Ultrasonic methanol fuel cell system converting liquid fuel to gas fuel
20230268537 · 2023-08-24
Inventors
Cpc classification
H01M8/1011
ELECTRICITY
H01M8/04201
ELECTRICITY
Y02E60/50
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
International classification
Abstract
An ultrasonic methanol fuel cell system converting liquid fuel to gas fuel, including a methanol fuel cell body, an ultrasonic fuel atomization mechanism, a mist-transporting booster pump; the ultrasonic fuel atomization mechanism includes a fuel storage chamber, an ultrasonic atomizer module, a mist output pipe and an internal pressure equalizer; the ultrasonic atomizer module is provided at the bottom of the fuel storage chamber; the mist output pipe is provided above the ultrasonic atomizer module; the internal pressure equalizer is connected with the mist output pipe; a pressure equalizing valve is connected to the outer end of the internal pressure equalizer; the mist-transporting booster pump is connected between the fuel input port and the mist output pipe. Fuel is atomized via the ultrasonic fuel atomization mechanism, and is then transported by the mist-transporting booster pump to the methanol fuel cell body for chemical reactions to be converted into electrical energy.
Claims
1. An ultrasonic methanol fuel cell system converting liquid fuel to gas fuel, comprising a methanol fuel cell body (1), which comprises a fuel input port (11), a fuel output port (12), an oxidant input port (13), and an oxidant output port (14); the ultrasonic methanol fuel cell system is characterized by also comprising an ultrasonic fuel atomization mechanism (2) and a mist-transporting booster pump (3), wherein: the ultrasonic fuel atomization mechanism (2) comprises a fuel storage chamber (21), an ultrasonic atomizer module (22), a mist output pipe (23) and an internal pressure equalizer (24); the ultrasonic atomizer module (22) is provided at a bottom of the fuel storage chamber (21), and the mist output pipe (23) is provided above the ultrasonic atomizer module (22); the internal pressure equalizer (24) is connected with the mist output pipe (23), and a pressure equalizing valve (241) is connected to an outer end of the internal pressure equalizer (24); the mist-transporting booster pump (3) is connected between the fuel input port (11) and the mist output pipe (23), so as to pump atomized fuel to the methanol fuel cell body (1).
2. The ultrasonic methanol fuel cell system converting liquid fuel to gas fuel of claim 1, wherein the ultrasonic fuel atomization mechanism (2) also comprises a bottom shell (25), wherein the ultrasonic atomizer module (22) is installed; the fuel storage chamber (21) is provided on the bottom shell (25); the mist output pipe (23) is provided across the fuel storage chamber (21), and is connected with the ultrasonic atomizer module (22).
3. The ultrasonic methanol fuel cell system converting liquid fuel to gas fuel of claim 2, wherein a fuel addition port (211) is further provided on the fuel storage chamber (21).
4. The ultrasonic methanol fuel cell system converting liquid fuel to gas fuel of claim 1, wherein the methanol fuel cell body (1) comprises a positive plate (4), a negative plate (5), diffusion layers (6), catalytic layers (7), polar plate flow fields (8) and a proton exchange membrane (9), wherein, the polar plate flow fields (8) are provided on both an inner side of the positive plate (4) and an inner side of the negative plate (5); the diffusion layers (6) cover the polar plate flow fields (8) on the positive plate (4) and the negative plate (5), and the catalytic layers (7) cover on the diffusion layers (6); the proton exchange membrane (9) is provided between the catalytic layers (7) on the inner sides of the positive plate (4) and of the negative plate (5); the fuel input port (11) and the fuel output port (12) are provided on an outer side of the positive plate (4); the oxidant input port (13) and the oxidant output port (14) are provided on an outer side of the negative plate (5).
5. The ultrasonic methanol fuel cell system converting liquid fuel to gas fuel of claim 4, wherein an ultrasonic component (10) is embedded in the positive plate (4).
6. The ultrasonic methanol fuel cell system converting liquid fuel to gas fuel of claim 4, wherein an ultrasonic component (10) is embedded in the negative plate (5).
7. The ultrasonic methanol fuel cell system converting liquid fuel to gas fuel of claim 4, wherein the proton exchange membrane (9) is further provided with a side frame (20), wherein ultrasonic components (10) are embedded.
8. The ultrasonic methanol fuel cell system converting liquid fuel to gas fuel of claim 1, further comprising a dynamic self-balancing mechanism (40), a middle position of which is tiltably connected to a bottom of the ultrasonic fuel atomization mechanism (2), and four lateral sides of the dynamic self-balancing mechanism (40) are tiltably connected with lateral sides of the ultrasonic fuel atomization mechanism (2) respectively, such that the ultrasonic fuel atomization mechanism (2) is kept in a balanced state through the dynamic self-balancing mechanism (40).
9. The ultrasonic methanol fuel cell system converting liquid fuel to gas fuel of claim 8, wherein the dynamic self-balancing mechanism (40) comprises a base mounting seat (401), universal joints (402), an electric gyroscope (403), and a plurality of modifying and regulating motors (404); the base mounting seat (401) is connected with the bottom of the ultrasonic fuel atomization mechanism (2) through one of the universal joints (402); the modifying and regulating motors (404) are connected with lateral sides of an upper surface of the base mounting seat (401), and the modifying and regulating motors (404) are respectively connected with the lateral sides of the ultrasonic fuel atomization mechanism (2) through other corresponding universal joints (402); the electric gyroscope (403) is installed on a bottom surface of the ultrasonic fuel atomization mechanism (2).
10. The ultrasonic methanol fuel cell system converting liquid fuel to gas fuel of claim 9, wherein each of the modifying and regulating motors (404) comprises a vertical support (4041), a horizontal push rod (4042), and a motor (4043); a bottom end of the vertical support (4041) is connected to the base mounting seat (401); the motor (4043) is installed on a top end of the vertical support (4041); one end of the horizontal push rod (4042) is connected to the motor (4043), and another end of the horizontal push rod (4042) is connected to a corresponding universal joint (402).
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0009]
[0010]
[0011]
DETAILED DESCRIPTION OF THE INVENTION
[0012] As shown in
[0013] The ultrasonic fuel atomization mechanism 2 is designed to form a relatively integrated structure to be easily installed on a corresponding equipment in practical application. As shown in
[0014] As shown in
[0015] As shown in
[0016] An outer surface of each of the ultrasonic components 10 is covered with an insulating and sealing protective case. The ultrasonic components 10 are ultrasonic transducers of 1 MHz or above, or ultrasonic vibration motors of 10,000 revolutions per minute or above, to obtain better ultrasonic cavitation effect and performance. In addition, the ultrasonic components 10 may be flat-shaped or strip-shaped depending on their positions in the cell.
[0017] In addition, in order to ensure thorough chemical reaction of the atomized fuel after entering the cell and sufficient stay of the atomized fuel before leaving the cell, as shown in
[0018] As shown in
[0019] To achieve simple structure, low production cost, high reliability and easy realization of the dynamic self-balancing mechanism 40, as shown in
[0020] To achieve simple structure, easy production and low production cost of the regulating motors 404, as shown in
[0021] In actual implementation, this invention generally comprises a controller or a MCU to control the operation of the ultrasonic components 10, the dynamic self-balancing mechanism 40 and the mist-transporting booster pump 3. The controller or the MCU comprises a circuit control board; beside, a MCU programmable main control chip as well as a Wi-Fi communication module or a Bluetooth® communication module may be configured onto the circuit control board. Together with a corresponding application program written and installed on smart phones and tablet computers, etc., wireless communication and control will be achieved. This invention may also be operated by wire control or remote control.