Monday, April 23, 2007

HYDROGEN AND CARBON

HYDRO-CARBON( Hydrogen + Carbon)
HYDROGEN

Hydrogen is the simplest element known to man. Each atom of hydrogen has only one proton. It is also the most plentiful gas in the universe. Stars are made primarily of hydrogen.
The sun is basically a giant ball of hydrogen and helium gases. In the sun's core, hydrogen atoms combine to form helium atoms. This process—called fusion—gives off radiant energy.
This radiant energy sustains life on earth. It gives us light and makes plants grow. It makes the wind blow and rain fall. It is stored as chemical energy in fossil fuels. Most of the energy we use today came from the sun's radiant energy.
Hydrogen gas is lighter than air and, as a result, it rises in the atmosphere. This is why hydrogen as a gas (H2) is not found by itself on earth. It is found only in compound form with other elements. Hydrogen combined with oxygen, is water (H2O). Hydrogen combined with carbon, forms different compounds such as methane (CH4), coal, and petroleum. Hydrogen is also found in all growing things—biomass. It is also an abundant element in the earth's crust.
Hydrogen has the highest energy content of any common fuel by weight(about three times more than gasoline), but the lowest energy content by volume (about four times less than gasoline). It is the lightest element, and it is a gas at normal temperature and pressure.

HYDROGEN - AN ENERGY CARRIER

An energy carrier is a substance or system that moves energy in a usable form from one place to another. Electricity is the most well-known energy carrier. We use electricity to move the energy in coal, uranium, and other energy sources from power plants to homes and businesses. We also use electricity to move the energy in flowing water from hydropower dams to consumers. It is much easier to use electricity than the energy sources themselves.
Like electricity, hydrogen is an energy carrier and must be produced from another substance. Hydrogen is not widely used today but it has great potential as an energy carrier in the future. Hydrogen can be produced from a variety of resources (water, fossil fuels, biomass) and is a byproduct of other chemical processes. Unlike electricity, large quantities of hydrogen can be easily stored to be used in the future. Hydrogen can also be used in places where it’s hard to use electricity. Hydrogen can store the energy until it’s needed and can be moved to where it’s needed.
HOW IS HYDROGEN MADE?

Since hydrogen doesn't exist on earth as a gas, we must separate it from other elements. We can separate hydrogen atoms from water, biomass, or natural gas molecules. The two most common methods for producing hydrogen are steam reforming and electrolysis (water splitting). Scientists have even discovered that some algae and bacteria give off hydrogen.
Steam reforming is currently the least expensive method of producing hydrogen and accounts for about 95 percent of the hydrogen produced in the United States. It is used in industries to separate hydrogen atoms from carbon atoms in methane(CH4). Because methane is a fossil fuel, the process of steam reforming results in greenhouse gas emissions that are linked with global warming.
Electrolysis is a process that splits hydrogen from water. It results in no emissions but it is currently a very expensive process. New technologies are being developed all the time.
Hydrogen can be produced at large central facilities or at small plants for local use. Every region of the country (and the world) has some resource that can be used to make hydrogen. Its flexibility is one of its main advantages.
USES OF HYDROGEN

About 7.8 million metric tonnes (17.6 billion pounds) of hydrogen are produced in the United States today, enough to power 20-30 million cars or 5-8 million homes. Nearly all of this hydrogen is used by industry in refining, treating metals, and processing foods.

The National Aeronautics and Space Administration (NASA) is the primary user of hydrogen as an energy fuel; it has used hydrogen for years in the space program. Liquid hydrogen fuel lifts the space shuttle into orbit. Hydrogen batteries—called fuel cells—power the shuttle’s electrical systems. The only by-product is pure water, which the crew uses as drinking water.
Hydrogen fuel cells (batteries) make electricity. They are very efficient, but expensive to build. Small fuel cells can power electric cars. Large fuel cells can provide electricity in out of the way places with no power lines.
Because of the high cost to build fuel cells, large hydrogen power plants won't be built for a while. However, fuel cells are being used in some places as a source of emergency power to hospitals and to wilderness locations. Portable fuel cells are being sold to provide longer power for laptop computers, cell phones, and military applications.

HYDROGEN USE IN VEHICLES

There are currently about 200 hydrogen-fueled vehicles in the United States – mostly in California. Most of these vehicles are buses and automobiles powered by electric motors. They store hydrogen gas or liquid on board and convert the hydrogen into electricity for the motor using a fuel cell. Only a few of these vehicles burn the hydrogen directly (producing almost no pollution).
Hydrogen vehicles are starting to move from the laboratory to the road. One California family has recently leased a hydrogen car for personal use. The U.S. postal service, a package delivery company, a few Florida Park rangers, and a few private utility companies are also using hydrogen vehicles. It will probably be at least 10 years, though, before you can walk into your local car dealer and drive away in an affordable hydrogen-powered car. Even then, you will need a place to refuel your hydrogen car. Currently, there are about 25 hydrogen refueling stations nationwide. This is the so-called “chicken and egg” problem that hydrogen developers are working hard to solve. Namely: who will buy hydrogen cars if there are no refueling stations? And who will pay to build a refueling station if there are no cars and customers? One possible solution is to eliminate refueling stations entirely. Automobile manufacturers have already designed a refrigerator-sized hydrogen generator for your garage that works off electricity. Consumers would simply refill their cars with hydrogen each night while it is parked.

Hydrogen has great potential as an environmentally clean energy fuel and as a way to reduce reliance on imported energy sources. Before hydrogen can play a bigger energy role and become a widely used alternative to gasoline, many new facilities and systems must be built. We will need facilities to make hydrogen, store it, and move it. We will need economical fuel cells. And consumers will need the technology and the education to safely use it.
The goal of the U.S. Department of Energy’s Hydrogen Program is for hydrogen to produce ten percent of our energy by the year 2030. Hydrogen could provide clean, renewable energy for the future.

Hydrogen (from the Greek word ὑδρογόνο= that makes water) (IPA: /ˈhaɪdrə(ʊ)dʒən/), is a chemical element that has the symbol H and an atomic number of 1. At standard temperature and pressure it is a colorless, odorless, nonmetallic, tasteless, highly flammable diatomic gas (H2). With an atomic mass of 1.00794 g/mol, hydrogen is the lightest element.
Hydrogen is the most
abundant of the chemical elements, constituting roughly 75% of the universe's elemental mass.[1] Stars in the main sequence are mainly composed of hydrogen in its plasma state. Elemental hydrogen is relatively rare on Earth, and is industrially produced from hydrocarbons such as methane, after which most elemental hydrogen is used "captively" (meaning locally at the production site), with the largest markets about equally divided between fossil fuel upgrading (e.g., hydrocracking) and in ammonia production (mostly for the fertilizer market). Hydrogen may be produced from water using the process of electrolysis, but this process is presently significantly more expensive commercially than hydrogen production from natural gas.
The most common naturally occurring
isotope of hydrogen is known as protium, has a single proton and no neutrons. In ionic compounds it can take on either a positive charge (becoming a cation composed of a bare proton) or a negative charge (becoming an anion known as a hydride). Hydrogen can form compounds with most elements and is present in water and most organic compounds. It plays a particularly important role in acid-base chemistry, in which many reactions involve the exchange of protons between soluble molecules. As the only neutral atom for which the Schrödinger equation can be solved analytically, study of the energetics and bonding of the hydrogen atom has played a key role in the development of quantum mechanics

History of Hydrogen

Discovery of H2 Hydrogen gas, H2, was first artificially produced and formally described by T. Von Hohenheim (also known as Paracelsus, 1493 – 1541) via the mixing of metals with strong acids. He was unaware that the flammable gas produced by this chemical reaction was a new chemical element. In 1671, Robert Boyle rediscovered and described the reaction between iron filings and dilute acids, which results in the production of hydrogen gas.[4] In 1766, Henry Cavendish was the first to recognize hydrogen gas as a discrete substance, by identifying the gas from a metal-acid reaction as "inflammable air" and further finding that the gas produces water when burned. Cavendish had stumbled on hydrogen when experimenting with acids and mercury. Although he wrongly assumed that hydrogen was a liberated component of the mercury rather than the acid, he was still able to accurately describe several key properties of hydrogen. He is usually given credit for its discovery as an element. In 1783, Antoine Lavoisier gave the element the name of hydrogen when he (with Laplace) reproduced Cavendish's finding that water is produced when hydrogen is burned. Lavoisier's name for the gas won out.
One of the first uses of H2 was for
balloons (or blimps). The H2 was obtained by reacting sulphuric acid and metallic iron. Infamously, H2 was used in the Hindenburg airship that was destroyed in a midair fire. The highly explosive hydrogen (H2) was later replaced in balloons by the unreactive Helium (He).
Role in history of quantum theory
Because of its relatively simple atomic structure, consisting only of a proton and an electron, the hydrogen atom, together with the spectrum of light produced from it or absorbed by it, has been central to the development of the theory of atomic structure. Furthermore, the corresponding simplicity of the hydrogen molecule and the corresponding cation H2+ allowed fuller understanding of the nature of the chemical bond, which followed shortly after the quantum mechanical treatment of the hydrogen atom had been developed in the mid-1920s.
One of the first quantum effects to be explicitly noticed (but not understood at the time) was a Maxwell observation involving hydrogen, half a century before full quantum mechanical theory arrived. Maxwell observed that the specific heat capacity of H2 unaccountably departs from that of a diatomic gas below room temperature and begins to increasingly resemble that of a monatomic gas at cryogenic temperatures. According to quantum theory, this behavior arises from the spacing of the (quantized) rotational energy levels, which are particularly wide-spaced in H2 because of its low mass. These widely spaced levels inhibit equal partition of heat energy into rotational motion in hydrogen at low temperatures. Diatomic gases composed of heavier atoms do not have such widely spaced levels and do not exhibit the same effect.
a giant region of ionized hydrogen in the Triangulum Galaxy
Hydrogen is the most abundant element in the universe, making up 75% of normal matter by mass and over 90% by number of atoms.[6] This element is found in great abundance in stars and gas giant planets. Molecular clouds of H2 are associated with star formation. Hydrogen plays a vital role in powering stars through proton-proton reaction nuclear fusion.
Throughout the universe, hydrogen is mostly found in the atomic and plasma states whose properties are quite different from molecular hydrogen. As a plasma, hydrogen's electron and proton are not bound together, resulting in very high electrical conductivity and high emissivity (producing the light from the sun and other stars). The charged particles are highly influenced by magnetic and electric fields. For example, in the solar wind they interact with the Earth's magnetosphere giving rise to Birkeland currents and the aurora. Hydrogen is found in the neutral atomic state in the Interstellar medium. The large amount of neutral hydrogen found in the damped Lyman-alpha systems is thought to dominate the cosmological baryonic density of the Universe up to redshift z=4.[7]
Under ordinary conditions on Earth, elemental hydrogen exists as the diatomic gas, H2 (for data see table). However, hydrogen gas is very rare in the Earth's atmosphere (1 ppm by volume) because of its light weight, which enables it to escape from Earth's gravity more easily than heavier gases. Although H atoms and H2 molecules are abundant in interstellar space, they are difficult to generate, concentrate, and purify on Earth. Still, hydrogen is the third most abundant element on Earth.[8] Most of the Earth's hydrogen is in the form of chemical compounds such as hydrocarbons and water.[9] Hydrogen gas is produced by some bacteria and algae and is a natural component of flatus. Methane is a hydrogen source of increasing importance.

The hydrogen atom

Electron energy levels
Hydrogen is the most abundant element in the universe, making up 75% of normal matter by mass and over 90% by number of atoms.[6] This element is found in great abundance in stars and gas giant planets. Molecular clouds of H2 are associated with star formation. Hydrogen plays a vital role in powering stars through proton-proton reaction nuclear fusion.
Throughout the universe, hydrogen is mostly found in the atomic and plasma states whose properties are quite different from molecular hydrogen. As a plasma, hydrogen's electron and proton are not bound together, resulting in very high electrical conductivity and high emissivity (producing the light from the sun and other stars). The charged particles are highly influenced by magnetic and electric fields. For example, in the solar wind they interact with the Earth's magnetosphere giving rise to Birkeland currents and the aurora. Hydrogen is found in the neutral atomic state in the Interstellar medium. The large amount of neutral hydrogen found in the damped Lyman-alpha systems is thought to dominate the cosmological baryonic density of the Universe up to redshift z=4.[7]
Under ordinary conditions on Earth, elemental hydrogen exists as the diatomic gas, H2 (for data see table). However, hydrogen gas is very rare in the Earth's atmosphere (1 ppm by volume) because of its light weight, which enables it to escape from Earth's gravity more easily than heavier gases. Although H atoms and H2 molecules are abundant in interstellar space, they are difficult to generate, concentrate, and purify on Earth. Still, hydrogen is the third most abundant element on Earth.[8] Most of the Earth's hydrogen is in the form of chemical compounds such as hydrocarbons and water.[9] Hydrogen gas is produced by some bacteria and algae and is a natural component of flatus. Methane is a hydrogen source of increasing importance.

The hydrogen atom
Depiction of a hydrogen atom showing the diameter as about twice the Bohr model radius. (Image not to scale)
The ground state energy level of the electron in a hydrogen atom is 13.6 eV, which is equivalent to an ultraviolet photon of roughly 92 nm.
The energy levels of hydrogen can be calculated fairly accurately using the Bohr model of the atom, which conceptualizes the electron as "orbiting" the proton in analogy to the Earth's orbit of the sun. However, the electromagnetic force attracts electrons and protons to one another, while planets and celestial objects are attracted to each other by gravity. Because of the discretization of angular momentum postulated in early quantum mechanics by Bohr, the electron in the Bohr model can only occupy certain allowed distances from the proton, and therefore only certain allowed energies. A more accurate description of the hydrogen atom comes from a purely quantum mechanical treatment that uses the Schrödinger equation or the equivalent Feynman path integral formulation to calculate the probability density of the electron around the proton. Treating the electron as a matter wave reproduces chemical results such as shape of the hydrogen atom more naturally than the particle-based Bohr model, although the energy and spectral results are the same. Modeling the system fully using the reduced mass of nucleus and electron (as one would do in the two-body problem in celestial mechanics) yields an even better formula for the hydrogen spectra, and also the correct spectral shifts for the isotopes deuterium and tritium. Very small adjustments in energy levels in the hydrogen atom, which correspond to actual spectral effects, may be determined by using a full quantum mechanical theory which corrects for the effects of special relativity (see Dirac equation), and by accounting for quantum effects arising from production of virtual particles in the vacuum and as a result of electric fields (see quantum electrodynamics).
In hydrogen gas, the electronic ground state energy level is split into hyperfine structure levels because of magnetic effects of the quantum mechanical spin of the electron and proton. The energy of the atom when the proton and electron spins are aligned is higher than when they are not aligned. The transition between these two states can occur through emission of a photon through a magnetic dipole transition. Radio telescopes can detect the radiation produced in this process, which is used to map the distribution of hydrogen in the galaxy.

Isotopes Isotopes
Protium, the most common isotope of hydrogen, has one proton and one electron. Unique among all stable isotopes, it has no neutrons. (see diproton for discussion of why others do not exist
Hydrogen has three naturally occurring isotopes, denoted 1H, 2H, and 3H. Other, highly unstable nuclei (4H to 7H) have been synthesized in the laboratory but not observed in nature.[10][11]
1H is the most common hydrogen isotope with an abundance of more than 99.98%. Because the nucleus of this isotope consists of only a single proton, it is given the descriptive but rarely used formal name protium.
2H, the other stable hydrogen isotope, is known as deuterium and contains one proton and one neutron in its nucleus. Deuterium comprises 0.0026 – 0.0184% of all hydrogen on Earth. It is not radioactive, and does not represent a significant toxicity hazard. Water enriched in molecules that include deuterium instead of normal hydrogen is called heavy water. Deuterium and its compounds are used as a non-radioactive label in chemical experiments and in solvents for 1H-NMR spectroscopy. Heavy water is used as a neutron moderator and coolant for nuclear reactors. Deuterium is also a potential fuel for commercial nuclear fusion.
3H is known as tritium and contains one proton and two neutrons in its nucleus. It is radioactive, decaying into Helium-3 through beta decay with a half-life of 12.32 years.[9] Small amounts of tritium occur naturally because of the interaction of cosmic rays with atmospheric gases; tritium has also been released during nuclear weapons tests. It is used in nuclear fusion reactions, as a tracer in isotope geochemistry, and specialized in self-powered lighting devices. Tritium was once routinely used in chemical and biological labeling experiments as a radiolabel (this has become less common).
Hydrogen is the only element that has different names for its isotopes in common use today. (During the early study of radioactivity, various heavy radioactive isotopes were given names, but such names are no longer used). The symbols D and T (instead of 2H and 3H) are sometimes used for deuterium and tritium, but the corresponding symbol P is already in use for phosphorus and thus is not available for protium. IUPAC states that while this use is common it is not preferred.

Elemental molecular forms

There are two different types of diatomic hydrogen molecules that differ by the relative spin of their nuclei.[12] In the orthohydrogen form, the spins of the two protons are parallel and form a triplet state; in the parahydrogen form the spins are antiparallel and form a singlet. At standard temperature and pressure, hydrogen gas contains about 25% of the para form and 75% of the ortho form, also known as the "normal form".[13] The equilibrium ratio of orthohydrogen to parahydrogen depends on temperature, but since the ortho form is an excited state and has a higher energy than the para form, it is unstable and cannot be purified. At very low temperatures, the equilibrium state is composed almost exclusively of the para form. The physical properties of pure parahydrogen differ slightly from those of the normal form.[14] The ortho/para distinction also occurs in other hydrogen-containing molecules or functional groups, such as water and methylene.
The uncatalyzed interconversion between para and ortho H2 increases with increasing temperature; thus rapidly condensed H2 contains large quantities of the high-energy ortho form that convert to the para form very slowly.[15] The ortho/para ratio in condensed H2 is an important consideration in the preparation and storage of liquid hydrogen: the conversion from ortho to para is exothermic and produces enough heat to evaporate the hydrogen liquid, leading to loss of the liquefied material. Catalysts for the ortho-para interconversion, such as iron compounds, are used during hydrogen cooling.[16]
A molecular form called protonated molecular hydrogen, or H3+, is found in the interstellar medium (ISM), where it is generated by ionization of molecular Hydrogen from cosmic rays. It has also been observed in the upper atmosphere of the planet Jupiter. This molecule is relatively stable in the environment of outer space due to the low temperature and density. H3+ is one of the most abundant ions in the Universe, and it plays a notable role in the chemistry of the ISM.

Chemical and physical properties

The solubility and adsorption characteristics of hydrogen with various metals are very important in metallurgy (as many metals can suffer hydrogen embrittlement) and in developing safe ways to store it for use as a fuel. Hydrogen is highly soluble in many compounds composed of rare earth metals and transition metals[18] and can be dissolved in both crystalline and amorphous metals.[19] Hydrogen solubility in metals is influenced by local distortions or impurities in the metal crystal lattice.[

Combustion

The solubility and adsorption characteristics of hydrogen with various metals are very important in metallurgy (as many metals can suffer hydrogen embrittlement) and in developing safe ways to store it for use as a fuel. Hydrogen is highly soluble in many compounds composed of rare earth metals and transition metals[18] and can be dissolved in both crystalline and amorphous metals.[19] Hydrogen solubility in metals is influenced by local distortions or impurities in the metal crystal lattice.


Friday, April 20, 2007

Propane



Propane is an energy-rich gas, C3H8. It is one of the liquefied petroleum gases(LP-Gas or LPGs) that are found mixed with natural gas and oil. Propane and other liquefied gases, including ethane and butane, are separated from natural gas at natural gas processing plants, or from petroleum at refineries. The amount of propane produced from natural gas and from oil is about equal.

Propane naturally occurs as a gas. However, at higher pressure or lower temperatures, it becomes a liquid. Because propane is 270 times more compact as a liquid than as a gas, it is transported and stored in its liquid state. Propane becomes a gas again when a valve is opened to release it from its pressurized container. When returned to normal pressure, propane becomes a gas so that we can use it
1. What is Propane and History of Propane

Propane is a kissing cousin of natural gas and petroleum. Propane is usually found mixed with natural gas and petroleum deposits in rocks deep underground. Propane is called a fossil fuel because it was formed millions of years ago from the remains of tiny sea animals and plants.
When the plants and animals died, they sank to the bottom of the oceans where they were buried by layers of sand and silt. Over the years, the layers became thousands of feet thick. The layers were subjected to enormous heat and pressure, changing the energy-rich remains into petroleum and natural gas deposits. Eventually, pockets of these fossil fuels became trapped in rock layers much as a wet household sponge holds water.
Propane is just one of the many fossil fuels that are included in the liquefied petroleum (LP) gas family. Because propane is the type of LP-gas most commonly used in the United States, "propane" and "LP-gas" are often used synonymously. The chemical formula for propane is C3H8.
Just as water can change its physical state and become a liquid or a gas (steam vapor), so can propane. Under normal atmospheric pressure and temperature, propane is a gas. Under moderate pressure and/or lower temperatures, however, propane changes into a liquid. And that's the beauty of it.
Propane is easily stored as a liquid in pressurized tanks. (Think of the small tanks you see attached to a gas barbecue grill, for example.)
Propane takes up much less space in its liquid form. It is 270 times more compact in its liquid state than it is as a gas. A thousand gallon tank holding gaseous propane would provide a family enough cooking fuel for one week. A thousand gallon tank holding liquid propane would provide enough cooking fuel for almost ten years! Liquid propane instantly vaporizes into a gas when it is released from its tank to fuel propane gas appliances and equipment. Propane has been nicknamed the "portable gas" because it is easier to store and transport than natural gas.
Like its close cousin natural gas, propane is colorless and odorless. An odorant is added to propane (as it is to natural gas) to serve as a warning agent for escaping gas. And like all the fossil fuels---coal, natural gas, and petroleum--propane is a nonrenewable energy source.
History of Propane

Propane does not have a long history. It wasn't discovered until 1912 when people were trying to find a way to store gasoline. The problem with gasoline was that it evaporated when stored under normal conditions.
Dr. Walter Snelling, directing a series of experiments for the U.S. Bureau of Mines, discovered that several evaporating gases could be changed into liquids and stored at moderate pressure. The most plentiful of these gases was propane. Dr. Snelling developed a way to "bottle" the wet (liquid) gas. One year later, the commercial propane industry began heating American homes.
2. Producing and Transporting Propane
Propane comes from natural gas and petroleum wells. Fifty-five percent of the propane used in the United States is extracted from raw natural gas. (Raw natural gas is natural gas that hasn't been cleaned and processed yet.) Raw natural gas contains about 90 percent methane, five percent propane, and five percent other gases. The propane is separated from the other gases at a natural gas processing plant.
The remaining 45 percent is extracted from petroleum. Petroleum is separated into its various parts at a processing plant called a refinery.
HOW PROPANE IS USED

Although propane accounts for about 2 percent of all energy used in the United States, it has some very important uses. Propane is the most common source of energy in rural areas that do not have natural gas service. It is used for heating homes, heating water, cooking and refrigerating food, drying clothes, and fueling gas fireplaces and barbecue grills.

On farms, it is used to dry corn and power farm equipment and irrigation pumps. Businesses and industry use propane to run their fork lifts and other equipment. About 44 percent of propane is used by the chemical industry as a raw material for making plastics, nylon, and other materials. While only a small fraction of propane is used for transportation, it is the largest alternative transportation fuel in use today. Instead of gasoline, propane is often used to fuel fleets of vehicles used by school districts, government agencies, and taxicab companies. In recreational pursuits, hot air balloons use propane to heat the air that makes them rise.

GETTING PROPANE TO USERS
How does propane get to the people who use it? Propane usually goes by underground pipeline to terminals across the country. Railroads, barges, trucks, and supertankers also ship the propane to bulk distributors.

Local propane dealers come to the distributor's bulk plant to fill up their small tank trucks. These tank trucks, called "bobtails", deliver propane to large storage tanks that are outside homes. The average residential propane tank holds between 500 - 1,000 gallons of liquid fuel, and is refilled several times a year. People who use just a little propane - for a backyard barbecue, for example - bring their tanks to hardware stores to be filled or to be exchanged for full ones.

MORE ABOUT LIQUEFIED PETROLEUM GASES

Liquefied petroleum gases (LP-gases or LPGs) are mixtures of propane, ethane, butane and other gases that are produced at natural gas processing plants and refineries. Other plants, called fractionation plants, separate the liquids from each other.
LP-gases were discovered in 1912 when an American scientist, Dr. Walter Snelling, discovered that these gases could be changed into liquids and stored under moderate pressure. The LP-gas industry got its start shortly before World War I when a problem in the natural gas distribution process popped up. A section of the pipeline in one natural gas field ran under a cold stream, and the coldness led to a lot of liquids building up in the pipeline, sometimes to the point of blocking the entire pipeline. Soon, engineers figured out a solution: facilities were built to cool and compress natural gas, and to separate the gases that could be turned into liquids (including propane and butane).

ENVIRONMENTAL ISSUES

Propane is a non-renewable fossil fuel, like the natural gas and oil it is produced from. Like natural gas (methane), propane is colorless and odorless. Although propane is nontoxic and odorless, foul-smelling mercaptan is added to it to make gas leaks easy to detect. Propane is a clean burning fossil fuel, which is why it is often chosen to fuel indoor equipment such as fork lifts. Its clean burning properties and its portability also make it popular as an alternative transportation fuel. Propane-fueled engines produce much fewer emissions of carbon monoxide and hydrocarbons compared to gasoline engines. Like all fossil fuels, propane emits water vapor and carbon dioxide, a greenhouse gas.

The Propane Molecule

A three-carbon alkane, propane is sometimes derived from other petroleum products during oil or natural gas processing.
Chemical Formula: C3H8
http://en.wikipedia.org/wiki/Lewis_Structure When commonly sold as fuel, it is also known as liquified petroleum gas (LPG or LP gas) and is a mixture of propane with smaller amounts of propylene, butane and butylene, plus an ethyl mercaptan odorant to allow the normally odorless propane to be smelled. It is used as fuel in cooking on many barbecues and portable stoves and in motor vehicles. Propane powers some buses, forklifts, and taxies and is used for heat and cooking in recreational vehicles and campers. In many rural areas of the US, propane is also used in furnaces, water heaters, laundry driers, and other heat-producing appliances. Delivery trucks fill up large tanks that are permanently installed on the property (sometimes called pigs) or exchange bottles of propane.
Propane is the liquid petroleum gas (LPG) used to fuel hot air balloons. When handled properly it is a safe and efficient fuel. It is sometimes supplied in a mixture with other gases such as butane, butylene and propylene.
General Properties of Propane
1. Propane is a colourless, odourless and non-toxic gas. It is supplied commercially with an added odorant to assist detection by smell.

2. Propane boils at -42 degrees Celsius. At 15 degrees Celsius it has a storage pressure of 635 kPa.

3. Propane is stored as a liquid under pressure and will expand approximately 270 times to a vapour at normal temperatures and pressure
when released.

4. When the propane changes to a vapour it is possible to see the initial leak by the cooling effect of the leak, which causes condensation, and even freezing of the water vapour in the air. Not being able to see the effects of the leak after a short distance does not mean that the gas is not present in a potentially explosive mixture.

5. Propane is heavier than air, and may flow along the ground or through drains and will sink to the lowest level of the surroundings.

6. The flammability range of the gas is 1.6% to 9.5% by volume in air. A small proportion of the gas can therefore give rise to a flammable mixture.

7. Propane and other LPG gases are excellent solvents of petroleum and rubber products.

8. Propane and other LPG gases are generally non-corrosive to steel and copper alloys. Precautions against corrosion may be necessary if aluminium or aluminium alloys are used.

Refuelling Rules
1. Vehicles should be pointed into the wind, and the refueller must ensure that they are not blocked in.
2. LPG, by its rapid vaporisation and consequent lowering of temperature can cause severe frost burns. Protective clothing such as gloves, goggles and a long sleeved shirt should be worn when there is any possibility of contact with liquid LPG.
3. Before filling commences, the area shall be checked to ensure that there are no sources of ignition, i.e. smoking, naked lights or flames, running car engines, or mobile phones within 10 metres of the connections at either end of the transfer hose.
4. A check should be made to ensure that the test stamp on the cylinder is within the required ten-year test period. A cylinder, which does not have a current test inspection stamp, must not be filled.
5. A check should also be made for apparent damage or corrosion to the cylinder, and all valves and / or controls checked to ensure that they are in good working order with no leakage.
6. Cylinders must not be tilted during refuelling.
7. It is very important that cylinders are not overfilled, and that a vapour space is left at the top of the cylinder. This is achieved by closing the cylinder valve immediately LPG flows from the bleeder valve. Leaks
· Shut off any electrical equipment and leave off until vapour hazard is removed.
· If available, use the outside "EMERGENCY STOP" handles or buttons.
· No smoking or naked lights within 70 metres.
· Move people away from the area. Move upwind.
· Stop leaks if possible.
· If possible, separate the leaking container and position so that only gas escapes.
· Spray water to disperse the gas cloud.
· Prevent spillage where practical from spreading or entering underground drains by banking with sand or earth.
· Do not start engines and / or operate electrical equipment in the area.
· Inform the fire brigade, police and gas supplier.

Ethane

The ethane molecule

Ethaneis a chemical compound with chemical formula C2H6, structural formula CH3-CH3.
It is an alkane, that is, an aliphatic hydrocarbon. At ordinary pressure and temperature ethane is a colourless, odourless gas; boiling point is ?88.6°; melting point is ?183.3°.
It is the simplest hydrocarbon containing more than one carbon atom. Ethane is a prominent compound of industrial importance, by converting it to ethylene or using it as a building block for the petrochemical industry, for the synthesis both of polyethylene plastic and other small compounds.

General Description:

The hydrocarbon ethane consists of two carbons and six hydrogens. Classified as an alkane, or paraffin, hydrogen saturates the carbon atoms via covalent single bonds. Derived from the Latin term parum affinis, meaning “little affinity” for other compounds, paraffins are known for their stability and resistance to reactivity. Alkanes such as ethane are nonpolar, thus insoluble in polar solvents such as water.
Alkanes may be separated into fractions via distillation. The lowest boiling point (3-4 carbons) is used as fuel in cigarette lighters and barbecues. Gasoline follows in the next distillation fraction (5-11 Carbons), next kerosene and jet fuel (9-16 carbons), then diesel fuel (15-25 carbons), and the highest boiling point fractionation provides lubricants and greases (26+ carbons). The greater the branching of a hydrocarbon chain, the greater the stability of the molecule and the higher the boiling point. A colorless, odorless, nontoxic, yet flammable gas, ethane is a constituent of natural gas and petroleum (75% Methane, 25% Ethane, Propane, and Butane). These “fossil fuels” were formed through the decomposition of organic matter over thousands of years and today provide a major energy source. Large amounts of the element may also be located in the atmospheres of Saturn and Jupiter.

A Model of the Ethane Molecule.-As is well known, ethane is a saturated hydrocarbon which contains eight valency electrons due to carbon and six due to hydrogen. Since it is saturated all the "possible electron positions" must be occupied by electrons. This can easily be accomplished in a cubic model by uniting the two carbon atoms by a double electron bond (two cubes having an edge in common). The union between the two carbon atoms being taken care of the next question to decide concerns the nature of the bond between the carbon and hydrogen atoms. It will be recalled that both diamond and graphite have adjacent atoms united by a single
electron bond (cube corner in common). Since this is the simplest type of atomic union and since there is no definite evidence in favor of any other type of bond between the carbon and hydrogen atoms in ethane this union will be assumed in this model as a first approximation. In
diamond the "electron position" uniting two adjacent atoms lies on the straight line connecting the nuclei. In graphite this is not the case.

Since the former bond is simpler from a geometrical standpoint it will be assumed for this model of ethane and, consequently, the radius of the carbon atom (half the body diagonal of the cube) will be taken as 0.77 A. And as a final approximation, it will be assumed that the "electron position" joining the hydrogen and carbon atoms is midway between the two nuclei.
It should be noted that these assumptions are arbitrary.

Their purpose is to enable us to set up a definite scale model of ethane which can be quantitatively tested by comparison with experiment. One of the most rigorous tests that such a model can undergo is to build it into a lattice structure and compare the diffraction effects computed from the model with those actually observed by means of X-ray analysis. As will be
shown in detail in another paper, the model herewith presented can be so arranged in a hexagonal close-packed lattice that it accounts quantitatively for all the observed diffraction effects, not only in regard to their position but also as to whether they are present or absent in the powder photographs. In this paper a description of this model is all that is intended.

Hydrocarbon







The Methane Molecule

The simplest hydrocarbon , methane is a gas with a chemical formula of CH4.
What is the Geometry of Methane?
The simplest hydrocarbon , methane is a gas with a chemical formula of CH4 and a molecular weight of 16.04.


Methane
The carbon atom central to the methane molecule has 4 valence electrons and thus needs 4 more electrons from four hydrogen atoms to complete its octet. The hydrogen atoms have a 109 degree bond angle giving the molecule a tetrahedral geometry .
A principal component of natural gas, methane is significant . Burning one molecule of methane in the presence of oxygen releases one molecule of CO2[carbon dioxide) and two molecules of H2O (water):
CH4 + 2O2 ---> CO2 + 2H2O
The strength of the carbon hydrogen covalent bond in the methane molecule is among the strongest in all hydrocarbons, and thus its use as a chemical feedstock is limited. The search for which one can facilitate C-H bond activation in methane and other low alkanes is an area of research with considerable industrial significance.
Pure methane is odorless, but when used as a fuel it is usually mixed with small quantities of strongly-smelling sulfur compounds such as ethyl mercaptan to enable the detection of leaks.
Methane is a greenhouse gas with a global warming potential of 22 (meaning that it has 22 times the warming ability of carbon dioxide).
Methane results from the decomposition of certain organic matters in the absence of oxygen. It is therefore also classified as a biogas.
The U.S. Geological Survey has estimated that the United States has 320,000 trillion cubic feet of gas hydrates, some 200 times conventional natural gas resources and reserves in the country. If only 1 percent of the methane hydrate resource could be made recoverable, the United States could more than double its domestic natural gas resource base
Principal sources are
decomposition of organic wastes ;
natural sources (;marshes) : 23 %
fossil fuel extraction : 20 % Coal bed methane extraction
the processes of digestion of animals (cattle) : 17 %
bacteria found in rice plantations : 12 %
biomass anaerobic heating or combustion
80% of the world emissions are of human source. They come primarily from agricultural and other human activities. During the past 200 years, the concentration of this gas in the atmosphere doubled, passing from 0.8 to 1.7 ppm.

About Methane:

Methane is a principal component of natural gas. When a single molecule of methane is burned in the presence of oxygen releases one molecule of CO2[carbon dioxide) and two molecules of H2O (water).
CH4 + 2O2 ---> CO2 + 2H2O
The strength of the carbon hydrogen covalent bond in methane is among the strongest in all hydrocarbons.
Pure methane is odorless, but when used as a fuel it is usually mixed with small quantities of strongly-smelling sulfur compounds such as ethyl mercaptan to enable the detection of leaks.
Methane is a greenhouse gas with a global warming potential of 22 (meaning that it has 22 times the warming ability of carbon dioxide). Methane results from the decomposition of certain organic matters in the absence of oxygen. It is therefore also classified as a biogas.