for me in no time. It is considered rude for children to not greet guests, especially when the guests deigned to ask about them. I wasn’t mistaken. Mom rushed into my bedroom calling my name. I was sweating in my closet, hiding among racks of clothes. Did Auntie tell? Is Mom angry? Am I in trouble? I wondered. I could sense she was annoyed and impatient. Somebody called Mom from the kitchen with urgency so she stopped looking for me. I stayed inside until I heard Mom thank Auntie for coming and say goodbye.</p>
<p>I couldn’t spend my whole life inside a closet, so finally I decided I had to come out. On my way to the front yard, Mom called: “There you are! Here, take this. It’s from Auntie Kristina. She said you are a good girl,” Mom related with satisfaction. I don’t know why, but parents are really happy when their children are praised. “Isn’t she a nice lady?” Mom asked. Without waiting for my answer she hurried to greet another guest standing at the door. My mom had placed a bag of candies in my hand. My eyes welled up, but I pushed the tears to the corners. Something that felt good was happening inside me. The holes of emptiness were being patched. My soul was being mended.</p>
<p>“Yes,” I whispered to myself. “She is a nice lady, and the best seamstress of all.”</p>
<p><em>Mirkena Ozer is pursuing MA in women studies at the University of Georgia, Atlanta.</em></p>
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		<item>
		<title>Black Holes and Possible Depictions of the Judgment Day</title>
		<link>https://fountainmagazine.com/all-issues/2007/issue-58-april-june-2007/black-holes-and-possible-depictions-of-the-judgment-day/</link>
		
		<dc:creator><![CDATA[Louima Cunningham]]></dc:creator>
		<pubDate>Sun, 01 Apr 2007 00:00:00 +0000</pubDate>
				<category><![CDATA[Issue 58 (April - June 2007)]]></category>
		<category><![CDATA[astronaut]]></category>
		<category><![CDATA[black]]></category>
		<category><![CDATA[day]]></category>
		<category><![CDATA[event]]></category>
		<category><![CDATA[eye]]></category>
		<category><![CDATA[folded]]></category>
		<category><![CDATA[force]]></category>
		<category><![CDATA[gravity]]></category>
		<category><![CDATA[hole]]></category>
		<category><![CDATA[holes]]></category>
		<category><![CDATA[horizon]]></category>
		<category><![CDATA[judgment]]></category>
		<category><![CDATA[light]]></category>
		<category><![CDATA[planets]]></category>
		<category><![CDATA[qur’an]]></category>
		<category><![CDATA[Science]]></category>
		<category><![CDATA[space]]></category>
		<category><![CDATA[stars]]></category>
		<category><![CDATA[sun]]></category>
		<category><![CDATA[time]]></category>
		<category><![CDATA[universe]]></category>
		<guid isPermaLink="false">http://107.21.79.195/all-issues/2007/issue-58-april-june-2007/black-holes-and-possible-depictions-of-the-judgment-day/</guid>

					<description><![CDATA[The Day when We will roll up the heaven as written scrolls are rolled up. We will bring the creation back into existence as easily as We originated it in the first instance. This is a binding promise on Us, and surely We fulfill whatever We promise. (Anbiya 21:104) When the sky is cleft asunder; [&#8230;]]]></description>
										<content:encoded><![CDATA[<p>The Day when We will roll up the heaven as written scrolls are rolled up. We will bring the creation back into existence as easily as We originated it in the first instance. This is a binding promise on Us, and surely We fulfill whatever We promise. (Anbiya 21:104)</p>
<p>When the sky is cleft asunder; And when the planets are dispersed, and when the oceans are poured forth. (Infitar 82:1-3)</p>
<p>The events that are to occur on the Day of Judgment are clearly depicted in the Qur’an. The relevant verses emphasize that the Day of Judgment is not an ending that will only involve the Earth, but one which will also incorporate other planets on a universal scale.</p>
<p>Insofar as causes are concerned, what could be the force that will be able to disperse a robust system, rendering all forces including gravity obsolete and forcing planets and stars out of their orbits?</p>
<p>The following verses seem to imply that this force will also affect “lustrous” heavenly bodies:</p>
<p>When the sun is folded up, and when the stars fall losing their luster; and when the mountains are set moving. (Takwir 81:1-3)</p>
<p>For the word kuwwirat (folded up) in the verse “When the sun is folded up,” the famous scholar Fakhreddin Razi, in concordance with a narration from the third Caliph Umar, interprets this word to mean “to darken by expunging light.” Now, how could Divine Predestination operate on the physical world, in the folding and collection of light? In the past few years, scientists have been pondering the possibility of the gravitational power of black holes in accomplishing such a role. As we know, even light, alongside matter, cannot resist the irrepressible gravitation of the black hole.</p>
<p>The events depicted in the verses given above may be, with the will of the Creator, dependent on the gravitational power of black holes.</p>
<p>It is a fact that we’re sitting on a sphere of fire, as we speak, and the gases that constitute the atmosphere are held above the Earth by the force of gravity. With the impact of the strong force of gravity however, the air we breathe will be the first thing to vanish from the Earth’s atmosphere. Thus, with the disappearance of external pressure on such an occasion, internal pressure will gain ascendance in all creatures, who are composed predominantly of water (70%), causing them to shatter into pieces.</p>
<p>Along with other planets, the gravitational bonds of billions of stars (asteroids, meteors and comets) found on the two asteroid zones of the Solar System, all of which are sustained by Divine Power, will perhaps be torn apart with the force of black holes.</p>
<p>The geometrical gravity balances could perhaps also play a role in setting the Day of Judgment in motion. As can be observed in the General Theory of Relativity, the space-time levelness of the universe could, to quote the Qur’an, be folded and scrunched akin to a piece of paper, in which case, the stars, having been moved out of their places, will plummet from their positions.</p>
<p>Similar to how a cloth or net is elongated or pulled down under the impact of heavy objects, the universe (the net of space-time) will also stretch and yield, and in fact rip and crack, or more precisely be punctured, from the dense objects placed inside it, that is the black holes. The puncture, in this case, denotes the invalidation of physical laws.</p>
<p>It can be assumed that the black holes, placed at the center of the universe, will gradually expand, until the entire galaxy virtually becomes a black hole, and with the unification of every black hole, the whole universe will effectively be rendered a black hole itself.</p>
<h3><b>When the camel goes through the eye of the needle…</b></h3>
<p>Those who deny our revelations and scorn them, for them the gates of heaven will not be opened nor will they enter the Garden until the camel goes through the eye of the needle. Such is how we penalize the guilty! (A’raf 7:40)</p>
<p>A camel going through the eye of a needle calls to mind how the universal bodies will be passed through the singularity, the tiny openings of black holes. This comparison is reminiscent of how a giant sphere that comes within the swallowing vicinity of the black hole, may become stretched out to the point of becoming a virtual string, eventually becoming ingested by an object much smaller than itself.</p>
<p>A star, hundreds of thousands times bigger than the sun, could be reduced to the head of a needle once it begins to be warped by the black holes, phenomena in which space and time themselves are compelled to twist and turn.</p>
<p>The central area where the gravity force of the black hole is at its peak is described as “the event horizon.” The black holes could in fact be passages that allow us to enter other universes. In such a situation, we can hypothetically evaluate what will become of an astronaut who falls into a black hole.</p>
<p>We align our watches in correspondence with the astronaut’s, and bid him farewell towards the event horizon. As the astronaut approaches the event horizon where gravity gradually increases, we notice his watch is starting to operate more slowly. In the vicinity of the event horizon of a black hole the size of our sun, while our watches indicate that 1 second has passed, the astronaut’s watch will show that 3.3 seconds have passed, as time, where he is, flows much slower.</p>
<p>As our astronaut draws near to the event horizon, the 33 seconds indicated by his watch (10 times slower than before) will be equivalent again to our 1 second, and when he eventually and completely enters the event horizon, time will have frozen, halting the disparity between each second.</p>
<h3><b>How would the space traveler perceive this hypothetical journey?</b></h3>
<p>Not only will the space traveler become cognizant of the slower elapse of time, he may also witness an elongation of his body as he draws nearer to the event horizon. Since the force of gravity will take more of a toll on the extremities, that is the head and the feet, by the time the astronaut asks the question “What is happening?” he would already have begun to be extended like a string. The passing second for the astronaut progressively approaching the event horizon, will begin to become one month or one year later in the Universe. A pace away from the horizon the entire future of the Universe will fit into a single second of the astronaut, who, by now, is swiftly being pulled in to the point of singularity, finding himself on the other side. In this area, the Special Relativity Theory, essentially based on the thesis that the velocity of light is absolute velocity, i.e. the greatest velocity in the Universe, loses its validity, in that, as one approaches the singularity, the gravitational force affecting the astronaut or space ship will become so intense that the actual speed will surpass the velocity of light itself. Thus, the tangibility of a velocity greater than that of light will render all principles of causality obsolete, during which a regressive journey in time becomes practically possible. The interpretations of this issue are as such: A person plummeting into the well of singularity may live the whole history of the universe in the blink of an eye. They now have become a time traveler; the present, past, and future are all presented to their vision. As if passing through the eye of a needle, they may have passed through to another universe.</p>
<p>Imam Ghazzali, while interpreting the verses concerning the Day of Judgment, in his epistle Kashf al-Ulum al-Akhirah, puts the accent on Universal cessation:</p>
<p>“When God wills the commencement of the Judgment with the blowing of the Horn, you will see the mountains flying and moving about like clouds, seas amalgamating with one another, the Sun folded and being blacked out, the stars scattering around like beads disengaged from their strings, the sky rotating ferociously like a millstone, the ground trembling terrifyingly, stretching and expanding like leather. In that God will decree the dismissal of the orbits and no living thing will remain alive on earth or in the heavens. The spirited will surrender their spirits. The Earth and Heavens will be availed of their inhabitants.”</p>
<p>Said Nursi, alternatively, lays emphasis on the deterioration of the finely tuned connections, such as gravity, electromagnetic and nuclear forces, etc., attaching universal entities together, depicting the Day of Judgment in the following words:</p>
<p>“Consider the Qur’anic description of the minute and precise interrelationship of the universe’s constituent parts. Consider their sublime and delicate organization into a system. If any heavenly body were told to leave its axis, the universe would be thrown into the throes of death. Stars would collide, planets would be scattered, and the sound of exploding spheres would fill space. Mountains would begin to move, and Earth would be flattened. Eternal Power will bring about the next life in just this way, and the elements of Paradise and Hell will be separated from each other.”1</p>
<p>Regardless of how the Armageddon occurs, Nursi asserts that what has been repeatedly highlighted by the Qur’an will be realized:</p>
<p>“If the universe is not destroyed by an external destructive event, with the Eternal Will’s permission, it eventually will begin to die. Even scientists say this. According to the Qur’an, it will give a sharp cry, and then the following things will happen:</p>
<p>When the sun is folded up, and when the stars fall losing their luster; and when the mountains are set moving. (Takwir, 81:1-3)</p>
<p>When the sky is cleft asunder; and when the planets are dispersed, and when the oceans are poured forth. (Infitar 82:1-3)”2</p>
<p>Our aim here is to evaluate the incredible events miraculously foretold by the Qur’an from the cognitive perspective bestowed upon us by God through contemporary sciences and to gain broader points of view. Only God, however, can know the exact form of present and future events.</p>
<h3>Notes</h3>
<p>1. Nursi, Said. The Words, The Light, Inc., New Jersey: 2005, p. 546.</p>
<p>2. Ibid, p. 545.</p>
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		<item>
		<title>Violent Deaths of Massive Stars and the Story of Black Holes</title>
		<link>https://fountainmagazine.com/all-issues/2003/issue-44-october-december-2003/violent-deaths-of-massive-stars-and-the-story-of-black-holes/</link>
		
		<dc:creator><![CDATA[Louima Cunningham]]></dc:creator>
		<pubDate>Wed, 01 Oct 2003 00:00:00 +0000</pubDate>
				<category><![CDATA[Issue 44 (October - December 2003)]]></category>
		<category><![CDATA[atoms]]></category>
		<category><![CDATA[black]]></category>
		<category><![CDATA[Black holes]]></category>
		<category><![CDATA[core]]></category>
		<category><![CDATA[earth]]></category>
		<category><![CDATA[energy]]></category>
		<category><![CDATA[form]]></category>
		<category><![CDATA[gravity]]></category>
		<category><![CDATA[hole]]></category>
		<category><![CDATA[holes]]></category>
		<category><![CDATA[iron]]></category>
		<category><![CDATA[mass]]></category>
		<category><![CDATA[massive]]></category>
		<category><![CDATA[Nebula]]></category>
		<category><![CDATA[neutron]]></category>
		<category><![CDATA[object]]></category>
		<category><![CDATA[radius]]></category>
		<category><![CDATA[Science]]></category>
		<category><![CDATA[star]]></category>
		<category><![CDATA[stars]]></category>
		<category><![CDATA[sun]]></category>
		<category><![CDATA[times]]></category>
		<category><![CDATA[white]]></category>
		<guid isPermaLink="false">http://107.21.79.195/all-issues/2003/issue-44-october-december-2003/violent-deaths-of-massive-stars-and-the-story-of-black-holes/</guid>

					<description><![CDATA[Everything started with an explosion. About 14 billion years ago, when the universe was only 10 millionths of a second old, it consisted of high energy photons with a temperature of above 1 trillion degrees. The protons, electrons, and neutrons of which our bodies are made were produced during the first 4 seconds of the [&#8230;]]]></description>
										<content:encoded><![CDATA[<p>Everything started with an explosion. About 14 billion years ago, when the universe was only 10 millionths of a second old, it consisted of high energy photons with a temperature of above 1 trillion degrees. The protons, electrons, and neutrons of which our bodies are made were produced during the first 4 seconds of the Big Bang. Technically, we are about 14 billion years old! By the time the universe was 2 minutes old, protons and neutrons combined to make heavy hydrogen (deuterium), and further reactions started to convert deuterium into helium. But heavier atoms could not be built because there were no stable nuclei with atomic weights of 5 or 8. If we use the analogy of a stairway to represent cosmic element building, then we can see the lack of stable nuclei with atomic numbers of 5 and 8 as gaps in the stairway, thus the step-by-step reactions could not jump over these gaps to climb the stairs (or to form heavier atoms). So how did we get the heavy atoms on Earth that are essential for life, if they were not produced during the Big Bang?</p>
<p>Every soul shall have a taste of death (Quran 3:185). Like everything else, stars live and die. Would it make any difference if you knew that the iron in your blood and the calcium in your bones had been assembled inside stars? Atoms heavier than iron are formed by rapid nuclear reactions that can only occur when a massive star explodes. Gold, which is not crucial for our lives, and iodine, which is important for our health, are available, thanks to the violent deaths of massive stars.</p>
<p>The death of a star leads to one of three final states. Most stars, including our Sun, will become white dwarfs, stars about the size of the Earth, with no usable fuels. But the most massive stars explode and leave extraordinary objects behind; either a neutron star or a black hole.</p>
<p>The Sun resists its own gravity by generating energy through nuclear fusion. Under extreme conditions, four hydrogen atoms are combined to form a helium atom, and the mass difference between these atoms are converted to energy which can be calculated by Einsteins famous equation, E=mc<sup>2</sup>, where m is the amount of mass converted to energy and c is the speed of light. In 4.5 billion years, the Sun will exhaust the fuel, hydrogen and helium stored in its core. This will start the chain of events that will result in its death. Since it will not be able to generate any energy to balance the huge weight of its outer layers, it will collapse. This will result in an increase in the temperature around its core. This temperature increase in the shell around the core will start new reactions which will produce excess amounts of energy. This extra energy will cause the Sun to expand and become a red giant. Its size will increase to such an extent that it will swallow Mercury and Venus, and maybe even our planet, Earth. As a giant star, it will have a strong solar wind that carries gas into space. Eventually, it will lose its outer layers, and produce a beautiful planetary nebula.<sup>1</sup> Soon the remains of the Sun will collapse and form a very compact object; a white dwarf. Imagine squeezing the Sun into a planet the size of the Earth. Gravity on a white dwarf is 10 million times greater than it is on Earth. Thus, a person weighing 150 pounds will weigh 1.5 billion pounds on a white dwarf. The white dwarf will burn 100 times fainter than our Sun; if the Earth survives the red giant phase, it will fall into a deadly deep freeze, and would not be a pleasant place to live.<sup>2</sup></p>
<p>Medium mass stars, like the Sun, die relatively quietly as they exhaust their fuel and form white dwarfs. In contrast, massive stars live spectacular lives and destroy themselves in violent explosions. Massive stars have too great a mass to die as white dwarfs. They consume hydrogen and become red giants, but unlike the medium mass stars, their core temperature is high enough, about 1 billion degrees, to ignite carbon fusion. After they fuse carbon, they burn oxygen, neon, and magnesium to make silicon and sulfur, and then the silicon fuses to make iron. Iron is the most tightly bound of all atomic nuclei. Nuclear fusion is able to produce energy by combining less tightly bound nuclei into a more tightly bound nucleus, but iron is the limit. Once the core of the star has been converted to iron, there are no nuclear reactions that can burn iron and release the energy. Thus, the iron core is a dead end. The iron core sucks energy from the rest of the star. Since the star cannot produce any energy, it cannot resist its own gravity. In a fraction of a second, the star collapses in on itself. The collapsing core of the massive star quickly becomes a neutron star or a black hole. This collapse happens so rapidly that our most powerful computers are unable to predict the details. The envelope of the star collapses and bounces back off the dense core, which triggers a violent supernova explosion that expels the outer layers of the star to form an expanding supernova remnant. This explosion enriches the neighboring media with iron and other metals. If you throw a water balloon at your friend, your friend will get wet. Massive stars are not water balloons, but they are iron, silver, and metal balloons. When they explode, they seed the interstellar medium<sup>3</sup> with metals. If there had not been a massive star death near our solar system when the Sun and the Earth were forming, our solar system would be iron-poor, and we would not be living today. Massive stars die so that we might live. The Quranic verse We have sent down iron, with its mighty strength and diverse uses for mankind (57:25) sheds light on this fact 14 centuries before it was discovered. Only in the past century, with the utilization of modern telescopes, have we had evidence of this. Nursi explained the above verse as iron is sent down together with the globe of the Earth from the Supreme Treasury, as a tremendous bounty. That is to say, the thing most necessary for the house of the Earth is iron, for when the All-Glorious Creator separated the Earth from the Sun and sent it down for mankind, He sent down iron together with it, and met most of mankinds needs with it. The All-Wise Quran decrees in a miraculous fashion: Use this iron in your works and try to excavate it and take advantage of it.<sup>4</sup></p>
<p>A neutron star, on average, is 1.4 times more massive than the Sun, and is compressed to a radius of about 6 miles. Its density is so high that matter is stable only as a fluid of neutrons. An atom is mostly empty space. The nucleus of an atom is very small compared to the size of the atom. If we represent the nucleus of an atom with a blueberry, then the distance between the nucleus and the electrons would be as great as the height of the Empire State building. If you could eliminate the empty space in atoms, you would be able to squeeze stars larger than the Sun into a radius of about 6 miles (the radius of a neutron star). A neutron star spins several times a second, and has a magnetic field a trillion times stronger than that of the Earth. Observational evidence for neutron stars was first found in 1967 when astronomers found a neutron star (pulsar) rotating around itself in 1.3 seconds and sending radio pulses to Earth. If you have a large enough antenna, you can pick up periodic radio signals from pulsars. On Earth, a teaspoon of the material from a neutron star would weigh 100 million tons.</p>
<p>Another scenario for the end product of the death of a massive star is a black hole. When the core of a star contains more than 3 times the mass of the Sun no known force can stop it when it collapses. The object will not stop collapsing when it reaches the size of a white dwarf or a neutron star, because the electrons or neutrons cannot support the weight of the star. The object will collapse to zero radius (or almost zero radius) and form a black hole. Objects need high speeds to be able to leave another object, to be able to resist falling back due to the gravitational pull of the other object. For example, a space shuttle must reach a speed of 11.2 km/s to to be able to leave the gravitational pull of the Earth in order to go into space. Gravity is so strong near black holes that the escape speed from a black hole is greater than the speed of light. Thus, even light cannot escape; this is the reason why these phenomena are called black holes.</p>
<p>As an object collapses, its gravity increases. If it collapses to zero radius, its density and gravity become infinite. Such a point is called a singularity. Clocks slow down near a singularity. If we were able to watch a person falling into a black hole, we would see them moving more slowly as they came closer to the black hole. In fact, the person would never disappear from sight. From where we were standing, this person would fall more and more slowly, until finally they would hardly seem to move at all. Generations later, our grandchildren would be able to look at this friend approaching the black hole, but never crossing the event horizon (the boundary of the black hole). Black holes are not giant vacuum cleaners that will pull in everything in the universe. A black hole has a huge gravity pull, but its force is quite small if you are not near it. If the sun were replaced by a black hole of a similar mass, the orbits of the planets in our solar system would not change at all. The gravity of a black hole becomes extreme only when approached. There are many black holes in the universe, but they do not pose any threat for us as long as we stay away from them. Next time you advise your children to stay away from strangers, remember to tell them to stay away from black holes, as well.</p>
<h3>Footnotes</h3>
<ol>
<li>A planetary nebula is an expanding shell of gas ejected from a star, and it has nothing to do with planets.</li>
<li>Seeds, M.A., Horizons: Exploring the Universe, 2002, Brooks/Cole</li>
<li>The gas and dust between stars.</li>
<li>Nursi, S., Flashes, Sozler Yayinevi, 28th Flash</li>
</ol>
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		<title>Comets of Ice</title>
		<link>https://fountainmagazine.com/all-issues/1995/issue-10-april-june-1995/comets-of-ice/</link>
		
		<dc:creator><![CDATA[Louima Cunningham]]></dc:creator>
		<pubDate>Wed, 04 Jan 1995 00:00:00 +0000</pubDate>
				<category><![CDATA[Issue 10 (April - June 1995)]]></category>
		<category><![CDATA[atmosphere]]></category>
		<category><![CDATA[comets]]></category>
		<category><![CDATA[dayglow]]></category>
		<category><![CDATA[earth]]></category>
		<category><![CDATA[god]]></category>
		<category><![CDATA[hail]]></category>
		<category><![CDATA[holes]]></category>
		<category><![CDATA[ice]]></category>
		<category><![CDATA[images]]></category>
		<category><![CDATA[mountains]]></category>
		<category><![CDATA[rain]]></category>
		<category><![CDATA[Science]]></category>
		<category><![CDATA[skies]]></category>
		<category><![CDATA[spots]]></category>
		<category><![CDATA[vapour]]></category>
		<category><![CDATA[verse]]></category>
		<category><![CDATA[water]]></category>
		<category><![CDATA[words]]></category>
		<guid isPermaLink="false">http://107.21.79.195/all-issues/1995/issue-10-april-june-1995/comets-of-ice/</guid>

					<description><![CDATA[When we ponder the phenomena of the universe, we see new insights into God&#8217;s words. When we contemplate God&#8217;s words, we get a deeper understanding of the phenomena in the world around us. Revelation explains creation. Creation explains Revelation. Many have pondered over God&#8217;s description of rain. He said: He sendeth down from the heavens [&#8230;]]]></description>
										<content:encoded><![CDATA[<p>When we ponder the phenomena of the universe, we see new insights into God&#8217;s words. When we contemplate God&#8217;s words, we get a deeper understanding of the phenomena in the world around us. Revelation explains creation. Creation explains Revelation.</p>
<p>Many have pondered over God&#8217;s description of rain. He said:</p>
<p><em>He sendeth down from the heavens mountains wherein is hail (al-Nur, 24.43)</em></p>
<p>Traditional commentators have discussed the meanings of &#8216;mountains in the sky&#8217;. Literally the verse says: &#8216;are sent from the skies from mountains of (from) cold&#8217;. The construction is passive. The word min appears three times. The first indicates the general origin of the rain in from the skies, the second specifies the Origin further in from mountains and the third describes of what the mountains consist, what they contain or are characterised by, namely, cold This led the early generations, among them the Prophet&#8217;s cousin, Ibn &#8216;Abbas, to conclude that &#8216;there are mountains in the skies just as there are on the earth&#8217;. &#8216;Mountains&#8217; can be used figuratively to mean &#8216;a great quantity&#8217;, as when we say that so- and-so has &#8216;mountains of gold&#8217;, meaning &#8216;he has a lot of gold&#8217;.</p>
<p>The language of the Qur&#8217;an is so rich that the verse could also mean that &#8216;mountains of cold&#8217; descend from the skies. Anyone who has been caught in a heavy winter hailstorm will readily understand the image. Most English translators render baradin as hail. This is no doubt correct but something of the quality of the image is diminished. However, striking and powerful though the language and imagery are, we shall not be concerned with them here. Rather, we shall concentrate our attention on the scientific implications of the words used in the verse.</p>
<p>Hail is &#8216;frozen rain&#8217; or &#8216;stones of frozen water&#8217; and can be aptly described as &#8216;mountains&#8217; descending from heaven or &#8216;comets of ice&#8217;.</p>
<p>Several scientists have researched the hypothesis that the source of all the oceans is storms of icy comets that enter the earth&#8217;s atmosphere at a rate of 20 per minute. These comets, which are believed to contain about 100 tons of water each, vaporize on impact with the atmosphere and fall as rain or snow.</p>
<p>The roots of this hypothesis are found in data received by the Dynamics Explorer 1 (DE1), a high-altitude, polar- orbiting satellite. The DE1 had been conducting the first global exploratory imaging mission of the earth. Professor Frank of Iowa University was interested in receiving the first global maps of the earth&#8217;s aurora. From a vantage point on the satellite, which orbits as far as 14,500 miles from earth, a photometer designed and operated by his team, measured the ultraviolet emissions from atomic oxygen in the atmosphere.</p>
<p>The bright or visible half of the earth, illuminated by the sun, is known as the &#8216;dayglow&#8217;. The dayglow is caused by sunlight being absorbed and re-radiated by oxygen at 180 miles above the earth&#8217;s surface. Scientists use the dayglow to learn about the structure of the atmosphere at high altitude. The dayglow images Frank received contained some unexpected features. He noticed the sky was speckled with dark spots or atmospheric holes. Frank and his partners witnessed about 30,000 such spots or holes during their 2,000 hours of observation. They scrutinized the measurements for faulty instrumentation, possible computer glitches, statistical flaws, telemetry interference, failing sensors and paint flecks on the imager. After eliminating the possibility of spurious effects, the scientists published their results on the atmospheric holes (Frank et al, 1986, pp.307-10). The images revealed that the spots were about 30 miles wide and lasted up to three minutes. So what were they? How did they appear?</p>
<p>Frank concluded they were being caused by water vapour in the outer fringes of the atmosphere. He calculated that it would need a 30-ft ball of loosely packed water and ice breaking up and vaporizing about 1,000 to 2,000 miles away from the earth to produce a cloud of water vapour the size of the dark spots on his satellite images.</p>
<p>He suggested that the holes in the dayglow were formed by small, comet-like objects entering the earth&#8217;s atmosphere. Sixty miles from the earth&#8217;s surface, the cloud of water vapour continues to plummet until it reaches a height of about 35 miles, where it gets mixed up with the air in the upper atmosphere. Winds circulating into the stratosphere turn the water vapour into ice crystals, which then fall and become part of the lower altitude&#8217;s water vapour, eventually turning into precipitation and ending up in the sea. At the observed rate of 20 per minute, this is calculated to result in an increase of the equivalent of one inch of water all over the earth&#8217;s surface every 10,000 years.</p>
<p>Erikson (1987. p.20) suggested the barrage of icy comets began around 4.2 billion years ago, and that they were at their most intense during the 300 million years that followed. Dr Clayne Yeates, deputy project scientist at the Jet Propulsion Laboratory in Pasadena, said that the comets of ice or snowballs continue to move at 10 km per second relative to the earth. At about 1,000 km above the earth they break up into hail due to tidal waves and then turn to vapour in the atmosphere. Finally, the vapour falls as rain and joins the earth&#8217;s water cycle.</p>
<p>Clayne Yeates (Huyghe, 1988, pp.8-11) began a direct telescopic search for these small comets using the 36-inch Spacewatch Telescope at Kitt Peak, Arizona &#8211; one of the few telescopes in the world sufficiently sensitive to detect these small comets directly. As these objects are too fast and too dark to be picked up on a photographic plate they needed to use a charged coupled detector (CCD) that counts individual photons of light and is 100 times more sensitive than a photographic plate. The Spacewatch Telescope is just such an instrument. The objects are indeed there. Telltale streaks appeared on the telescope&#8217;s images at the rate of more than one a minute, just as Frank had predicted.</p>
<p>Frank certainly did not set out to interpret the Qur&#8217;anic verse quoted above, nor does the imagery of the verse need any strengthening to be effective. Yet, may we not say that, with every new observation of God&#8217;s universe, we are enabled to see new shades of meanings in His words.</p>
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