<?xml version="1.0" encoding="UTF-8"?><rss version="2.0"
	xmlns:content="http://purl.org/rss/1.0/modules/content/"
	xmlns:wfw="http://wellformedweb.org/CommentAPI/"
	xmlns:dc="http://purl.org/dc/elements/1.1/"
	xmlns:atom="http://www.w3.org/2005/Atom"
	xmlns:sy="http://purl.org/rss/1.0/modules/syndication/"
	xmlns:slash="http://purl.org/rss/1.0/modules/slash/"
	>

<channel>
	<title>nectar &#8211; Fountain Magazine</title>
	<atom:link href="https://fountainmagazine.com/tag/nectar/feed/" rel="self" type="application/rss+xml" />
	<link>https://fountainmagazine.com</link>
	<description></description>
	<lastBuildDate>Sun, 01 Sep 2019 21:48:44 +0000</lastBuildDate>
	<language>en-US</language>
	<sy:updatePeriod>
	hourly	</sy:updatePeriod>
	<sy:updateFrequency>
	1	</sy:updateFrequency>
	<generator>https://wordpress.org/?v=7.1</generator>
	<item>
		<title>The Hummingbird: Small in Size, Great in Art</title>
		<link>https://fountainmagazine.com/all-issues/2019/issue-131-sep-oct-2019/the-hummingbird-small-in-size-great-in-art/</link>
		
		<dc:creator><![CDATA[Louima Cunningham]]></dc:creator>
		<pubDate>Sun, 01 Sep 2019 21:48:44 +0000</pubDate>
				<category><![CDATA[Issue 131 (Sep - Oct 2019)]]></category>
		<category><![CDATA[birds]]></category>
		<category><![CDATA[body]]></category>
		<category><![CDATA[colibri]]></category>
		<category><![CDATA[energy]]></category>
		<category><![CDATA[fructose]]></category>
		<category><![CDATA[glucose]]></category>
		<category><![CDATA[high]]></category>
		<category><![CDATA[hummingbird]]></category>
		<category><![CDATA[hummingbirds]]></category>
		<category><![CDATA[intake]]></category>
		<category><![CDATA[metabolic]]></category>
		<category><![CDATA[minute]]></category>
		<category><![CDATA[movement]]></category>
		<category><![CDATA[nectar]]></category>
		<category><![CDATA[oxygen]]></category>
		<category><![CDATA[Science]]></category>
		<category><![CDATA[size]]></category>
		<category><![CDATA[smallest]]></category>
		<category><![CDATA[times]]></category>
		<category><![CDATA[wings]]></category>
		<category><![CDATA[Zoology]]></category>
		<guid isPermaLink="false">http://107.21.79.195/all-issues/2019/issue-131-sep-oct-2019/the-hummingbird-small-in-size-great-in-art/</guid>

					<description><![CDATA[Research on hummingbirds (also known as nectar birds or Colibris), the smallest of the 9,800 bird species living today, has revealed remarkable facts. The world’s smallest birds are equipped with mind-blowing structures and functions that push all physiological and anatomical boundaries. The bee hummingbird (Mellisuga helenae), considered to be the smallest bird in the world, [&#8230;]]]></description>
										<content:encoded><![CDATA[<p><img fetchpriority="high" decoding="async" class=" size-full wp-image-6759" src="https://fountainmagazine.com/wp-content/uploads/2019/09/hummingbird-a80-scaled.jpg" alt="The Hummingbird: Small in Size, Great in Art" width="2560" height="1707" srcset="https://fountainmagazine.com/wp-content/uploads/2019/09/hummingbird-a80-scaled.jpg 2560w, https://fountainmagazine.com/wp-content/uploads/2019/09/hummingbird-a80-300x200.jpg 300w, https://fountainmagazine.com/wp-content/uploads/2019/09/hummingbird-a80-1024x683.jpg 1024w, https://fountainmagazine.com/wp-content/uploads/2019/09/hummingbird-a80-768x512.jpg 768w, https://fountainmagazine.com/wp-content/uploads/2019/09/hummingbird-a80-1536x1024.jpg 1536w, https://fountainmagazine.com/wp-content/uploads/2019/09/hummingbird-a80-2048x1365.jpg 2048w" sizes="(max-width: 2560px) 100vw, 2560px" /></p>
<p>Research on hummingbirds (also known as nectar birds or Colibris), the smallest of the 9,800 bird species living today, has revealed remarkable facts. The world’s smallest birds are equipped with mind-blowing structures and functions that push all physiological and anatomical boundaries. The bee hummingbird (Mellisuga helenae), considered to be the smallest bird in the world, is only 1.96-inch-long and weighs 0.06 ounces.</p>
<p>There are around 330-340 species of hummingbird and they live only in North and South America and the nearby oceanic islands. With their colorful feathers, they are some of the most beautiful birds.</p>
<h3>How the hummingbird flies</h3>
<p>A hummingbird flaps its wings so fast that the motion cannot be seen by the human eye but only detected through special cameras. The wings move at an incredible speed in a seemingly complex pattern, drawing circles back and forth 50 to 80 times per second, depending on the species. Under the genus Colibri, the horned Sungem (Heliactin bilophus) species flaps its wings 90 times per second; the purple amethyst Colibri (Calliphlox amethystina) flaps its 80 times per second. This speed increases up to 200 per second during a short spike while escaping from an enemy. Moving back and forth, the wings oscillate in the form of the figure 8 in the air. While in most other birds the movement of the wings produces the power to lift up and down, Hummingbirds, like helicopters, can perform movements such as hanging in the air or standing steadily as well as flying backward or rising in a vertical direction.</p>
<p style="text-align: center;"><img decoding="async" title="Hummingbird" src="https://fountainmagazine.com/wp-content/uploads/2019/09/04B-267.jpg" alt="Hummingbird" width="1603" height="890"><em>Figure 8</em></p>
<h3>Metabolic rate and energy consumption</h3>
<p>Flying requires a lot of energy. The amount of energy spent is related to the bird’s body size and flapping speed. In this regard, given that a colibri flaps its wings 80 times per second, it takes a great deal of energy to maintain such a rapid movement. The colibri’s chest muscles were perfectly created for flapping quickly and take up 40% of the hummingbird’s total body mass. Therefore, a colibri consumes more energy than other birds; it’s basically a fighter jet.</p>
<p>In order to meet this high energy demand, the amount of nectar a colibri consumes every day has to be equal to their body weight. Living at such a high metabolic rate requires a fine adjustment of food consumptions with precise calculations.</p>
<p>Such a high food intake requires a high metabolism – and thus, the need for oxygen increases dramatically. When the need for oxygen increases, there can be two kinds of conditions. Those animals with very large lungs can intake a lot of air at once. And those with smaller lungs can produce the required oxygen by breathing many times a minute. Colibri or Nectar birds are the ones that can breathe the most in one minute. The lungs of the world’s smallest birds breathe 250 times per minute to transfer oxygen to their hearts weighing a mere 0.003 ounces and beating 1,200 times per minute.</p>
<p>Toronto University’s Kenneth C. Welch Jr. studied the metabolism of hummingbirds for more than 10 years. He discovered that there is a relationship between the size of hummingbirds, energy efficiency, and oxygen consumption, and that larger hummingbirds are more efficient energy users than smaller ones. A hummingbird can take 2.44 cubic inches of oxygen per 0.03 ounces an hour. When a small weight is added to the bird, this amount increases to 3.66 cubic inches, and their tissues use oxygen very efficiently.</p>
<h3>Energy requirements</h3>
<p>A hummingbird’s metabolism is the fastest among all vertebrates. It needs to eat almost constantly to get the energy it needs to produce fuel for its breathtaking metabolism, which functions like a power plant. It receives nectar from 2,000 flowers every day. If we humans could work at this bird’s energy levels, we’d have to eat about 1,300 sandwiches a day to produce energy, and our body temperature would rise to 725 °F! Also, our hearts would have to beat 1,260 times per minute. Although nectar from flowers is the main fuel source driving the bird’s metabolic engines, it also occasionally eats insects, for protein needs.</p>
<p>During any given 30-minute period, hummingbirds burn the sugar they had taken in an hour ago. If we apply this rapid intake of sugar and the metabolic cycle in human beings, we would have to drink a large bottle of soda and burn the sugar in it every minute.</p>
<p>Unlike us, hummingbirds use both glucose and fructose from nectar in their intestines, circulatory systems, and muscle cells. However, we can support our bodies at urgent needs with an intake rate of 30% of glucose. Half of the nectar that hummingbirds take is glucose and half is fructose. In this modern age, high fructose derived from corn in our diets has paved the way for metabolic diseases and obesity – that is, people cannot metabolize high fructose.</p>
<p>Scientists are trying to determine how hummingbirds can process fructose. It is known that there is a carrier molecule different from glucose in fructose. This carrier is very rare in human muscle cells, but it is found in abundance in hummingbird’s muscle fibers; so we believe the mystery of how they utilize fructose so fast is about to be solved.</p>
<p>Hummingbirds have been equipped with mechanisms to increase the rapid introduction of nutrients such as fructose and glucose – which are basically small sugar molecules – or amino acids into their metabolisms. Their hearts and blood vessels work at a high speed to carry the sugar into their tissues as well as to transfer a lot of blood. In addition, a large number of capillaries have been implemented close to the muscle cells so that the blood can reach each and every cell.</p>
<h3>Wing design</h3>
<p>While humanity has not yet invented a machine that can move in a figure-8 pattern 80 times per second, including forward and backward, the ultra-flexibility of a hummingbird’s unique wing strokes demonstrates the special creation of its bones, muscles, and joints. The colibri’s brain and nervous system, which control these muscles and joints by transmitting signals, require infinite knowledge and power. The flexibility of the shoulder joint in the movement of the wings, which allows them to bend to extreme positions not found in other birds, gives us an idea of the wing’s unique design and architecture. Although biomimetic engineers have spent millions of dollars applying this complex system to technology, they have so far failed in their attempts to produce a similar machine.</p>
<p>Cooling the feathers due to the friction of the muscles and the tremendous movement of the wings is a problem in itself. While man-made machines need advanced cooling systems, the hummingbird has been created with a such a built-in system.</p>
<h3>Unique tongue structure</h3>
<p>Biologists from the University of Connecticut have discovered that hummingbirds’ tongues have a very special design and work like micro pumps. Tongues about twice the length of their beaks allow them to reach deep into flowers. The nectar is then pumped into the body in less than 1/20<sup>th</sup> of a second. This occurs thousands of times each day. Tai-Hsi Fan and Margaret A. Rubega, who for a long time examined how hummingbirds stick their tongues 15 or 20 times a second into the tubular part of a flower, said that they “could not clearly understand how they drink the nectar.” In their latest study, they showed that it was only possible for the birds to hold nectar through two channels in their tongues. It was once thought that the physical rule of the upward movement of liquids in capillary tubes, even without suction, worked in the hummingbird’s nectar intake; but when special video recordings of the movement of their tongues were examined, it became evident that the tongue first compressed the nectar in a series of movements, then sprung up very quickly and the nectar was suddenly sprayed into the channels.</p>
<p>It would seem that both the hummingbirds and the flowers they need for sustenance were created in perfect harmony.</p>
<p>Red hummingbirds migrate from Alaska to Mexico every year. They can fly 56 miles per hour. Prior to this journey, they feed for one or two weeks to fill their <em>fuel tanks</em>, forming a layer of fat equal to half their body weight. Since these activities cause a lot of heat loss on the body surfaces, they cannot provide enough energy to stay active for more than 12 hours at a time. To counter this, they fall into a deep sleep every night for 12 hours. The energy storage, flight endurance, long-distance migration, and returning with the young ones are each complicated factors that their coming together to make this journey possible cannot simply be explained by blind chance.</p>
<p>Of course, the smallest bird in the world would have the smallest egg size: a mere 0.5 x 0.3 inches, for a total weight of 0.007 ounces. Considering that this wonderful bird’s design is embedded into this egg, which is about the size of the nail of our little finger, it can be understood how perfect a creation it is.</p>
<p> </p>
]]></content:encoded>
					
		
		
			</item>
		<item>
		<title>Tiny, With A Great Mission: Seeds and Bees</title>
		<link>https://fountainmagazine.com/all-issues/2009/issue-68-march-april-2009/tiny-with-a-great-mission-seeds-and-bees/</link>
		
		<dc:creator><![CDATA[Louima Cunningham]]></dc:creator>
		<pubDate>Sun, 01 Mar 2009 00:00:00 +0000</pubDate>
				<category><![CDATA[Issue 68 (March - April 2009)]]></category>
		<category><![CDATA[bees]]></category>
		<category><![CDATA[carried]]></category>
		<category><![CDATA[day]]></category>
		<category><![CDATA[flower]]></category>
		<category><![CDATA[flowers]]></category>
		<category><![CDATA[food]]></category>
		<category><![CDATA[fruit]]></category>
		<category><![CDATA[important]]></category>
		<category><![CDATA[insects]]></category>
		<category><![CDATA[legs]]></category>
		<category><![CDATA[mankind]]></category>
		<category><![CDATA[nectar]]></category>
		<category><![CDATA[plant]]></category>
		<category><![CDATA[plants]]></category>
		<category><![CDATA[pollen]]></category>
		<category><![CDATA[pollination]]></category>
		<category><![CDATA[reproduction]]></category>
		<category><![CDATA[Science]]></category>
		<category><![CDATA[seed]]></category>
		<category><![CDATA[seeds]]></category>
		<category><![CDATA[type]]></category>
		<guid isPermaLink="false">http://107.21.79.195/all-issues/2009/issue-68-march-april-2009/tiny-with-a-great-mission-seeds-and-bees/</guid>

					<description><![CDATA[Plants sustain the continuity of their species through generative reproduction either with seeds or through vegetative reproduction that uses suckers, bulbs, or tubers. We can observe these methods of reproduction in nature, but we tend to overlook how wonderfully these processes are carried out without any failure and, perhaps due to their small size, we [&#8230;]]]></description>
										<content:encoded><![CDATA[<p>Plants sustain the continuity of their species through generative reproduction either with seeds or through vegetative reproduction that uses suckers, bulbs, or tubers. We can observe these methods of reproduction in nature, but we tend to overlook how wonderfully these processes are carried out without any failure and, perhaps due to their small size, we underestimate the role that seeds play on the planet. The importance of the seeds is indicated in the Qur’an: Have you ever considered the seed you sow (in the ground)? Is it you who cause it to grow, or is it We Who make it grow? If We so willed, We would surely make it into chaff, and then you would not cease to exclaim: “We are indeed in a great loss” (Waqia 56:63–65).</p>
<p><span id="more-1002"></span></p>
<p>Many important characteristics exist in seeds. Seeds are equipped with all the necessary information about the branches and leaves of the plant which they will become, as well as the number and shape of these leaves. Within the seed is programmed the color, fineness or thickness of the bark, the number and width of the tubes that carry food and water, whether the plant will bear fruit or not, and if it bears fruit, the taste, smell, shape and color of this fruit. Even information about how the plant will react to a negative condition in the environment during normal development is registered in this program. For example, a plant that would normally develop under ideal climatic conditions is programmed to produce seeds in a short term to protect reproduction under unsuitable conditions like drought and great heat. God is He Who splits the seed-grain and the fruit-stone (so that they germinate by His command). He brings forth the living from the dead, and He is One Who brings forth the dead from the living; such is God: how then are you turned away from the truth and make false claims? (An’am 6:95)</p>
<p>If we consider the growth process of the plant from a seed that is equipped with perfect information, we can see that once the appropriate conditions have been created the seed first germinates and then the body and leaves are formed on this stem. When the time is right, flowers form in keeping with the divine order. The flowers that later form the fruit and seeds for further plants are either brought together with their own pollen (cleistogamy or self-pollenization) or with other pollen from another plant of the same type (cross-pollination) in a perfectly organized system. Self-pollenization occurs either before the flower opens or after the pollen has developed. Because the pistil and stamens of some plants are hidden by some other parts of the plant, it is difficult for the pollen to reach here, so the plant obeys what is ordered and self-pollinates.</p>
<p>In cross-pollination, plants use the pollen from another plant of their own species. Pollen transportation occurs with the help of the wind, rain or insects that visit flowers.</p>
<p>The flowers of many plants that are pollinated by the wind and rain are very modest in appearance, but they have been created in a way to produce pollen in abundance. Although most of the pollen that is carried away by the wind and rain are destroyed, this lost pollen organically enriches the soil and at least some of this pollen will find a flower to pollinate. Our Lord has bestowed those flowers that are pollinated by insects with various colors and shapes to attract these visitors. During pollination, the pollen of flowers that have less pollen than the self-pollinating flowers are carried by bees and other insects, whose legs, wings, and antennae have been created specifically for this task, as they have been inspired (Nahl 16:68–69). Nectar and pollen are the reward for these insects which provide pollination.</p>
<p>Bees are the most important group among the insects that carry out the task of pollination. When bees are mentioned, most people think of the honeybee, but bumblebees also serve mankind. In addition to the products they offer to us, bees are indispensable for their contributions to plant reproduction.</p>
<p>Bees store the nectar they have sucked from the flowers in a “honey stomach” and then empty this nectar into a honeycomb as honey. The bees legs, granted to them by the Creator, allows them in their duty of collecting pollen. The back legs of the bees are different from that of all other insects. The long hairs that are aligned on these stocky legs act almost like a basket to collect the pollen.</p>
<p>Of the 82 plant types that meet 90% of the human food needs around the world, 63 (77%) are pollinated by bees; without bees it would be impossible for these plants to produce seed. Bees are absolutely necessary for the formation of seeds in plants that we eat, like apples, pears, peaches, apricots, cherries, melons, watermelons or pumpkins, or indeed in those used in industry, like sunflowers, safflowers, rapeseed, cotton, or sugar beets, or those used for feeding livestock, like clover, sainfoin, red clover, or vetch. This task carried out by bee pollination every year throughout the world is much more important than the production of honey. Moreover, bees make life possible for animals from thousands of species who use these plants as food or shelter. We should not forget the connection Einstein drew between the disappearance of the bees from the ecosystem and Doomsday.</p>
<p>Another vital mission entrusted to bees is the prevention of erosion. Plants that need the pollination of bees, like members of the Asteraceae, Boraginaceae, Brassicaceae, Campanulaceae, Compositae and Fabaceae families, are widespread in areas were there are serious threats of erosion. Similarly, feed crops, which are very important in feeding livestock and preserving the ecological balance, also need insects for pollination. In plants like clover, the upper side of the flower organs is covered by a membrane; in these plants, bees break this membrane to get at the pollen; if it were not for bees, the pollen would remain trapped.</p>
<p>It is by Divine guidance that bees take nectar and pollen from the same type of plants all day. Even if there are other plants which contain more nectar and pollen, bees only stop at the type of flower that it first visited. The fact that bees collect nectar and pollen from the same type of plants all day long shows that this is not something they do randomly.</p>
<p>Like many other living things in the universe bees are in service to mankind, operating under the rules set by the Lord of the Worlds. However, activities that are carried out without investigating the meaning of the universe and the wisdom behind the creation of the living things, such as unplanned industrialization, which in turn has lead to an increase in air pollution, or the careless use of chemical materials, are the reason for a decrease in the population of bees, day by day. Never mind the wars and fires started by mankind, any venture that may cause the bees to disappear could lead to the destruction of mankind; if the bees become extinct, mankind will face many disasters, like erosion, desertification and the extinction of plants which are food for us and for the animals we raise.</p>
]]></content:encoded>
					
		
		
			</item>
		<item>
		<title>Diary of A HoneyBee</title>
		<link>https://fountainmagazine.com/all-issues/1998/issue-21-january-march-1998/diary-of-a-honeybee/</link>
		
		<dc:creator><![CDATA[Louima Cunningham]]></dc:creator>
		<pubDate>Thu, 01 Jan 1998 00:00:00 +0000</pubDate>
				<category><![CDATA[Issue 21 (January - March 1998)]]></category>
		<category><![CDATA[bees]]></category>
		<category><![CDATA[body]]></category>
		<category><![CDATA[cells]]></category>
		<category><![CDATA[comb]]></category>
		<category><![CDATA[day]]></category>
		<category><![CDATA[days]]></category>
		<category><![CDATA[eggs]]></category>
		<category><![CDATA[flowers]]></category>
		<category><![CDATA[hive]]></category>
		<category><![CDATA[home]]></category>
		<category><![CDATA[honey]]></category>
		<category><![CDATA[larvae]]></category>
		<category><![CDATA[legs]]></category>
		<category><![CDATA[nectar]]></category>
		<category><![CDATA[place]]></category>
		<category><![CDATA[pollen]]></category>
		<category><![CDATA[queen]]></category>
		<category><![CDATA[Science]]></category>
		<category><![CDATA[wings]]></category>
		<guid isPermaLink="false">http://107.21.79.195/all-issues/1998/issue-21-january-march-1998/diary-of-a-honeybee/</guid>

					<description><![CDATA[Day 1 &#8211; (around May 5 of your calendar) &#8211; I am a white egg hardly bigger than the fullstop at the end of this sentence. Yet, do not despise me for I have that most precious quality-life! A few hours ago I was in another, more suffocating place, together with sixty or so sisters [&#8230;]]]></description>
										<content:encoded><![CDATA[<p><b>Day 1</b> &#8211; (around May 5 of your calendar) &#8211; I am a white egg hardly bigger than the fullstop at the end of this sentence. Yet, do not despise me for I have that most precious quality-life!</p>
<p>A few hours ago I was in another, more suffocating place, together with sixty or so sisters of mine, sisters-to-be. We all set out on a journey. Passing through a corridor to which doors are opened from hundreds of cells such as those we had just left and into which eggs like me were rolling, we reached a crossroads. At just that point, something very agile and smaller even than me entered into me. A little later I found myself within the six walls of a cell.</p>
<p>If you could become so small as a particle of air, you would be astonished at what you see. Molecules compete in me: they combine and separate from one another, take on new forms, curve and move here and there. In short, I am being prepared for a new life; whatever will be necessary for this life is encoded in me. I have begun to be equipped with such information as would take you many years to acquire.</p>
<p><b>Day 4 &#8211;</b> I am no longer an egg, and not yet a honeybee. I have left my shell, and now look like a worm. I am called a larva. You will be amazed to learn that I have completed the age of my education. While you are first born and then learn, we first learn and then are born. All the information I will use during my life has been encoded in the brain within my head. Now I am busy eating to grow so as to make use of this information. All the food I need reaches me continually as if pouring down from the sky.</p>
<p><b>Day 5 &#8211;</b> I had 1300 meals yesterday. I am constantly eating. I must eat another 10.000 meals. I eat a sort of jelly extremely rich in vitamins and proteins and prepared by our elder sisters. Although it is the prerogative of the queen bee to eat this jelly, it is given also to us in this period of our growth. I have grown five times heavier than yesterday. My head is more visible, and the three sections of my future body. My antennae are about to appear, but my legs have not yet begun to do so. There are ten air- holes around my body through which I breathe. My stomach is still in the form of a closed sac.</p>
<p><b>Day 6 &#8211;</b> It was a little cool last night. All the bees in the hive crowded onto the comb and throbbed to produce heat. We need a temperature of about 35 C if we are to grow. As well as feeding us, it is again our elder sisters who ensure we are warm enough. When it is cool, they throb to warm us; when it is too hot, they cool us by beating their wings.</p>
<p><b>Day 7 &#8211;</b> Our menu has changed today. In place of the jelly-liked food, we are given a food prepared with honey and pollen. I have grown so fat that I nearly cover more than half of my cell.</p>
<p><b>Day 9 &#8211; </b>They have stopped giving us food. They have covered the ceiling of my cell with wax. However, I do not feel forsaken in the cell. I feel there is someone who is caring for all my needs. It is as if He whispered to me that it is He Who always feeds me and that I simply do not need feeding for a certain time.</p>
<p><b>Day 10-</b> It is as if the One Who whispered to me yesterday, whispered again that He has installed silk ‘machines’ in my head and that I should set them to operate. My secretion glands get to work and thin threads of silk come out of my mouth. I knit a silk cocoon around me. This is the first thing I have done since the beginning of my life. I am not called a larva any more, but a pupa.</p>
<p><b>Day 15 &#8211; (your May 20) &#8211; </b>Over the last week I have grown to look more like a bee. My eyes and antennae have started to appear. My head has grown. The first section of my abdomen has been added to my chest. My wings and three pairs of legs continue to grow out from my body.</p>
<p><b>Day 20 &#8211; </b>I am a perfectly- formed honeybee. I have a head with antennae, eyes, a tongue, jaws, and legs, wings and a sting. I am a female bee; my brain is bigger than that of either the queen bee or the male bees. My legs and wings are fixed to my body and made up of many muscles. My abdomen has been arranged in a way to do the tasks of both digestion and secretion.</p>
<p><b>Day 21 &#8211; </b>I was ordered to leave my cell. I opened the seal with my jaws and went out. I am looking at my environment. My home that I see for the first time is not strange to me. I do know what I am to do but I need some time to adjust my body to my tasks.</p>
<p>I see some other bees also leaving their cells. They must be my sisters that started the journey of their lives at the same time as I did. Cells are opened and as the new bees clamber out, the comb resembles a place of gathering.</p>
<p>My legs work but as yet my four wings do not. I stand on my feet with claws which have sticking organs. I keep my balance by means of the hairs on my body which inform my brain of the position of the parts of my body according to the gravitation.</p>
<p>The lower parts of my front legs will serve as a brush to remove from my eyes the dust which will stick to them as I fly around flowers. On the same front legs I also have other stick-like brushes to clean my antennae. I have instruments on my middle legs to collect the wax I will secrete from my body. There are sacs on my back legs to store the pollen that I am to collect.</p>
<p>I look at my sisters and see on the upper part of their heads three tiny eyes and two larger ones on their sides. The tiny eyes see polarized light, while the larger ones are sensitive to ultraviolet rays. We bees cannot see red. We cannot see the environment crisply delineated, we see it as a dim design of colours. We see most distinctly at the distance of touching.</p>
<p>Whatever I will need has all been installed in my body. I have a tongue to suck water and nectar, and antenae to touch and smell and a sting to defend myself. In addition, I have an environment to live in comfortably. All this cannot have been arranged by the things themselves around me. I did not arrange it myself. So, there must be One Who knows both me, my needs and my environment and Who brings me into existence for the tasks I am to do. He must have infinite knowledge and power.</p>
<p>I am starting to work today. We work according to a strict division of labour. What falls on me today is to do cleaning. Our comb is perfectly clean and tidy.</p>
<p><b>Day 22 &#8211; </b>I have continued to do cleaning. I know my hive and sisters better than before. We have a very crowded population, we are about 40.000 bees. About 1500 new sisters have joined us today.</p>
<p>We can measure the length of days and know the coming of summer. Summer is coming.</p>
<p><b>Day 23 &#8211;</b> Today I have been promoted to nurse. I am looking after larvae of 4-6 days. I partly digest in my stomach some of the food brought to me by elder bees and make bread of honey to feed the larvae.</p>
<p><b>Day 24 &#8211; </b>A new factory has started to work in my body today. I have just begun using a secretion gland in my throat.</p>
<p>Thousands of elder bees offer us the pollen they collect and honey they make and we thousands of younger bees, crowd around cells and feed the larvae. A perfect mutual helping prevails in our comb.</p>
<p><b>Day 26 &#8211; </b>I am extremely busy. I make royal jelly using the gland I began working two days ago and offer it to the larvae which eat 1300 meals a day. As you remember, I was also fed this when I was a larva.</p>
<p><b>Day 29 &#8211; (your June 3) &#8211;</b> The larvae I am feeding today are of a different kind. They are in cells a little bigger than ours. It will take 26 days for them to leave their cells as male bees.</p>
<p><b>Day 30 &#8211;</b> I have been promoted to cook. I make honey from the nectar my elders collect from flowers and store it in cells.</p>
<p>The honey I make is composed of water, sucrose and glucose and is very rich in vitamins. It contains enzymes to digest carbo-hydrates. It is very delicious and healthful. Some part of the honey I make may come to your table one day. I will have died by the time you are eating it. You have no obligation at all to remember me, but do not forget the One Who provides you with it through me and thank Him.</p>
<p><b>Day 32 &#8211;</b> Thousands of bees die in our comb every day and other thousands are born. This happens in so orderly a way that no confusion is seen.</p>
<p>There is one among us without whom it is impossible for things to be in order in our comb-the queen. She is a bit larger than us and was programmed to do things different from what we do. She cannot collect nectar nor make honey, nor feed the larvae. She cannot feed herself either. We, her daughters, feed her with the royal jelly we offer to the young larvae.</p>
<p>The queen bee lays eggs. She must lay around 2000 eggs every day, for our lifespan is very short. While we are feeding her, she lets us taste from a substance she produces. We go round the comb and so cause all female bees to taste that substance by which a kind of birthcontrol is secured in the comb. On the day we do not taste it, we all begin to lay eggs. Since those eggs are not fertilized, only male bees come from them. Male bees have no task other than inseminating the queen bee. Their number is quite limited. If they were to be too many, the order in our comb would collapse.</p>
<p><b>Day 35 &#8211;</b> A new factory has started to work in my body today. This factory installed in the back, lower part of my abdomen produces wax. I collect that wax with the sticks on my middle legs and chew it to mould it into the cells of the comb.</p>
<p>The cells we make are hexagonal in shape, because, compared with the amount of the wax used to build them, as much honey as possible can be stored in them. Also, a hexagonal form is most resistant to external forces. We make 35 thousand cells from half a kilo of wax and store 10 kilos of honey in them. We need three and a half kilos of honey to make half a kilo of wax.</p>
<p>We make cells in different forms according to need. While making them, we take gravitation into account. For example, the cells where the female worker bees lie horizontally form a vertical layer, while the cells where future queen bees lie vertically are parallel to the earth surface. The cells where male bees grow are bigger than those of the females. As you certainly understand, it is impossible for us and for any other things in nature, including what some of you call natural forces, to know and arrange all these things. There must be One Who does it. One Who knows us together with our relation with our environment and employs us in many important tasks.</p>
<p><b>Day 37 &#8211; (your June 11)- </b>So far, I have left my comb on many occasions but only to throw out the waste matter and had opportunities to see the outer world from afar. Today I left my comb but not to discard waste but to fly around the comb, to obtain knowledge of the outer world.</p>
<p>Flying is very tiring for us. Unlike birds, we do not flap wings. When we start to fly, our wings move automatically in a way to make 250 complete turns in a second. While flying, our front and back wings are bound to each other.</p>
<p>When we start to fly, our wings curve along certain lines in a way to adjust our body to the air current. They draw a figure-of-8 shape in the air. In proportion to the size of our wings, our bodies are heavy (unlike birds which fly). They grow heavier when we collect nectar from flowers. Despite this, we can fly 15 kilometres an hour.</p>
<p>Like our flying, our landing is also miraculous. Unlike birds and your planes, we do not need to decrease our speed before we land. Thanks to the tips of our legs, while flying in the air, we can immediate- my alight wherever we want.</p>
<p>Since our wings move at extremely high speed, our need for fuel is high. Our muscles have a metabolic rate ten times faster than the heart of a man. We consume sugar as fuel. Before we start a journey, we take enough ‘fuel’. However, if the amount of sugar in our blood reduces to 1 per cent, we obtain new food wherever we are.</p>
<p><b>Day 38 &#8211; </b>My new task is keeping guard at the entrance of the comb. No one, not even other bees, are allowed to tenter our comb. We know one another by our smell. The smell of each community of honeybees is different. Our antennae distinguish between the smells very well. The entrance of our comb is also marked with the smell particular to our community. Any other creature which does not carry our semll is prevented from entering.</p>
<p><b>Day 39 &#8211; </b>There have been some changes in the comb. The cells of about a dozen larvae have been made bigger and turned vertical. The larvae in them will be fed with royal jelly until they become pupae.</p>
<p>The queen bee has accelerated laying eggs. She lays about 2000 eggs a day.</p>
<p><b>Day 41 &#8211; </b>Now I am a fully mature honeybee. I will no longer do the housework because the factories in my body producing royal jelly and wax have stopped. From now, I will spend my days collecting nectar from flowers.</p>
<p>Today it was my first flight outside. When I flew far away from the comb, I found myself surrounded by a design of colours. The scents coming from all around nearly caused me to faint. Flowers attract us by their colours and smells. They have structures arranged as if to serve as platforms for our landing. When we land on them, we pass our tongues into the source of nectar in their centres. Meanwhile pollen from the flowers clings to the hairs on our bodies giving them the look of prickly sticks. We leave some of this pollen on other flowers we visit and thereby assist i the pollination of flowers. But for this service we perform, you would not enjoy the benefit from fruit-bearing trees such as peach, apple, pear, almond and plum.</p>
<p>We do not visit flowers at random. Whatever kind of flowers we visit first, we continue to visit the same kind in the same environment. If we did otherwise we would be carrying pollen of other kinds of flowers and therefore waste the pollen, uselessly.</p>
<p>We are mostly attracted by blue. However, we also visit flowers of other colours except red. Red flowers do business with butterflies.</p>
<p>We do not see flowers in the same colour as you see them. Only the nectar containing central parts of the flowers you see as yellow appear to us as yellow to attract us to you see as white appear to us as coloured. In short, when we go on a journey to collect nectar, we do not look for them. Flowers themselves smile to us and attract us.</p>
<p><b>Day 42 &#8211;</b> I have spent today also among flowers. If you had followed, you would have seen that I visited around twenty flowers in a minute and as many as 20,000 by evening. I stored the nectar in my stomach and the pollen in the sacs on my back legs.</p>
<p>Since our return is difficult because of our load, we follow a direct way called the line of bees. Even if we pass through places unknown to us, we always follow that direct way. It is extremely easy for us to establish it. The place and position of the sun gives us our direction, Of course, the sun has changed position while we are visiting flowers. That is no matter at all. You cannot compete with us when it comes to calculating the exact place and position of the sun at any time of the day. If you kept me in a dark place and then released me hours later, it would not take me more than a few moments to find my direction. We use the atmospheric polarization and find the place of the sun by means of any little light coming from any corner of the sky. We have been doing this calculation for millions of years but you have come to know it only in the last forty years.</p>
<p>We cannot make our way only on completely dark days and therefore we do not go out on those days. We stay in and are busy with the work in the comb.</p>
<p><b>Day 44 &#8211;</b> We are a big anonymous company with its tens of thousands of partners and personnel, agents, boards of directors, awesone storage and processing establishments and a well-developed communications network. We pursue big markets to do business.</p>
<p>We do big business. Many other insects, flies and butterflies visit the flowers with which we do business. However, when we find a profitable source, we rush toward it as an army of 10 or 20 or 30 thousand bees.</p>
<p>Five per cent of our population are responsible for finding a market. They constantly search big markets and we evaluate the markets they have found. If, for example, one of our friends finds a market of one million flowers in the morning, you will see their nectar and pollen transferred into our depots in a few hours.</p>
<p>Our communication system works perfectly. Let me describe this to you with an example.</p>
<p>It was nearly noon. One of the elder bees entered the hive in great excitement. Other grown-up bees crowded around it.</p>
<p>From the smell of the pollen on its body we could understand what kind of a source it had found. We tasted the nectar it threw up onto the comb from its mouth. It was a bit more watery than it should be. However, we had to take into account the heat outside and the fact that that sample had been collected in early morning. The amount of sugar in nectar in morning hours is less than at other times. In short, the kind and quality of the nectar seemed OK. But we did not yet know the location of the source and whether it was a rich site, nor how far away it was.</p>
<p>Our friend immediately began to dance. A few bees near it and I held on to it to follow its movements. While dancing, it uttered some sounds which meant that the source was rich, and drew a figure 8 over the comb, completing a turn in 15 seconds, which meant that the source was 10 kilometres away. Our friend was dancing according to gravitation. While drawing the line in the middle of 8, it made an angle of 28 to the right. Since we always take the sun to be at an angle of 90, the source our friend described was 62 to the right of the sun.</p>
<p>The information our friend gave to us was for a still, windless day. However, it was windy when we left the hive and therefore, taking into account the direction and strength of the wind, we corrected the angle given to us.</p>
<p><b>Day 47 &#8211;</b> Our population has recently increased. We are about 60.000 bees. Our hive is not enough to accommodate all of us. Preparations made over the preceding few weeks mean that some of us will move to another place.</p>
<p><b>Day 50 &#8211; (your June 25) &#8211;</b> Male bees have left their cells in which they had been fed for some time. For the time being, they have nothing to do in the hive.</p>
<p>About a dozen larvae have been specially fed for some weeks. We feed in this way more larvae than needed. The first among them to leave its cell becomes the queen and, since there cannot be more than one queen in a hive, she immediately seeks out the cells where other candidates are and destroys them.</p>
<p>The new queen will spend the first few days of her life eating honey to gain strength. Afterwards, she will set off on the mating flight. During this flight which lasts a few days, she will store up in a special section in her body the sperms she will have taken from six or so male bees in sufficient amount to fertilize the one million or so eggs she will lay during her life. If the hive needs male bees, the queen closes the mouth of that section and the eggs she lays pass into the cells of the comb prepared for the male bees without being inseminated.</p>
<p>Two days after her return from the mating, she begins to lay eggs.</p>
<p><b>Day 51 &#8211;</b> Today at noon, about 15,000 of us, left our hive. Before departure, we filled our stomachs fully with honey. We will use it to build the comb in our new home.</p>
<p>It was a great responsibility. If we made a mistake in choosing the site of a new home, it might result in the end of the community.</p>
<p>We made a detailed search of all the places that looked suitable for a new home.</p>
<p>Returning to the cluster, we began to dance to inform one another about the places we had found. A consultative system prevails in bee communities. No one forces its opinion upon others. So, we follow carefully each other’s dance. If the idea of one among us seems to another better than its own, it copies that one’s dance. In this way, as the dance spreads, a consensus is formed.</p>
<p>The hole or opening we prefer for home must be of a volume of at least 15 litres. For we must put by at least ten kilos of honey for winter. We do not choose openings of a volume of more than 100 litres, for it is almost impossible to heat them. The entrance must be at least two metres above the ground and face south. The home must be dry, without wet. If any moisture leaks through the walls, we cover them with the resin of trees. We do not decide on a place after a single search. We repeat searches several times to be certain of the suitability of a particular site.</p>
<p><b>Day 52 &#8211;</b> As yesterday, today too, we could not agree on a particular site to establish our new home.</p>
<p><b>Day 53 &#8211; </b>We have found two other places. After comparisons and new researches, we have been pleased with two of them.</p>
<p><b>Day 54 &#8211; </b>We found new places today. Many of the surveyors began to dance the same dance but unanimity was not achieved.</p>
<p><b>Day 55 &#8211; </b>We have to make a choice. If we fail to reach an agreement, though it happens rarely, we will end up making our home in a bush. This means death.</p>
<p>We have looked at 29 possible sites, of which we have chosen one to the south-east after a last visit to it of the explorers. We rushed into the cluster of bees who have been waiting for days. They were as if dead. Slowly, we managed to move them. First they began movements to get warm. The temperature of the muscles has to reach 36 C. At last, a humming began. Those which had got warm enough began leaving the cluster. In a minute all the bees took flight. When they had formed a cylinder with a diameter of 10 metres, we advanced to the front to lead the others. Flying at a speed of more than 10 kilometres an hour, we reached our new home. Before entering, we marked the entrance with the smell of our community.</p>
<p>First we cleaned the site of all the rubbish and then covered the fissures with the resin we collected from trees. Afterwards, we began to build a comb. The pioneering columns scattered round to collect nectar. A new community of beas has been established by the end of the day.</p>
<p><b>Day 58 &#8211; </b>It is very hot. Some among us have set up an air-condition system at the entrance of the hive. They cool the hive by moving their wings.</p>
<p>I left the pioneering column. I collect water driblets and carry them to the hive.</p>
<p><b>Day 60 &#8211; </b>I am old and worn out, ready to retire. Besides the tasks I did in the hive, I have flown more than 2000 kilometers to provide you with the best of food, as it is ordered and inspired in me by my Creator:</p>
<p>You Lord inspired in the bee: Build your homes in hills, on trees, and in what they (men) construct. Then eat of all the produce (fruit and flowers of the earth), and set out on the ways of your Lord submissively (to Him). From their stomachs issues a drink of varying colours, wherein is healing for men. Surely in this a sign for those who reflect. (Qur’an, 16.68-9)</p>
<p>I have produced 50 grams of honey. Do not despise this for we, the population of a hive, make 200,000 flights a day and produce one kilo of honey. You, all human beings, could not produce or make even a single gram of it even if you all helped one another.</p>
<p>We make honey for your benefit but do not expect any return for it. We fulfill our duty of servant hood to our Creator. It is He Who employs us to offer to you the best of food by means of us. So, you must know Him and thank Him.</p>
]]></content:encoded>
					
		
		
			</item>
	</channel>
</rss>
