TWI709278B - A gas pressure reducing device, a fuel cell system and an electric vehicle - Google Patents

A gas pressure reducing device, a fuel cell system and an electric vehicle Download PDF

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TWI709278B
TWI709278B TW108129694A TW108129694A TWI709278B TW I709278 B TWI709278 B TW I709278B TW 108129694 A TW108129694 A TW 108129694A TW 108129694 A TW108129694 A TW 108129694A TW I709278 B TWI709278 B TW I709278B
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gas
fuel cell
reaction
rotating shaft
rotating
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TW108129694A
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TW202109956A (en
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李其源
陳嘉鴻
溫世豪
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元智大學
泓明科技股份有限公司
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    • YGENERAL 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
    • Y02TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
    • Y02EREDUCTION OF GREENHOUSE GAS [GHG] EMISSIONS, RELATED TO ENERGY GENERATION, TRANSMISSION OR DISTRIBUTION
    • Y02E60/00Enabling technologies; Technologies with a potential or indirect contribution to GHG emissions mitigation
    • Y02E60/30Hydrogen technology
    • Y02E60/50Fuel cells

Abstract

The invention discloses a gas pressure reducing device, a fuel cell system including the gas pressure reducing device, and an electric vehicle including the fuel cell system. The gas pressure reduction device includes a pneumatic power generation module including a power generator and a pneumatic rotating assembly. The pneumatic rotating assembly has a gas inlet port and a gas discharge port. The pneumatic rotating assembly includes a rotating shaft for connection to the power generator. The rotating shaft will be driven to rotate when the reaction gas supplied by the gas supply device enters the pneumatic rotating assembly through the gas inlet port. The power generator can be driven by the rotating shaft to generate electric energy. The reaction gas with lower pressure discharged through the power generator will into the fuel cell. The high-pressure reaction gas supplied by the gas supply device, after passing through the generator, the pressure of the gas will be reduced to meet the pressure required by the fuel cell, and at the same time the generator can generate electric energy.

Description

氣體降壓裝置、燃料電池系統及電動車Gas pressure reduction device, fuel cell system and electric vehicle

本發明涉及一種氣體降壓裝置,特別涉及一種應用於燃料電池系統中的氣體降壓裝置。 The invention relates to a gas pressure reducing device, in particular to a gas pressure reducing device applied to a fuel cell system.

現有使用燃料電池的電動車,大多會在電動車上裝載有高壓氣瓶,高壓氣瓶內儲存有燃料電池所需的氫氣。由於高壓氣瓶內所儲存的是高壓氫氣,因此,由高壓氣瓶排出的氫氣,必須先通過氣體降壓裝置,來降低氫氣的氣壓,通過氣體降壓裝置降低氣壓的氫氣,才可被送入燃料電池中進行化學反應。而,在降低氣體的壓力時,將會浪費了許多的能量。 Most of the existing electric vehicles that use fuel cells are equipped with high-pressure gas cylinders, and the high-pressure gas cylinders store hydrogen required by the fuel cell. Since the high-pressure gas cylinders store high-pressure hydrogen, the hydrogen discharged from the high-pressure cylinders must first pass through a gas pressure reduction device to reduce the pressure of the hydrogen gas, and the hydrogen whose pressure is reduced by the gas pressure reduction device can be sent Into the fuel cell for chemical reactions. However, when reducing the pressure of the gas, a lot of energy will be wasted.

本發明公開一種氣體降壓裝置、燃料電池系統及電動車,主要用以改善現有的燃料電池,在降低高壓反應氣體的過程中,浪費了許多的能量的問題。 The invention discloses a gas pressure reducing device, a fuel cell system and an electric vehicle, which are mainly used to improve the existing fuel cell. In the process of reducing high-pressure reaction gas, many energy problems are wasted.

本發明的其中一個實施例公開一種氣體降壓裝置,其用以連接一供氣設備及一燃料電池,氣體降壓裝置用以降低供氣設備所提供的反應氣體的氣體壓力,以使反應氣體的氣體壓力先降低至一預定氣壓值後,再進入燃料電池,氣體降壓裝置包含:一氣動發電模組。氣動發電模組包含一發電機及一氣動旋轉組件。氣動旋轉組件具有一氣體進入口及一氣體排出口,氣體進入口用以連接供氣設備,氣體排出口用以連接燃料電池的一反應氣體進入口;氣動旋轉組件包含一旋轉軸,旋轉軸與發電機相連接。其中,當供氣設備所提供的反應氣體通過氣體進入口進入氣動旋轉組件中,而驅動旋轉 軸轉動時,發電機將被旋轉軸帶動而對應產生電能。其中,氣動旋轉組件包含:一殼體,其具有氣體進入口及氣體排出口,且殼體內部具有一容置空間;多個旋轉片體,其彼此間隔地相互固定,多個旋轉片體設置於殼體內,而對應位於容置空間中;旋轉軸,其一部分位於容置空間中,旋轉軸的一部分外露於殼體,旋轉軸露出於殼體的一部分與發電機相連接;其中,當反應氣體通過氣體進入口進入容置空間中時,反應氣體將流入彼此相鄰的兩個旋轉片體之間的間隙,而基於邊界層效應,多個旋轉片體將相對於殼體旋轉,而旋轉軸將隨多個旋轉片體一同相對於殼體旋轉。 One of the embodiments of the present invention discloses a gas pressure reducing device, which is used to connect a gas supply device and a fuel cell. The gas pressure reducing device is used to reduce the gas pressure of the reaction gas provided by the gas supply device to make the reaction gas The gas pressure is first reduced to a predetermined pressure value before entering the fuel cell. The gas pressure reduction device includes: a pneumatic power generation module. The pneumatic power generation module includes a generator and a pneumatic rotating component. The pneumatic rotating assembly has a gas inlet and a gas outlet. The gas inlet is used to connect to the gas supply equipment, and the gas outlet is used to connect to a reaction gas inlet of the fuel cell; the pneumatic rotating assembly includes a rotating shaft, a rotating shaft and The generator is connected. Among them, when the reaction gas provided by the gas supply device enters the pneumatic rotating assembly through the gas inlet, the rotation is driven When the shaft rotates, the generator will be driven by the rotating shaft to generate electricity accordingly. Among them, the pneumatic rotating assembly includes: a housing with a gas inlet and a gas outlet, and an accommodating space inside the housing; a plurality of rotating plates, which are fixed to each other at intervals, and a plurality of rotating plates are arranged In the housing, and correspondingly located in the accommodating space; a part of the rotating shaft is located in the accommodating space, a part of the rotating shaft is exposed from the housing, and a part of the rotating shaft exposed from the housing is connected to the generator; When the gas enters the accommodating space through the gas inlet, the reaction gas will flow into the gap between the two adjacent rotating plates, and based on the boundary layer effect, the multiple rotating plates will rotate relative to the shell. The shaft will rotate relative to the housing along with the multiple rotating sheets.

本發明的其中一個實施例公開一種燃料電池系統,其用以與一供氣設備連接,供氣設備用以提供一反應氣體,燃料電池系統包含:至少一燃料電池及一氣體降壓裝置。燃料電池包含一第一反應氣體入口、一第二反應氣體入口及一反應產物排出口,分別由第一反應氣體入口及第二反應氣體進入燃料電池的反應氣體,能於燃料電池中進行化學反應,從而產生一反應產物及一第一電能,反應產物能通過反應產物排出口向外排出。氣體降壓裝置連接供氣設備及第一反應氣體入口,氣體降壓裝置用以使供氣設備所提供的反應氣體的氣體壓力先降低至一預定氣壓值後,再進入燃料電池。氣體降壓裝置包含:一氣動發電模組。氣動發電模組包含一發電機及一氣動旋轉組件。氣動旋轉組件具有一氣體進入口及一氣體排出口,氣體進入口用以連接供氣設備,氣體排出口用以連接燃料電池的一反應氣體進入口;氣動旋轉組件包含一旋轉軸,旋轉軸與發電機相連接。其中,當供氣設備所提供的反應氣體通過氣體進入口進入氣動旋轉組件中,而驅動旋轉軸轉動時,發電機將被旋轉軸帶動而對應產生一第二電能。其中,氣動旋轉組件包含:一殼體,其具有氣體進入口及氣體排出口,且殼體內部具有一容置空間;多個旋轉片體,其彼此間隔地相互固定,多個旋轉片體設置於殼體內,而對應位於容置空間中;旋轉軸,其一部分位於容置空間中,旋轉軸的一部分外露於殼體, 旋轉軸露出於殼體的一部分與發電機相連接;其中,當反應氣體通過氣體進入口進入容置空間中時,反應氣體將流入彼此相鄰的兩個旋轉片體之間的間隙,而基於邊界層效應,多個旋轉片體將相對於殼體旋轉,而旋轉軸將隨多個旋轉片體一同相對於殼體旋轉。 One embodiment of the present invention discloses a fuel cell system, which is used to connect with a gas supply device for providing a reaction gas. The fuel cell system includes: at least one fuel cell and a gas pressure reducing device. The fuel cell includes a first reaction gas inlet, a second reaction gas inlet, and a reaction product discharge outlet. The reaction gas that enters the fuel cell from the first reaction gas inlet and the second reaction gas, respectively, can carry out chemical reactions in the fuel cell , Thereby generating a reaction product and a first electric energy, and the reaction product can be discharged through the reaction product outlet. The gas pressure reducing device is connected to the gas supply device and the first reaction gas inlet, and the gas pressure reducing device is used to reduce the gas pressure of the reaction gas provided by the gas supply device to a predetermined pressure value before entering the fuel cell. The gas pressure reducing device includes: a pneumatic power generation module. The pneumatic power generation module includes a generator and a pneumatic rotating component. The pneumatic rotating assembly has a gas inlet and a gas outlet. The gas inlet is used to connect to the gas supply equipment, and the gas outlet is used to connect to a reaction gas inlet of the fuel cell; the pneumatic rotating assembly includes a rotating shaft, a rotating shaft and The generator is connected. Wherein, when the reaction gas provided by the gas supply device enters the pneumatic rotating assembly through the gas inlet and drives the rotating shaft to rotate, the generator will be driven by the rotating shaft to correspondingly generate a second electric energy. Among them, the pneumatic rotating assembly includes: a housing with a gas inlet and a gas outlet, and an accommodating space inside the housing; a plurality of rotating plates, which are fixed to each other at intervals, and a plurality of rotating plates are arranged In the housing and correspondingly located in the accommodating space; a part of the rotating shaft is located in the accommodating space, and a part of the rotating shaft is exposed outside the housing, The part of the rotating shaft exposed from the shell is connected to the generator; wherein, when the reaction gas enters the accommodating space through the gas inlet, the reaction gas will flow into the gap between the two adjacent rotating plates, and based on Due to the boundary layer effect, multiple rotating sheets will rotate relative to the housing, and the rotating shaft will rotate with the multiple rotating sheets relative to the housing.

本發明的其中一個實施例公開一種電動車,其包含:至少一高壓氣瓶、一燃料電池系統及一儲電單元。高壓氣瓶內部用以儲存高壓反應氣體。燃料電池系統包含:至少一燃料電池及一氣體降壓裝置。燃料電池包含兩個反應氣體入口及一反應產物排出口,分別由兩個反應氣體入口進入燃料電池中的反應氣體,能於燃料電池中進行化學反應,從而產生一反應產物及一第一電能,反應產物能通過反應產物排出口向外排出。氣體降壓裝置用以使高壓氣瓶所提供的反應氣體的氣體壓力降低至一預定氣壓值,而使具有預定氣壓值的反應氣體進入燃料電池中,氣體降壓裝置包含:一氣動發電模組。氣動發電模組包含一發電機及一氣動旋轉組件。氣動旋轉組件具有一氣體進入口及一氣體排出口,氣體進入口用以連接高壓氣瓶,氣體排出口用以連接燃料電池的其中一個反應氣體進入口;氣動旋轉組件包含一旋轉軸,旋轉軸與發電機相連接。其中,當高壓氣瓶所提供的反應氣體通過氣體進入口進入氣動旋轉組件中,而驅動旋轉軸轉動時,發電機將被旋轉軸帶動而對應產生一第二電能。儲電單元用以儲存燃料電池系統所產生的第一電能及第二電能,儲電單元作為電動車運行時所需的電力來源。其中,氣動旋轉組件包含:一殼體,其具有氣體進入口及氣體排出口,且殼體內部具有一容置空間;多個旋轉片體,其彼此間隔地相互固定,多個旋轉片體設置於殼體內,而對應位於容置空間中;旋轉軸,其一部分位於容置空間中,旋轉軸的一部分外露於殼體,旋轉軸露出於殼體的一部分與發電機相連接;其中,當反應氣體通過氣體進入口進入容置空間中時,反應氣體將流入彼此相鄰的兩個旋轉片 體之間的間隙,而基於邊界層效應,多個旋轉片體將相對於殼體旋轉,而旋轉軸將隨多個旋轉片體一同相對於殼體旋轉。 One embodiment of the present invention discloses an electric vehicle, which includes: at least one high-pressure gas cylinder, a fuel cell system, and an electric storage unit. The inside of the high-pressure gas cylinder is used to store high-pressure reaction gas. The fuel cell system includes: at least one fuel cell and a gas pressure reducing device. The fuel cell includes two reaction gas inlets and a reaction product discharge outlet. The reaction gas entering the fuel cell through the two reaction gas inlets respectively can undergo chemical reactions in the fuel cell to generate a reaction product and a first electrical energy. The reaction product can be discharged through the reaction product discharge port. The gas pressure reduction device is used to reduce the gas pressure of the reaction gas provided by the high-pressure gas cylinder to a predetermined pressure value, so that the reaction gas with the predetermined pressure value enters the fuel cell. The gas pressure reduction device includes: a pneumatic power generation module . The pneumatic power generation module includes a generator and a pneumatic rotating component. The pneumatic rotating assembly has a gas inlet and a gas outlet. The gas inlet is used to connect a high-pressure gas cylinder, and the gas outlet is used to connect to one of the reaction gas inlets of the fuel cell; the pneumatic rotating assembly includes a rotating shaft and a rotating shaft Connect with generator. Wherein, when the reaction gas provided by the high-pressure gas cylinder enters the pneumatic rotating assembly through the gas inlet and drives the rotating shaft to rotate, the generator will be driven by the rotating shaft to correspondingly generate a second electric energy. The power storage unit is used to store the first electrical energy and the second electrical energy generated by the fuel cell system, and the power storage unit is used as the power source required by the electric vehicle during operation. Among them, the pneumatic rotating assembly includes: a housing with a gas inlet and a gas outlet, and an accommodating space inside the housing; a plurality of rotating plates, which are fixed to each other at intervals, and a plurality of rotating plates are arranged In the housing, and correspondingly located in the accommodating space; a part of the rotating shaft is located in the accommodating space, a part of the rotating shaft is exposed from the housing, and a part of the rotating shaft exposed from the housing is connected to the generator; When the gas enters the accommodating space through the gas inlet, the reaction gas will flow into the two adjacent rotating plates Based on the boundary layer effect, the multiple rotating sheets will rotate relative to the shell, and the rotating shaft will rotate with the multiple rotating sheets relative to the shell.

綜上所述,本發明的氣體降壓裝置、燃料電池系統及電動車,在使高氣壓的反應氣體降至符合燃料電池所需的低壓的過程中,將會額外產生電能,而可改善傳統的燃料電池系統,在將反應氣體的氣壓降低的過程,會有能量浪費的問題。 In summary, the gas pressure reduction device, fuel cell system, and electric vehicle of the present invention will generate additional electrical energy during the process of reducing the high pressure reaction gas to the low pressure required by the fuel cell, which can improve the traditional In the fuel cell system, there is a problem of energy waste in the process of reducing the pressure of the reaction gas.

為能更進一步瞭解本發明的特徵及技術內容,請參閱以下有關本發明的詳細說明與附圖,但是此等說明與附圖僅用來說明本發明,而非對本發明的保護範圍作任何的限制。 In order to further understand the features and technical content of the present invention, please refer to the following detailed description and drawings of the present invention, but these descriptions and drawings are only used to illustrate the present invention, and do not make any claims about the protection scope of the present invention. limit.

A:電動車 A: Electric car

B:燃料電池系統 B: Fuel cell system

B1:燃料電池 B1: Fuel cell

B11:反應氣體進入口 B11: Reactive gas inlet

B12:反應產物排出口 B12: Reaction product discharge port

C:供氣設備 C: gas supply equipment

D:儲電單元 D: Power storage unit

1:氣體降壓裝置 1: Gas pressure reduction device

10:氣動發電模組 10: Pneumatic power generation module

11:發電機 11: Generator

111:旋轉軸 111: Rotation axis

12:氣動旋轉組件 12: Pneumatic rotating assembly

121:殼體 121: Shell

121A:氣體進入口 121A: Gas inlet

121B:氣體排出口 121B: Gas outlet

122:旋轉片體 122: Rotating slice

123:旋轉軸 123: Rotation axis

13:聯軸器 13: Coupling

20:控制模組 20: Control module

30:流量控制模組 30: Flow control module

31:流量閥 31: Flow valve

32:偵測器 32: Detector

E1:第一電能 E1: First electric energy

E2:第二電能 E2: second electrical energy

SP:容置空間 SP: housing space

L:間隙 L: gap

圖1為本發明的氣體降壓裝置的方塊示意圖。 Figure 1 is a block diagram of the gas pressure reduction device of the present invention.

圖2為本發明的氣體降壓裝置的氣動旋轉組件的立體示意圖。 Fig. 2 is a three-dimensional schematic diagram of the pneumatic rotating assembly of the gas pressure reducing device of the present invention.

圖3為本發明的氣體降壓裝置的氣動旋轉組件的前視示意圖。 Fig. 3 is a schematic front view of the pneumatic rotary assembly of the gas pressure reducing device of the present invention.

圖4為本發明的氣體降壓裝置的氣動發電模組的側視示意圖。 4 is a schematic side view of the pneumatic power generation module of the gas pressure reduction device of the present invention.

圖5為本發明的氣體降壓裝置的另一實施例的方塊示意圖。 Fig. 5 is a block diagram of another embodiment of the gas pressure reducing device of the present invention.

圖6為本發明的燃料電池系統的方塊示意圖。 Fig. 6 is a block diagram of the fuel cell system of the present invention.

圖7為本發明的電動車的方塊示意圖。 Fig. 7 is a block diagram of the electric vehicle of the present invention.

於以下說明中,如有指出請參閱特定圖式或是如特定圖式所示,其僅是用以強調於後續說明中,所述及的相關內容大部份出現於該特定圖式中,但不限制該後續說明中僅可參考所述特定圖式。 In the following description, if it is pointed out, please refer to the specific drawing or as shown in the specific drawing, it is only used to emphasize in the subsequent description, and most of the related content appears in the specific drawing. However, it is not limited to only refer to the specific drawings in this subsequent description.

請參閱圖1,其為本發明的氣體降壓裝置的方塊示意圖。如圖所示,氣體降壓裝置1用以連接一燃料電池B1及一供氣設備C,氣體降壓裝置1用以降低供氣設備C所提供的反應氣體的氣體壓力,以使符合一預定氣壓值的反應氣體進入燃料電池B1。於此所指的供氣設備C可以是依據氣體降壓裝置1實際應用的場景來決定,舉例來說,當氣體降壓裝置1應用於使用燃料電池的電動車中時,所述供氣設備C可以是高壓氣瓶;當氣體降壓裝置應用於燃料電池的充氣站中時,供氣設備C可以是可以連續供氣的機台。 Please refer to FIG. 1, which is a block diagram of the gas pressure reduction device of the present invention. As shown in the figure, the gas pressure reduction device 1 is used to connect a fuel cell B1 and a gas supply device C, and the gas pressure reduction device 1 is used to reduce the gas pressure of the reaction gas provided by the gas supply device C so as to meet a predetermined The reaction gas of the pressure value enters the fuel cell B1. The gas supply device C referred to here may be determined according to the actual application scenario of the gas pressure reduction device 1. For example, when the gas pressure reduction device 1 is applied to an electric vehicle using a fuel cell, the gas supply device C can be a high-pressure gas cylinder; when the gas pressure reduction device is used in a fuel cell charging station, the gas supply device C can be a machine that can continuously supply gas.

氣動發電模組10包含:一發電機11及一氣動旋轉組件12。氣動旋轉組件12具有一氣體進入口121A及一氣體排出口121B,氣體進入口121A用以連接供氣設備C,氣體排出口121B用以連接燃料電池B1的一反應氣體進入口B11。氣動旋轉組件12包含一旋轉軸123(如圖2所示),旋轉軸123與發電機11相連接。在實際應用中,氣動旋轉組件12的氣體進入口121A可以是通過至少一管體(圖未示)與供氣設備C相連接,氣動旋轉組件12的氣體排出口121B同樣也可以是通過至少一管體與燃料電池B1的反應氣體進入口B11相連接。 The pneumatic power generation module 10 includes a generator 11 and a pneumatic rotating component 12. The pneumatic rotary assembly 12 has a gas inlet 121A and a gas outlet 121B. The gas inlet 121A is used to connect to the gas supply device C, and the gas outlet 121B is used to connect to a reaction gas inlet B11 of the fuel cell B1. The pneumatic rotating assembly 12 includes a rotating shaft 123 (as shown in FIG. 2 ), and the rotating shaft 123 is connected to the generator 11. In practical applications, the gas inlet 121A of the pneumatic rotary assembly 12 can be connected to the gas supply device C through at least one tube (not shown), and the gas outlet 121B of the pneumatic rotary assembly 12 can also be connected through at least one The tube body is connected to the reaction gas inlet B11 of the fuel cell B1.

當供氣設備C所提供的反應氣體通過氣體進入口121A進入氣動旋轉組件12中,並驅動旋轉軸123轉動時,發電機11將被旋轉軸123帶動而對應產生電能。在實際應用中,發電機11的形式、尺寸等,可以是依據需求變化,任何可以是通過旋轉軸帶動而產生電能的發電機,皆屬於本實施例所述的發電機11具體可實施的範圍中。 When the reaction gas provided by the gas supply device C enters the pneumatic rotating assembly 12 through the gas inlet 121A and drives the rotating shaft 123 to rotate, the generator 11 will be driven by the rotating shaft 123 to generate electric energy accordingly. In practical applications, the form, size, etc. of the generator 11 can be changed according to demand, and any generator that can be driven by a rotating shaft to generate electrical energy belongs to the specific implementable range of the generator 11 described in this embodiment. in.

當供氣設備C所提供的反應氣體通過氣體進入口121A進入氣動旋轉組件12中,而驅動旋轉軸123轉動時,反應氣體的氣體壓力將隨之降低至預定氣壓值,而符合預定氣壓值的反應氣體將可對應通過氣動旋轉組件12的氣體排出口121B向外排出。也就是說,由氣動旋轉組件12的氣體排出 口121B排出的反應氣體的氣體壓力基本上是符合預定氣壓值,且預定氣壓值低於由氣體進入口121A進入氣動旋轉組件12的反應氣體的氣壓值。 When the reaction gas provided by the gas supply device C enters the pneumatic rotary assembly 12 through the gas inlet 121A, and the rotating shaft 123 is driven to rotate, the gas pressure of the reaction gas will be reduced to a predetermined pressure value, which meets the predetermined pressure value. The reaction gas can correspondingly be discharged outward through the gas discharge port 121B of the pneumatic rotary assembly 12. In other words, the gas discharged by the pneumatic rotating assembly 12 The gas pressure of the reaction gas discharged from the port 121B basically conforms to the predetermined pressure value, and the predetermined pressure value is lower than the pressure value of the reaction gas entering the pneumatic rotary assembly 12 from the gas inlet 121A.

請一併參閱圖2至圖4,圖2顯示為本發明的氣體降壓裝置的氣動旋轉組件的其中一個實施例的立體示意圖,圖3顯示為本發明的氣體降壓裝置的氣動旋轉組件的其中一個實施例的正面示意圖,圖4顯示為本發明的氣體降壓裝置的氣動發電模組的其中一個實施例的側視示意圖。 Please refer to FIGS. 2 to 4 together. FIG. 2 shows a perspective view of one embodiment of the pneumatic rotating assembly of the gas pressure reducing device of the present invention, and FIG. 3 shows the pneumatic rotating assembly of the gas pressure reducing device of the present invention. A schematic front view of one of the embodiments. FIG. 4 shows a schematic side view of one of the embodiments of the pneumatic power generation module of the gas pressure reduction device of the present invention.

氣動旋轉組件12可以是包含一殼體121、多個旋轉片體122及旋轉軸123。殼體121具有氣體進入口121A及氣體排出口121B,且殼體121內部具有一容置空間SP。多個旋轉片體122彼此間隔地相互固定,多個旋轉片體122設置於殼體121內,而對應位於容置空間SP中。在實際應用中,各個旋轉片體122可以是表面光滑的圓形片體,但不以此為限。關於氣體進入口121A的數量及其設置位置,可以是依據需求變化,圖中所示僅為其中一示範態樣,但為了使氣動旋轉組件12具有較好的旋轉效能,在旋轉片體122為圓盤狀的實施例中,氣體進入口121A可以是大致設置於旋轉片體122的切線方向。氣體排出口121B的設置位置同樣可以是依據需求變化,不以圖中所示為限。 The pneumatic rotating assembly 12 may include a housing 121, a plurality of rotating sheets 122 and a rotating shaft 123. The housing 121 has a gas inlet 121A and a gas outlet 121B, and the housing 121 has an accommodating space SP inside. The plurality of rotating sheets 122 are fixed to each other at intervals, and the plurality of rotating sheets 122 are disposed in the housing 121 and correspondingly located in the accommodating space SP. In practical applications, each rotating sheet 122 may be a round sheet with a smooth surface, but it is not limited to this. Regarding the number of gas inlets 121A and their setting positions, they can be changed according to requirements. The figure shown is only one of the exemplary modes, but in order to make the pneumatic rotary assembly 12 have better rotation efficiency, the rotary plate 122 is In the disc-shaped embodiment, the gas inlet 121A may be substantially arranged in the tangential direction of the rotating sheet body 122. The location of the gas outlet 121B can also be changed according to demand, and is not limited to what is shown in the figure.

旋轉軸123的一部分位於容置空間SP中,且旋轉軸123與多個旋轉片體122相互固定。旋轉軸123的一部分外露於殼體121外。旋轉軸123露出於殼體121的一部分用以與發電機11相連接;在實際應用中,露出於殼體121外的旋轉軸123可以是依據需求通過各式的聯軸器13(如圖4所示)等構件與發電機11的旋轉軸111相連接。 A part of the rotating shaft 123 is located in the accommodating space SP, and the rotating shaft 123 and the plurality of rotating pieces 122 are fixed to each other. A part of the rotating shaft 123 is exposed outside the housing 121. A part of the rotating shaft 123 exposed from the housing 121 is used to connect with the generator 11; in practical applications, the rotating shaft 123 exposed outside the housing 121 can be passed through various couplings 13 (as shown in Figure 4). (Shown) and other components are connected to the rotating shaft 111 of the generator 11.

當反應氣體通過氣體進入口121A進入容置空間SP中時,反應氣體將流入彼此相鄰的兩個旋轉片體122之間的間隙L(如圖4所示),基於邊界層效應(boundary layer effect),多個旋轉片體122將相對於殼體121旋轉。當旋轉片體122相對於殼體121旋轉時,與多個旋轉片體122相連接的旋轉軸 123將一同被帶動而相對於殼體121旋轉。當旋轉軸123隨多個旋轉片體122旋轉時,旋轉軸123將會驅動發電機11的旋轉軸111旋轉,從而使發電機11產生電能。 When the reaction gas enters the accommodating space SP through the gas inlet 121A, the reaction gas will flow into the gap L between the two adjacent rotating plates 122 (as shown in FIG. 4), based on the boundary layer effect (boundary layer effect). effect), the plurality of rotating plates 122 will rotate relative to the housing 121. When the rotating piece 122 rotates relative to the housing 121, the rotating shaft connected to the plurality of rotating pieces 122 123 will be driven together to rotate relative to the housing 121. When the rotating shaft 123 rotates with the plurality of rotating pieces 122, the rotating shaft 123 will drive the rotating shaft 111 of the generator 11 to rotate, so that the generator 11 generates electric energy.

當然,在實際應用中,殼體121對應於旋轉軸123露出的位置是設置有滾珠軸承等相關構件,藉此,多個旋轉片體122旋轉時,旋轉軸123則能順暢地相對於殼體121旋轉。特別說明的是,彼此相鄰的兩個旋轉片體122之間的間隙L、旋轉片體122的數量及其外型,皆可以依據需求變化,只要高壓氣體流入彼此相鄰的兩個旋轉片體122之間的間隙L中,而兩個旋轉片體122可以藉由邊界層效應而旋轉,皆屬於本實施例可具體實施的範圍中。 Of course, in practical applications, the shell 121 corresponds to the exposed position of the rotating shaft 123 is provided with related components such as ball bearings, so that when the plurality of rotating pieces 122 rotate, the rotating shaft 123 can smoothly relative to the shell 121 rotation. In particular, the gap L between the two adjacent rotating plates 122, the number of rotating plates 122 and their appearance can all be changed according to requirements, as long as the high-pressure gas flows into the two adjacent rotating plates In the gap L between the bodies 122, and the two rotating sheets 122 can be rotated by the boundary layer effect, they all fall within the practical implementation range of this embodiment.

特別說明的是,在具體的實施中,可以是通過改變旋轉片體122的尺寸、旋轉片體122的數量、氣體排出口121B的尺寸、彼此相鄰的兩個旋轉片體122之間的間隙寬度等方式,來改變通過氣體排出口121B排出的反應氣體的氣壓值,據以使由氣體排出口121B排出的反應氣體的氣壓,可以符合所述預定氣壓值。當然,在不同的應用中,還可以是在用以連接氣體排出口121B與燃料電池B1的反應氣體進入口B11的管體上,設置有相關的氣壓調節裝置,據以調整送入燃料電池B1的反應氣體的氣體壓力。 In particular, in the specific implementation, it can be achieved by changing the size of the rotating sheet 122, the number of rotating sheet 122, the size of the gas outlet 121B, and the gap between two adjacent rotating sheets 122. The pressure value of the reaction gas discharged through the gas discharge port 121B is changed by means such as width, so that the pressure value of the reaction gas discharged from the gas discharge port 121B can meet the predetermined pressure value. Of course, in different applications, it can also be used to connect the gas outlet 121B with the reactant gas inlet B11 of the fuel cell B1 with a related air pressure regulating device to adjust the pressure sent to the fuel cell B1. The gas pressure of the reaction gas.

依上所述,由供氣設備C所排出的高壓反應氣體,通過本發明的氣動發電模組10後,不但可以使反應氣體的氣壓降低至預定氣壓,於降低反應氣體的氣壓的過程中,還可以產生額外的電能。如圖1所示,也就是說,本發明的氣體降壓裝置1連接供氣設備C及燃料電池B1後,除了燃料電池B1可以產生第一電能E1外,氣體降壓裝置1還會產生額外的第二電能E2。 As mentioned above, after the high-pressure reaction gas discharged from the gas supply device C passes through the pneumatic power generation module 10 of the present invention, not only can the pressure of the reaction gas be reduced to a predetermined pressure, but in the process of reducing the pressure of the reaction gas, It can also generate additional power. As shown in Figure 1, that is to say, after the gas pressure reduction device 1 of the present invention is connected to the gas supply equipment C and the fuel cell B1, in addition to the fuel cell B1 that can generate the first electric energy E1, the gas pressure reduction device 1 will also generate additional The second electric energy E2.

請參閱圖5,其顯示為本發明的氣體降壓裝置的另一實施例的方塊示意圖。如圖所示,本實施例與前述實施例最大不同之處在於:氣體降壓裝置1還可以包含一控制模組20及一流量控制模組30。流量控制模組30可以包含一流量閥31及一偵測器32。流量閥31與氣體進入口121A連接;具體 來說,氣體進入口121A與供氣設備C可以是通過管體相連接,而流量閥31則可以是設置於管體上。 Please refer to FIG. 5, which shows a block diagram of another embodiment of the gas pressure reducing device of the present invention. As shown in the figure, the biggest difference between this embodiment and the previous embodiment is that the gas pressure reducing device 1 may further include a control module 20 and a flow control module 30. The flow control module 30 may include a flow valve 31 and a detector 32. The flow valve 31 is connected to the gas inlet 121A; In other words, the gas inlet 121A and the gas supply device C may be connected through a pipe body, and the flow valve 31 may be arranged on the pipe body.

偵測器32與氣體排出口121B連接;具體來說,氣體排出口121B可以是通過管體與燃料電池B1的反應氣體進入口B11相連接,而偵測器32則可以是設置於管體上。偵測器32可以是用來偵測由氣體排出口121B排出的反應氣體的氣體壓力、氣體流量的至少一個,但不以此為限,偵測器32也可以是依據需求用來偵測反應氣體的溫度等。另外,偵測器32的數量不以單一個為限;在偵測器32的數量為兩個以上的實施例中,不同的偵測器32可以是用來偵測反應氣體的不同數值。 The detector 32 is connected to the gas outlet 121B; specifically, the gas outlet 121B can be connected to the reaction gas inlet B11 of the fuel cell B1 through a tube, and the detector 32 can be arranged on the tube. . The detector 32 can be used to detect at least one of the gas pressure and the gas flow rate of the reaction gas discharged from the gas outlet 121B, but is not limited to this. The detector 32 can also be used to detect the reaction according to requirements. The temperature of the gas, etc. In addition, the number of detectors 32 is not limited to a single one; in an embodiment where the number of detectors 32 is more than two, different detectors 32 may be used to detect different values of the reaction gas.

控制模組20電性連接流量閥31及偵測器32,控制模組20能依據偵測器32所偵測的結果,對應控制流量閥31作動,以改變進入氣體進入口121A的反應氣體的流量、氣體壓力的至少一個。舉例來說,當控制模組20接收偵測器32所偵測的結果,而判斷由氣體排出口121B排出的反應氣體的氣體壓力或是氣體流量低於預定的氣體壓力或預定的氣壓流量時,控制模組20則可以是對應控制流量閥31,以提高反應氣體通過氣體進入口121A進入氣動旋轉組件12的流量。其中,控制模組20例如可以是以無線或是有線的方式,與流量閥31及偵測器32相連接。 The control module 20 is electrically connected to the flow valve 31 and the detector 32. The control module 20 can control the flow valve 31 to act according to the detection result of the detector 32 to change the reaction gas entering the gas inlet 121A. At least one of flow rate and gas pressure. For example, when the control module 20 receives the result detected by the detector 32 and determines that the gas pressure or the gas flow rate of the reaction gas discharged from the gas outlet 121B is lower than the predetermined gas pressure or the predetermined air pressure flow rate The control module 20 may correspond to the control flow valve 31 to increase the flow rate of the reaction gas into the pneumatic rotating assembly 12 through the gas inlet 121A. Wherein, the control module 20 may be connected to the flow valve 31 and the detector 32 in a wireless or wired manner, for example.

上述所舉出的本發明的氣體降壓裝置的實施例,在具體的應用中,氣體降壓裝置1還可以是包含有一儲電單元(例如是各式充電電池)。儲電單元電性連接發電機11,據以儲存發電機11所產生的電能。儲電單元所儲存的電能則可依據需求,連接至任何需要被供電的裝置,於此不加以限制。 In the above-mentioned embodiments of the gas pressure reduction device of the present invention, in specific applications, the gas pressure reduction device 1 may also include an electric storage unit (for example, various types of rechargeable batteries). The power storage unit is electrically connected to the generator 11 to store electrical energy generated by the generator 11 accordingly. The electric energy stored in the storage unit can be connected to any device that needs to be powered according to demand, and there is no limitation here.

請參閱圖6,其顯示為本發明的燃料電池系統的方塊示意圖。如圖所示,燃料電池系統B用以與供氣設備C連接,供氣設備C用以提供一反應氣體。燃料電池系統B包含:一燃料電池B1及一氣體降壓裝置1。在實際 應用中,燃料電池系統B所包含的燃料電池B1的數量不以單一個為限;氣體降壓裝置1的數量也不以單一個為限。 Please refer to FIG. 6, which shows a block diagram of the fuel cell system of the present invention. As shown in the figure, the fuel cell system B is used to connect to a gas supply device C, and the gas supply device C is used to provide a reaction gas. The fuel cell system B includes: a fuel cell B1 and a gas pressure reducing device 1. In fact In application, the number of fuel cells B1 included in the fuel cell system B is not limited to a single one; the number of gas pressure reducing devices 1 is also not limited to a single one.

燃料電池B1包含兩個反應氣體進入口B11及一反應產物排出口B12。分別由兩個反應氣體進入口121A進入燃料電池B1的兩種反應氣體,能於燃料電池B1中進行化學反應,從而產生一反應產物及一第一電能E1。其中,反應產物能通過反應產物排出口B12向外排出。具體來說,由其中一個反應氣體進入口B11進入的反應氣體可以是氫氣,由另一個反應氣體進入口B11進入的反應氣體可以是氧氣,而所述反應產物則可以是水,但反應氣體的種類及反應產物不以此為限。 The fuel cell B1 includes two reaction gas inlet ports B11 and a reaction product outlet port B12. The two reaction gases respectively entering the fuel cell B1 through the two reaction gas inlets 121A can undergo chemical reactions in the fuel cell B1, thereby generating a reaction product and a first electrical energy E1. Among them, the reaction product can be discharged through the reaction product discharge port B12. Specifically, the reaction gas entering from one of the reaction gas inlet ports B11 may be hydrogen, the reaction gas entering from the other reaction gas inlet port B11 may be oxygen, and the reaction product may be water, but the reaction gas The types and reaction products are not limited to this.

氣體降壓裝置1連接供氣設備C及其中一個反應氣體進入口B11,氣體降壓裝置1用以降低供氣設備C所提供的反應氣體的氣體壓力,以使反應氣體的氣體壓力降低至預定氣壓值後,再進入燃料電池B1。氣體降壓裝置1的詳細說明請參閱前述實施例,於此不再贅述。供氣設備C所提供的反應氣體,通過氣體降壓裝置1後,氣體降壓裝置1的發電機11將對應產生一第二電能E2。 The gas pressure reduction device 1 is connected to the gas supply device C and one of the reaction gas inlet ports B11. The gas pressure reduction device 1 is used to reduce the gas pressure of the reaction gas provided by the gas supply device C to reduce the gas pressure of the reaction gas to a predetermined value After the air pressure value, enter the fuel cell B1. For a detailed description of the gas pressure reducing device 1, please refer to the foregoing embodiment, and will not be repeated here. After the reaction gas provided by the gas supply device C passes through the gas pressure reducing device 1, the generator 11 of the gas pressure reducing device 1 will correspondingly generate a second electric energy E2.

依上所述,本發明的燃料電池系統B運作時,可以產生兩種電能(第二電能E2及第一電能E1),而本發明的燃料電池系統B相較於傳統的燃料電池,具有更好的發電效能。 As mentioned above, the fuel cell system B of the present invention can generate two kinds of electrical energy (the second electrical energy E2 and the first electrical energy E1) when operating, and the fuel cell system B of the present invention has more advantages than traditional fuel cells. Good power generation efficiency.

值得一提的是,在燃料電池B1連接兩個供氣設備,而兩個供氣設備分別提供兩種不同的高壓反應氣體的實施例中,本發明的燃料電池系統B的燃料電池B1則可以是連接有兩個氣體降壓裝置1,兩個氣體降壓裝置1對應與燃料電池B1的兩個反應氣體進入口B11相連接,如此,兩個供氣設備C所分別提供的高壓反應氣體,通過相對應的氣體降壓裝置1後,不但會降低至預定氣壓值,同時還可以產生出額外的電能。 It is worth mentioning that in the embodiment where the fuel cell B1 is connected to two gas supply devices, and the two gas supply devices provide two different high-pressure reaction gases respectively, the fuel cell B1 of the fuel cell system B of the present invention can Two gas pressure reduction devices 1 are connected, and the two gas pressure reduction devices 1 are correspondingly connected to the two reaction gas inlets B11 of the fuel cell B1. In this way, the high pressure reaction gas provided by the two gas supply devices C respectively, After passing through the corresponding gas pressure reducing device 1, it will not only decrease to a predetermined pressure value, but also generate additional electrical energy.

請參閱圖7,其顯示為本發明的電動車的方塊示意圖。如圖所示,電動車A包含燃料電池系統B、一高壓氣瓶(即前述的供氣設備C)及一儲電單元D。燃料電池系統B用以連接高壓氣瓶,高壓氣瓶內儲存有高壓的反應氣體。燃料電池系統B包含:一燃料電池B1及一氣體降壓裝置1,與此所指的燃料電池系統B與前述實施例相同,以下將不再贅述。燃料電池系統B所產生的第二電能及第一電能能儲存於儲電單元D中,而儲電單元D用以作為電動車運行所需的電力來源。儲電單元D可以是包含有多個充電電池。本實施例所具的電動車A,除了燃料電池系統B外的其餘構件,可以是依據需求變化,例如可以是與現有利用燃料電池作為電力來源的電動車所具有的相關構件相同,於此不加以限制。 Please refer to FIG. 7, which shows a block diagram of the electric vehicle of the present invention. As shown in the figure, the electric vehicle A includes a fuel cell system B, a high-pressure gas cylinder (the aforementioned gas supply device C), and a power storage unit D. The fuel cell system B is used to connect a high-pressure gas cylinder, which stores high-pressure reaction gas. The fuel cell system B includes: a fuel cell B1 and a gas pressure reducing device 1. The fuel cell system B referred to here is the same as the foregoing embodiment, and will not be described in detail below. The second electrical energy and the first electrical energy generated by the fuel cell system B can be stored in the power storage unit D, and the power storage unit D is used as a power source for the operation of the electric vehicle. The power storage unit D may include multiple rechargeable batteries. In the electric vehicle A of this embodiment, the remaining components except the fuel cell system B can be changed according to demand. For example, it can be the same as the related components of the existing electric vehicle that uses fuel cells as a source of power. Be restricted.

本發明的電動車A由於燃料電池系統B中的氣體降壓裝置1,包含了氣動發電模組10,而能產生額外的電能,因此,本發明的電動車A所使用的燃料電池系統B相較於習知的利用燃料電池作為電力來源的電動車所使用的燃料電池系統,具有更好的發電效能。 The electric vehicle A of the present invention can generate additional electric energy because the gas pressure reduction device 1 in the fuel cell system B includes the pneumatic power generation module 10. Therefore, the fuel cell system B used in the electric vehicle A of the present invention is Compared with conventional fuel cell systems used in electric vehicles that use fuel cells as a source of electricity, it has better power generation efficiency.

綜上所述,本發明的氣體降壓裝置、燃料電池系統及電動車,在降低反應氣體的氣體壓力的同時,還可以產生額外的電能,據此,相較於傳統的燃料電池,具有更好的發電效能。 In summary, the gas pressure reduction device, fuel cell system and electric vehicle of the present invention can reduce the gas pressure of the reaction gas while also generating additional electricity. According to this, compared with the traditional fuel cell, it has more advantages. Good power generation efficiency.

以上所述僅為本發明的較佳可行實施例,非因此侷限本發明的專利範圍,故舉凡運用本發明說明書及圖式內容所做的等效技術變化,均包含於本發明的保護範圍內。 The above descriptions are only the preferred and feasible embodiments of the present invention, which do not limit the patent scope of the present invention. Therefore, all equivalent technical changes made by using the description and drawings of the present invention are included in the protection scope of the present invention. .

C:供氣設備 C: gas supply equipment

B1:燃料電池 B1: Fuel cell

B11:反應氣體進入口 B11: Reactive gas inlet

1:氣體降壓裝置 1: Gas pressure reduction device

10:氣動發電模組 10: Pneumatic power generation module

11:發電機 11: Generator

12:氣動旋轉組件 12: Pneumatic rotating assembly

121A:氣體進入口 121A: Gas inlet

121B:氣體排出口 121B: Gas outlet

E1:第二電能 E1: second electrical energy

E2:第一電能 E2: First electric energy

Claims (6)

一種氣體降壓裝置,其用以連接一供氣設備及一燃料電池,所述氣體降壓裝置用以降低所述供氣設備所提供的一反應氣體的氣體壓力,以使所述反應氣體的氣體壓力先降低至一預定氣壓值後,再進入所述燃料電池,所述氣體降壓裝置包含:一氣動發電模組,其包含:一發電機;及一氣動旋轉組件,其具有一氣體進入口及一氣體排出口,所述氣體進入口用以連接所述供氣設備,所述氣體排出口用以連接所述燃料電池的一反應氣體進入口;所述氣動旋轉組件包含一旋轉軸,所述旋轉軸與所述發電機相連接;所述氣動旋轉組件包含:一殼體,其具有所述氣體進入口及所述氣體排出口,且所述殼體內部具有一容置空間;多個旋轉片體,其彼此間隔地相互固定,多個所述旋轉片體設置於所述殼體內,而對應位於所述容置空間中;所述旋轉軸,其一部分位於所述容置空間中,所述旋轉軸的一部分外露於所述殼體,所述旋轉軸露出於所述殼體的一部分與所述發電機相連接;其中,當所述反應氣體通過所述氣體進入口進入所述容置空間中時,所述反應氣體將流入彼此相鄰的兩個所述旋轉片體之間的間隙,而基於邊界層效應,多個所述旋轉片體將相對於所述殼體旋轉,而所述旋轉軸將隨多個所述旋轉片體一同相對於所述殼體旋轉; 其中,當所述供氣設備所提供的所述反應氣體通過所述氣體進入口進入所述氣動旋轉組件中,而驅動所述旋轉軸轉動時,所述發電機將被所述旋轉軸帶動而對應產生電能。 A gas pressure reduction device is used to connect a gas supply device and a fuel cell. The gas pressure reduction device is used to reduce the gas pressure of a reaction gas provided by the gas supply device so that the reaction gas The gas pressure is first reduced to a predetermined pressure value before entering the fuel cell. The gas pressure reducing device includes: a pneumatic power generation module, which includes: a generator; and a pneumatic rotating component, which has a gas inlet And a gas outlet, the gas inlet is used to connect to the gas supply device, the gas outlet is used to connect to a reaction gas inlet of the fuel cell; the pneumatic rotating assembly includes a rotating shaft, The rotating shaft is connected to the generator; the pneumatic rotating assembly includes: a housing with the gas inlet and the gas outlet, and the housing has an accommodating space inside; A plurality of rotating pieces are fixed to each other at intervals, a plurality of the rotating pieces are arranged in the housing, and correspondingly located in the accommodating space; a part of the rotating shaft is located in the accommodating space A part of the rotating shaft is exposed to the housing, and a part of the rotating shaft exposed to the housing is connected to the generator; wherein, when the reaction gas enters the gas inlet through the gas inlet When in the accommodating space, the reaction gas will flow into the gap between the two adjacent rotating sheets, and based on the boundary layer effect, a plurality of the rotating sheets will rotate relative to the housing, The rotating shaft will rotate relative to the housing along with the plurality of rotating pieces; Wherein, when the reaction gas provided by the gas supply device enters the pneumatic rotating assembly through the gas inlet and drives the rotating shaft to rotate, the generator will be driven by the rotating shaft. Corresponding to the generation of electrical energy. 如請求項1所述的氣體降壓裝置,其中,所述氣體降壓裝置還包含一控制模組及一流量控制模組,所述流量控制模組包含一流量閥及一偵測器,所述流量閥與所述氣體進入口連接,所述偵測器與所述氣體排出口連接;所述偵測器用以偵測通過所述氣體排出口的所述反應氣體的氣體壓力、氣體流量中的至少一個;所述控制模組能依據所述偵測器所偵測的結果,對應控制所述流量閥作動,以改變通過所述氣體進入口的所述反應氣體的流量、氣體壓力中的至少一個。 The gas pressure reducing device according to claim 1, wherein the gas pressure reducing device further includes a control module and a flow control module, and the flow control module includes a flow valve and a detector, so The flow valve is connected to the gas inlet, and the detector is connected to the gas outlet; the detector is used to detect the gas pressure and gas flow rate of the reaction gas passing through the gas outlet At least one of; the control module can control the flow valve to act according to the result detected by the detector to change the flow rate of the reaction gas and the gas pressure through the gas inlet at least one. 一種燃料電池系統,其用以與一供氣設備連接,所述供氣設備用以提供一反應氣體,所述燃料電池系統包含:至少一燃料電池,其包含一第一反應氣體入口、一第二反應氣體入口及一反應產物排出口,分別由所述第一反應氣體入口及所述第二反應氣體進入所述燃料電池的反應氣體,能於所述燃料電池中進行化學反應,從而產生一反應產物及一第一電能,所述反應產物能通過所述反應產物排出口向外排出;以及一氣體降壓裝置,其連接所述供氣設備及所述第一反應氣體入口,所述氣體降壓裝置用以使所述供氣設備所提供的反應氣體的氣體壓力先降低至一預定氣壓值後,再進入所述燃料電池,所述氣體降壓裝置包含:一氣動發電模組,其包含:一發電機;及 一氣動旋轉組件,其具有一氣體進入口及一氣體排出口,所述氣體進入口用以連接所述供氣設備,所述氣體排出口用以連接所述燃料電池的一反應氣體進入口;所述氣動旋轉組件包含一旋轉軸,所述旋轉軸與所述發電機相連接;其中,所述氣動旋轉組件包含:一殼體,其具有所述氣體進入口及所述氣體排出口,且所述殼體內部具有一容置空間;多個旋轉片體,其彼此間隔地相互固定,多個所述旋轉片體設置於所述殼體內,而對應位於所述容置空間中;所述旋轉軸,其一部分位於所述容置空間中,所述旋轉軸的一部分外露於所述殼體,所述旋轉軸露出於所述殼體的一部分與所述發電機相連接;其中,當所述反應氣體通過所述氣體進入口進入所述容置空間中時,所述反應氣體將流入彼此相鄰的兩個所述旋轉片體之間的間隙,而基於邊界層效應,多個所述旋轉片體將相對於所述殼體旋轉,而所述旋轉軸將隨多個所述旋轉片體一同相對於所述殼體旋轉;其中,當所述供氣設備所提供的所述反應氣體通過所述氣體進入口進入所述氣動旋轉組件中,而驅動所述旋轉軸轉動時,所述發電機將被所述旋轉軸帶動而對應產生一第二電能。 A fuel cell system is used to connect with a gas supply device for providing a reaction gas. The fuel cell system includes: at least one fuel cell, which includes a first reaction gas inlet, a second Two reaction gas inlets and a reaction product discharge outlet. The reaction gases entering the fuel cell from the first reaction gas inlet and the second reaction gas respectively can undergo chemical reactions in the fuel cell, thereby producing a The reaction product and a first electrical energy, the reaction product can be discharged outward through the reaction product outlet; and a gas pressure reducing device, which connects the gas supply device and the first reaction gas inlet, the gas The pressure reducing device is used to reduce the gas pressure of the reaction gas provided by the gas supply equipment to a predetermined pressure value before entering the fuel cell. The gas pressure reducing device includes: a pneumatic power generation module, which Contains: a generator; and A pneumatic rotary assembly, which has a gas inlet and a gas outlet, the gas inlet is used to connect to the gas supply device, and the gas outlet is used to connect to a reaction gas inlet of the fuel cell; The pneumatic rotating component includes a rotating shaft connected to the generator; wherein the pneumatic rotating component includes: a housing having the gas inlet and the gas outlet, and The housing has an accommodating space; a plurality of rotating plates are fixed to each other at intervals, and the plurality of rotating plates are arranged in the housing and correspondingly located in the accommodating space; the A part of the rotating shaft is located in the accommodating space, a part of the rotating shaft is exposed to the housing, and a part of the rotating shaft exposed to the housing is connected to the generator; wherein, when the When the reaction gas enters the accommodating space through the gas inlet, the reaction gas will flow into the gap between the two adjacent rotating plates, and based on the boundary layer effect, a plurality of the The rotating plate body will rotate relative to the housing, and the rotating shaft will rotate relative to the housing together with the plurality of rotating plate bodies; wherein, when the reaction gas provided by the gas supply device When the gas enters the pneumatic rotating assembly through the gas inlet, and the rotating shaft is driven to rotate, the generator will be driven by the rotating shaft to correspondingly generate a second electric energy. 如請求項3所述的燃料電池系統,其中,所述氣體降壓裝置還包含一控制模組及一流量控制模組,所述流量控制模組包含一流量閥及一偵測器,所述流量閥與所述氣體進入 口連接,所述偵測器與所述氣體排出口連接;所述偵測器用以偵測通過所述氣體排出口的所述反應氣體的氣體壓力、氣體流量中的至少一個;所述控制模組能依據所述偵測器所偵測的結果,對應控制所述流量閥作動,以改變通過所述氣體進入口的所述反應氣體的流量、氣體壓力中的至少一個。 The fuel cell system according to claim 3, wherein the gas pressure reducing device further includes a control module and a flow control module, the flow control module including a flow valve and a detector, the Flow valve with the gas entering Connection, the detector is connected to the gas outlet; the detector is used to detect at least one of the gas pressure and the gas flow of the reaction gas passing through the gas outlet; the control mode The group can correspondingly control the actuation of the flow valve according to the result detected by the detector to change at least one of the flow rate and the gas pressure of the reaction gas passing through the gas inlet. 一種電動車,其包含:至少一高壓氣瓶,其內部用以儲存高壓反應氣體;一燃料電池系統,所述燃料電池系統包含:至少一燃料電池,其包含兩個反應氣體入口及一反應產物排出口,分別由兩個所述反應氣體入口進入所述燃料電池中的反應氣體,能於所述燃料電池中進行化學反應,從而產生一反應產物及一第一電能,所述反應產物能通過所述反應產物排出口向外排出;及一氣體降壓裝置,其用以使所述高壓氣瓶所提供的反應氣體的氣體壓力降低至一預定氣壓值,而使具有所述預定氣壓值的所述反應氣體進入所述燃料電池中,所述氣體降壓裝置包含:一氣動發電模組,其包含:一發電機;及一氣動旋轉組件,其具有一氣體進入口及一氣體排出口,所述氣體進入口用以連接所述高壓氣瓶,所述氣體排出口用以連接所述燃料電池的其中一個所述反應氣體進入口;所述氣動旋轉組件包含一旋轉軸,所述旋轉軸與所述發電機相連接;其中,所述氣動旋轉組件包含:一殼體,其具有所述氣體進入口及所述氣體排出 口,且所述殼體內部具有一容置空間;多個旋轉片體,其彼此間隔地相互固定,多個所述旋轉片體設置於所述殼體中,而對應位於所述容置空間中;所述旋轉軸,其一部分位於所述容置空間中,所述旋轉軸的一部分外露於所述殼體,所述旋轉軸露出於所述殼體的一部分用以與所述發電機相連;其中,當所述反應氣體通過所述流體入口進入所述容置空間中時,所述反應氣體能流入彼此相鄰的兩個所述旋轉片體之間的間隙,而透過邊界層效應,以使多個所述旋轉片體以所述旋轉軸為中心相對於所述殼體旋轉;其中,當所述高壓氣瓶所提供的所述反應氣體通過所述氣體進入口進入所述氣動旋轉組件中,而驅動所述旋轉軸轉動時,所述發電機將被所述旋轉軸帶動而對應產生一第二電能;以及一儲電單元,其用以儲存所述燃料電池系統所產生的所述第一電能及所述第二電能,所述儲電單元作為所述電動車運行時所需的電力來源。 An electric vehicle, comprising: at least one high-pressure gas cylinder for storing high-pressure reaction gas inside; a fuel cell system, the fuel cell system comprising: at least one fuel cell, which includes two reaction gas inlets and a reaction product The exhaust outlets respectively enter the reactant gas in the fuel cell through the two reactant gas inlets, which can undergo chemical reactions in the fuel cell, thereby generating a reaction product and a first electrical energy, and the reaction product can pass through The reaction product discharge port is discharged outward; and a gas pressure reduction device for reducing the gas pressure of the reaction gas provided by the high-pressure gas cylinder to a predetermined pressure value, so that the gas having the predetermined pressure value The reaction gas enters the fuel cell, and the gas pressure reduction device includes: a pneumatic power generation module, which includes: a generator; and a pneumatic rotating component, which has a gas inlet and a gas outlet, The gas inlet is used for connecting the high-pressure gas cylinder, and the gas outlet is used for connecting one of the reaction gas inlets of the fuel cell; the pneumatic rotating assembly includes a rotating shaft, the rotating shaft Connected to the generator; wherein, the pneumatic rotating assembly includes: a housing with the gas inlet and the gas exhaust And the housing has an accommodating space; a plurality of rotating pieces are fixed to each other at intervals, and the plurality of rotating pieces are arranged in the housing and correspondingly located in the accommodating space The rotating shaft, a part of which is located in the accommodating space, a part of the rotating shaft is exposed in the housing, and a part of the rotating shaft is exposed in the housing to be connected to the generator Wherein, when the reaction gas enters the accommodating space through the fluid inlet, the reaction gas can flow into the gap between the two adjacent rotating plates, and permeate the boundary layer effect, The plurality of rotating pieces are rotated relative to the housing with the rotating shaft as the center; wherein, when the reaction gas provided by the high-pressure gas cylinder enters the pneumatic rotation through the gas inlet In the assembly, when the rotating shaft is driven to rotate, the generator will be driven by the rotating shaft to correspondingly generate a second electric energy; and an electric storage unit for storing all the energy generated by the fuel cell system For the first electrical energy and the second electrical energy, the power storage unit serves as a source of power required by the electric vehicle during operation. 如請求項5所述的電動車,其中,所述氣體降壓裝置還包含一控制模組及一流量控制模組,所述流量控制模組包含一流量閥及一偵測器,所述流量閥與所述氣體進入口連接,所述偵測器與所述氣體排出口連接;所述控制模組能依據所述偵測器所偵測的氣體壓力、氣體流量中的至少一個數據,而對應控制所述流量閥作動,以改變進入所述氣體進入口的所述反應氣體的流量、氣體壓力中的至少一個。 The electric vehicle according to claim 5, wherein the gas pressure reducing device further includes a control module and a flow control module, the flow control module includes a flow valve and a detector, the flow The valve is connected to the gas inlet, and the detector is connected to the gas outlet; the control module can be based on at least one of the gas pressure and gas flow detected by the detector, and The actuation of the flow valve is correspondingly controlled to change at least one of the flow rate and the gas pressure of the reaction gas entering the gas inlet.
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