Leak hydrogen absorbing device, hydrogen energy utilization system and leak hydrogen absorbing method
09764646 · 2017-09-19
Assignee
Inventors
Cpc classification
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
Y02T90/40
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
B01D53/02
PERFORMING OPERATIONS; TRANSPORTING
B60L3/00
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A leak hydrogen absorbing device is provided and includes an absorbing tank, having a gas inlet and a gas outlet; a spacer, disposed inside the absorbing tank, and partitioning an interior of the absorbing tank into multiple spaces; a hydrogen absorbing material, disposed in the spaces; a connecting tube, disposed on the spacer, and connecting the spaces; a pump, pumping a hydrogen-containing gas leaked in a closed environment to the absorbing tank through the gas inlet to be flowed through the spaces inside the absorbing tank, so that the hydrogen gas contained in the hydrogen-containing gas is absorbed by the hydrogen absorbing material; and a depressurizing portion, disposed at a terminal end of the absorbing tank, and storing a hydrogen-free gas passed through the hydrogen absorbing material. The hydrogen-free gas is discharged through the gas outlet when reaching a predetermined pressure.
Claims
1. A leak hydrogen absorbing device for a closed environment, comprising: an absorbing tank, having a gas inlet and a gas outlet; a spacer, disposed inside the absorbing tank, and partitioning an interior of the absorbing tank into a plurality of spaces; a hydrogen absorbing material, disposed in the spaces; a connecting tube, disposed on the spacer, and connecting the spaces; a pump, pumping a hydrogen-containing gas leaked in the closed environment to the absorbing tank through the gas inlet to be flowed through the spaces inside the absorbing tank, so that a hydrogen gas contained in the hydrogen-containing gas is absorbed by the hydrogen absorbing material; and a depressurizing portion, disposed at a terminal end of the absorbing tank, storing a hydrogen-free gas passed through the hydrogen absorbing material, and discharging the hydrogen-free gas through the gas outlet when the hydrogen-free gas reaches a predetermined pressure.
2. The leak hydrogen absorbing device according to claim 1, wherein the spacer is plural, and the spacers are disposed inside the absorbing tank in an arrangement with interval from each other.
3. The leak hydrogen absorbing device according to claim 1, wherein the connecting tube is plural, and a predetermined distance is provided between positions of the connecting tubes respectively disposed on adjacent two of the spacers.
4. The leak hydrogen absorbing device according to claim 1, further comprising: at least one heater, disposed at one side of the absorbing tank, and the heater heating the hydrogen absorbing material in order to release the absorbed hydrogen gas from the hydrogen absorbing material.
5. The leak hydrogen absorbing device according to claim 1, further comprising: a filter, disposed in front of the gas inlet of the absorbing tank.
6. The leak hydrogen absorbing device according to claim 1, further comprising: a filter screen, disposed on at least one end of the communicating tube.
7. The leak hydrogen absorbing device according to claim 1, further comprising: a hydrogen gas detector, configured to detect the hydrogen-containing gas leaked in the closed environment.
8. The leak hydrogen absorbing device according to claim 1, wherein the hydrogen absorbing material is in form of powder, grain or ingot.
9. The leak hydrogen absorbing device according to claim 1, wherein the hydrogen absorbing material is selected from a combination of a first material and a second material, wherein the first material is selected from Ti, La, Mg, Sr, Li, Cr, Ir, Ca and Pd, and the second material is selected from Ag, Ni, Au, Pt, Cu, Co, Al, Fe, V, Mn and As.
10. A hydrogen energy utilization system for a closed environment, comprising: a hydrogen gas storage device; a hydrogen gas utilization device, connecting to the hydrogen gas storage device through a hydrogen gas transportation pipeline; and the leak hydrogen absorbing device according to claim 1, connected to a position where the hydrogen-containing gas is leaked in the closed environment.
11. The hydrogen energy utilization system according to claim 10, wherein the leak hydrogen absorbing device and the hydrogen gas transportation pipeline are connected in parallel to each other.
12. The hydrogen energy utilization system according to claim 10, further comprising: a manual valve and a motor valve, disposed in sequence on the hydrogen gas transportation pipeline, an upstream of the manual valve being connected to the hydrogen gas storage device, and a downstream of the motor valve being connected to the hydrogen gas utilization device.
13. The hydrogen energy utilization system according to claim 12, further comprising: a three-way valve, having a first port, a second port and a third port, the first port being connected to the pump, the second port being connected to a position between the manual valve and the manual valve, and the third port being connected to the position where the hydrogen-containing gas is leaked in the closed environment.
14. The hydrogen energy utilization system according to claim 10, further comprising: a hydrogen gas detector, configured to detect the hydrogen-containing gas leaked in the closed environment.
15. The hydrogen energy utilization system according to claim 10, further comprising: a containment, surrounding the hydrogen gas storage device and the hydrogen gas utilization device, the leak hydrogen absorbing device being connected on the containment.
16. The hydrogen energy utilization system according to claim 10, wherein at least two of the leak hydrogen absorbing devices are disposed so as to switch between the at least two leak hydrogen absorbing devices.
17. A leak hydrogen absorbing method, comprising: providing the leak hydrogen absorbing device according to claim 1; when detecting that the leaked hydrogen-containing gas is present in the closed environment, activating the pump to start pumping the hydrogen-containing gas to the absorbing tank; passing the hydrogen-containing gas to flow through the spaces inside the absorbing tank, so that the hydrogen gas contained in the hydrogen-containing gas is absorbed by the hydrogen absorbing material; and storing the hydrogen-free gas passed through the hydrogen absorbing material, and discharging the hydrogen-free gas through the gas outlet when the hydrogen-free gas reaches the predetermined pressure.
18. The leak hydrogen absorbing method according to claim 17, further comprising: passing the hydrogen-containing gas through a filter for filtering before entering the absorbing tank.
19. The leak hydrogen absorbing method according to claim 17, further comprising: a hydrogen absorbing material reduction step, for heating the hydrogen absorbing material to a predetermined temperature in order to release the absorbed hydrogen gas from the hydrogen absorbing material.
20. The leak hydrogen absorbing method according to claim 17, wherein the predetermined pressure is equal to or below 10 bar.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The accompanying drawings are included to provide a further understanding of the disclosure, and are incorporated in and constitute a part of this specification. The drawings illustrate embodiments of the disclosure and, together with the description, serve to explain the principles of the disclosure.
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DETAILED DESCRIPTION
(9) In the following detailed description, for purposes of explanation, numerous specific details are set forth in order to provide a thorough understanding of the disclosed embodiments. It will be apparent, however, that one or more embodiments may be practiced without these specific details. In other instances, well-known structures and devices are schematically shown in order to simplify the drawing.
(10)
(11) Referring to
(12) The pump 150 pumps a hydrogen-containing gas 200 leaked in the closed environment to the absorbing tank 110 through the gas inlet 112 to be flowed through the spaces S inside the absorbing tank 110. The hydrogen gas contained in the hydrogen-containing gas 200 is absorbed by the hydrogen absorbing material 130. The depressurizing portion 160 is disposed at a terminal end of the absorbing tank 110. The depressurizing portion 160 stores a hydrogen-free gas 300 passed through the hydrogen absorbing material 130, and the hydrogen-free gas 300 is discharged through the gas outlet 114 when the hydrogen-free gas 300 reaches a predetermined pressure.
(13) Safety in use of the hydrogen energy in the closed environment may be improved by placing the leak hydrogen absorbing device 100 of the forgoing embodiment and a hydrogen energy device (e.g., a hydrogen fuel cell, etc.) together. Embodiment regarding each element in the leak hydrogen absorbing device 100 will be described as follows.
(14) Referring to
(15) As shown in the embodiment of
(16) As shown in
(17) With configuration of the spacers 120, the spaces S for placing the hydrogen absorbing material 130 may be formed inside the absorbing tank 110, and the gas circulation path for circulating the leaked gas may be formed. As shown by an arrow A of a gas circulation direction in
(18) Further, the spacers 120 depicted in
(19) In addition, the communicating tube 140 depicted in
(20) As shown in
(21) Referring to
(22) Referring back to
(23) Further, the leak hydrogen absorbing device 100 may also include a filter screen 190, which is disposed on at least one end of the communicating tube 140. As shown in
(24) In an embodiment, the leak hydrogen absorbing device 100 further includes a hydrogen gas detector 192, which is configured to detect the hydrogen-containing gas 200 leaked in the closed environment. The hydrogen gas detector 192 may be disposed near a position where the hydrogen-containing gas 200 is leaked in the closed environment. With configuration of the hydrogen gas detector 192 at the position where a hydrogen gas leakage may occur, when detecting that the hydrogen gas leakage occurs, the hydrogen gas detector 192 may feed back an activate signal to activate the pump 150, so as to start the operation of the leak hydrogen absorbing device 100; and when detecting that a hydrogen concentration in the closed environment is already returned back to a normal range, the hydrogen gas detector 192 may feed back a deactivate signal to deactivate the pump 150, so as to stop the operation of the leak hydrogen absorbing device 100.
(25) In an embodiment, the hydrogen absorbing material 130 may be in form of powder, grain or ingot. The form of the hydrogen absorbing material 130 may be selected according to desired parameters such as a reaction rate (or the contact area) between the hydrogen absorbing material 130 and the hydrogen gas, and a storage stability of the hydrogen absorbing material 130.
(26) For example, when the hydrogen absorbing material 130 is in form of powder, the contact area with the hydrogen gas becomes greater, so that an adsorption rate of the hydrogen gas may be accelerated to reduce the time required by the leak hydrogen absorbing device 100 for absorbing the hydrogen gas. Further, when the hydrogen absorbing material 130 is in form of grain or ingot, the storage stability of the hydrogen absorbing material 130 may be improved.
(27) Furthermore, the hydrogen absorbing material 130 is selected from a combination of a first material and a second material. The first material is selected from Ti, La, Mg, Sr, Li, Cr, Ir, Ca and Pd. The second material is selected from Ag, Ni, Au, Pt, Cu, Co, Al, Fe, V, Mn and As.
(28) The hydrogen absorbing material 130 may be commonly composed of an exothermic metal (generally represented by “A”) and an endothermic metal (generally represented by “B”), wherein the exothermic metal (A) has strong affinity with hydrogen and can easily form a stable hydride with the hydrogen gas to thereby release heat during the reaction process; and on the other hand, the endothermic metal (B) has less affinity with hydrogen and needs to absorb heat during the reaction process. A composition ratio of the exothermic metal (A) and the endothermic metal (B) may be adjusted to obtain a hydrogen storage alloy with preferable property, which is capable of favorably absorbing the hydrogen gas and releasing the hydrogen gas under predetermined conditions.
(29) Because the exothermic metal (A) can easily combine with hydrogen, theoretically, the composition ratio of the exothermic metal (A) is used to control “a hydrogen storage capacity”. On the other hand, the endothermic metal (B) has less affinity with hydrogen, and thus the endothermic metal (B) is used to control “a reversibility for absorbing/releasing hydrogen”.
(30) Table 1 lists data published by United States Department of Energy with regard to type, material, hydrogen storage capacity, temperature and pressure of various hydrogen absorbing materials.
(31) TABLE-US-00001 TABLE 1 Hydrogen storage capacity Temperature Pressure Type Material (wt %) (° C.) (atm) AB TiCu 1.7 200 0.004 AB TiFe.sub.0.6Ni.sub.0.4 1.5 50 0.035 AB CeNi 1.8 20 0.05~0.01 AB Li.sub.0.94Pd 0.9 300 0.02 AB ZrCo 1.7 200 0.005 AB2 CaNi.sub.2 2.1 25 0.05 AB2 CeAl.sub.1.25Cr.sub.0.75 0.6 25 0.05 AB2 CeMnAl 0.9 25 0.05 AB5 CaNi.sub.4B 1.2 27 0.01 AB5 CaNi.sub.5 0.3 22 0.04 AB5 LaNi.sub.4Al 1.1 20 0.001 AB5 LaNi.sub.4Cr 0.54 25 0.04
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(33) The hydrogen energy utilization system 400 may be a combination of the hydrogen fuel cell and the leak hydrogen absorbing device 100 according to the embodiments of the present disclosure, and may be applied in the closed environment such as an apartment, a building, a motor car, a steamship, an excursion boat or an air independent propulsion (AIP) of a submarine.
(34) Referring to
(35) As shown in
(36) It should be noted that, the hydrogen energy utilization system 400 may also include a three-way valve 460, which has a first port 462, a second port 464 and a third port 466. The first port 462 is connected to the pump 150. The second port 464 is connected to a position between the manual valve 440 and the motor valve 450. The third port 466 is connected to the position where the hydrogen-containing gas 200 is leaked in the closed environment. The three-way valve 460 may be switched to connect the leak hydrogen absorbing device 100 to the hydrogen-containing gas 200 in the closed environment in order to absorb the hydrogen-containing gas 200 accumulated in the closed environment, or connect the leak hydrogen absorbing device 100 to the hydrogen gas transportation pipeline 430 in order to absorb the hydrogen gas remained in the hydrogen gas transportation pipeline 430.
(37) The hydrogen energy utilization system 400 may also include a hydrogen gas detector 192, which is configured to detect the hydrogen-containing gas 200 leaked in the closed environment. The hydrogen gas detector 192 may be disposed near a position where the hydrogen-containing gas 200 is leaked in the closed environment. Similarly, when detecting that the hydrogen gas leakage occurs, the hydrogen gas detector 192 may feed back an activate signal to activate the pump 150, so as to start the operation of the leak hydrogen absorbing device 100; and when detecting that a hydrogen concentration in the closed environment is already returned back to a normal range, the hydrogen gas detector 192 may feed back a deactivate signal to deactivate the pump 150, so as to stop the operation of the leak hydrogen absorbing device 100. The hydrogen energy utilization system 400 may utilize a control unit 470 to operate the entire system.
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(39) In the present embodiment, the containment 510 is used to surround the position where the hydrogen gas leakage may occur, so that the leak hydrogen absorbing device 100 may be used to absorb the leaked hydrogen gas inside the containment 510. As such, safety of the hydrogen energy utilization system 500 may be further improved. Because the leaked hydrogen gas is contained inside the containment 510 and absorbed by the leak hydrogen absorbing device 100, a pipeline maintenance may be performed safely.
(40) The leak hydrogen absorbing device 100 may be connected to the containment 510 through an exhaust pipeline 520; or the hydrogen gas transportation pipeline 430 and the leak hydrogen absorbing device 100 may be connected in parallel by using the exhaust pipeline 520, so as to absorb the hydrogen gas remained in the hydrogen gas transportation pipeline 430.
(41) Although only one leak hydrogen absorbing device 100 is illustrated in the embodiments of
(42) Specifically, when one of the leak hydrogen absorbing devices 100 is already saturated, another one of the leak hydrogen absorbing devices 100 may be switched to, so as to ensure that the leaked hydrogen gas may be absorbed. Meanwhile, the heater 170 (illustrated in
(43) According to yet another embodiment of the present disclosure, a leak hydrogen absorbing method is further proposed and includes the following steps. The process of the leak hydrogen absorbing method may be comprehended with reference to
(44) Subsequently, when detecting that the leaked hydrogen-containing gas 200 is present in the closed environment, the pump 150 is activated to start pumping the hydrogen-containing gas 200 to the absorbing tank 110.
(45) Next, the hydrogen-containing gas 200 is passed to flow through the spaces S inside the absorbing tank 110, so that the hydrogen gas 200 contained in the hydrogen-containing gas is absorbed by the hydrogen absorbing material 130.
(46) Thereafter, the hydrogen-free gas 300 passed through the hydrogen absorbing material 130 is stored, and the hydrogen-free gas 300 is discharged through the gas outlet 114 when the hydrogen-free gas 300 reaches a predetermined pressure. The predetermined pressure may be equal to or below 10 bar.
(47)
(48) Referring to
(49) In an embodiment, the leak hydrogen absorbing method may also include a hydrogen absorbing material reduction step for heating the hydrogen absorbing material 130 to a predetermined temperature in order to release the absorbed hydrogen gas from the hydrogen absorbing material 130. As such, the hydrogen absorbing material 130 may regain the absorbing capability for the hydrogen gas. Also, the secondary use of the released hydrogen gas may be conducted. The above described “predetermined temperature” can be set to “a temperature that a hydrogen pressure released from the hydrogen absorbing material is larger than a pressure of the environment”, then the hydrogen can be released smoothly. Besides, the “predetermined temperature” varies depending on kinds of hydrogen absorbing materials and the environmental pressures. Persons skilled in the art can modify the “predetermined temperature” as requirement.
(50) Hereinafter, experimental data is provided to validate that the leak hydrogen absorbing device 100 according to the embodiments of the present disclosure can indeed effectively absorb the leaked hydrogen gas.
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(52) In summary, the leak hydrogen absorbing device, the hydrogen energy utilization system and the leak hydrogen absorbing method of the present disclosure at includes the following advantages: capability of rapidly absorbing the hydrogen gas leaked in the closed environment, safe absorption and storage for the leaked hydrogen gas, and applications in narrow spaces without requiring the oxygen gas for burning the leaked hydrogen gas. By partitioning the interior of the absorbing tank into multiple spaces by using multiple spacers in the arrangement with interval from each other and placing the hydrogen absorbing material in each of the spaces, the hydrogen absorbing material may be uniformly placed into the absorbing tank 110 in order to provide the favorable adsorption for the hydrogen gas. The hydrogen energy utilization system according to the embodiments of the present disclosure may be applied in the fuel cell related industries, the green energy (the hydrogen energy) utilization related industries and transportation related industries, so as to facilitate improvements of safety of the hydrogen energy in the closed environment.
(53) It will be apparent to those skilled in the art that various modifications and variations can be made to the disclosed embodiments. It is intended that the specification and examples be considered as exemplary only, with a true scope of the disclosure being indicated by the following claims and their equivalents.