Fuel source, fuel cell system and associated method
10283790 ยท 2019-05-07
Assignee
Inventors
Cpc classification
H01M8/04992
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
Y02E60/36
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
H01M8/04
ELECTRICITY
G01R27/00
PHYSICS
H01M8/04082
ELECTRICITY
G01F23/00
PHYSICS
Abstract
A fuel source (100), a fluid gauge adapter (300), a fuel cell system (200) and an associated method. The fuel source (100) has a gauge (104) comprising an electronic multi-stable display (106). The fuel cell system (200) and method relate to receiving fuel from the fuel source (100), determining (212) a fuel consumption of the fuel cell system (200), calculating (214) a substance level of the fuel source in accordance with the fuel consumption and updating (216) an electronic multi-stable display of the fluid gauge of the fuel source in accordance with the substance level.
Claims
1. A fuel source for a fuel cell system, the fuel source having a fuel gauge comprising an electronic multi-stable display and a read-back unit configured to determine a first substance level of the fuel source by measuring an electrical property of the electronic multi-stable display.
2. The fuel source of claim 1 wherein the electronic multi-stable display comprises an electronic paper display.
3. The fuel source of claim 2 wherein the electronic paper display comprises electrophoretic ink.
4. A fuel cell system comprising: the fuel source of claim 1; a controller configured to: determine a fuel consumption of the fuel cell system; calculate a second substance level of the fuel source in accordance with the fuel consumption; and, update the electronic multi-stable display of the fluid gauge of the fuel source in accordance with the second substance level.
5. The fuel cell system of claim 4 wherein; the controller is configured to receive a second substance level from the read-back unit; and, calculate a third substance level of the fuel source in accordance with the fuel consumption and the second substance level.
6. The fuel cell system of claim 5 wherein receiving the second or third substance level comprises measuring an electrical property of one or more picture elements.
7. The fuel cell system of claim 4 wherein the controller is configured to determine the fuel consumption in accordance with an output voltage, current or power of the fuel cell system.
8. The fuel cell system of claim 4 further comprising a flow meter on a fuel inlet line and wherein the controller is configured to determine the fuel consumption in accordance with a flow through the flow meter.
9. A method for operating a fuel cell system, the method comprising: receiving fuel from a fuel source having a fuel gauge comprising an electronic multi-stable display; determining a first substance level of the fuel source by way of measurement of an electrical property of the electronic multi-stable display; determining a fuel consumption of the fuel cell system; calculating a second substance level of the fuel source in accordance with the fuel consumption; and, updating the electronic multi-stable display of the fluid gauge of the fuel source in accordance with the second substance level.
10. A non-transient computer program on a computer readable medium configured to perform the method of claim 9.
11. A fluid gauge adapter comprising: a fluid gauge comprising an electronic multi-stable display; a flow path between an inlet and an outlet of the adapter; a fluid property measuring device configured to measure a property of a fluid in the flow path; and, a controller configured to: determine a substance level of a fluid storage device by way of measurement of an electrical property of the electronic multi-stable display; calculate a subsequent fluid level of the fluid storage device in accordance with the property of the fluid; and, update the electronic multi-stable display of the fluid gauge in accordance with the subsequent fluid level.
12. The fluid gauge adapter of claim 11 wherein the controller periodically updates the display.
13. The fluid gauge adapter of claim 11 further comprising a generator configured to generate power using a fluid flow through the flow path.
14. A substance storage vessel, the vessel having a gauge comprising an electronic multi-stable display, the vessel including a read-back unit configured to provide for determination of a substance level in the vessel by measurement of an electrical property of the electronic multi-stable display.
15. A system configured to receive a substance from a substance storage vessel, the vessel having a gauge comprising an electronic multi-stable display, the system configured to determine a substance level in the vessel by measurement of an electrical property of the electronic multi-stable display.
16. A method of determining a substance level of a substance in a storage vessel, the storage vessel comprising an electronic multi-stable display configured to display the substance level, the method comprising measuring an electrical property of the electronic multi-stable display and deriving the substance level therefrom.
Description
(1) The invention will now be described with reference to the accompanying figures, in which:
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(8) The fuel source has a gauge 104 comprising an electronic multi-stable display 106 that in this example displays the remaining reactant level in the fuel source. The gauge shown takes 104 the form of a bar chart, but it will be appreciated that any suitable representation may be used.
(9) The electronic multi-stable display 106 is capable of maintaining one of a plurality of stable states without the consumption of power. That is, the multi-stable display has a plurality of passive display states. The display will maintain its state for a duration or several months, or possibly several years, when in storage or not in use. Power is, however, consumed in order to alter the state of a picture element of the display. Multi-stable displays are sometimes described in the art as electronic paper displays and are used in the Amazon Kindle e-reader, for example. Electrophoretic ink displays are a class of electronic paper display that provide suitable contrast and power consumption characteristics for the gauge 104. The background to such displays can be provided by a reflective medium and so a backlight is not required for many applications. Such a display is therefore considered to be daylight-readable. A coloured filter may be provided on the screen if desired.
(10) A fuel cell system can update the gauge when the fuel cell is in use, as will be discussed further with reference to the fuel cell system and associated method of
(11) Even when it is not connected to a fuel cell system, that is when no power is available, the amount of remaining fuel output capacity can be displayed on the fuel source 100 because the gauge 104 is provided by an electronic multi-stable display 106. By providing an electronic multi-stable display 106 on the fuel cartridge 100 it is possible to separate the control circuitry from the display circuitry; a controller may be provided as part of a fuel cell system (rather than as part of the fuel source) and shared between many fuel sources. Each fuel source only requires access to the controller when it is engaged with the fuel cell system and providing fuel. As such, the combined component count of a system and fuel sources can be reduced with the effect that it may be easier and cheaper to manufacture the fuel sources.
(12) The fuel source 100 may be provided with a read-back unit (not shown) that is configured to determine a substance level (or reactant level) of the fuel source by measuring an electrical property of the electronic multi-stable display. For example, the capacitance or resistance of a picture element can be related to its colour or grey-scale value. Measuring a combination of capacitance and resistance, in response to a small electrical signal from the read back unit, enables the substance level stored in each pixel to be determined. Therefore, by measuring an electrical property or properties of some or all of the individual picture elements of the display 106, the read back unit can determine what the state of the fuel gauge was when the device was last powered-up. In this way, the substance level can be stored in the display when the fuel source is not in use, rather than in a unit of memory. The read-back unit may be interrogated by a fuel cell system when the fuel source 100 is plugged into it. In this way, the fuel cell system can determine how much fuel may be extracted from the fuel source without needing to either keep track of a historical state of the fuel source 100 in the fuel cell system or store a historical state of the fuel source 100 in a memory module on the fuel source 100.
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(14) The controller 204 is configured to perform the method described with reference to
(15) When the fuel source is connected to the fuel cell system 200, the state of the electronic multi-stable display is indicative of the substance level because the state of the display is the same as when it was last set by a previously connected fuel cell system. The controller may receive 210 the substance level from a read-back unit of the fuel source as described in
(16) The method further comprises the step of determining 212 a fuel consumption of the fuel cell system 200. The determination 212 may be performed in accordance with an output voltage, current or power of the fuel cell system, as is known in the art. Alternatively, the fuel consumption may be determined 212 in accordance with fuel flow from the fuel source or within the fuel cell system 200. The fuel flow can be measured using a flow meter (not shown) on a fuel inlet line 208 connected to the fuel port 206.
(17) A substance level of the fuel source is then calculated 214 in accordance with the fuel consumption. For example, the controller 204 may deduct an integral of the fluid consumption over time from a historical substance level held in memory. In the case where the fuel cell system 200 receives the substance level from the display, the controller 204 may calculate 214 a subsequent substance level of the fuel source in accordance with the fuel consumption and the read substance level.
(18) The final step of the method of
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(20) As can be seen in the interior view of
(21) A generator may be provided in the flow path 308 that is configured to generate power using the fluid flow through the flow path 308. In some examples the fluid property measuring device 310 and the generator may be provided by a unitary device. In such examples, the level of power, voltage or current output may be indicative of the fluid flow through the flow path 308.
(22) The fluid gauge adapter 300 can also comprise a renewable energy source (not shown) in addition to or as an alternative to the generator. Solar panels and wind turbines are examples of renewable power sources. More broadly, the term renewable power source may encompass any power source that may be renewed, such as battery power.
(23) A controller 312 is provided within the fluid gauge adapter 300. The controller is configured to perform a method that is similar to the method of
(24) A switch 314 is provided on the exterior of the fluid gauge adapter 300 to allow user input to be provided. The user input can be indicative of the fluid gauge adapter 300 being connected to a full fluid storage device. The controller is configured to receive the user input from the switch and so can set the electronic multi-stable display 306 to display a full gauge indication when the user input is received. In this example, the gauge 304 takes the form of a pie chart, but it will be appreciated that any suitable representation may be used.
(25) By measuring the property of the fluid when the user input is received, the controller 212 can set a full level property of the fluid. The controller 312 subsequently compares the property of the fluid received from the fluid property measuring device 310 with the full level property in order to determine the proportion of fluid remaining in the fluid storage device. The controller can be configured to update the display periodically, rather than constantly. Periodic operation of the controller can reduce the power consumption of the controller and so limit the demands on the generator or renewable fuel source.
(26) It will be appreciated that a feature described in regard to one example may be described in relation to another embodiment. While the embodiments described herein relate to a fuel reactor that stores fuel for a fuel cell system, any substance storage vessel storing any substance may be provided with such a multi-stable display. Thus, the multi-stable display or storage vessel may include a read-back unit that enables the display itself to be read by the storage vessel or a system to which the vessel connects. Accordingly, the amount of substance taken from or added to the vessel may be determined by the system and subtracted from or added to the substance level read from the display. The multi-stable display can then by updated to display and therefore store the updated substance level. The vessel may then be disconnected from the system while retaining and displaying its substance level.