I, Hagop Misirian, citizen of the United States of America, residing in the city of Santa Ana, Calif., have invented a new and useful one-line diagram (
The method for production of carbon dioxide to be used in this mass production has been filed as a separate patent (Application title “METHOD OF PRODUCTION OF CARBON DIOXIDE (CO2) USING LIME TO LIMESTONE CHEMICAL REACTION” application Ser. No. 15/483,377) by me (Hagop Misirian).
In order to utilize the common knowledge formula for creation of methanol CO2+3H2→CH3OH+H2O (for each mole of carbon dioxide, three moles of hydrogen needed to produce one equivalent unit of methanol); the one-line diagram shall be followed per
Loading carbon dioxide (CO2) into the supply tank, Item-1 in
The mixing chamber apparatus (Item-3 in
Prior loading the gases in to the mixing chamber, the inside air shall be replaced with carbon dioxide (CO2) and hydrogen (H2). Item-5 in
When air removal is complete, Item-8, air drainage valve in
Prior reloading a mixing chamber, following shall be completed. Item-3 in
From the mixing chamber, the discharged substance will move to Item-4 in
Next, Item-6 in
Calculation for a length of the pipe for a carbon dioxide (CO2) and a hydrogen (H2) of mixing apparatus under a same temperature and pressure.
First, define volume for the carbon dioxide (CO2). Used piping in this case is 80 schedule stainless steel for the two gases. Pipe diameter shall be the same for two gases. Due to the reason that mixing apparatus valve opens and closes about every fifteen to thirty seconds, valve operational life expectancy is an issue and smaller diameter valves will last longer. Next, define a diameter and length for the carbon dioxide (CO2) and volume. For an optimum mixing result, a length for the carbon dioxide (CO2) pipe may have to be same as inside diameter of the chosen pipe. In this stage, it is possible to calculate volume for the carbon dioxide (CO2). Per the following formula; CO2+3H2→CH3OH+H2O
for each mole of carbon dioxide and three mules of hydrogen; calculate the moles of carbon dioxide (COD) in this volume under same pressure and temperature.
By applying the Ideal Gas Law and then the Universal Gas Law (the volume of the gas is directly proportional to the number of molecules of gas it temperature and pressure are kept constant).
PV=nRT subsequently n=PV/RT
where
P is pressure
V is volume
n is the number of moles
R is the universal gas constant
T is temperature
After calculating number of molecules (n) in carbon dioxide (CO2), subsequently (n) for the hydrogen (H2) is three times more.
When (n) is plugged in for hydrogen (H2); V=nRT/P, (V) volume for hydrogen (H2) and length for the hydrogen (H2) pipe can be calculated.
Item-1 and Item-2, supply tanks for hydrogen and carbon dioxide gas. They are 14-inch diameter, 80 schedule stainless steel pipes, and are 25 feet high, wrapped around with electrical heating coils.
Item-3, mixing chamber, where the reaction between hydrogen gas and carbon dioxide gas takes place
Item-4 depicts the cooling tower
Item-5 depicts the pressure reduction tank
Item-6 depicts a separation tank for methanol and water with operating temperature of −2° C.
Item-7 depicts two separate storage tanks for methanol and water
Item-1 depicts a valve for the CO2 supply line
Item-2 depicts an air drainage valve only
Item-3 depicts an 80 schedule, 6-inch diameter, 2-feet long stainless-steel pipe
Item-4 depicts a valve from the CO2 tank at the time of the replacement of air with CO2
Item-5 depicts a 6-inch diameter gate valve
Item-6 depicts a loading valve for hydrogen
Item-7 depicts an 80 schedule, 6-inch diameter, 6.02-feet long stainless-steel pipe
Item-8 depicts the air drainage valve to replace air with hydrogen
Item-9 depicts the drainage valve for the newly created products (methanol and water) of the chemical reaction
This method does not need a catalyst and does not create leftover byproducts.
Using this fuel for internal combustion engines will have zero impact to the environment. It works as follows: Assuming hydrogen is created via electrolysis (water and electricity) and carbon dioxide (CO2) is removed from the air. At the time of fuel combustion, carbon dioxide (CO2) will be released back to the atmosphere. Hydrogen (H2) is created by electrolysis and oxygen is released to the atmosphere. At the time of the fuel usage, oxygen will be used for combustion, creating zero impact to the environment.
Optimum pressure and temperature for mixing hydrogen and carbon dioxide gases are unknown at this time. Additionally, for the mixing chamber apparatus, optimum geometric dimensions are unknown.
Number | Name | Date | Kind |
---|---|---|---|
5631302 | Konig | May 1997 | A |
6875794 | Seiki | Apr 2005 | B2 |
Number | Date | Country | |
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20180297921 A1 | Oct 2018 | US |