Fuel-saving device
10844812 ยท 2020-11-24
Inventors
Cpc classification
B01D46/2403
PERFORMING OPERATIONS; TRANSPORTING
B01D46/521
PERFORMING OPERATIONS; TRANSPORTING
F02D21/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M35/10144
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M35/10386
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Y02T10/12
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
F02M27/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02B47/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M35/02416
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M35/10255
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
C25B11/051
CHEMISTRY; METALLURGY
F02M35/10249
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M25/12
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B01D2279/60
PERFORMING OPERATIONS; TRANSPORTING
International classification
F02B43/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02D21/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M27/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M35/024
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B01D46/52
PERFORMING OPERATIONS; TRANSPORTING
F02B47/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M25/12
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M35/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A fuel-saving device includes an oxygen generator adapted for producing oxygen, an air intake component adapted for inhaling air, and a conveyor comprising an output terminal adapted for outputting gas, an oxygen terminal connected with the oxygen generator, an air terminal connected with the air intake component, and a connector connecting the output terminal, the oxygen terminal and the air terminal, so as to allow oxygen from the oxygen generator and air from the air intake component to be mixed and output through the output terminal.
Claims
1. A fuel-saving device for a combustion engine, comprising: an oxygen generator, configured for producing oxygen, comprising a hydrogen peroxide generating unit configured for generating hydrogen peroxide from water and oxygen in air and an oxygen generating unit configured for converting the hydrogen peroxide generated in said hydrogen peroxide generating unit into water and oxygen through a catalyst coated on one or more meshes contained in said oxygen generating unit; an air intake component, configured for inhaling air, including a filter for filtering an inhaled air; a conveyor, comprising an output terminal, arranged for outputting gas, including an output pipeline and an output regulator arranged along said output pipeline, an oxygen terminal, connected with said oxygen generator, including an oxygen pipeline and an oxygen regulator arranged along said oxygen pipeline, an air terminal, connected with said air intake component, including an air pipeline and air regulator arranged along said air pipeline, and a connector connecting said output terminal, said oxygen terminal and said air terminal, adapted for allowing oxygen from said oxygen generator and air from said air intake component to be mixed to form a mixed gas and output through said output terminal for supplying to the combustion engine, wherein the mixed gas, the oxygen and the inhaled air passing through said output pipeline, said oxygen pipeline and said air pipeline respectively, while said output regulator, said oxygen regulator and said air regulator checking and controlling flows of the mixed gas, the oxygen and the inhaled air in said output pipeline, said oxygen pipeline and said air pipeline respectively; and a controller which is electrically connected with said output regulator, said oxygen regulator and said air regulator, and configured for respectively detecting qualities of the mixed gas in said output pipeline, the oxygen in said oxygen pipeline and the air in said air pipeline to respectively control a mixed gas flow of said output pipeline, an oxygen flow of said oxygen pipeline and an air flow of said air pipeline for ensuring the mixed gas containing sufficient oxygen to avoid incomplete combustion of fuel in the combustion engine to enhance fuel efficiency, engine power and combustion effectiveness, wherein said controller controls a predetermined amount of the oxygen produced from said oxygen generator according to a combustion condition of the combustion engine.
2. The fuel-saving device, as recited in claim 1, wherein said catalyst is selected from the group consisting of manganese peroxide, manganese dioxide and potassium iodide coated on one or more meshes.
3. The fuel-saving device, as recited in claim 1, wherein said hydrogen peroxide generating unit comprises a cathode and an anode therein configured for producing the hydrogen peroxide from water and oxygen in the air by means of electrolysis.
4. The fuel-saving device, as recited in claim 2, wherein said hydrogen peroxide generating unit comprises a carbon felt cathode and a RuO2 coated titanium anode therein configured for producing the hydrogen peroxide from water and oxygen in the air by means of electrolysis.
5. The fuel-saving device, as recited in claim 1, wherein said air intake component further includes a support arranged to support said filter in position and a shell to form a main structure of said air intake component and to serve as a channel for air flow, wherein said support is affixed in said shell to hold said filter in position such that the air entering said channel defined by said shell has to pass through and be filtered by said filter to provide a filter air to said conveyor.
6. The fuel-saving device, as recited in claim 5, wherein said support of said air intake component includes a first frame, a second frame, a first strut, a second strut, and a brace, wherein said first frame and said second frame respectively brace said filter from an outer side and an inner side thereof, wherein said first frame in said outer side is affixed on an inner wall of said shell by said first strut while said second frame in said inner side is affixed on said brace by said second strut, wherein said brace is affixed in said shell to stabilize an attachment of said second strut, wherein said first frame, said second frame and said filter divide a space in said shell into an inner chamber and an outer chamber communicating to an input end and an output end of said air intake component, such that the air entering said air intake component through said input end has to pass through said filter to be output to said air terminal of said conveyor through said output end of said air intake component.
7. The fuel-saving device, as recited in claim 2, wherein said air intake component further includes a support arranged to support said filter in position and a shell to form a main structure of said air intake component and to serve as a channel for air flow, wherein said support is affixed in said shell to hold said filter in position such that the air entering said channel defined by said shell has to pass through and be filtered by said filter to provide a filter air to said conveyor.
8. The fuel-saving device, as recited in claim 7, wherein said support of said air intake component includes a first frame, a second frame, a first strut, a second strut, and a brace, wherein said first frame and said second frame respectively brace said filter from an outer side and an inner side thereof, wherein said first frame in said outer side is affixed on an inner wall of said shell by said first strut while said second frame in said inner side is affixed on said brace by said second strut, wherein said brace is affixed in said shell to stabilize an attachment of said second strut, wherein said first frame, said second frame and said filter divide a space in said shell into an inner chamber and an outer chamber communicating to an input end and an output end of said air intake component, such that the air entering said air intake component through said input end has to pass through said filter to be output to said air terminal of said conveyor through said output end of said air intake component.
9. The fuel-saving device, as recited in claim 3, wherein said air intake component further includes a support arranged to support said filter in position and a shell to form a main structure of said air intake component and to serve as a channel for air flow, wherein said support is affixed in said shell to hold said filter in position such that the air entering said channel defined by said shell has to pass through and be filtered by said filter to provide a filter air to said conveyor.
10. The fuel-saving device, as recited in claim 9, wherein said support of said air intake component includes a first frame, a second frame, a first strut, a second strut, and a brace, wherein said first frame and said second frame respectively brace said filter from an outer side and an inner side thereof, wherein said first frame in said outer side is affixed on an inner wall of said shell by said first strut while said second frame in said inner side is affixed on said brace by said second strut, wherein said brace is affixed in said shell to stabilize an attachment of said second strut, wherein said first frame, said second frame and said filter divide a space in said shell into an inner chamber and an outer chamber communicating to an input end and an output end of said air intake component, such that the air entering said air intake component through said input end has to pass through said filter to be output to said air terminal of said conveyor through said output end of said air intake component.
11. The fuel-saving device, as recited in claim 4, wherein said air intake component further includes a support arranged to support said filter in position and a shell to form a main structure of said air intake component and to serve as a channel for air flow, wherein said support is affixed in said shell to hold said filter in position such that the air entering said channel defined by said shell has to pass through and be filtered by said filter to provide a filter air to said conveyor.
12. The fuel-saving device, as recited in claim 11, wherein said support of said air intake component includes a first frame, a second frame, a first strut, a second strut, and a brace, wherein said first frame and said second frame respectively brace said filter from an outer side and an inner side thereof, wherein said first frame in said outer side is affixed on an inner wall of said shell by said first strut while said second frame in said inner side is affixed on said brace by said second strut, wherein said brace is affixed in said shell to stabilize an attachment of said second strut, wherein said first frame, said second frame and said filter divide a space in said shell into an inner chamber and an outer chamber communicating to an input end and an output end of said air intake component, such that the air entering said air intake component through said input end has to pass through said filter to be output to said air terminal of said conveyor through said output end of said air intake component.
13. The fuel-saving device, as recited in claim 3, wherein said output regulator, said oxygen regulator and said air regulator are solenoid valves.
14. The fuel-saving device, as recited in claim 12, wherein said output regulator, said oxygen regulator and said air regulator are solenoid valves.
15. A fuel-saving device for a combustion engine, comprising: an oxygen generator configured for producing oxygen; an air intake component, configured for inhaling air, including a filter for filtering an inhaled air; a conveyor, comprising an output terminal, arranged for outputting gas, including an output pipeline and an output regulator arranged along said output pipeline, an oxygen terminal, connected with said oxygen generator, including an oxygen pipeline and an oxygen regulator arranged along said oxygen pipeline, an air terminal, connected with said air intake component, including an air pipeline and air regulator arranged along said air pipeline, and a connector connecting said output terminal, said oxygen terminal and said air terminal, adapted for allowing oxygen from said oxygen generator and air from said air intake component to be mixed to form a mixed gas and output through said output terminal for supplying to the combustion engine, wherein the mixed gas, the oxygen and the inhaled air passing through said output pipeline, said oxygen pipeline and said air pipeline respectively, while said output regulator, said oxygen regulator and said air regulator checking and controlling flows of the mixed gas, the oxygen and the inhaled air in said output pipeline, said oxygen pipeline and said air pipeline respectively; and a controller which is electrically connected with said output regulator, said oxygen regulator and said air regulator, and configured for respectively detecting qualities of the mixed gas in said output pipeline, the oxygen in said oxygen pipeline and the air in said air pipeline to respectively control a mixed gas flow of said output pipeline, an oxygen flow of said oxygen pipeline and an air flow of said air pipeline for ensuring the mixed gas containing sufficient oxygen to avoid incomplete combustion of fuel in the combustion engine to enhance fuel efficiency, engine power and combustion effectiveness, wherein said controller controls a predetermined amount of the oxygen produced from said oxygen generator according to a combustion condition of the combustion engine, wherein said air intake component further includes a support arranged to support said filter in position and a shell to form a main structure of said air intake component and to serve as a channel for air flow, wherein said support is affixed in said shell to hold said filter in position such that the air entering said channel defined by said shell has to pass through and be filtered by said filter to provide a filter air to said conveyor, wherein said support of said air intake component includes a first frame, a second frame, a first strut, a second strut, and a brace, wherein said first frame and said second frame respectively brace said filter from an outer side and an inner side thereof, wherein said first frame in said outer side is affixed on an inner wall of said shell by said first strut while said second frame in said inner side is affixed on said brace by said second strut, wherein said brace is affixed in said shell to stabilize an attachment of said second strut, wherein said first frame, said second frame and said filter divide a space in said shell into an inner chamber and an outer chamber communicating to an input end and an output end of said air intake component, such that the air entering said air intake component through said input end has to pass through said filter to be output to said air terminal of said conveyor through said output end of said air intake component.
16. The fuel-saving device, as recited in claim 15, wherein said output regulator, said oxygen regulator and said air regulator are solenoid valves.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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(4)
DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENT
(5) The following description is disclosed to enable any person skilled in the art to make and use the present invention. Preferred embodiments are provided in the following description only as examples and modifications will be apparent to those skilled in the art. The general principles defined in the following description would be applied to other embodiments, alternatives, modifications, equivalents, and applications without departing from the spirit and scope of the present invention.
(6) Please referring to
(7) Preferably, the fuel-saving device 1 is adapted for being connected to a combustion engine 50 for providing the combustion engine 50 a mixed gas that contains more or sufficient oxygen in order to avoid incomplete combustion of the fuel in the combustion engine 50 and, therefore, to enhance the fuel efficiency, engine power and combustion effectiveness and to reduce the exhaust pollution of the engine. As a result, the users may save more on fuel costs and pollute less to the environment.
(8) Specifically, the output terminal 31 includes an output pipeline 311 and an output regulator 312 arranged along the output pipeline 311, the oxygen terminal 33 includes an oxygen pipeline 331 and an oxygen regulator 332 arranged along the oxygen pipeline 331, and the air terminal 34 includes an air pipeline 341 and an air regulator 342 arranged along the air pipeline 341. The output pipeline 311, the oxygen pipeline 331 and the air pipeline 341 are the main structures and channels that respectively allow the mixed gas, the oxygen and the inhaled air to pass through, while the output regulator 312, the oxygen regulator 332 and the air regulator 342 are the regulators that respectively check and control the flow of each of the pipelines. According to some implementation, the regulators 312, 332, 342 can be embodied as solenoid valve, which can individually be controlled to close or open to a certain degree at a time, so as for the user to constantly and selectively decide the flow of each of the pipelines 311, 331, 341. According to another implementation, the regulators 312, 332, 342 can be embodied as solenoid with sensors that detect the flow and/or other qualities, such as compositions, concentration, and etc. of the gas at the regulators 312, 332, 342 before released.
(9) It is worth mentioning that the oxygen generator 10 can be embodied in various oxygen generating apparatuses capable of producing oxygen. Preferably, referring to
(10) Referring to
(11) Furthermore, according to the preferred embodiment, the controller 40 can also be connected to or integrated with the engine control unit (ECU) of the combustion engine 50, so as to allow the ECU to control the above mentioned operations based on its parameters/procedures and other information it received (e.g. oxygen content in the engine, engine speed, qualities if the emission, driving mode, safety reason, and etc.).
(12) Besides, the controller 40 can further be electrically connected with the oxygen generator 10 to control the oxygen production thereof according to a combustion condition of the combustion engine 50, which can manage the oxygen supply in various modes from the maximum performance to the most economic production. In some cases, if the engine speed is low, it may not require the oxygen generator 10 to produce oxygen in full speed. Therefore, the controller 40 may slow down or decrease the oxygen production of the oxygen generator 10 to avoid waste of excess oxygen and to extend the lifespan of the supplies of the oxygen generator 10. On the other hand, if the engine speed is high, the controller 40 may speed up or increase the oxygen production of the oxygen generator 10, so as to ensure the oxygen supply to the combustion engine 50 for complete combustions thereof that helps on the fuel efficiency, emission, and performance of the combustion engine 50.
(13) In addition, referring to
(14) Person skilled in the art should be able to understand that the direction of the arrangement of the air intake component 20 is changeable. In other words, the first frame 221, the second frame 222 and the filter 21 may also divide the space of the shell 23 in many other ways and directions. Therefore, the present invention shall not be limited hereby. Besides, it is worth mentioning that the mode of air intake of the air intake component 20 is not limited. In other words, the air may enter the air intake component 20 through natural aspiration, supercharging, or other means based on the actual needs.
(15) Next, according to the above preferred embodiment of the present invention, the oxygen generator 10 includes a mounting element 11 arranged thereon, so as for mounting the oxygen generator at a designated position. The conveyor 30 further comprises a rack 35 arranged thereon, so as for mounting the conveyer 30, which helps to anchor or install the fuel-saving device 1 at designated position and reinforce the structure of the conveyor 30. The rack 35 includes a first holder 351 sleeved on the oxygen pipeline 331, a second holder 352 sleeved on the air pipeline 341, a bond 353 connecting the first holder 351 and the second holder 352 for stabilize the attachment thereof.
(16) Contrasting to the art, the fuel-saving device 1 not only provides oxygen aid to the combustion engine 50 to enhance its fuel efficiency and performance, but also allows customized and optimized result of the combustion engine 50 to be achieved through enabling a smart management of the mixed gas of oxygen and air supply to the combustion engine 50 through the control of the controller 40.
(17) One skilled in the art will understand that the embodiment of the present invention as shown in the drawings and described above is exemplary only and not intended to be limiting.
(18) It will thus be seen that the objects of the present invention have been fully and effectively accomplished. The embodiments have been shown and described for the purposes of illustrating the functional and structural principles of the present invention and is subject to change without departure from such principles. Therefore, this invention includes all modifications encompassed within the spirit and scope of the following claims.