The present invention relates to a fuel cell power supply system integrated with rechargeable batteries, more particularly a power supply system that can charge the rechargeable battery with a fuel cell unit and output the power needed directly via the rechargeable battery.
Conventional fuel cells use hydrogen-rich fuel (e.g. methanol) and oxygen fuel to undergo electrochemical reaction and supply electric power. This type of fuel cell must have a sophisticated balance of plant (BOP) system to control the operating conditions for the electrochemical reaction and for process control. Moreover, when the fuel cell is used in a situation where the load change is more drastic, a sophisticated power management system in addition to the BOP system for operating condition control is needed to support the secondary cells in power allocation.
Thus conventional fuel cell power supply systems integrated with secondary cells not only pose control challenge. The requirement for a sophisticated BOP system or power management system could also jack up the cost of the power supply system.
In light of the drawbacks of conventional fuel cells, the inventor aims to develop fuel cell power supply system integrated with rechargeable batteries.
The primary object of the invention is to provide a fuel cell power supply system integrated with rechargeable batteries that uses power generated by a fuel cell unit to charge the rechargeable battery and outputs power needed directly via the rechargeable battery, thereby simplifying the control of core reaction conditions of the fuel cell unit, and furthermore, simplifying the apparatus or control process needed for controlling the reaction conditions of the fuel cell-based power supply system.
Another object of the invention is to provide a fuel cell supply system integrated with rechargeable batteries that can switch the charge state or power output state among a plurality of rechargeable batteries to achieve a power supply system that use fuel cells for power generation and rechargeable batteries for power output.
Yet another object of the invention is to provide a fuel cell power supply system integrated with rechargeable batteries that uses an electrical loop and voltage drop or voltage rise occurred during charge state or power output state of rechargeable batteries to achieve the switching of charge state or power output state among a plurality of rechargeable batteries.
To achieve the aforesaid objects, the present invention provides a fuel cell power supply system integrated with rechargeable batteries. The fuel cell power supply system comprises a fuel cell unit, a rechargeable battery device and a loop switching device. The fuel cell unit outputs DC power; the rechargeable battery device comprises a plurality of rechargeable batteries, the rechargeable batteries being secondary cells and able to output or input DC power; and the loop switching device comprises a DC power output terminal and an electrical connect/disconnect selection means. The fuel cell unit and the rechargeable batteries are respectively electrically connected to the loop switching device. The loop switching device selects electrical contact between the fuel cell unit and any rechargeable battery in the rechargeable battery device, and selects electrical connection between any other rechargeable battery in the rechargeable battery device and DC power output terminal of the loop switching device.
The loop switching device comprises a direction-limiting loop, the direction-limiting loop consisting of a first direction-limiting element, a second direction-limiting element, a third direction-limiting element and a fourth direction-limiting element, the direction-limiting elements respectively limiting the direction of current flow to forward direction. The first direction-limiting element is electrically connected to the second direction-limiting element in series. The third direction-limiting element is electrically connected to the fourth direction-limiting element in series. One end of the first direction-limiting element is defined as a first node, while the junction between the first direction-limiting element and the second direction-limiting element is defined as a second node, and the other end of the second direction-limiting element is defined as a third node. One end of the third direction-limiting element is electrically connected to the first node. The junction between the third direction-limiting element and the fourth direction-limiting element is defined as a fourth node, while the other end of the fourth direction-limiting element is electrically connected to the third node. Current passing from first node to second node, from second node to third node, from first node to fourth node, and from fourth node to third node flows uniformly in forward direction or counter direction. The DC power output terminal of the fuel cell unit, the DC power output terminal of the second rechargeable battery, the DC power output terminal of the loop switching device, and the DC power output terminal of the first rechargeable battery are respectively electrically connected to the first node, the second node, the third node and the fourth node.
The loop switching device further comprises a switch unit and a control unit. The switch unit is a logic control circuit. The control unit provides a microprocessor for logic control and controls the switch unit in the selection of electrical contact between the fuel cell unit and any of rechargeable batteries in the rechargeable battery device and the selection of any other rechargeable battery in the rechargeable battery device for power output.
The loop switching device further comprises a sensor unit. The sensor unit is a power detection element and electrically connected to the first rechargeable battery and the second rechargeable battery in the rechargeable battery device respectively. The sensor unit feeds the characteristics of power respectively output by the first rechargeable battery and the second rechargeable battery to the control unit. The control unit then determines the operational process of the switch unit based on such power characteristics.
Thus the benefits of the present invention include: simplifying the control of core reaction conditions of the fuel cell unit, and furthermore, simplifying the apparatus or control process needed for controlling the reaction conditions of the fuel cell-based power supply system; enabling the switching of charge state or power output state among a plurality of rechargeable batteries to achieve a power supply system that use fuel cells for power generation and rechargeable batteries for power output; and using an electrical loop and voltage drop or voltage rise occurred during charge state or power output state of rechargeable batteries to achieve the switching of charge state or power output state among a plurality of rechargeable batteries.
The objects, features and effects of the invention are described in detail below with embodiments in reference to the accompanying drawings.
Specifically, the fuel cell unit (1) can output power of specific voltage. The rechargeable battery device (3) comprises a first rechargeable battery (31) and a second rechargeable battery (32). The loop switching device (2) can choose the fuel cell unit (1) to be electrically connected to the first rechargeable battery (31) and the second rechargeable battery (32) to be electrically connected to the electronic device (4), or the loop switching device (2) can choose the fuel cell unit (1) to be electrically connected to the second rechargeable battery (32) and the first rechargeable battery (31) to be electrically connected to the electronic device (4). Thus when the power in the rechargeable battery (31) is down, the loop switching device (2) can choose the fuel cell unit (1) to become electrically connected to the first rechargeable battery (31) and the second rechargeable battery (32) to become electrically connected to the electronic device (4) such that the fuel cell unit (1) can charge the first rechargeable battery (31) and the second rechargeable battery (32) can output power to the electronic device (4). Similarly, when the power in the second rechargeable battery (32) is down, the loop switching device (2) can choose the fuel cell unit (1) to become electrically connected to the second rechargeable battery (32) and the first rechargeable battery (31) to become electrically connected to the electronic device (4) such that the fuel cell unit (1) can charge the second rechargeable battery (32) and the first rechargeable battery (31) can output power to the electronic device (4).
Moreover, the first DC power output terminal (26) and the second DC power output terminal (27) of the loop switching device (2) can be respectively the anode channel and cathode channel for DC power, while the fuel cell unit (1), the rechargeable battery device (3) and the electronic device (4) achieve circuit grounding via the second DC power output terminal (27).
Thus after power is output to the electronic device (4) from the positive DC voltage terminal of the second rechargeable battery (32) through in sequence the second node (23), the second direction-limiting element (21b), the third node (24), and the first DC power output terminal (26) of the direction-limiting loop (21), the output voltage of the second rechargeable battery (32) would drop gradually to a level lower than the output voltage of first rechargeable battery (31) and lower than the output voltage of the fuel cell unit (1). Subsequently, the fuel cell unit (1) would output power and charge the second rechargeable battery (32) from its positive DC voltage terminal through in sequence the first node (22), the first direction-limiting element (21a) and the second node (23). At the same time, the first rechargeable battery (31) outputs power to the electronic device (4) from its positive DC voltage terminal and through in sequence the fourth node (25), the fourth direction-limiting element (21d), the third node (24), and the first DC power output terminal (26) of the direction-limiting loop (21). The output voltage of the first rechargeable battery (31) would drop gradually to a level lower than the output voltage of second rechargeable battery (32) and lower than the output voltage of the fuel cell unit (1). As such, the first rechargeable battery (31) and the second rechargeable battery (32) of the rechargeable battery device (3) form an alternating charge and discharge mechanism.
As such, when the voltage of the second rechargeable battery (32) in the fuel cell power supply system of the invention is higher than that of the first rechargeable battery (31), the control unit (29) could control the switch unit (28) to enable the fuel cell unit (1) to become electrically connected to the first rechargeable battery (31) and the second rechargeable battery (32) to become electrically connected to the electronic device (4) such that the fuel cell unit (1) could charge the first rechargeable battery (31) and the second rechargeable battery (32) could output power to the electronic device (4). Similarly, the control unit (29) could control the switch unit (28) to enable the fuel cell unit (1) to become electrically connected to the second rechargeable battery (32) and the first rechargeable battery (31) to become electrically connected to the electronic device (4) such that the fuel cell unit (1) could charge the second rechargeable battery (32) and the first rechargeable battery (31) could output power to the electronic device (4).
The loop switching device (2) further comprises a sensor unit (291). The sensor unit (291) is a power detection element and electrically connected to the first rechargeable battery (31) and the second rechargeable battery (32) in the rechargeable battery device (3) respectively to detect the characteristics of power output by the first rechargeable battery (31) and the second rechargeable battery (32). The control unit (29) then determines the operational process of the switch unit (28) based on such information. Specifically, the sensor unit (291) could detect the voltage output by the first rechargeable battery (31) and the second rechargeable battery (32) respectively such that the control unit (29) could control the circuit logics of switch unit (28) based on the voltage signal fed back by the sensor unit (291). As such, when the voltage output by the first rechargeable battery (31) as fed back by the sensor unit (291) falls below a preset level, the control unit (29) would control the switch unit (28) to enable the fuel cell unit (1) to become electrically connected to the first rechargeable battery (31) and the second rechargeable battery (32) to become electrically connected to the electronic device (4) such that the fuel cell unit (1) could charge the first rechargeable battery (31) and the second rechargeable battery (32) could output power to the electronic device (4). Similarly, when the voltage output by the second rechargeable battery (32) as fed back by the sensor unit (291) falls below a preset level, the control unit (29) could control the switch unit (28) to enable the fuel cell unit (1) to become electrically connected to the second rechargeable battery (32) and the first rechargeable battery (31) to become electrically connected to the electronic device (4) such that the fuel cell unit (1) could charge the second rechargeable battery (32) and the first rechargeable battery (31) could output power to the electronic device (4).
Moreover, the same as that in the aforementioned embodiment, the first DC power output terminal (26) and the second DC power output terminal (27) of the loop switching device (2) can be respectively the anode channel and cathode channel for DC power, while the fuel cell unit (1), the rechargeable battery device (3) and the electronic device (4) achieve circuit grounding via the second DC power output terminal (27).
Thus in the fuel cell power supply system integrated with rechargeable batteries of the invention, the voltage of the second rechargeable battery (32) can be preset higher than that of the first rechargeable battery (31). As such, when the voltage output by the first rechargeable battery (31) as fed back by the sensor unit (291) falls below a preset level, the control unit (29) would control the first switch element (28a) to enable electrical contact between the fuel cell unit (1) and the first rechargeable battery (31) and controls the second switch element (28b) to enable electrical contact between the second rechargeable battery (32) and the electronic device (4) such that the fuel cell unit (1) could charge the first rechargeable battery (31) and the second rechargeable battery (32) could output power to the electronic device (4). Similarly, when the voltage output by the second rechargeable battery (32) as fed back by the sensor unit (291) falls below a preset level, the control unit (29) could control the first switch element (28a) to enable electrical contact between the fuel cell unit (1) and the second rechargeable battery (32) and control the second switch element (28b) to enable electrical contact between the first rechargeable battery (31) and the electronic device (4) such that the fuel cell unit (1) could charge the second rechargeable battery (32) and the first rechargeable battery (31) could output power to the electronic device (4).
When the voltage output by both the first rechargeable battery (31) and the second rechargeable battery (32) as fed back by the sensor unit (291) falls below a preset level, the control unit (29) could control the first switch element (28a) to enable electrical contact between the fuel cell unit (1) and the first rechargeable battery (31) and control the second switch element (28b) to enable electrical disconnection between the second rechargeable battery (32) and the electronic device (4) such that the fuel cell unit (1) could charge the first rechargeable battery (31) while the second rechargeable battery (32) stops outputting power. Moreover, while the first rechargeable battery (31) is being charged and its voltage as fed back by the sensor unit (291) rises above a preset level, the control unit (29) could control the first switch element (28a) to enable electrical contact between the fuel cell unit (1) and the second rechargeable battery (32) and control the second switch element (28b) to enable electrical contact between the first rechargeable battery (31) and the electronic device (4) such that the fuel cell unit (1) could charge the second rechargeable battery (32) and the first rechargeable battery (31) to output power to the electronic device (4).
The examples cited above are meant to explain the invention and should not be construed as a limitation on the actual applicable scope of the invention, and as such, all modifications and alterations without departing from the spirits of the invention and appended claims shall remain within the protected scope and claims of the invention.
Number | Date | Country | Kind |
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096111787 | Apr 2007 | TW | national |