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Stan’s Legacy

Steve

1,613 posts · 384 more in threads this archive does not carry · writing between Dec 2007 and Dec 2025

An identity on IonizationX as it was harvested, not an account on this site. Nobody here has claimed it, and nothing connects it to a person by name.

Herman Anderson

#16 · date not recorded

Or...
Neutrons Come from:
Medium neutron sources
Bremssstrahlung from Electron Accelerators / Photofission. Energetic electrons when slowed down rapidly in a heavy target emit intense gamma radiation during the deceleration process. This is known as Bremsstrahlung or braking radiation. The interaction of the gamma radiation with the target produces neutrons via the (γ,n) reaction, or the (γ,fission) reaction when a fissile target is used. e-→Pb → γ→ Pb →(γ,n) and (γ,fission). The Bremsstrahlung γ energy exceeds the binding energy of the “last” neutron in the target. A source strength of 1013 neutrons/second produced in short (i.e. < 5 μs) pulses can be readily realised.
Dense plasme focus. The dense plasma focus (DPF) is a device that is known as an efficient source of neutrons from fusion reactions. Mechanism of dense plasma focus (DPF) is based on nuclear fusion of short-lived plasma of deuterium and/or tritium. This device produces a short-lived plasma by electromagnetic compression and acceleration that is called a pinch. This plasma is during the pinch hot and dense enough to cause nuclear fusion and the emission of neutrons.
Light ion accelerators. Neutrons can be also produced by particle accelerators using targets of deuterium, tritium, lithium, beryllium, and other low-Z materials. In this case the target must be bombarded with accelerated hydrogen (H), deuterium (D), or tritium (T) nuclei.

Herman Anderson

#15 · date not recorded

Termal neutron capturing during electrolysis.

Potassium hydroxy mol has 20 neutron and 19 electrons and 19 protons.

Herman Anderson

#14 · date not recorded

This suggests that a few decimeters of water is pretty efficient at moderating fast neutrons down to room temperature, but a few meters are required to completely convert thermal neutrons into gamma rays due to capture on hydrogen (energy 2 MeV). A few meters of water is pretty efficient at turning gamma rays into heat.

Herman Anderson

#13 · date not recorded

Neutron moderator
In nuclear engineering, a neutron moderator is a medium that reduces the speed of fast neutrons, thereby turning them into thermal neutrons capable of sustaining a nuclear chain reaction involving uranium-235 or a similar fissile nuclide.

Commonly used moderators include regular (light) water (roughly 75% of the world's reactors)

Herman Anderson

#12 · date not recorded

When hydrogen loses its electron, the following cations can be formed:

Hydron: general name referring to the positive ion of any hydrogen isotope (H+)
Proton: 1H+ (i.e. the cation of protium)
Deuteron: 2H+, D+
Triton: 3H+, T+
In addition, the ions produced by the reaction of these cations with water as well as their hydrates are called hydrogen ions:

Hydronium ion: H3O+
Zundel cation: H5O2+ (named for Georg Zundel)
Eigen cation: H9O4+ (named for Manfred Eigen)
Zundel cations and Eigen cations play an important role in proton diffusion according to the Grotthuss mechanism.

Herman Anderson

#11 · date not recorded

Deuterium is a hydrogen atom with an extra neutron

Herman Anderson

#10 · date not recorded

Neutron Madness
Isotopes are atoms of elements with different numbers of neutrons We have already learned that ions are atoms that are either missing or have extra electrons. Let's say an atom is missing a neutron or has an extra neutron. That type of atom is called an isotope. An atom is still the same element if it is missing an electron. The same goes for isotopes. They are still the same element. They are just a little different from every other atom of the same element.

For example, there are a lot of carbon (C) atoms in the Universe. The normal ones are carbon-12. Those atoms have 6 neutrons. There are a few straggler atoms that don't have 6. Those odd ones may have 7 or even 8 neutrons. As you learn more about chemistry, you will probably hear about carbon-14. Carbon-14 actually has 8 neutrons (2 extra). C-14 is considered an isotope of the element carbon.
Messing with the Mass
If you have looked at a periodic table, you may have noticed that the atomic mass of an element is rarely an even number. That happens because of the isotopes. If you are an atom with an extra electron, it's no big deal. Electrons don't have much of a mass when compared to a neutron or proton.

Many atoms of the same element have different atomic masses Atomic masses are calculated by figuring out the amounts of each type of atom and isotope there are in the Universe. For carbon, there are a lot of C-12, a couple of C-13, and a few C-14 atoms. When you average out all of the masses, you get a number that is a little bit higher than 12 (the weight of a C-12 atom). The average atomic mass for the element is actually 12.011. Since you never really know which carbon atom you are using in calculations, you should use the average mass of an atom.

Bromine (Br), at atomic number 35, has a greater variety of isotopes. The atomic mass of bromine (Br) is 79.90. There are two main isotopes at 79 and 81, which average out to the 79.90amu value. The 79 has 44 neutrons and the 81 has 46 neutrons. While it won't change the average atomic mass, scientists have made bromine isotopes with masses from 68 to 97. It's all about the number of neutrons. As you move to higher atomic numbers in the periodic table, you will probably find even more isotopes for each element.
Returning to Normal
If we look at the C-14 atom one more time, we find that C-14 does not last forever. There is a time when it loses its extra neutrons and becomes C-12. The loss of those neutrons is called radioactive decay. That decay happens regularly like a clock. For carbon, the decay happens in a few thousand years (5,730 years). Some elements take longer, and others have a decay that happens over a period of minutes. Archeologists are able to use their knowledge of radioactive decay when they need to know the date of an object they dug up. C-14 locked in an object from several thousand years ago will decay at a certain rate. With their knowledge of chemistry, archeologists can measure how many thousands of years old an object is. This process is called carbon dating

Herman Anderson

#9 · date not recorded

 
 Chem4kids.com Home LinkChem4kids.com Sections

Neither Here nor There
Different numbers of neutrons in the nucleus can create isotopes Neutrons are the particles in an atom that have a neutral charge. They aren't positive like protons. They aren't negative like electrons. But don't start thinking that they aren't important. Every piece of an atom has huge importance to the way the atom acts and behaves. Neutrons are no exception.

So, if an atom has equal numbers of electrons and protons, the charges cancel each other out and the atom has a neutral charge. You could add a thousand neutrons into the mix and the charge would not change. However, if you add a thousand neutrons, you will be creating one super-radioactive atom. Neutrons play a major role in the mass and radioactive properties of atoms. You may have read the page on isotopes. Isotopes are created when you change the normal number of neutrons in an atom.
Inside the Nucleus
Radioactive decay releases a neutron You know that neutrons are found in the nucleus of an atom. Under normal conditions, protons and neutrons stick together in the nucleus. During radioactive decay, they may be knocked out of there. Neutron numbers are able to change the mass of atoms, because they weigh about as much as a proton and electron together. If there are many atoms of an element that are isotopes, the average atomic mass for that element will change. We have spoken about carbon (C) having an average mass of 12.01. It's not much different than you would expect from an atom with 6 protons and 6 neutrons. The number of carbon isotopes doesn't change the atomic mass very much. As you move higher in the periodic table, you will find elements with many more isotopes.
One Special Element
Did we say that all atoms have neutrons? Oops. All elements have atoms with neutrons except for one. A normal hydrogen (H) atom does not have any neutrons in its tiny nucleus. That tiny little atom (the tiniest of all) has only one electron and one proton. You can take away the electron and make an ion, but you can't take away any neutrons. Hydrogen's special structure becomes very important when you learn how hydrogen interacts with other elements in the periodic table. If you learn about nuclear fusion you will learn about deuterium and tritium. Deuterium is a hydrogen atom with an extra neutron and tritium has two extra. You won't find much deuterium in your backyard. It's mainly in oceans. Don't worry if you do find it, it's not radioactive. It's a stable isotope.

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Stan used ammonia?

#29 · date not recorded

Hello Steve,
Sorry for delay of reply bt I'm working hard on water system, from no more days you can see with your eyes... as written in EF Meyer or government  have written wrong nformation inside patents for preserve that "SIMPLE" technology.. My italian friend have see functional water cars from italian government but they ask .. no ready for use now maybe from 20years.. My friend collaborate with me to that project but after see that have stopped all.. I don't know really why.. but explaination is I have lost 2 years and is all ready . Personally I think that governement have old water ca that don't run completely to water or maybe my friend have see meyer car  ;) . In all cases I have continued to working on that project and I have found solution, true solution not dream. And can be ready NOW!! We can't continue to live in an world consumed from wars and pollution. Green energy is need now not from 20 years. For that I have decided to modify an car, transform that to water gas  and present the video  to the world .. Thanks for read me...

Hi Tutanka,

Its nice to see other people sharing the same passion as I have.... :D   
And you are right about trying to make the world a better place.
I wish that the world leaders would thought the same.....
Keep up the good work and at the end, i am sure that we will succeed!

Steve

Stan used ammonia?

#24 · date not recorded

Here is a doc about what sunlight is doing towards H and O.
It also explains a lot about ammonia.

Its a very nice doc to read!!!!!


Steve

Stan used ammonia?

#23 · date not recorded

Steve,
As you know I can't ask clear.. As written on EF forum I have found right chemical formula used from Meyer.. using air and water only. I'm working on prototype using an car and apply modifications on that. I need max 3 months for obtain complete working prototype. You can or not believe in me.. for  me important don't are moneys but only have reached the illumination.  Regards

Ok, Tutanka.
Well, keep us updated on your developments as much as you like to share.
You will have many ears here who want to listen to you....
If you need help, just let me know.

Steve

Stan used ammonia?

#21 · date not recorded

Meyer think simple and is because anything have understand the principle. Peoples think more difficult, do not think with your mind and is more simple copy that create.. For that in the world are presents 98% of customers and 2% of creators..

Tutanka,

Can you tell us a bit about your ionizing system?
Like, what kind of electrodes and how much volt you are using?

regards
Steve

Stan used ammonia?

#6 · date not recorded

The theory behind all this is that hydrogen that is released by help of the electrolysis proces is capable of bonding with other atoms.
 
Nitrogen atoms have five electrons in their outer ring, but they have room for eight electrons there.
Because that nitrogen atom is an electron negative atom and the hydrogen is a positive atom, they can bond.
you will get NH3 = ammonia......yes sir.

So, now you have 2 atoms. One who is big and can use extra electrons and who is chasing towards those extra electrons and one small hydrogen atom with his own little electron.
Guess who wins the battle?

Stan explained this proces very precise in his video.
The nitrogen atom acts the same as an oxygen atom. Both want extra electrons.
That poor little Hydrogen atom........Some of it will go towards the oxygen atom and become water and some will become ammonia or even something else...

You are right. We dont know what kind of gass we will have, if we dont test the gas in a lab.

All we can do is make an ionizer for air and see if the engine reacts of the ionized air. If it does, then its time to go to a lab for some tests.

Steve








Stan used ammonia?

#3 · date not recorded

Ammonia Fuel
Yes, we are talking about anhydrous ammonia (NH3) as a fuel and it's the same stuff that farmers inject into the ground as fertilizer.  Because it does not occur naturally in its pure form on our planet and must be manufactured, we can consider it an energy carrier rather than an energy source.  Be that as it may, we will consider anhydrous ammonia as a fuel.

Some might think that ethanol and biodiesel are the ultimate green fuels.  However, there is no way to grow enough biofuel feedstock (typically from corn in the USA) for this fuel to displace petroleum to any great extent.  As crops are grown for fuel rather than food, this diversion of resources places upward pressure on the price of food.   Please refer to an interesting CBC article about agricultural prices  as well as the OECD report entitled "BIOFUELS: IS THE CURE WORSE THAN THE DISEASE?" found the Food and Agriculture Organization of the United Nations web site:

The OECD has said biofuels may "offer a cure that is worse than the disease they are seeking to heal".

"The current push to expand the use of biofuels is creating unsustainable tension that will disrupt world markets without generating significant environmental benefits."

"When such impacts as soil acidification, fertilizer use, biodiversity loss and toxicity of agricultural pesticides are taken into account, the overall environmental impacts of ethanol and biodiesel can very easily exceed those of petrol and mineral diesel."

The holy grail of "green" fuels is hydrogen, an element that is also very scarce in its pure form on earth.  Green in the sense that it is produced from renewable sources, the most common being the electrolytic cracking of water.  Hydrogen may also be produced from "brown" sources such as the refining of petroleum.  Brown in the sense that byproducts of this production are greenhouse gases and other forms of pollution.  Almost all of the world's H2 is produced by steam reforming of natural gas, or as by-products of petroleum refining. Very little is currently produced by electrolysis although there is no technical reason that it can't be produced in large-scale wind farms in the US Midwest or even Patagonia.

Why would anyone consider using anhydrous ammonia rather than hydrogen?  Hydrogen, after all, contains more LHV (lower heating value) energy than ammonia (51,500 BTU/lb vs 7,987 BTU/lb or 119.93 kJ/g vs 18.577 kJ/g) on a weight basis.  However, on a volume basis ammonia is a much better hydrogen carrier than even liquefied hydrogen.  The energy density of liquefied hydrogen is 8,491 kJ/litre compared to ammonia's 11,308 kJ/litre.   Although ammonia contains 17.65% of hydrogen by weight, the fact that there are 3 hydrogen atoms attached to a single nitrogen atom allows ammonia to contain about 48% more hydrogen by volume than even liquefied hydrogen.  That is to say, a cubic meter of liquid hydrogen contains 71 kg of hydrogen compared with 105 kg for liquid anhydrous ammonia.

Hydrogen's physical properties make it very difficult to handle.  Because it is such a low density gas, very high pressures must be used to transport compressed hydrogen gas and this results in very low energy densities:

48,900 Btu/ft3 gas @ 3,000 psig & 60 ?F
121,000 Btu/ft3 gas @ 10,000 psig & 60 ?F
in metric, this is:

1,825 kJ/litre gas @ 200 barg & 15 ?C
4,500 kJ/litre gas @ 690 barg & 15 ?C
The low energy density of compressed hydrogen gas makes storage and transport very expensive.  Transporting compressed hydrogen gas any significant distance by truck can consume more energy in diesel fuel than what is contained in hydrogen.  Liquefied hydrogen is obviously more energy dense than compressed hydrogen gas but a significant amount of energy must be expended to liquefy hydrogen and keep it refrigerated because its boiling point is ?423 ?F (?253 ?C).  Liquefaction requires about 30% of the energy content of liquid hydrogen while compression to 800 bar requires about 10-15% of energy carried by the hydrogen.

Hydrogen's molecules are very small and difficult to contain.  Hydrogen will slowly leak out from hoses and its rate of leakage is much higher than larger molecule gases like ammonia and propane.  Hydrogen also causes embrittlement in metals which requires periodic replacement of metallic tubing, valves, and tanks.

Hydrogen is typically transported as a compressed gas and a 40 ton truck that can carry 26 tons of gasoline can only carry about 400 kg (0.4 tonnes) of compressed hydrogen due to the weight of the high pressure hydrogen tanks.

Ammonia, in comparison, stores and handles very much like LPG.  Its boiling point is -33.35 ?C (-28.03 ?F).  Propane, the main constituent of LPG, has a boiling point of -42.07 ?C (-43.73 ?F).  On a hot day, a tank of NH3 at 50?C (122?F) will have a pressure of 2032 kPa (295 psi) compared with propane at 1729 kPa (251 psi) so it is important to keep these fuels out of the sun.

The design pressure of both anhydrous ammonia and propane tanks (with a corrosion allowance) is 250 psi which corresponds to a temperature of 44?C (111?F) for ammonia and 47?C (116?F) for propane.  If these tanks were designed to the 312 psi (propane tank without a corrosion allowance), that corresponds to a temperature of 57?C (135?F) for ammonia and 60?C (140?F) for propane.

As for fuel properties, let's compare some relevant fuels:

Property Ammonia Hydrogen Propane CNG / Methane Ethanol Gasoline Diesel
Energy Density LHV (BTU/gal) 40,571 30,459 @ -423?F 84,500 19,800 @ 2400 psi   116,090 ~129,050
Energy Density LHV (MJ/litre) 14.1 8.4   23.3 21.1 29.8 35.8
Minimum Ignition Energy (mJ) 680 0.011 - 0.017   0.28 - 0.3 n/a 0.8 n/a
Octane Number 130+ 130+ 104 105 -  122   87 - 93 N/A
Auto Ignition Temperature (?C) 630 500   580 363 246 - 280 210
Flash Point (?C) 11 -253   -188 13 - 17 <-40 >62
Latent heat of vaporization (BTU/gal) 3356 N/A 775 N/A   ~900 ~710
Boiling Point (?C) -33 -253   -162 78 126 287
Critical Temparature (?C) 132 -240   -83 -- -- --

Using anhydrous ammonia as an engine fuel is not a blue-sky concept.  There are already three companies in the business of building NH3-fueled engines or NH3 engine conversions: Hydrogen Engine Center, Hydrofuel Inc., and NH3CAR.

For more information, please visit the following links:

http://www.nhthree.com/ (Coming soon!)

Ammonia Fuel Network

Iowa Energy Center's Biomass Energy CONversion facility (BECON) Ammonia Site

Raso Enterprises' Ammonia Fuel Forum

Potential Roles of Ammonia in a Hydrogen Economy

The Ammonia Economy

Ammonia: Key to US Energy Independence

AIR LIQUIDE's Gas Encyclopaedia - Ammonia

R.M. Technologies Technical Information

Stan used ammonia?

#2 · date not recorded

Addiction to imported petroleum carries with it huge economic, environmental and national security risks for the United States and other developed countries. The search for a domestically produced, economical and environmentally friendly fuel has led to one acceptable solution, anhydrous ammonia. Also known as "the other hydrogen", ammonia is the closest thing to a perfect transportation fuel.
Ammonia is an ultra-clean, energy-dense alternative liquid fuel. Along with hydrogen, ammonia is the only fuel that does not produce any greenhouse gases (GHG) on combustion.

Hydrogen combustion: 2H2 + O2 > 2H2O (water vapor)

Ammonia combustion: 4NH3 + 3O2 >  2N2 + 6H2O (nitrogen and water vapor)

Also, ammonia is...

Practical

Ammonia (anhydrous, NH3) is 18% hydrogen by weight
Ammonia is a liquid fuel at ambient temperatures and moderate pressures (~125 psi)
Ammonia has 52% of the energy density of gasoline, and is over 50% more energy dense per gallon than cryogenic liquid hydrogen
It can be used directly to drive fuel cells, or directly in internal combustion engines (ICE), it can also be used in combustion turbines
Conversions of gasoline and diesel ICEs to run on ammonia are relatively straightforward
Ammonia is easy to store and deliver in large quantities
Ammonia represents a sustainable, carbon-free fuel for back-up and peaker capacity generation
Ammonia fuel can help free us from dependence on imported oil
Available

Current worldwide annual production of ammonia is ~130 million tons, primarily from natural gas and coal; China is the #1 producer at 30 million tons annually
~ 20 million tons of NH3 and NH3-based fertilizers are consumed annually in the US as fertilizer (equivalent in energy to ~3.5 billion gallons of gasoline)
A storage and delivery infrastructure of pipelines, barges, rail and truck already exists for ammonia, with 3000 miles of pipeline in the US heartland; retail ammonia outlets exist in practically every state, 800 outlets in Iowa alone
Ammonia can be produced cleanly from coal and natural gas with carbon sequestration, and also from biomass, renewable energy sources and nuclear power, using nitrogen from the air
Ammonia can also be recovered from agricultural animal waste
Ammonia is also produced naturally in legumes by nitrogenase bacteria
Ammonia is covered as an alternative fuel under the Energy Policy Act of 1992, so ammonia vehicles qualify for fleet sale requirements
Low/Stable Cost

Ammonia is comparable to or lower in price than gasoline on an equal energy basis
Ammonia made using renewable or nuclear source electricity will be more stable in price and will grow increasingly cheaper per Btu versus fossil based fuels
Environmentally Friendly

Ammonia contains no carbon, so releases no GHGs on combustion; also any NOx is easily neutralized
In accident scenarios, ammonia is not flammable and is lighter than air so will dissipate into the atmosphere
Ammonia is not itself a GHG in the atmosphere
Ammonia will not damage the ozone layer
Anhydrous ammonia itself is used as the active chemical reactant in NOx reduction, and CO2 and SO2 capture
 
 
Properties of Selected Fuels in their Liquid State (sorted by H2 Density)

Stan used ammonia?

#1 · date not recorded

The theory is that the ionized nitrogen of the ambient is bounding with the hydrogen from our electrolysis proces.

Here some info about the usage of ammonia.

Steve