Showing posts with label NASA. Show all posts
Showing posts with label NASA. Show all posts

Monday, February 15, 2010

Hho Kits - Beat The Gas Pump With Gas4Free, Water4Gas Or Simplewaterfuel

Two words that have ruled the public conversation for the past one or two years are'gas prices.' increasing one or two greenbacks per gallon, rising gas costs have drastically changed the way many Americans live their lives. All of a sudden, every trip or drive or errand becomes a thing to be weighed and considered given the potential expense. Families don't get to go to relatives as much. Many less folks go on vacation or journeys. A visit to the corner store for milk may be more expensive in Gas4Free than the gallon of milk itself. While prices might have dropped lately, they are destined to rise again as gas is in-demand and becomes more and more rare.

despite all this, there is a easy way that most folks can manage to defeat the gas pump and reclaim their liberty to roam. That way is the HHO Kit. HHO kits are revolutionary kits that may be installed on any car. The HHO kit is fueled by a totally free substance : water. The HHO kit converts the water into its gas-base, hydrogen. The hydrogen is sucked into your auto engine. Once inside it mixes with the gasoline to maximize your fuel use. NASA has long used hydrogen to fuel its spaceships and rockets, and now every person can have their own space-age vehicle with an HHO kit.

because it converts water and hydrogen into fuel, a vehicle with an HHO kit installed gets miles better gas mileage than a car without one. In fact, vehicles with HHO kits usually use ten to 50% less gasoline than those without one. This implies that automobile owners with HHO kits spend 10 to 50% less time at the pump and their wallets are 10 to fifty percent bigger than those who don't . A family that spends a hundred greenbacks a month on gas would spend $10 to $50 bucks less a month. A large enough sum to impact that family's monthly activities. Families with HHO kits have more money to spend on holidays, going to restaurants, or just to put in savings.

Even though they provide all these extraordinary benefits, HHO kits are surprisingly affordable. Gas4free, Simplewaterfuel and Water4gas sell high-quality, affordable HHO kits Guides which will have you straight away saving money and free from the chains of the gas pump. These manuals are also highly easy to follow. They require no expensive tools or expertise. It does not take an engineer to install it, just a free afternoon. In reality, installing an HHO kit can be a neat way to spend an afternoon or to bond with a friend of child.

Not only do HHO kits help people save lots of money, they're also very environmentally friendly. Helping vehicle owners to cut back on their gas emissions and gas use is an Earth-friendly way to save money. There might be a limited supply of gasoline on our planet, but there's a lot of water and HHO kits can make even fossil-fuel guzzling cars a bit more green.

With the invention of the HHO kit, there's no reason to feel enslaved by gas costs or confined to your place because you cannot afford gas. With an HHO kit, you are Gas4Free to wander anywhere you wish without the fear of the pump.
(ArticlesBase SC #1822639)

An Introduction to Biofuels

Agriculture - methane, ethanol and biodiesel Introduction

In this chapter we shall discuss the importance of recent developments in agriculture upon the world's energy resources and the impact on the world population and environment. We shall focus mainly on  agriculture producing fuel as this is currently controversial. We will briefly discus the historic link between agriculture and petroleum then we will explore aspects of methane, biodiesel and ethanol production before a brief summary on the strategic importance of a strong agricultural sector.

Link between Agriculture and Petroleum

Since the 1940's agriculture has dramatically increased its productivity. This is due in part to the use of petrochemical derived pesticides and fertilizers and increased mechanization. The vast majority of energy used to produce food in addition to sunlight comes from fossil fuel sources. Because of modern agriculture's heavy reliance on petrochemicals there are signs that decreases in oil supply will inflict damage on the world's modern agricultural system and cause long term food shortages. Oil shortages mean that organic agriculture and sustainable farming are now of more importance than ever. However, the current controversy  is due to the fact that farmers have increasingly been raising crops such as corn for non-food use in an effort to help mitigate peak oil. This is turn has contributed to a 60% rise in wheat prices recently and may cause serious social unrest. Increased interest in food commodities from the world's financial markets has also increased the cost of food worldwide.

Let us look at several main areas of agricultural fuel production. First  methane production.

Methane

Methane is the principal component of natural gas. The relative abundance of methane and its clean burning process makes it a very attractive fuel. Methane is usually now transported in its natural gas form by pipeline or LNG carriers. Methane is very important for electrical generation when burned as a fuel in a gas turbine or steam boiler and compared to other hydrocarbon fuels burning methane produces less carbon dioxide for each unit of heat released. Methane in the form of compressed natural gas can also be used in vehicles and NASA is looking to methane's potential as rocket fuel as it is abundant in many parts of the solar system ! In addition methane has industrial uses, especially in industrial chemical processes and may be transported as refrigerated LNG.

The link between agriculture and methane occurs because apart from gas fields an alternative method of obtaining methane is via biogas generated by the fermentation of organic matter, including manure, wastewater sludge, municipal solid waste or any other biodegradable feedstock under anaerobic conditions. As an aside methane hydrates, which are basically icelike combinations of methane and water on the sea floor  are also a potential future source of methane. Back to agriculture ! Cattle belch methane accounts for 16% of the world's annual methane emissions and the livestock sector in general is responsible for 37% of all human influenced methane production. In fact lets take a look at some of the statistics on anthropogenic methane. This accounts in total for approximately 55% of all methane emissions. Of this 18% is due to our energy use, 7% due to landfills, 19% due to livestock, 4% waste treatment, and 7% biomass burning. We can this see the links between agriculture and methane production but of course so far very little of this is harnessed for fuel.

Ethanol

The fermentation of sugar into ethanol is one of the earliest organic reactions known to humanity. Ethanol is also produced from by-products of petroleum refining but here we are concerned at the links between agriculture and fuel production. The largest single use of ethanol is as a motor fuel and fuel additive. The largest national fuel ethanol industries exist in Brazil. Thanks to advances in engine design today almost half of Brazilian cars are able to use 100% ethanol as fuel via ethanol only engines and flex-fuel engines.. In the US flex-fuel engines can run on 0% to 85% ethanol since higher ethanol blends are not allowed. Brazil produces ethanol from domestically grown sugar cane which has a greater concentration of sucrose than corn but is also easier to extract.

In addition the bagasse generated by the process is not wasted but is used in power plants to produce electricity. In contrast in the USA the fuel ethanol industry is based on corn. According to the Renewable Fuels Association in October 2007 there are 131 grain ethanol bio-refineries in the USA with another 72 under construction. The Energy Policy Act of 2005 required that 4 billion gallons of renewable fuel be used in 2006 and this increases thereafter. However there is a controversy arising concerning this as it is disputed whether ethanol as an automotive fuel made from corn results in a net energy gain or loss. The case is clear in sugar cane ethanol as this produces 8 joules for each joule used to produce it. Sugar cane is therefore a far, far better source of ethanol for fuel. Recent research shows that other crops such as switchgrass are also ore efficient than corn. It is likely that cellulosic crops will displace corn as a main fuel crop in the future. There are in fact many controversial side effects of using corn to produce ethanol. According to one estimate a person could be fed for an entire year on the corn used to fill an ethanol fueled SUV. In fact the use of corm almost certainly increases global warming, destroys forests and inflates fuel prices.

Many environmentalists and livestock farmers are against the use of corn for ethanol production and the work also attracts controversial subsidies. In 2007 the UN's expert on the right to food called for a 5 year moratorium on biofuel production from food crops to prevent a catastrophe for the poor as food prices escalate. The effects of increasing food prices due to the ripple effect of a rise in corm prices have been felt worldwide. A February 2007 Associated Press article stated "The widespread use of ethanol from corn could result in nearly twice the greenhouse gas emissions as the gasoline it would replace because of expected land-use changes". However, it is not all doom and gloom because as we said earlier the case for ethanol from sugar cane has been made so agriculture has a huge contribution to make to fuel production in an efficient manner in fact if we move away from corn.

Biodiesel

 This refers to the non-petroleum based diesel fuel made by transesterification of vegetable oils or animal fats, which can be used alone or blended in unmodified diesel engine vehicles. Biodiesel use and production is increasing rapidly and fueling stations are making biodiesel available across Europe and increasingly in Canada and the USA.  At the moment biodiesel is relatively expensive to purchase but the economies of scale of production and agricultural subsidies versus the rising costs of petroleum may make biodiesel more attractive. Biodiesel production continues to grow rapidly with an average annual growth rate from 2002 to 2006 of over 40% according to Renewables 2007 Global Status Report. For 2006 total world biodiesel production was 5-6 million tonnes with 4.9 million tonnes processed in Europe - mainly in Germany.  It can be seen that agriculture has an enormous role to play in the creation of alternative fuels. A variety of oils can be used to produce biodiesel.

Virgin oil feedstocks such as rapeseed and soybean oils can be used. Soybean is a major feedstock in the US for example. Other feedstocks can include field penny-cress, Jatropha, mustard, flax, sunflower, palm oil, and hemp. Waste vegetable oil (WVO) can also be used as feedstocks. Farms also produce animal fats including tallow, lard and yellow grease. Chicken fats and by-products of the production of Omega 3 fatty acids from fish oil can be used. Another form of farming can also contribute, namely algaculture. Algae which can be grown using waste materials such as sewage can also be used as feedstock.

 However, it should be noted that currently worldwide production of vegetable oil and animal fat is not yet sufficient to replace liquid fossil fuel use. Also there would be objections to the vast amount of farming expansion needed to produce sufficient quantities - especially from relative low yield feedstocks like soybean. Lets take a quick look at the various yields because feedstock yield efficiency per acre affects the feasibility of ramping up agriculture required to power a significant percentage of world vehicles.

Here are some examples of yields quoted in US gallons of biodiesel per acre. Algae 1800 gpa or more, Palm oil 508 gpa, Coconut 230 gpa, Rapeseed 102gpa, Soy 59 gpa, Peanut 90 gpa, Sunflower 82 gpa. The case is being made strongly for algae fuel as according to the DOE algae yield 30 times more energy per acre than land crops such as soybeans. Algae production has another great advantage in that it does use up existing farmland. The Jatropha plant is also cited as being relatively high yield with about 200 gpa. This is grown in the Philippines, Mali and India, is drought resistant and can share space with other crops such as coffee. Overall the efficiency and economic arguments continue. Does it make sense to convert more farmland into feedstocks for  biodiesel production ?

Additional factors need to be taken into consideration such as the fuel equivalent of energy required for processing, the yield of fuel from raw oil, the return on cultivating food, and effects on food prices and the relative cost of biodiesel versus petrodiesel.

A note on energy security

 In reality one of the main drivers for adoption of biodiesel, ethanol and agriculture based methane production is energy security. This means that the country's dependence on oil should be reduced and substituted with locally available sources such as coal, gas or other renewable resources. In effect this means that there are significant benefits for a country quite apart from reduction of greenhouse gasses. It is clear that initiatives in agriculture to produce methane, biodiesel and ethanol do reduce our dependence on oil , even if the total energy balance is controversial in some cases. The diversification of energy sources is a vital security factor and the development of a strong agricultural sector to meet this demand is therefore of long term and short term strategic interest. However, this must be balanced with initiatives in food production especially in the developing world to offset the effects of conversion of arable land to biofuel feedstock production.

 Dr Simon Harding

www.thinkoil.net
www.chronosconsulting.com
(ArticlesBase SC #1565287)

Bmw and Nasa. What's This About?

The time was August 2007. The place is Cape Canaveral Florida.

An historic event took place on this date and time. The problem is that very few people realize that it even happened. And fewer people still understand the importance of this meeting of the minds between NASA engineers and the engineers at BMW.

But one day you will benefit from this union.

As NASA engineers were preparing to launch the Space Shuttle Endeavour, BMW of North America and NASA announced that together they had successfully completed an eight week test for the BMW Hydrogen 7 Luxury Sedan. And because this was the first hydrogen powered luxury sedan, their joint success brought a smile even to the faces of normally non-emotional engineers.

This was like getting s smile out of Mr. Spock on Star Trek. It was that important.

Both BMW and NASA are committed to hydrogen technologies research, innovative transportation systems and alternate energy sources. Fortunately, this program was made possible under a Space Act Agreement between NASA and BMW. I don’t know about you, but for me, I could feel the excitement of our tax dollars at work. Both you and I will someday benefit from this cutting edge research.

In simple terms, this is why BMW and NASA worked together. Because of the high density of liquid hydrogen the space shuttle is propelled at high speeds into space. This same concept is used by BMW to power the BMW Hydrogen 7. So BMW and NASA working together on this project was a perfect match. Also, this project is BMW’s way of showing that hydrogen drive vehicles are a viable option for your future and mine.

This test project was a huge success for BMW.

Not only did this prove that BMW could make a dual combustion engine that can switch from gasoline to liquid hydrogen seamlessly, but also as a far reaching model vehicle for the future. But the major drawback right now is that there are very few places where a driver can stop and fuel up on liquid hydrogen. But that isn’t going to stop BMW from pushing ahead with development of the Hydrogen 7.

So what’s the answer to all driver’s question, “Where do I get the liquid hydrogen?”

Another goal of this joint project was to make the public more aware of the great possibilities offered by a hydrogen driven car. And just as importantly, BMW is helping to stimulate the demand for a workable hydrogen infrastructure---that is---building hydrogen filling stations for your car and mine. This will one day make hydrogen for cars readily available and affordable.

For those of you looking just for the “specs” of the BMW Hydrogen 7, here is a little taste just to keep you going until you can get your hands on one at your local dealership. It’s being developed from the BMW 760Li , 260 horsepower V12 cylinder engine. Top speed for this baby is 143 mph as it quietly accelerates from 0 to 60 in 9.2 seconds.

One hundred of the Hydrogen 7 models have been build and are being tested in various markets around the world. In fact, the cars have already completed over 1.3 million miles during this testing phase.

Don’t expect to see Captain James T. Kirk from the Starship Enterprise driving one of these any time soon in your neighborhood. But, it sure would be a great promo for BMW and NASA.

Don’t you agree?

Chet Waters is the BMW Specialist. Learn How To Find Your BMW And At The Price You Can Afford. Go To:

http://www.bmwsauctions.com


(ArticlesBase SC #395334)

Can We Really Use Water for Gas?

Water is made from the combination of hydrogen and oxygen and while hydrogen does not produce energy, it carries energy. Much energy is required to get hydrogen from water. Hydrogen has in the past been utilized as a source of compact energy in batteries and fuel cells. Currently, many companies are trying to develop technologies that can exploit the potential that is in hydrogen energy. Many people have been discussing about the power that is in hydrogen. Already, many motorists in the world have discovered that water can be added into the gas and they still travel safely to their destination. This use of water as gas means that hydrogen will be provided only when it is demanded and thus there will be no need of having storage tanks. The environment will not be damaged and the passengers will be a hundred percent safe.

In the using of water as gas, there will be no need to build and place a new engine or try to convert a car so that it can run on water, but can do it on his or her vehicle acquiring the simple items needed for the process from stores. Many people who have used gas for water have claimed that there has been an increased gas mileage by between fifty and three hundred percent. This idea of the water4 Gas has been used in many parts of the world. Since no one can claim to own this technology, it is free to any user.

Water4Gas is a term that has been used by experimenters who want to clarify whether supplemental hydrogen can be effective in reducing gas emissions and whether it is possible for the hydrogen from water to be used in saving fuel. Thirdly, they want to establish whether the use of hydrogen from water can be utilized in the modern vehicles and finally whether this hydrogen reduces emissions as well as fuel consumption in big tracks with heavy loads as they move uphill. From the publications that have been made, it is clear that supplemental hydrogen from water improving the fuel economy as well as reducing emissions is not a new discovery, with many people in the world building their own systems which they have learned from the manuals.

The technology of using water as fuel is very simple with water being split into small particles of oxygen (in this case Brown’s gas or HHO) and hydrogen and the gases then directed into the engine. Hydrogen being added into fuel has been researched by US Department of Transportation, NASA, US Patent office as well as engineers and all concluded that there is an increase in the efficiency of the engine as well as the reduction of emissions that are harmful. In this development, BMW has already announced that it has started the production of BMW Hydrogen 7 which would be the first luxury car that is powered by hydrogen. This car will be powered by 260hp 12-cylinder engine, and accelerates to 62 mph from zero in a span of 9.5 seconds.

(ArticlesBase SC #1049865)

Hydrogen as Fuel

Hydrogen is a gas that is industrially produced from a number of sources but the most common is methane or other fossil fuels. Hydrogen is made up of atoms that include one proton in each of them. Stars are made primarily of hydrogen. The sun is the giant ball that includes hydrogen and helium gases. In the sun’s core the hydrogen atoms combine and thereby form helium atoms that give off radiant energy. This process is known as fusion. This energy is what sustains the life on the earth as well as giving us light and keeps our planet alive. Hydrogen is able to rise in the air since it is lighter than air and that is the main reason why it can not be found on earth and can only be found in compound form with other various elements.

Hydrogen can be combined with oxygen to give water and when combined with carbon it will give out compounds such as coal, methane, as well as petroleum. Hydrogen can be used to power a number of things including vehicles. Hydrogen vehicles use hydrogen as their on board fuel for motive power. The power plants of these vehicles convert the chemical energy of hydrogen to mechanical energy either by combustion or electrochemical conversion in a fuel cell. It is estimated that there are about five hundred vehicles that are hydrogen fuelled with up to sixty hydrogen refueling stations in the United States mostly in California.

Hydrogen can also be an energy carrier where it moves energy in a usable form from one place to another just like electricity works. Hydrogen is not mostly used as an energy carrier at the moment but it has a great potential in the future of doing so. Hydrogen is mostly a by product of other chemical processes. A good difference between hydrogen and electricity is that large quantities of hydrogen can be stored to be used in the future. Hydrogen can also be used in places where electricity can not be used.

Hydrogen is mostly used by industries in refining, processing foods, as well as treating metals. In the United States about nine million metric tons of hydrogen is produces mostly in just three states namely California, Texas and Louisiana. This power is enough to be used in close to eight million homes or power up to thirty million cars. NASA is known as the primary user of hydrogen as an energy fuel and it uses it in the space program. Hydrogen fuel batteries are also able to make electricity which makes them very efficient although expensive to build.

The small fuel batteries are able to power electric vehicles. The large fuel batteries are able to provide electricity in places where there are no power lines. Some places known to have fuel batteries as a source of emergency power especially in hospitals and locations that are in the wilderness. There are also portable fuel cells that are currently being sold in some places to provide longer power to cell phones batteries, laptop computer battery as well as military applications.

(ArticlesBase SC #1301567)

Hypersonic and Supersonic Aviation in 2057 (nasa Award Winning Article)

AEROAGE

En route on the mach 4.7 supersonic jet, I flipped open my iTV , which connected me to the most advanced space network, spacecast. The usual news was being broadcast; “NASCOM, the space people have started mining a new mineral on the moon which is almost identical to Uranium; the Americans have come out with yet another version of the unmanned X-67 which maneuvers itself at mach 25 (courtesy nuclear fusion engines!); the international space station at Mars has discovered a revolutionary microorganism that can be used to fight multiple cancer, a predominant disease on Earth”. Yes, this is the age I’m living in, and when I look back in time at the history of aviation, it leaves me flabbergasted. The history of AVIATION commenced in the 20th century, and a few lucky people who were witness to the first tentative flight of the Wright Brothers, managed to live through these 150 years (through medical advancement of course!) to witness the hypersonic X-67s as well. As Robert Wall once rightly said (towards the end of the 20th century), “So rapid has been the development of aeronautical science that no one can say with safety that an end has been reached or that there is any limit to the ability of man to develop flight at the same pace in the next century.”1

Today, in 2057, man has traveled a long way in the field of civil and space aviation. Advancements that were merely probable 5 decades ago are possible and practical today. All these developments are a consequence of decades of stupendous achievements in space exploration. Half a century ago, landing human astronauts on Mars was within the bounds of possibility. However, today, successful implementation of hypersonic space travel and use of geodesic domes have not only enabled man to experience the surface of Mars, but have also helped him estabilish cyborg colonies there. In addition to the Moon, even Mars is available now, for scientific exploration! The international space station on Mars, in addition to helping scientists in their research work, has facilitated in mitigating the power crisis, which at present is history! After the establishment of The International Lunar Base Station in 2037, man has passed several milestones in setting up a long term colony on the moon. Today, the hotels on the moon go full with increasing number of world, or rather space, citizens going on lunar holidays! A fleet of spaceships taking space tourists high above the atmosphere is now a routine affair. These spaceships are improved versions of Spaceshiptwo, which took Santosh George of India along with other space tourists to as high as 55000 feet, enabling them to experience the excitement of weightlessness and the thunderous deceleration of aerodynamic drag on reentry, in 20072. In addition, disputes between industries, over the acquisition of lunar land for mining have become fairly common.

At the start of the 21st century, the failure of NASA’s Mars lander caused despondency over the failure of its apparently reliable technology and put a question mark over other similar systems3. However, perennial human effort and incessant advancement in hypersonic space travel have led to the innovation of extraordinarily efficient probes which are now meeting the challenge of unearthing secrets about the solar system’s remotest planets. For example: a recent probe that has been sent to Pluto weighs only 570 pounds and stands almost 10 feet tall and 27 feet wide. It is composed of 19 solar panels, an extremely light nano-fission engine, and is controlled by an onboard computer.
The probe functions by harnessing the light energy of the Sun. At present the fission engines are taking it close to the Sun. Once it is sufficiently close, the fission engines would shut down and light energy from the Sun would push the probe towards Pluto with a tremendous amount of force. The probe would then constantly accelerate and reach hypersonic speeds enabling scientists to have a glimpse of the details of Pluto within their lifetimes!

The innovation of the controlled nuclear fusion engine, after the ion and fission engines, in 2031, was by far the most significant advancement in space travel. It enabled spacecraft to reach astonishing speeds. Many decades ago, scientists deciphered that scarce and expensive raw materials exist in abundance on asteroids in our solar system. Today, aeronautical geeks have succeeded in designing manned aircraft, run by fusion engines that travel at supersonic speeds to these asteroids. They are slowed down, when close to the asteroid’s surface and then are made to land by making use of the asteroid’s relatively low gravity. During this rendezvous, with a suitable asteroid, the spacecraft uses abundant solar energy to extract and refine metals like gold and platinum and then the fusion engines power them back to Earth.4

In order to aid space travel and further exploit the hypersonic travel technology, a set of 5 astronomical telescopes, linked by laser, 100 times more powerful than the antiquated Hubble Space Telescope of the 20th century, was deployed in space in 20255 with the aid of space stations and hypersonic jets. Through these telescopes, we have been able to probe deeper into the universe and directly study details of planets in the Milky Way, without having to study the wobbling of stars.

This was just a glimpse of the hypersonic space travel in my age! Now, let’s delve into the advancement of supersonic and hypersonic travel in civil aviation. Civil aviation is governed by practicality and affordability. And when supersonic travel is looked at with these factors in mind, its picture seems somewhat blurred. Although, supersonic and hypersonic travel is easily available for civil aviation, its use is restricted only to the elite class. Four decades ago, hypersonic travel could take you anywhere on the planet in 4 hours6. Today, it can take you in just 2 hours! If the world population is transported from one corner of the globe to the other, then, oh my! The gas guzzling machines and sonic booms, created close to the earth’s surface, would simply attract the ire of environmentalists! Although this is the era of supersonic air travel, there also exists an alternative economic means of transport. No economy can ignore such basic realities. Even today we need economically viable means for mass transportation. So, where speed is not essential, the principles of freight transportation have been applied to mass travel. Non-inflammable gases are used to lift huge airships propelled by turbines7. This technology has made air travel extremely cheap, resulting in a five fold increase in air traffic compared to that of 2007. Although technology is reaching new heights every day, socialism continues to be a speed breaker!

In addition to supersonic and hypersonic aircraft being used in civil aviation, air taxis with tilt rotors have also come into daily use. Not needing a runway, these taxis can easily maneuver around the city. They help me land right in the center of a supermarket! In addition to the tilt rotors, which give them the vertical lift, they also make use of the ground effect that reduces the drag experienced by aircrafts8. This, thus, reduces the fuel consumption of the taxis. Bad news for environmentalists; they have one less topic to debate upon!

As far as the armed forces go, there is no stopping them! Billions were and are being spent to develop aircraft that are capable of traveling at such hypersonic speeds that they escape even the most efficient of all radars owned by their enemies. With the introduction of hypersonic travel, came the highly sensitive infrared radars that were capable of detecting the infrared radiation produced by the engines of these aircraft9.

Technology has constantly moved towards super automation. Way back in 2003, Arlen Rens’, a Lockheed Martin test pilot, describing automation in aviation, said humorously: “Airplanes are now built to carry a pilot and a dog in the cockpit. The pilot’s job is to feed the dog, and the dog’s job is to bite the pilot if he touches anything!”10

Now, the question arises; how did we reach this pinnacle? How did we overcome all the inevitable challenges?

The main challenges were:

a) Financial: the sums invested to develop this technology dwarfed those involved in making possible the Apollo missions to the Moon!

b) Biological: traversing long distances in space meant spending years in space in zero gravity conditions. The human body cannot adapt to stresses greater than 9g and react to situations as fast as machines. The human mind is incapable of making 1 million inferences per second unlike machines!

c) Technological: reaching high levels of automation required integrating man and machine, and the functioning of diverse systems in perfect synchronization over longer distances and timescales with a minimum of maintenance.11

d) Environmental and Ecological: sonic booms produced by supersonic and hypersonic aircrafts were a great threat to mankind, and wildlife12. Even if man could somehow artificially adapt his hearing sensibilities to sonic booms, he could possibly not dissuade animal activists from protesting against hypersonic travel. Apart from this, supersonic airlines of that age utilized gas guzzling engines, dependant upon dwindling petroleum supplies.

It has truly been a daunting task for man to find an answer to everything through technology. It is spellbinding to know how he prevented technology from reaching a standstill, without betting on speed at the cost of mankind.

It was observed rightly by Thomas Friedman, in 2006, that “the world is getting flat”. Outsourcing and around sourcing were the key to mutual cooperation, advancement, and ameliorating financial crises13 that would have otherwise brought about a pause in aviation technology. The cornerstones of cooperation, laid in the beginning of the 21st century, led to countries coming together to develop hypersonic and supersonic air travel. This has led us all to live in a more cooperative, rather than a competitive world. It was international cooperation that brought about the success of all the space projects since then and led to the establishment of international space stations.

The limiting reagent, in moving further down into space at hypersonic speeds, is the homo sapien! Although such speeds make one experience the tumbling alchemy of Earth and sky, the audacity, and miracle of flight, flying at stresses above 9g, in the Earth’s atmosphere, causes human blood to drain down from the brain, thus, extinguishing vision or even consciousness. In the old gravity suit, pilots would strain against their glottis. This would shut breathing. In the new suits, the pilots are able to flex their body muscles with less force, thus, reducing fatigue. This has been made possible by using “fluid muscles”, as they are called, which are independent of hoses and pressurized air on board, and reacts immediately to high g’s. Besides this, suits have designed in such a way, that pilots can communicate with each other even while traveling at such hypersonic speeds14.

As far as space travel is concerned, man’s shortcomings, both mental and physical, have been overcome by integrating him with machines. As Alwin Toffler predicted about 8 decades ago, the astronaut has become “an integral part of an ongoing micro-ecological process whirling through the vastnesses of space”15. What Theodore Gordon once said has come true. We have found that it would indeed be simpler “to provide life support in the form of machines that plug into the astronaut”. In accordance with his vision, an astronaut is “fed intravenously using a liquid food compactly stored in remote pressurized tank”. And “direct processing of body liquid wastes and conversion to water (is) accomplished by a new type of artificial kidney built in as part of the spaceship”16. Five decades ago, Professor Kevin Warwick, was able to connect his nervous system to his wife’s nervous system through a computer. Looking at that development, it is not hard to believe that today the human brain is directly connected to the computer, controlling his spacecraft. Thus, his mind is able to run as fast as a computer and in turn the computer gets a brain to think. Thus, what can be seen is that, the astronaut is no longer a separate entity monitoring the aircraft; he is in fact a part of the whole process.

If one divides human existence into three phases, then I would say that the first phase extends from the birth of humans till the year 1920. The second phase covers the time from 1921 to 2000 and we are at present in the third phase. This can be clearly explained by seeing the advancements that took place during these three phases. During the third phase mankind has moved so fast that from Earthlings we have started becoming Marslings! The technology that made all this probability a possibility would make a 20th century dweller dumbstruck! What humans did was that they teraformed Mars and tailored it to their requirements. The first thing that was required was to heat up the exceedingly cold atmosphere. The toxic pollution on Earth served as a medicine for Mars. Pollution creating machines were dropped on Mars whose work was to suck up a mixture of dust and atmosphere and process them into greenhouse chemicals. These chemicals trapped the heat radiated by the Sun and heated the surface and atmosphere of Mars. Once Mars was warm enough, plants and trees were grown in geodesic domes, which in turn increased the oxygen content of the atmosphere, making human existence possible17. This led to the establishment of an Earth colony on Mars which in turn gave birth to the Mars space station. The future now, is thus, to further the use of this technology and make the whole of Mars a human colony.

The technology developed for scramjets to attain hypersonic speeds, brought out a solution to the fossil fuel crises. Decades ago, rocket engines used hydrogen as well as liquid oxygen. The weight marred their performance and efficiency. A scramjet carries only hydrogen and uses oxygen from the atmosphere instead. Thus, it turns out to be lighter and more efficient18. Moreover, it also proves to be environment friendly. Mark Lewis of the University of Maryland had once said, “Flying an air-breathing rocket system above Mach5; that’s sort of the gleam in everyone’s eye”19. And yes, today we are all witness to the result of that vision. Scramjets have made hypersonic travel in the civil sector possible and to an extent, environment friendly as well. They fly at hypersonic speeds only high above the Earth and thus avoid the ill-effects of a sonic boom, protecting animals as well as mankind. In addition to the scramjets, the ion, nuclear fission, and nuclear fusion engines are also an answer to the dwindling fossil fuel resources, since they efficiently use materials that are available in abundance on the Earth, Moon, and Mars. Besides this, scientists, with the aid of nanotechnology, are trying to devise methods to manipulate abundantly available elements at the atomic level and give them fossil fuel properties.

The problem of inventing a lightweight material that can endure the prolonged high temperatures of the flight engines, plus the heat of the air friction against the wings20, was taken care of by nanotechnology. By manipulating materials at the nanoscale, scientists were able to develop in 2020 a nano-aerogel from carbon which has excellent thermal properties. This material is used to insulate hypersonic aircrafts, which in turn are made up of sheets of carbon nanotubes and nanofibres that are 60 times tougher than steel and much lighter than graphite.

For all the above advancements to take place a perennial desire to achieve something better was required. In the words of a Pelican program manager, Blaine Rawdon: “From our perspective, anything that’s already flying is history.”21

From the very beginning of space exploration, most people have always thought it to be an extravagant luxury, affordable only by the superpowers, and only justifiable by them at times when questions of global prestige, between the competing systems of capitalism and communalism, were involved22. However, it has been practically shown that on an average, every dollar spent on the space program and/or aviation industry, results in 7 dollars paid back to the economy23. A list of spin-offs from space technology can be as varied as it is long.

The most significant of all spin offs was the result of the need for smaller and more powerful computers, which provided an incentive for the development of microchips. Development of rescue blankets, CCD chip technology, virtual reality systems, advanced keyboards, etc. are all a consequence of space technology. If these things seem vague to some people, they would be astonished to know how space technology has extended its wings to everyday articles like wheelchairs, school buses, batteries, television screens, home security systems, medicines, etc24. Besides this, the modern designs of hypersonic aircraft are the result of research carried out for spacecraft designs over the years. Thus, in some way or the other, we all owe our modern comforts to space technology.

Our forefather’s of the 1960s knew that they were witnessing some of space exploration’s “game changing events”25! With our present and near future focussed on Mars, our children may experience the same extraordinary odysseys. Today, we are on Mars and the Moon; tomorrow we might be on one of Jupiter’s moons or even farther. The speed of sound has long been surpassed, and now man’s mission is to approach the speed of light! This may seem like an impossible dream but we must remember that powered flight were seemed impossible when the Wright Brothers set out with their bamboo and canvas contraption to the sand dunes of Kitty Hawk almost one and a half century ago!

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Notes

1 Robert Wall, A History of Airliners (Burlington Books: London 1980, rpt 1989) p 238.

2 Hindustan Times, New Delhi, March 15, 2007, p 1. “the Richard-Branson owned Virgin Galactic company that hopes to begin a new era in tourism in less than two years.

Apart from George, two US-based Indian Americans have also signed up for the two-hour flight, Louela Faria-Jones of Virgin Galactic told Hindustan Times from London. SpaceShipOne, a prototype of the space vehicle, flew to space three times in 2004, she said. George will fly on board the SpaceShipTwo, which has large windows, reclining seats, cabins the size of a Falcon 900 executive jet and wings approximately the size of a Boeing 757. It will carry six passengers and two pilots, Faria Jones said.

3 David Owen, Into Outer Space (Burlington Books: London 2000) p 135

4 Ibid, p138

5 Space: Episodes 3 and 4, VCD, B.B.C., 2001

6 Michael Klesius, “Wings of Change”, National Geographic (National Geographic Society: Washington DC, December 2003), p 32

7 Wall, A History of Airliners, p 251

8 Klesius, “Wings of Change”, National Geographic December 2003, p 25, 29

9 My own assessment

10 Klesius, “Wings of Change”, National Geographic December 2003, p 13

11 Owen, Into Outer Space, p 137

12 Wall, A History of Airliners, p 238

13 Thomas L. Friedman, The World is Flat (Penguin Books: London, 2005)

14 Klesius, “Wings of Change”, National Geographic December 2003, p 20,21

15 Alvin Toffler, Future Shock (Pan Books: London, 1971) p 196

16 Ibid, p 196

17 Space: Episodes 5 and 6, VCD, B.B.C., 2001

18 Klesius, “Wings of Change”, National Geographic December 2003, p 32

19 Ibid, p 32

20 Ibid, p 32

21 Ibid, p 29

22 Owen, Into Outer Space, p 128

23 Ibid, p 128

24 Ibid, p 129

25 Jeffrey Kluger, “Nasa’s Plan for a Lunar Comeback Gets a Big Boost”, Time (Time Asia: Hong Kong, March 19, 2007), p 36.

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Seismic Energy Dissipation Devices

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