REDOX FLOW BATTERY TRANSPORT STRUCTURE, REDOX FLOW BATTERY TRANSPORT METHOD, AND REDOX FLOW BATTERY
20190097251 ยท 2019-03-28
Inventors
Cpc classification
H01M8/2475
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
H01M8/2459
ELECTRICITY
H01M8/18
ELECTRICITY
H01M8/188
ELECTRICITY
H01M8/04119
ELECTRICITY
International classification
H01M8/18
ELECTRICITY
Abstract
A redox flow battery transport structure includes a cell stack that includes a plurality of stacked layers of battery cells of a redox flow battery; a container in which the cell stack is housed; and a vibration absorbing member that vertically supports the cell stack from below in the container.
Claims
1. A redox flow battery transport structure comprising: a cell stack that includes a plurality of stacked layers of battery cells of a redox flow battery; a container in which the cell stack is housed; and a vibration absorbing member that vertically supports the cell stack from below in the container.
2. The redox flow battery transport structure according to claim 1, wherein the vibration absorbing member is a damping rubber.
3. The redox flow battery transport structure according to claim 1, wherein the vibration absorbing member is an air spring.
4. The redox flow battery transport structure according to claim 1, wherein the cell stack includes a pair of end plates that hold and fasten a layered structure from both ends thereof, the layered structure including the plurality of stacked layers of battery cells, and wherein each of the end plates includes, at a vertically lower portion thereof, an attachment portion to which the vibration absorbing member is attached.
5. A redox flow battery transport method comprising: housing a cell stack that is vertically supported from below by a vibration absorbing member in a container, the cell stack including a plurality of stacked layers of battery cells of a redox flow battery; and transporting the container.
6. A redox flow battery comprising: a cell stack that includes a plurality of stacked layers of battery cells of a redox flow battery; and a vibration absorbing member that vertically supports the cell stack from below.
Description
BRIEF DESCRIPTION OF DRAWINGS
[0014]
[0015]
[0016]
[0017]
[0018]
DESCRIPTION OF EMBODIMENTS
Technical Problem
[0019] In recent years, an increased demand for redox flow batteries as storage means for new energy is expected. For example, constructing a solar photovoltaic power plant in an extensive non-residential area, such as a desert, and installing a redox flow battery therein are under consideration. Here, it is assumed that constituent members of the redox flow battery are transported by sea or transported by land on unpaved land, and there is a concern that the aforementioned constituent members may be damaged during transport under such severe transport conditions. However, a redox flow battery transport structure that is optimal under severe transport conditions has currently not been examined.
[0020] The present disclosure provides a redox flow battery transport structure, a redox flow battery transport method, and a redox flow battery which are capable of suppressing the redox flow battery from being damaged during transport even under severe transport conditions.
Advantageous Effects of Present Disclosure
[0021] According to the aforementioned redox flow battery transport structure, it is possible to suppress a cell stack included in a redox flow battery from being damaged due to the vibration during transport.
[0022] According to the aforementioned redox flow battery transport method, it is possible to transport a cell stack of a redox flow battery while suppressing the cell stack included in the redox flow battery from being damaged.
[0023] According to the aforementioned redox flow battery, it is possible to suppress a cell stack from being damaged due to the vibration during transport.
DESCRIPTION OF EMBODIMENT OF INVENTION OF PRESENT APPLICATION
[0024] First, contents of an embodiment of the invention of the present application will be enumerated and described.
[0025] As measures for a case in which constituent members of a redox flow battery are housed in a container and transported, a measure of attaching a vibration control structure to a lower portion of the container is enumerated. In the measure, however, it is not possible to buffer stress that is applied to the constituent members of the redox flow battery present inside the container when transshipment and the like of the container is performed. However, attaching vibration control structures to all of the constituent members is not realistic in terms of labor and cost. Accordingly, the inventors of the present invention examined which of the constituent members of the redox flow battery the vibration control structure should be employed for when the redox flow battery is housed in a container and transported. As a result, the inventors of the present invention found that the vibration control structure is needed to be employed for a cell stack in which membranes, electrodes, and the like having comparatively low strength are stacked. On the basis of the finding, a redox flow battery transport structure according to an embodiment will be specified below.
<1> A redox flow battery transport structure according to an embodiment includes
[0026] a cell stack that includes a plurality of stacked layers of battery cells of a redox flow battery,
[0027] a container in which the cell stack is housed, and
[0028] a vibration absorbing member that vertically supports the cell stack from below in the container.
[0029] Employing a member that vertically supports the cell stack from below as the vibration absorbing member makes it possible to suppress, even when the container is subjected to vibration or even when a shock is applied to the container, a large inertial force applied to the cell stack of the redox flow battery. As a result, it is possible to suppress the cell stack from being damaged during transport, and it is possible to smoothly install and operate the redox flow battery after transport.
<2> One aspect of the redox flow battery transport structure according to the embodiment is an aspect
[0030] in which the vibration absorbing member is a damping rubber.
[0031] The damping rubber is capable of maintaining its vibration absorption ability for a long period and is thus desirable as the vibration absorbing member during transport. In particular, the damping rubber is capable of absorbing the vibration during transport, with certainty for a long period, when sea transport and long-haul land transport are performed.
<3> One aspect of the redox flow battery transport structure according to the embodiment is an aspect
[0032] in which the vibration absorbing member is an air spring.
[0033] The air spring is capable of greatly attenuating large vibration and does not easily sympathetically vibrate, and the air spring is thus desirable as the vibration absorbing member during transport. In addition, the air spring has an advantage whereby it is possible to easily adjust the support height of the cell stack by adjusting the amount of air packed in the air spring.
<4> One aspect of the redox flow battery transport structure according to the embodiment is an aspect
[0034] in which the cell stack includes a pair of end plates that hold and fasten a layered structure from both sides thereof, the layered structure including the plurality of stacked layers of battery cells, and
[0035] in which each of the end plates includes, at a vertically lower portion thereof, an attachment portion to which the vibration absorbing member is attached.
[0036] The pair of end plates are for fastening a layered structure body including stacked layers of battery cells from both sides thereof to maintain the layered state of the layered structure body and thus have high strength and high rigidity. Therefore, the end plates are suitable for use as members on which an attachment portion of a vibration absorbing member that supports a heavy cell stack and that absorbs vibration is provided.
<5> A redox flow battery transport method according to the embodiment includes
[0037] housing a cell stack that is vertically supported from below by a vibration absorbing member in a container, the cell stack including a plurality of stacked layers of battery cells of a redox flow battery; and transporting the container.
[0038] Vertically supporting the cell stack from below by the vibration absorbing member makes it possible to suppress, even when the container is subjected to vibration or even when a shock is applied to the container, a large inertial force applied to the cell stack of the redox flow battery. As a result, it is possible to suppress the cell stack from being damaged during transport, and it is possible to smoothly install and operate the redox flow battery after transport.
<6> A redox flow battery according to the embodiment includes
[0039] a cell stack that includes a plurality of stacked layers of battery cells of a redox flow battery, and
[0040] a vibration absorbing member that vertically supports the cell stack from below.
[0041] Vertically supporting the cell stack from below by the vibration absorbing member makes it possible to suppress the cell stack of the redox flow battery from being damaged due to the vibration during the transport of the redox flow battery.
Details of Embodiment of the Invention of the Present Application
[0042] Hereinafter, embodiments of the transport structure and the transport method for the redox flow battery (RF battery) according to embodiments will be described. Note that the present invention is not limited to the configuration indicated in the embodiments; the present invention is indicated by the claims and intends to include all modifications within the meaning and scope equivalent to the claims.
First Embodiment
[0043] Prior to describing a RF battery transport structure 1 and a transport method according to the embodiment, a basic configuration of a RF battery will be described on the basis of
[0044] As shown in the illustration of the operational principle of the RF battery in
[0045] The aforementioned battery cell 100 is typically formed inside a structure body, which is called a cell stack 200, such as that shown in
[0046] The circulation of the electrolyte to the battery cell 100 via the supply/discharge plates 190 and 190 is performed using liquid supply manifolds 123 and 124 and liquid discharge manifolds 125 and 126 that are formed in each frame body 122. The positive electrolyte is supplied from the liquid supply manifold 123 via an inlet slit formed on one surface side (front side of the figure) of each frame body 122 to the positive electrode 104 and is discharged via an outlet slit formed in an upper portion of each frame body 122 to the liquid discharge manifold 125. Similarly, the negative electrolyte is supplied from the liquid supply manifold 124 via an inlet slit (indicated by broken lines) formed on the other surface side (rear side of the figure) of each frame body 122 to the negative electrode 105 and is discharged via an outlet slit (indicated by broken lines) formed in the upper portion of each frame body 122 to the liquid discharge manifold 126. A ring-shaped sealing member 127, such as an O-ring or a flat packing, is arranged between the cell frames 120 so that leakage of the electrolytes from the substacks 200s is suppressed.
[0047] Next, the RF battery transport structure 1 according to the embodiment will be described on the basis of
[0048] <<Cell Stack>>
[0049] The basic configuration of the cell stack 2 shown in
[0050] As described above, the cell stack 2 is formed, as shown in
[0051] The end plate 210 (220; refer to
[0052] As shown in the circled enlarged view in
[0053] <<Container>>
[0054] As the container 3, a container of an existing standard (for example, 40-feet container for transport) is usable. At least the cell stack 2, among the constituent members of the redox flow battery, is housed inside the container 3. The cell stack 2 may be directly placed, as shown, on a container bottom surface 30 of the container 3 or may be placed on a base of a certain type.
[0055] It is acceptable that a complete set of the constituent members of the redox flow battery is housed inside the container 3. Specifically, it is possible to enumerate a mode in which, in addition to the aforementioned cell stack 2, the circulation mechanisms 100P and 100N, which have been described with reference to
[0056] <<Vibration Absorbing Member>>
[0057] The vibration absorbing member 4 is a member that absorbs the vibration of the container 3 when the container 3 is subjected to vibration or when a shock is applied to the container 3. The vibration absorbing member 4 is provided one each on the attachment portions 21 and 22 provided on the end plates 210 and 220.
[0058] In the present example, an air spring is employed as the vibration absorbing member 4. The air spring 4 is capable of greatly attenuating large vibration and does not easily sympathetically vibrate, and the air spring 4 is thus capable of effectively suppressing the vibration of the cell stack 2 during transport. In addition, the air spring 4 has an advantage whereby it is possible to easily adjust the support height of the cell stack 2 by adjusting the amount of air packed in the air spring 4. As the air spring 4, it is possible to enumerate, for example, the Sumimount (trade name) of Sumitomo Electric Industries, Ltd. As an alternative to the air spring 4, an oil dumper or the like is usable.
[0059] As shown in the circled enlarged views in
[0060] <<Effects>>
[0061] In the RF battery transport structure 1 having the aforementioned configuration, it is possible to suppress the vibration of the cell stack 2 by the vibration absorbing members 4 that vertically support the cell stack 2 from below. Therefore, the cell stack 2 is suppressed from being applied with a large inertial force, for example, even when the container 3 is subjected to vibration or even when a shock is applied to the container 3. As a result, it is possible to suppress the cell stack 2 from being damaged during transport, and it is possible to smoothly install and operate the redox flow battery after transport.
[0062] <<Other>>
[0063] At an installation place of the RF battery, the cell stack 2 is fixed to an installation surface via an insulator such as an epoxy. Therefore, the air springs 4 that have been attached to the attachment portions 21 and 22 during transport are replaced with insulators. Here, the air springs 4 include the elastic portions 42, which have insulating properties; thus, if the elastic portions 42 have predetermined insulation performance, there is a possibility that the air springs 4 are usable as alternatives to the insulators. In this case, it is possible to reduce labor for replacing the air springs 4 with insulators.
[0064] <<Experimental Example>>
[0065] In an experimental example, an acceleration sensor was attached to an upper-end center portion of the end plate 210 shown in
Second Embodiment
[0066] In a second embodiment, an example in which damping rubbers are used as the vibration absorbing members 4 will be described on the basis of
[0067] In the RF battery transport structure of the present example shown in
[0068] The damping rubbers 4 are capable of maintaining its vibration absorption ability for a long period and are thus desirable as the vibration absorbing members during transport. In particular, the damping rubbers 4 is capable of absorbing the vibration during transport, with certainty for a long period, when sea transport and long-haul land transport are performed.
REFERENCE SIGNS LIST
[0069] 1 redox flow battery transport structure (RF battery transport structure) [0070] 2 cell stack [0071] 21, 22 attachment portion 21A, 21B triangular plate portion 21C rectangular plate portion [0072] 3 container [0073] 30 container bottom surface [0074] 4 vibration absorbing member (air spring or damping rubber) [0075] 40 upper piece portion 41 lower piece portion 42 elastic portion
[0076] redox flow battery (RF battery)
[0077] 100 battery cell 101 membrane 102 positive electrode cell 103 negative electrode cell [0078] 100P positive electrolyte circulation mechanism 100N negative electrolyte circulation mechanism [0079] 104 positive electrode 105 negative electrode 106 positive electrolyte tank [0080] 107 negative electrolyte tank 108, 109, 110, 111 conduit pipe [0081] 112, 113 pump [0082] 120 cell frame 121 bipolar plate 122 frame body [0083] 123, 124 liquid supply manifold [0084] 125, 126 liquid discharge manifold [0085] 127 sealing member [0086] 190 supply/discharge plate 210, 220 end plate
[0087] 200 cell stack 200s substack [0088] 230 fastening mechanism