System and Methods for Recycling Hydrocarbon Waste Gas That is Generated During Cleaning of a Hydrocarbon Storage Tank
20220049649 ยท 2022-02-17
Inventors
Cpc classification
F05D2220/76
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02C3/22
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B08B9/093
PERFORMING OPERATIONS; TRANSPORTING
F05D2220/75
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
A hydrocarbon waste-gas recycling method having the steps of: transporting a hydrocarbon waste-gas composition, which is generated during a hydrocarbon storage-tank cleaning process, from a storage tank that is being cleaned to a fuel-gas blend controller; blending the hydrocarbon waste-gas composition with a second hydrocarbon gas-phase composition to thereby create a third gas-phase composition; and using the third gas-phase composition to fuel a combustion engine.
Claims
1. A hydrocarbon waste-gas recycling method comprising the steps: transporting a hydrocarbon waste-gas composition, which is generated during a hydrocarbon storage-tank cleaning process, from a storage tank that is being cleaned to a fuel-gas blend controller; blending the hydrocarbon waste-gas composition with a second hydrocarbon gas-phase composition to thereby create a third gas-phase composition; and using the third gas-phase composition to fuel a combustion engine.
2. The hydrocarbon waste-gas recycling method of claim 1, wherein the hydrocarbon storage-tank cleaning process is a crude-oil storage-tank cleaning process.
3. The hydrocarbon waste-gas recycling method of claim 1, wherein the combustion engine powers an electric generator.
4. The hydrocarbon waste-gas recycling method of claim 1, wherein the second hydrocarbon gas-phase composition is propane gas.
5. The hydrocarbon waste-gas recycling method of claim 3, further comprising the step of using electricity generated by the electric generator to power at least one electric motor.
6. The hydrocarbon waste-gas recycling method of claim 1, further comprising the step of using a heat recovery unit to recover heat from exhaust emitted by the combustion engine.
7. The hydrocarbon waste-gas recycling method of claim 1, wherein a pipeline is used to transport the hydrocarbon waste-gas composition from the storage tank that is being cleaned to the fuel-gas blend controller.
8. The hydrocarbon waste-gas recycling method of claim 1, wherein a pipeline is used to transport the hydrocarbon waste-gas composition from the storage tank that is being cleaned to the fuel-gas blend controller.
9. The hydrocarbon waste-gas recycling method of claim 5, wherein the at least one electric motor is in an apparatus selected from the group consisting of an air compressor, a hydraulic pump, a pneumatic pump, a centrifuge, a shaker, and a heat exchanger.
10. The hydrocarbon waste-gas recycling method of claim 3, further comprising the step of using electricity generated by the electric generator to charge a battery.
11. A hydrocarbon waste-gas recycling system comprising: a hydrocarbon storage tank; a pipeline configured to transport a hydrocarbon waste-gas composition, which is generated during a hydrocarbon storage-tank cleaning process, from the storage tank to a fuel-gas blend controller; the fuel-gas blend controller configured to combine the hydrocarbon waste-gas composition with a second gas-phase composition to thereby create a third gas-phase composition; the fuel-gas blend controller further configured to emit controlled amounts of the third gas-phase composition; and a combustion engine configured to receive and use the third gas-phase composition as a fuel source.
12. The hydrocarbon waste-gas recycling system of claim 11, wherein the hydrocarbon storage tank is a crude-oil storage tank.
13. The hydrocarbon waste-gas recycling system of claim 11, wherein the combustion engine is configured to power an electric generator.
14. The hydrocarbon waste-gas recycling system of claim 11, wherein the second hydrocarbon gas-phase composition is propane gas.
15. The hydrocarbon waste-gas recycling system of claim 13, further comprising an electric motor configured to receive electricity from the electric generator.
16. The hydrocarbon waste-gas recycling system of claim 13, further comprising a battery configured to receive and store electricity from the electric generator.
17. The hydrocarbon waste-gas recycling system of claim 11, further comprising a heat recovery unit configured to recover heat from exhaust emitted by the combustion engine.
18. The hydrocarbon waste-gas recycling system of claim 15, wherein the electric motor is in an apparatus selected from the group consisting of an air compressor, a hydraulic pump, a pneumatic pump, a centrifuge, a shaker, and a heat exchanger.
19. A hydrocarbon waste-gas recycling system comprising: a crude-oil storage tank; a pipeline configured to transport a hydrocarbon waste-gas composition, which is generated during a hydrocarbon storage-tank cleaning process, from the storage tank to a fuel-gas blend controller; the fuel-gas blend controller configured to combine the hydrocarbon waste-gas composition with propane gas to thereby create a third gas-phase composition; the fuel-gas blend controller further configured to emit controlled amounts of the third gas-phase composition; a combustion engine configured to receive and use the third gas-phase composition as a fuel source; the combustion engine configured to power an electric generator; an electric motor configured to receive electricity from the electric generator; and the electric motor is in an apparatus selected from the group consisting of an air compressor, a hydraulic pump, a pneumatic pump, a centrifuge, a shaker, and a heat exchanger.
Description
BRIEF DESCRIPTION OF THE SEVERAL VIEWS OF THE DRAWINGS
[0009]
[0010]
[0011]
DETAILED DESCRIPTION OF THE INVENTION
[0012] Embodiments are directed to recycling unwanted hazardous waste gases that are produced during the performance of processes directed to cleaning the inside of crude-oil storage tanks or other types of hydrocarbon storage tanks. Recycling of these unwanted hazardous waste gases is achieved by using the unwanted hazardous waste gases as a combustible fuel source for combustion engines. Recycling embodiments are described with reference to the schematic representations shown in
[0013]
[0014] Fuel-gas blend controller 30 is configured to both receive waste gas composition 10 from pipeline 80 and blend waste gas composition 10 with fuel gas source or second gas-phase composition 40 to thereby generate third gas-phase composition 200 (that is a blend of waste gas composition 10 and fuel gas source or second gas-phase composition 40). In embodiments, fuel gas source or second gas-phase composition 40 is propane gas. In other embodiments, fuel gas source or second gas-phase composition 40 is any known combustible gas-phase composition used as a combustion-engine fuel source. By blending waste gas composition 10 with second gas-phase composition 40 such as propane, the resultant third gas-phase composition 200 can be used as a gas-phase fuel source to power a combustion engine such as that used in gas turbine electric generator 210. By introducing a blended ratio of waste gas composition 10 and as a combustible fuel source into a combustion engine, waste gas composition 10 is recycled as a fuel source (versus being otherwise incinerated and serving no useful purpose).
[0015] In embodiments, fuel-gas blend controller 30 blends waste gas composition 10 with fuel gas source or second gas-phase composition 40 respectively at the following volume-based ratios: 100/0; 95/5; 90/10; 85/15; 80/20; 75/25; 70/30; 65/35; 60/40; 55/45; 50/50; 45/55; 40/60; 35/65; 30/70; 25/75; 20/80; 15/85; 10/90; or 5/95. In embodiments, the resultant blended third gas-phase composition 200 results from blending waste gas composition 10 with fuel gas source or second gas-phase composition 40 at a volume-based ratio that will result in the third gas-phase composition 200 being useful as a combustible fuel source to power a combustion engine such as that used in gas turbine electric generator 210. Persons of ordinary skill in the art will be able to determine useful volume-based recycling blend ratios without having to exercise undue experimentation.
[0016] Fuel-gas blend controller 30 can be any commercially known fuel-gas blend controller that is configured to: i) receive and blend controlled ratios of at least two different gas-phase compositions into one blended resultant gas-phase composition, and ii) emit controlled and measured amounts of the one blended resultant gas-phase composition. Fuel-gas blend controller 30 is configured to emit the one blended resultant gas-phase composition in amounts and rates to be determined by persons of ordinary skill in the art without having to exercise undue experimentation.
[0017] As shown in
[0018] Gas turbine electric generator 210 can be any known apparatus configured to generate electricity by using a combustion engine; gas-driven electric generators are well known and commercially available.
[0019] As shown in
[0020] In an embodiment, as shown in
[0021] Although the above embodiments have been explained with specific reference to crude-oil storage tanks, crude oil, and crude-oil derivatives containing varying percentages of water and sediment crude oil; all of the above system and method embodiments can be practiced with storage tanks for other types of hydrocarbon compositions and their derivatives. As a non-limiting example, the inventive embodiments can be used to recycle hydrocarbon-composition gas-phase waste products in many, if not all, storage tanks generally used in oil-refining or hydrocarbon-composition storing technologies.
[0022] Persons of ordinary skill in the art will appreciate that embodiments can be understood beyond the specific teachings provided above.