WHAT IS CLAIMED IS:
1. A portable hydrogen supplemental system for supplying hydrogen gas to an internal combustion engine comprising:
a housing unit;
a fuel cell mounted inside the housing unit that converts water into hydrogen and oxygen gas;
a water tank mounted inside the housing unit and positioned to supply water to the fuel cell;
a power supply for supplying electrical power to the fuel cell;
an engine sensor for detecting operation of the internal combustion engine and;
an operator control switch,
wherein the water tank includes at least one tank divider which separates the water tank into at least two sections that are both filled with water when water is placed into the water tank;
wherein the water tank includes at least first and second gas collection cavities at a top portion thereof for collecting hydrogen and oxygen gas respectively, the gas collection cavities being formed by a top surface of the water tank, the tank divider and the water level in the water tank;
wherein each gas collection cavity includes a fitting at the top thereof for distributing one of the hydrogen and oxygen gas out of the water tank;
wherein the power supply supplies electrical power to the fuel cell when the engine sensor detects that the internal combustion engine is in operation and the operator control switch is activated; wherein the fuel cell, when supplied with electrical power, produces hydrogen and oxygen gases from the water being supplied to the fuel cell, said hydrogen and oxygen gases being directed through the water tank into the respective gas collection cavities at the top thereof for proper distribution of the gases such that the hydrogen gas is supplied to the internal combustion engine for combustion therein;
wherein said fuel cell is a proton exchange membrane (PEM) electrolyzer; and
wherein said PEM electrolyzer includes:
a plurality of layers which include external electrodes disposed opposite to each other, one of which being an anode and the other of being a cathode, electrocatalysts disposed respectively on the anode and the cathode, and a membrane disposed between the electrocatalysts, and
an external circuit which applies the electrical power to the anode and the cathode in a manner such that electricity power in the form of electrons flow from the anode, along the external circuit, to the cathode and protons are caused to flow through the membrane from the anode to the cathode.
2. A portable hydrogen supplemental system according to claim 1 , further comprising:
a mounting bracket which mounts the portable hydrogen supplemental system to a surface of the vehicle which includes the internal combustion engine.
3. A portable hydrogen supplemental system according to claim 1 , wherein the water tank is positioned above the fuel cell.
4. A portable hydrogen supplemental system according to claim 1 , further comprising:
a control electrical circuit, having a switch, which supplies electrical power to the fuel cell when the engine sensor detects that the internal combustion engine is in operation.
5. A portable hydrogen supplemental system according to claim 1 , wherein said fuel cell comprises:
a plurality of layers, and
wherein the electrical power is applied to opposing layers of said fuel cell in a manner to produce hydrogen and oxygen gases.
6. A method of supplying hydrogen gas to an internal combustion engine comprising:
converting, by a fuel cell mounted inside a housing unit, water into hydrogen and oxygen gas;
supplying, by a water tank mounted inside the housing unit, water to the fuel cell;
detecting, by an engine sensor, operation of the internal combustion engine; supplying, by a power supply, electrical power to the fuel cell upon detecting that the internal combustion engine is in operation and an operator control switch is activated;
producing, by the fuel cell, when supplied with the electrical power, hydrogen and oxygen gases from the water being supplied to the fuel cell, said hydrogen and oxygen gases being directed through the water tank into respective gas collection cavities at the top of the water tank for proper distribution of the gases; and
supplying the hydrogen gas to the internal combustion engine for combustion therein,
wherein the water tank includes at least one tank divider which separates the water tank into at least two sections that are both filled with water when water is placed into the water tank,
wherein each gas collection cavity includes a fitting at the top thereof for distributing one of the hydrogen and oxygen gas out of the water tank,
wherein said fuel cell is a proton exchange membrane (PEM) electrolyzer; and
wherein said PEM electrolyzer includes:
a plurality of layers which include external electrodes disposed opposite to each other, one of which being an anode and the other of being a cathode, electrocatalysts disposed respectively on the anode and the cathode, and a membrane disposed between the electrocatalysts, and
an external circuit which applies the electrical power to the anode and the cathode in a manner such that electricity power in the form of electrons flow from the anode, along the external circuit, to the cathode and protons are caused to flow through the membrane from the anode to the cathode.
7. A method according to claim 6, wherein a mounting bracket mounts the portable hydrogen supplemental system to a surface of the vehicle which includes the internal combustion engine.
8. A method according to claim 6, wherein the water tank is positioned above the fuel cell.
9. A method according to claim 6, wherein a control electrical circuit, having a switch, supplies electrical power to the fuel cell when the engine sensor detects that the internal combustion engine is in operation.
10. A method according to claim 6, wherein said fuel cell comprises: a plurality of layers, and
wherein the electrical power is applied to opposing layers of said fuel cell in a manner to produce hydrogen and oxygen gases.
11. A portable hydrogen supplemental system for supplying hydrogen gas to an internal combustion engine comprising:
a housing unit;
a fuel cell mounted inside the housing unit that converts water into hydrogen and oxygen gas; a water tank mounted inside the housing unit and positioned to supply water to the fuel cell;
a power supply for supplying electrical power to the fuel cell;
an engine sensor for detecting operation of the internal combustion engine and ;
an operator control switch ,
wherein the water tank includes at least one tank divider which separates the water tank into at least two sections that are both filled with water when water is placed into the water tank;
wherein the water tank includes at least first and second gas collection cavities at a top portion thereof for collecting hydrogen and oxygen gas respectively, the gas collection cavities being formed by a top surface of the water tank, the tank divider and the water level in the water tank;
wherein each gas collection cavity includes a fitting at the top thereof for distributing one of the hydrogen and oxygen gas out of the water tank;
wherein the power supply supplies electrical power to the fuel cell when the engine sensor detects that the internal combustion engine is in operation and the operator control switch is activated;
wherein the fuel cell, when supplied with electrical power, produces hydrogen and oxygen gases from the water being supplied to the fuel cell, said hydrogen and oxygen gases being directed through the water tank into the gas collection cavities at the top thereof for proper distribution of the gases such that the hydrogen gas is supplied to the internal combustion engine for combustion therein; wherein the water tank includes first and second dividers provided at opposite ends of the tank to divide the tank into a hydrogen section and an oxygen section; and
wherein each divider is formed along an inner wall of the water tank and extends to a predetermined position from the bottom surface of the water tank such that when water is placed into the water tank, the water tank fills evenly on both sides of each of the dividers.
12. A portable hydrogen supplemental system according to claim 11 , further comprising:
a mounting bracket which mounts the portable hydrogen supplemental system to a surface of the vehicle which includes the internal combustion engine.
13. A portable hydrogen supplemental system according to claim 11 , wherein the water tank is positioned above the fuel cell.
14. A portable hydrogen supplemental system according to claim 11 , further comprising:
a control electrical circuit, having a switch, which supplies electrical power to the fuel cell when the engine sensor detects that the internal combustion engine is in operation.
15. A portable hydrogen supplemental system according to claim 11 , wherein said fuel cell comprises:
a plurality of layers, and wherein the electrical power is applied to opposing layers of said fuel cell in a manner to produce hydrogen and oxygen gases.
16. A portable hydrogen supplemental system according to claim 11 , wherein said the water tank comprises:
a water supply fitting positioned on the underside of the water tank connected to a tube that is connected to water inlet fitting on the fuel cell,
wherein water is supplied to the fuel cell by the tube, and
wherein the fuel cell further includes a hydrogen gas outlet fitting and an oxygen gas outlet fitting which are connected by other tubes to gas inlet fittings on the underside of the water tank.
17. A portable hydrogen supplemental system according to claim 16, wherein during operation of the fuel cell, a small amount of water, hydrogen gas bubbles and oxygen gas bubbles emerge from a hydrogen outlet and an oxygen outlet, respectively, of the fuel cell, and flow into a hydrogen side and an oxygen side of the water tank,
wherein bubbles rise through the water to the upper air cavities formed by the water level in the tank and the tank dividers such that hydrogen and oxygen gases are kept separate from each other in the upper cavities by the dividers, and
wherein as hydrogen gas and oxygen gas fill their respective upper cavities, gases flow out of the upper cavities through a hydrogen fitting and an oxygen fitting.
18. A portable hydrogen supplemental system according to claim 17, wherein the hydrogen and oxygen fittings can each be replaced by a gas coWector which is constructed to contain baffles that serve to prevent water from splashing into or entering the tubes.
19. A portable hydrogen supplemental system according to claim 18, wherein each baffle is configured to extend perpendicularly from an inner surface of the gas collector, and
wherein a first baffle is configured to extend from a portion of the inner surface of the gas collector opposite to another portion of the inner surface of the gas collector from which a second baffle extends.
20. A method of supplying hydrogen gas to an internal combustion engine comprising:
converting, by a fuel cell mounted inside a housing unit, water into hydrogen and oxygen gas;
supplying, by a water tank mounted inside the housing unit, water to the fuel cell;
detecting, by an engine sensor, operation of the internal combustion engine;
supplying, by a power supply, electrical power to the fuel cell upon detecting that the internal combustion engine is in operation and an operator control switch is activated;
producing, by the fuel cell, when supplied with the electrical power, hydrogen and oxygen gases from the water being supplied to the fuel cell, said hydrogen and oxygen gases being directed through the water tank into respective gas collection cavities at the top of the water tank for proper distribution of the gases; and
supplying the hydrogen gas to the internal combustion engine for combustion therein,
wherein the water tank includes at least one tank divider which separates the water tank into at least two sections that are both filled with water when water is placed into the water tank,
wherein each gas collection cavity includes a fitting at the top thereof for distributing one of the hydrogen and oxygen gas out of the water tank,
wherein the water tank includes first and second dividers provided at opposite ends of the tank to divide the tank into a hydrogen section and an oxygen section, and
wherein each divider is formed along an inner wall of the water tank and extends to a predetermined position from the bottom surface of the water tank such that when water is placed into the water tank, the water tank fills evenly on both sides of each of the dividers.
21. A method according to claim 20, wherein a mounting bracket mounts the portable hydrogen supplemental system to a surface of the vehicle which includes the internal combustion engine.
22. A method according to claim 20, wherein the water tank is positioned above the fuel cell.
23. A method according to claim 20, wherein a control electrical circuit, having a switch, supplies electrical power to the fuel cell when the engine sensor detects that the internal combustion engine is in operation.
24. A method according to claim 20, wherein said fuel cell comprises: a plurality of layers, and
wherein the electrical power is applied to opposing layers of said fuel cell in a manner to produce hydrogen and oxygen gases.
25. A method according to claim 20, wherein said the water tank comprises:
a water supply fitting positioned on the underside of the water tank connected to a tube that is connected to water inlet fitting on the fuel cell,
wherein water is supplied to the fuel cell by the tube, and
wherein the fuel cell further includes a hydrogen gas outlet fitting and an oxygen gas outlet fitting which are connected by other tubes to gas inlet fittings on the underside of the water tank.
26. A method according to claim 25, wherein during operation of the fuel cell, a small amount of water, hydrogen gas bubbles and oxygen gas bubbles emerge from a hydrogen outlet and an oxygen outlet, respectively, of the fuel cell, and flow into a hydrogen side and an oxygen side of the water tank, wherein bubbles rise through the water to the upper air cavities formed by the water level in the tank and the tank dividers such that hydrogen and oxygen gases are kept separate from each other in the upper cavities by the dividers, and
wherein as hydrogen gas and oxygen gas fill their respective upper cavities, gases flow out of the upper cavities through a hydrogen fitting and an oxygen fitting.
27. A method according to claim 26, wherein the hydrogen and oxygen fittings can each be replaced by a gas collector which is constructed to contain baffles that serve to prevent water from splashing into or entering the tubes.
28. A method according to claim 27, wherein each baffle is configured to extend perpendicularly from an inner surface of the gas collector, and
wherein a first baffle is configured to extend from a portion of the inner surface of the gas collector opposite to another portion of the inner surface of the gas collector from which a second baffle extends.
29. A portable hydrogen supplemental system for supplying hydrogen gas to an internal combustion engine comprising:
a housing unit;
a fuel cell mounted inside the housing unit that converts water into hydrogen and oxygen gas;
a water tank mounted inside the housing unit and positioned to supply water to the fuel cell;
a power supply for supplying electrical power to the fuel cell; an engine sensor for detecting operation of the internal combustion engine and ;
an operator control switch,
wherein the water tank includes at least one tank divider which separates the water tank into at least two sections that are both filled with water when water is placed into the water tank;
wherein the water tank includes at least first and second gas collection cavities at a top portion thereof for collecting hydrogen and oxygen gas respectively, the gas collection cavities being formed by a top surface of the water tank, the tank divider and the water level in the water tank;
wherein each gas collection cavity includes a fitting at the top thereof for distributing one of the hydrogen and oxygen gas out of the water tank;
wherein the power supply supplies electrical power to the fuel cell when the engine sensor detects that the internal combustion engine is in operation and the operator control switch is activated ;
wherein the fuel cell, when supplied with electrical power, produces hydrogen and oxygen gases from the water being supplied to the fuel cell, said hydrogen and oxygen gases being directed through the water tank into the gas collection cavities at the top thereof for proper distribution of the gases such that the hydrogen gas is supplied to the internal combustion engine for combustion therein; and
wherein the portable hydrogen supplemental system is mounted to a vehicle powered by the internal combustion engine by a mounting bracket which is attached to a surface of the vehicle.
30. A portable hydrogen supplemental system according to claim 29, wherein the mounting bracket has formed therein oblong holes positioned near the corners of the mounting bracket for receiving screws/studs disposed on the undersigned of the housing unit, and
wherein the oblong holes upon receiving the screws/studs disposed on the undersigned of the housing unit allows for the housing unit to be removably attached to the mounting bracket, thereby permitting the portable hydrogen supplemental system to be removed for servicing.
31. A portable hydrogen supplemental system according to claim 29, wherein the water tank is positioned above the fuel cell.
32. A portable hydrogen supplemental system according to claim 29, further comprising:
a control electrical circuit, having a switch, which supplies electrical power to the fuel cell when the engine sensor detects that the internal combustion engine is in operation.
33. A portable hydrogen supplemental system according to claim 29, wherein said fuel cell comprises:
a plurality of layers, and
wherein the electrical power is applied to opposing layers of said fuel cell in a manner to produce hydrogen and oxygen gases.
34. A portable hydrogen supplemental system according to claim 29, wherein said the water tank comprises:
a water supply fitting positioned on the underside of the water tank connected to a tube that is connected to water inlet fitting on the fuel cell,
wherein water is supplied to the fuel cell by the tube, and
wherein the fuel cell further includes a hydrogen gas outlet fitting and an oxygen gas outlet fitting which are connected by other tubes to gas inlet fittings on the underside of the water tank.
35. A portable hydrogen supplemental system according to claim 34, wherein during operation of the fuel cell, a small amount of water, hydrogen gas bubbles and oxygen gas bubbles emerge from a hydrogen outlet and an oxygen outlet, respectively, of the fuel cell, and flow into a hydrogen side and an oxygen side of the water tank,
wherein bubbles rise through the water to the upper air cavities formed by the water level in the tank and the tank dividers such that hydrogen and oxygen gases are kept separate from each other in the upper cavities by the dividers, and
wherein as hydrogen gas and oxygen gas fill their respective upper cavities, gases flow out of the upper cavities through a hydrogen fitting and an oxygen fitting.
36. A portable hydrogen supplemental system according to claim 35, wherein the hydrogen and oxygen fittings can each be replaced by a gas collector which is constructed to contain baffles that serve to prevent water from splashing into or entering the tubes.
37. A portable hydrogen supplemental system according to claim 36, wherein each baffle is configured to extend perpendicularly from an inner surface of the gas collector, and
wherein a first baffle is configured to extend from a portion of the inner surface of the gas collector opposite to another portion of the inner surface of the gas collector from which a second baffle extends.
38. A method of supplying hydrogen gas to an internal combustion engine comprising:
converting, by a fuel cell mounted inside a housing unit, water into hydrogen and oxygen gas;
supplying, by a water tank mounted inside the housing unit, water to the fuel cell;
detecting, by an engine sensor, operation of the internal combustion engine;
supplying, by a power supply, electrical power to the fuel cell upon detecting that the internal combustion engine is in operation and an operator control switch is activated;
producing, by the fuel cell, when supplied with the electrical power, hydrogen and oxygen gases from the water being supplied to the fuel cell, said hydrogen and oxygen gases being directed through the water tank into respective gas collection cavities at the top of the water tank for proper distribution of the gases; and
supplying the hydrogen gas to the internal combustion engine for combustion therein,
wherein the water tank includes at least one tank divider which separates the water tank into at least two sections that are both filled with water when water is placed into the water tank,
wherein each gas collection cavity includes a fitting at the top thereof for distributing one of the hydrogen and oxygen gas out of the water tank,
wherein the portable hydrogen supplemental system is mounted to a vehicle powered by the internal combustion engine by a mounting bracket which is attached to a surface of the vehicle.
39. A method according to claim 38, wherein the mounting bracket has formed therein oblong holes positioned near the corners of the mounting bracket for receiving screws/studs disposed on the undersigned of the housing unit, and wherein the oblong holes upon receiving the screws/studs disposed on the undersigned of the housing unit allows for the housing unit to be removably attached to the mounting bracket, thereby permitting the portable hydrogen supplemental system to be removed for servicing.
40. A method according to claim 38, wherein the water tank is positioned above the fuel cell.
41. A method according to claim 38, wherein a control electrical circuit, having a switch, supplies electrical power to the fuel cell when the engine sensor detects that the internal combustion engine is in operation.
42. A method according to claim 38, wherein said fuel cell comprises: a plurality of layers, and
wherein the electrical power is applied to opposing layers of said fuel cell in a manner to produce hydrogen and oxygen gases.
43. A method according to claim 38, wherein said the water tank comprises:
a water supply fitting positioned on the underside of the water tank connected to a tube that is connected to water inlet fitting on the fuel cell,
wherein water is supplied to the fuel cell by the tube, and
wherein the fuel cell further includes a hydrogen gas outlet fitting and an oxygen gas outlet fitting which are connected by other tubes to gas inlet fittings on the underside of the water tank.
44. A method according to claim 43, wherein during operation of the fuel cell, a small amount of water, hydrogen gas bubbles and oxygen gas bubbles emerge from a hydrogen outlet and an oxygen outlet, respectively, of the fuel cell, and flow into a hydrogen side and an oxygen side of the water tank, wherein bubbles rise through the water to the upper air cavities formed by the water level in the tank and the tank dividers such that hydrogen and oxygen gases are kept separate from each other in the upper cavities by the dividers, and
wherein as hydrogen gas and oxygen gas fill their respective upper cavities, gases flow out of the upper cavities through a hydrogen fitting and an oxygen fitting.
45. A method according to claim 44, wherein the hydrogen and oxygen fittings can each be replaced by a gas collector which is constructed to contain baffles that serve to prevent water from splashing into or entering the tubes.
46. A method according to claim 45, wherein each baffle is configured to extend perpendicularly from an inner surface of the gas collector, and
wherein a first baffle is configured to extend from a portion of the inner surface of the gas collector opposite to another portion of the inner surface of the gas collector from which a second baffle extends.