Systems and Methods for Converting Cryogenic Liquid Natural Gas to High Pressure Natural Gas and to Low Pressure Natural Gas and Retain All Converted Product and To Further Dispense Only By Voluntary Actions of the User
20180119885 ยท 2018-05-03
Inventors
Cpc classification
F17C2205/0332
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F17C2225/0123
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F17C2203/0304
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F17C2201/0147
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F17C2205/0326
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F17C2270/0171
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F17C2227/0302
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F17C2221/012
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F17C2250/0426
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F17C2203/0614
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F17C2203/0391
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F17C2203/0648
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F17C2223/013
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F17C2201/05
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F17C2201/056
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F17C2221/014
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F17C5/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Y02E60/32
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
F17C2223/033
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F17C2227/0393
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F17C2205/0335
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F17C2201/0138
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F17C2225/036
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F17C9/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F17C2205/0149
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F17C2201/058
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F17C2221/016
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F17C2250/01
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F17C2223/0161
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F17C2270/07
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F17C2270/0178
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F17C2265/05
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F17C2250/036
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F17C2221/011
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F17C2201/035
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F17C2221/033
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F17C2201/032
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
A system to convert and dispense pressurized gas(es) of cryogenic liquids of gas(es), and systems and methods to efficiently convert liquid natural gas (LNG) to compressed natural gas (CNG) and low pressure natural gas (NG) and other cryogenic liquids of gas. The system requires one dedicated pressure vessel of horizontal and vertical elements at the dispensing location to convert, retain, store, and dispense multiple pressures of gas from a cryogenic liquid supply such as a non-dedicated high pressure cryogenic personal supply tank. The system efficiently modifies and controls parameters of volume, pressure, and temperature in conversion scale to retain all converted product under human control to dispense without process required waste for use in commercial, industrial, and in particular single family residential applications and service can be accomplished by pickup truck and trailer, where semi trucks, big rig trucks and process pollution are not welcome.
Claims
1. A LNG reservoir, gasifier and dispenser (700) for a single residence comprising, an external pressure vessel (900) having a first horizontal component (905) extending at substantially a right angle to a first vertical component (910), said external pressure vessel having a first hollow interior, said first horizontal component (905) including a first horizontal distal covering (915), said first vertical component including a first vertical distal covering (920), an internal partial dewars vessel (925) comprising a second horizontal component (930) extending at substantially a right angle to a second vertical component (935), said internal partial dewars vessel having a second hollow interior, said second horizontal component of said internal partial dewars vessel having a second horizontal distal covering (940), said second vertical component of said internal partial dewars vessel having a second vertical distal covering (945), said internal partial dewars vessel is nested within said first hollow interior of said external pressure vessel, a cryogenic liquid to gas transition port (707) is located at the intersection of said second horizontal component (930) and said second vertical component (935), said second vertical component (935) of said internal partial dewars vessel (925) wherein said second vertical distal covering (945) is gas permeable, a first cryogenic one way liquid port and two way gas port(704B) which passes through said first horizontal distal covering (915) said second horizontal distal covering (940) and enables said second horizontal component (930) of said internal partial dewars vessel to be filled with LNG a second two way gas port (704A) which passes through said first horizontal distal covering (915) into said first hollow interior of said external pressure vessel (900), said first vertical distal covering having a first exit port, said first exit port is selectively connected to a first pipe (722) with a low pressure through valve (LPTV) (721) to dispense low pressure gas such as NG to low pressure gas consuming devices in the residence, said first exit port is selectively connectable to a second pipe (710) to dispense higher pressure gas to devices which require higher pressure gas such as CNG consuming devices.
2. A LNG reservoir, gasifier and dispenser for a single residence as claimed in claim 1 wherein said second hollow interior of said second vertical component includes a spiral climbing tube having a tube entrance near said cryogenic liquid to gas transition port and a tube exit proximal said second vertical distal covering where the LNG is warmed by the immediate surroundings of said spiral climbing tube whereby the LNG changes physical state to CNG, and the CNG exits said spiral climbing tube at said tube exit.
3. A LNG reservoir, gasifier and dispenser for a single residence as claimed in claim 1 wherein said second hollow interior of said second vertical component includes a plurality of interconnected parallel and vertically oriented pipes having an entrance proximal said cryogenic liquid to gas transition port (707) and an exit proximal said second vertical distal covering (945), said interconnected parallel and vertically oriented pipes form a tortuous climbing then falling path where the LNG is warmed by the immediate surroundings of said interconnected parallel and vertically oriented pipes whereby the LNG changes physical state to CNG, and the CNG exits said interconnected parallel and vertically oriented pipes at said pipe exit.
4. A LNG reservoir, gasifier and dispenser for a single residence as claimed in claim 2 wherein said external pressure vessel rests atop a pair of support members whereby said external pressure vessel is supported in a level state.
5. A LNG reservoir, gasifier and dispenser for a single residence as claimed in claim 3 wherein said external pressure vessel rests atop a pair of support members whereby said external pressure vessel is supported in a level state.
6. A LNG reservoir, gasifier and dispenser for a single residence as claimed in claim 1 wherein the LNG is placed into said LNG reservoir, gasifier, and dispenser by a mobile LNG supply container which includes a first two way port which is connected to said second two way gas port and a second cryogenic liquid port which is connected to said first cryogenic liquid port, whereby after equalization of the pressure between the cryogenic liquid reservoir, gasifier and dispenser and the LNG supply container with the LNG supply container at an elevation above the cryogenic liquid reservoir, gasifier and dispenser through gravity feed said cryogenic liquid reservoir, gasifier and dispenser are filled.
7. A LNG reservoir, gasifier and dispenser for a single residence as claimed in claim 1 wherein the internal volume of the pressure vessel (900) minus the internal volume of said internal partial dewars vessel said second horizontal component (930) is approximately twice the internal volume of said internal partial dewars vessel said horizontal component (930).
8. A LNG reservoir, gasifier and dispenser for a single residence as claimed in claim 1 wherein said second vertical distal covering (945) includes a plurality of apertures (707A).
9. A LNG reservoir, gasifier and dispenser for a single residence as claimed in claim 1 wherein CNG is dispensed by opening a first valve (713) and closing a second valve (722A) and opening a third valve (711), and NG is dispensed by opening said first valve (713) and closing said third valve (711) and opening said second valve (722A).
10. A cryogenic liquid reservoir, gasifier and dispenser for dispensing a first pressure gas and a second pressure gas comprising: an external L-shaped pressure vessel with a first hollow interior, a first vertical element connected to a first horizontal element, said first horizontal element including a first horizontal distal covering, said first vertical element including a first vertical distal covering, an internal L-shaped partial dewars vessel with a second hollow interior, a second vertical element connected to a second horizontal element, a transitional port located at the intersection of said second horizontal element and said second vertical element, said transitional port allows the gas converted from the change of state of the cryogenic liquid into a gas in said internal L-shaped partial dewars vessel said second horizontal element to pass to said internal L-shaped partial dewars vessel said second vertical element, said second horizontal element having a second horizontal distal covering, said internal L-shaped partial dewars vessel nested within said external L-shaped pressure vessel said first hollow interior, said second vertical element having a first distal vertical gas permeable covering, a one way cryogenic liquid and two way gas port (704B) which passes through said first horizontal distal covering and said second horizontal distal covering, which permits a cryogenic liquid to fill said internal L-shaped partial dewars vessel said second horizontal element, a second two way gas port (704A) which allows two way gas flow to pass through said first horizontal distal covering, said first vertical distal covering having a first exit port, said first exit port selectively connected to a first pipe (722) with a low pressure through valve (LPTV) (721) to dispense said first pressure gas, said first exit port further selectively connectable to a second pipe (710) to dispense said second pressure gas.
11. A cryogenic liquid reservoir, gasifier and dispenser for dispensing a first pressure gas and a second pressure gas as claimed in claim 10 wherein said second pressure gas has a higher pressure then said first pressure gas.
12. A cryogenic liquid reservoir, gasifier and dispenser for dispensing a first pressure gas and a second pressure gas as claimed in claim 10 whereby said cryogenic liquid is selected from the group consisting of liquid Natural Gas (LNG), liquid Nitrogen, liquid Argon, and liquid Oxygen.
13. A cryogenic liquid reservoir, gasifier and dispenser for dispensing a first pressure gas and a second pressure gas as claimed in claim 10 wherein said cryogenic liquid is LNG
14. A cryogenic liquid reservoir, gasifier and dispenser for dispensing a first pressure gas and a second pressure gas as claimed in claim 13 wherein said second hollow interior of said second vertical element includes a spiral climbing tube having a tube entrance near said transitional port and a tube exit proximal said second vertical distal covering where the LNG is warmed by the immediate surroundings of said spiral climbing tube whereby the LNG changes physical state to CNG and the CNG exits said spiral climbing tube at said tube exit.
15. A cryogenic liquid reservoir, gasifier and dispenser for dispensing a first pressure gas and a second pressure gas as claimed in claim 13 wherein said second hollow interior of said second vertical element includes a plurality of interconnected parallel and vertically oriented pipes having a pipe entrance proximal said transitional port (707) and a pipe exit proximal said second vertical distal covering (945), said interconnected parallel and vertically oriented pipes form a tortuous path where the LNG is warmed by the immediate surroundings of said interconnected parallel and vertically oriented pipes whereby the LNG changes physical state to CNG and the CNG exits said interconnected parallel and vertically oriented pipes at said pipe exit.
16. A cryogenic liquid reservoir, gasifier and dispenser for dispensing a first pressure gas and a second pressure gas as claimed in claim 10 where the internal volume of the pressure vessel (900) minus the internal volume of said internal partial dewars vessel said second horizontal element (930) is approximately twice the internal volume of said internal partial dewars vessel said horizontal element (930).
17. A cryogenic liquid reservoir, gasifier and dispenser for dispensing a first pressure gas and a second pressure gas as claimed in claim 13 wherein CNG is dispensed by opening a first valve (713) and closing a second valve (722A) and opening a third valve (711), and NG is dispensed by opening said first valve (713) and closing said third valve (711) and opening said second valve (722A).
18. A cryogenic liquid reservoir, gasifier and dispenser for dispensing a first pressure gas and a second pressure gas as claimed in claim 10 whereby all gas converted from the gasification of the cryogenic liquid is stored in said external L-shaped pressure vessel.
19. A cryogenic liquid reservoir, gasifier and dispenser for dispensing a first pressure gas and a second pressure gas as claimed in claim 17 wherein said first pipe (722) said low pressure through valve (LPTV) (721) has an exit which is attached to the NG pipe system located in a domicile, and said second pipe has an exit for CNG where the NG and the CNG may be dispensed simultaneously by opening said first valve (713), said second valve (722A) and said third valve (711).
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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SUMMARY OF REFERENCED ELEMENTS
[0029] TABLE 1 [0030] 301 LNG fill portal for cryogenic like vessel. [0031] 302 Outer container for LNG [0032] 303 Inner container for LNG Receiver approximate ratio being 1:2.4 (41.6% of the size) by volume of expansion chamber shown scaled at 40 gallons made of a high nickel content steel or sandwiched carbon fiber and plastic coatings or combinations thereof [0033] 304 Neck pipe, one way with valve, connects LNG container to CNG expansion chamber inner pipe valve; must be dual specification of LNG temperature and CNG pressure strength. [0034] 305 Inner oval pipe volume approximate ratio being 1:1 by volume to inner container made of a high nickel content steel or aluminum alloy. [0035] 306 Oval pressure vessel expansion chamber scaled at 96 gallons being the LNG/CNG gasifier and CNG Storage and CNG and NG Dispensing Container, preferably duplex stainless steel. [0036] 307 Transfer holes to vent vaporizing LNG transforming to CNG into expansion chamber in a uniform manner. [0037] 308 Safe vent before failure connected to expansion chamber. [0038] 309 Leak detect and alarm, ultrasonic preferred. [0039] 310 Swing arm dispensing tube. [0040] 311 CNG specific fill start/stop/auto stop. [0041] 312 CNG specific fill attachment. [0042] 313 Vent and stand pipe connected to expansion chamber. [0043] 314 Heat sink to air in heat transfer for the benefit of vaporizing LNG May be a water bath, may be as cooling fins, or refrigeration coil. [0044] 315 Vertical and lateral support. [0045] 316 Heat exchange for heat sink such as available from exhaust stack or direct heat. [0046] 317 Optional hydrogen input to enhance CNG quality as available from electrolysis at depth or other. [0047] 318 Optional supply NG from inner container. [0048] 319 Control and instrument panel LNG to CNG system. [0049] 320 Internal LNG drip pipe. [0050] 321 Pressure reducing valve for (318) and (322). [0051] 322 Optional supply NG from expansion chamber. [0052] 323 Chemical additives to natural gas to be used for residential fuels, often use a sulfur compound (enhancing leak detection).
DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
[0053] The present invention provides a LNG to CNG to NG system and method. This system may be optionally enhanced by a system generating hydrogen gas such as an electrolysis at pressure and/or at depth system. The system may also be optionally enhanced by a steam and methane reformation system, including as a heat exchange mechanism described. In the system of
[0054] Neck pipe 304 provides a one way flow with valve that connects the LNG container to the CNG expansion chamber inner pipe. Inner oval pipe 305 has a volume in the approximate ratio of 1:1 with inner container 303. Oval pressure vessel expansion chamber 306 is preferably made of duplex stainless steel. Transfer holes 307 are provided to vent vaporizing LNG into oval pressure vessel expansion chamber 306 in a uniform manner. A safe vent valve 308 is provided before oval pressure vessel expansion chamber 306. A leak detection and alarm device 309 is also provided with an ultrasonic type device preferred.
[0055] Swing arm dispensing tube 310 extends to provide one manner of dispensing the CNG A CNG specific fill valve 311 provides start, stop, and auto stop for the flow. A CNG specific fill attachment 312 is also provided. Vent and stand pipe 313 is connected to oval pressure vessel expansion chamber 306. Heat sink 314 to air is provided for heat transfer for the vaporization of the LNG Vertical and lateral supports 315 are shown for the structural support of the system. Heat exchange 316 is shown such as is available from the exhaust stack in the steam and NG reformation system described above. Hydrogen input 317 is further provided to enhance CNG quality and is available from an electrolysis at depth system mentioned above, or an electrolysis at pressure system. Optional natural gas (NG) supply 318 is provided to enhance CNG quality as is also available from a steam and NG reformation system as mentioned above. Low pressure natural gas (NG) can be dispensed from 318 from the LNG receiver or/and 322 from the expansion chamber gasifier 306 both through 312 pressure reducer. Control and instrument panel 319 is provided to monitor CNG volume, pressure, and temperature in the system, as well as to show time, elapsed time, and to indicate a percentage to add hydrogen.
[0056] Reference is made to
[0057]
[0058] The feasible elements do exist for this new component of the system. These may be characterized as liquid individual natural gas (LiNG) devices and pressurized liquid individual natural gas (PLiNG) devices. This accessory would be a cryogenic container with an LNG specific input port and output port. It would be constructed with at least one container within a container and further nesting of containers possible. It would preferably be structured with layers of insulation, vacuum layers, and layers of reinforcement. The container would preferably be engineered at a 2:1 length to width ratio and comprised of nickel at 7%-9% or where there is contact with liquid. The container may hold a cold thermal mass to deter gasification. It can be emptied by gravity flow after equalization of pressure with the recipient container or without tipping using a hand pump. The system of the present invention would use such a container as a stage to ramp down temperatures refrigeration of the equipment in order to mitigate issues of thermal shock to the system and beneficially increase the density of internal gas for fueling. The container could also be used as a method of topping off the system of the present invention.
[0059] Reference is next made to
[0060]
[0061]
[0062] Reference is next made to
[0063] Reference is next made to
[0064]
[0065] In the first step of the prior process where LNG is loaded into the system, valves leading into LGN container 402 are opened to receive the LNG In
[0066] In
[0067]
[0068]
[0069] Reference is next made to
[0070] Referring specifically to
[0071] A basic residential system and a preferred embodiment for two containers dedicated by the location of dispensing is shown in
[0072]
[0073] Operation of the structure of the prior system shown in
[0074]
[0075] Referring specifically to
[0076]
[0077]
[0078]
[0079] To recap, the invention discloses a LNG reservoir, gasifier and dispenser (700) for a single residence comprising, an external pressure vessel (900) having a first horizontal component (905) extending at substantially a right angle to a first vertical component (910), the external pressure vessel having a first hollow interior, the first horizontal component (905) including a first horizontal distal covering (915), the first vertical component including a first vertical distal covering (920), an internal partial dewars vessel (925) comprising a second horizontal component (930) extending at substantially a right angle to a second vertical component (935), the internal partial dewars vessel having a second hollow interior, the second horizontal component of the internal partial dewars vessel having a second horizontal distal covering (940), the second vertical component of the internal partial dewars vessel having a second vertical distal covering (945), the internal partial dewars vessel is nested within the first hollow interior of the external pressure vessel, a cryogenic liquid to gas transition port (707) is located at the intersection of the second horizontal component (930) and the second vertical component (935), the second vertical component (935) of the internal partial dewars vessel (925) wherein the second vertical distal covering (945) is gas permeable, a first cryogenic one way liquid port and two way gas port(704B) which passes through the first horizontal distal covering (915) the second horizontal distal covering (940) and enables the second horizontal component (930) of the internal partial dewars vessel to be filled with LNG a second two way gas port (704A) which passes through the first horizontal distal covering (915) into the first hollow interior of the external pressure vessel (900), the first vertical distal covering having a first exit port, the first exit port is selectively connected to a first pipe (722) with a low pressure through valve (LPTV) (721) to dispense low pressure gas such as NG to low pressure gas consuming devices in the residence, the first exit port is selectively connectable to a second pipe (710) to dispense higher pressure gas to devices which require higher pressure gas such as CNG consuming devices.
[0080] Additionally, the invention includes a second hollow interior of the second vertical component includes a spiral climbing tube having a tube entrance near the cryogenic liquid to gas transition port and a tube exit proximal the second vertical distal covering where the LNG is warmed by the immediate surroundings of the spiral climbing tube whereby the LNG changes physical state to CNG and the CNG exits the spiral climbing tube at the tube exit.
[0081] Also, the invention may include a second hollow interior of the second vertical component which includes a plurality of interconnected parallel and vertically oriented pipes having an entrance proximal the cryogenic liquid to gas transition port (707) and an exit proximal the second vertical distal covering (945), the interconnected parallel and vertically oriented pipes form a tortuous climbing then falling path where the LNG is warmed by the immediate surroundings of the interconnected parallel and vertically oriented pipes whereby the LNG changes physical state to CNG and the CNG exits the interconnected parallel and vertically oriented pipes at the pipe exit.
[0082] Further, the external pressure vessel rests atop a pair of support members whereby the external pressure vessel is supported in a level state.
[0083] Also, the LNG is placed into the LNG reservoir, gasifier, and dispenser by a mobile LNG supply container which includes a first two way port which is connected to the second two way gas port and a second cryogenic liquid port which is connected to the first cryogenic liquid port, whereby after equalization of the pressure between the cryogenic liquid reservoir, gasifier and dispenser and the LNG supply container with the LNG supply container at an elevation above the cryogenic liquid reservoir, gasifier and dispenser through gravity feed the cryogenic liquid reservoir, gasifier and dispenser are filled.
[0084] Further, the internal volume of the pressure vessel (900) minus the internal volume of the internal partial dewars vessel the second horizontal component (930) is approximately twice the internal volume of the internal partial dewars vessel the horizontal component (930). The invention also includes a second vertical distal covering (945) which includes a plurality of apertures (707A).
[0085] The invention may also include elements which permits the CNG to be dispensed by opening a first valve (713) and closing a second valve (722A) and opening a third valve (711), and NG is dispensed by opening the first valve (713) and closing the third valve (711) and opening the second valve (722A).
[0086] Another to describe essentially the same invention would be where a cryogenic liquid reservoir, gasifier and dispenser for dispensing a first pressure gas and a second pressure gas comprises: an external L-shaped pressure vessel with a first hollow interior, a first vertical element connected to a first horizontal element, the first horizontal element including a first horizontal distal covering, the first vertical element including a first vertical distal covering, an internal L-shaped partial dewars vessel with a second hollow interior, a second vertical element connected to a second horizontal element, a transitional port located at the intersection of the second horizontal element and the second vertical element, the transitional port allows the gas converted from the change of state of the cryogenic liquid into a gas in the internal L-shaped partial dewars vessel the second horizontal element to pass to the internal L-shaped partial dewars vessel the second vertical element, the second horizontal element having a second horizontal distal covering, the internal L-shaped partial dewars vessel nested within the external L-shaped pressure vessel the first hollow interior, the second vertical element having a first distal vertical gas permeable covering, a one way cryogenic liquid and two way gas port (704B) which passes through the first horizontal distal covering and the second horizontal distal covering, which permits a cryogenic liquid to fill the internal L-shaped partial dewars vessel the second horizontal element, a second two way gas port (704A) which allows two way gas flow to pass through the first horizontal distal covering, the first vertical distal covering having a first exit port, the first exit port selectively connected to a first pipe (722) with a low pressure through valve (LPTV) (721) to dispense the first pressure gas, the first exit port further selectively connectable to a second pipe (710) to dispense the second pressure gas. Also, the second pressure gas has a higher pressure then the first pressure gas. Additionally, the cryogenic liquid is selected from the group consisting of liquid Natural Gas (LNG), liquid Nitrogen, liquid Argon, and liquid Oxygen. In one version of this invention, the cryogenic liquid is LNG
[0087] Further, the second hollow interior of the second vertical element includes a spiral climbing tube having a tube entrance near the transitional port and a tube exit proximal the second vertical distal covering where the LNG is warmed by the immediate surroundings of the spiral climbing tube whereby the LNG changes physical state to CNG and the CNG exits the spiral climbing tube at the tube exit.
[0088] In a further instance, the second hollow interior of the second vertical element may include a plurality of interconnected parallel and vertically oriented pipes having a pipe entrance proximal the transitional port (707) and a pipe exit proximal the second vertical distal covering (945), the interconnected parallel and vertically oriented pipes form a tortuous path where the LNG is warmed by the immediate surroundings of the interconnected parallel and vertically oriented pipes whereby the LNG changes physical state to CNG and the CNG exits the interconnected parallel and vertically oriented pipes at the pipe exit.
[0089] Also, the internal volume of the pressure vessel (900) minus the internal volume of the internal partial dewars vessel the second horizontal element (930) is approximately twice the internal volume of the internal partial dewars vessel the horizontal element (930).
[0090] In this invention the CNG is dispensed by opening a first valve (713) and closing a second valve (722A) and opening a third valve (711), and the NG is dispensed by opening the first valve (713) and closing the third valve (711) and opening the second valve (722A). Also, all gas converted from the gasification of the cryogenic liquid is stored in the external L-shaped pressure vessel.
[0091] This invention includes a mechanism where the first pipe (722) with the low pressure through valve (LPTV) (721) has an exit which is attached to the NG pipe system located in a domicile, and the second pipe has an exit for CNG where the NG and the CNG may be dispensed simultaneously by opening the first valve (713), the second valve (722A) and the third valve (711). This means that both CNG and NG may be simultaneously dispensed if desired; however, either the CNG or NG may be dispensed singly.
[0092] Although the present invention has been described in conjunction with a number of embodiments, those skilled in the art will recognize modifications to these embodiments that still fall within the scope of the present invention. Alternately, the present invention may be implemented in conjunction with electrolysis at depth and/or pressure. Alternate embodiments in conjunction with differently sized systems are also anticipated.