Battery bracket device for battery energy storage container, bracket device and battery energy storage container
By designing placement, adjustment, limiting, and control units in the battery rack device, the problem of limited battery rack specifications was solved, enabling convenient installation and stable fixation of the battery energy storage container.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- ZHEJIANG ZHONGCHUANG INFORMATION TECHNOLOGY CO LTD
- Filing Date
- 2025-05-13
- Publication Date
- 2026-04-21
AI Technical Summary
In existing technologies, battery racks have a single specification, making it difficult to install and remove battery modules, resulting in high installation workload and increased costs.
A battery tray device including a placement unit, an adjustment unit, a limiting unit, and a control unit was designed. Through the coordinated use of these units, the position adjustment and installation of the battery tray can be realized, which facilitates the installation and removal of the battery energy storage container.
This improves the practicality of the battery rack, simplifies the installation process of the battery energy storage container, and reduces the difficulty and cost of installation work.
Smart Images

Figure CN224153514U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of battery energy storage technology, and in particular to a battery bracket device, a support device, and a battery energy storage container for use in battery energy storage containers. Background Technology
[0002] In the placement of energy storage batteries, especially in containerized energy storage, battery modules have traditionally been installed on-site. However, the current containerized energy storage power stations present challenges in on-site installation and removal of battery modules from the battery racks. The specifications are relatively uniform, which significantly increases the workload of installation personnel. Furthermore, the fixed specifications require different battery racks for battery packs of different sizes and heights, which greatly increases the cost of containerized battery installation and placement.
[0003] Currently, no effective solution has been proposed to address the issues of limited battery rack specifications and difficulties in installing and removing battery modules in related technologies. Utility Model Content
[0004] The purpose of this utility model is to address the shortcomings of the existing technology by providing a battery rack device, support device, and battery storage container for battery energy storage containers, so as to solve the problems of limited battery rack specifications and difficulty in installing and removing battery modules in related technologies.
[0005] To achieve the above objectives, the technical solution adopted by this utility model is as follows:
[0006] In a first aspect, a battery rack device for a battery energy storage container is provided, comprising:
[0007] A placement unit is movably disposed inside the support device and is used for reciprocating motion in the vertical direction;
[0008] Two first adjustment units are symmetrically arranged on both sides of the placement unit and are slidably connected to the support device respectively, for driving the placement unit to reciprocate in the vertical direction;
[0009] Two second adjustment units are symmetrically arranged on both sides of the placement unit and located behind the corresponding two first adjustment units, and are slidably connected to the support device to drive the placement unit to reciprocate in the vertical direction.
[0010] Two first limiting units are slidably connected to the corresponding first adjusting unit and second adjusting unit, respectively, and are limited by the support device, for reciprocating motion in the horizontal direction to limit the range of motion of the first adjusting unit and the second adjusting unit;
[0011] Two control units are respectively rotatably connected to the placement unit and the corresponding first limiting unit, and are used to drive the first limiting unit to reciprocate along the horizontal direction;
[0012] The mounting unit is detachably disposed at the top of the placement unit and connected to the battery pack, and is used for reciprocating in the horizontal direction to install the battery pack;
[0013] A locking unit is disposed at the bottom end of the placement unit and is detachably connected to both the placement unit and the installation unit, thereby limiting the range of motion of the installation unit.
[0014] In some embodiments, the placement unit includes:
[0015] A placement element is movably disposed inside the support device. Two first adjustment units and two second adjustment units are respectively disposed on both sides of the placement element, which are used to reciprocate in the vertical direction under the action of the first adjustment unit and the second adjustment unit.
[0016] Two first support elements are symmetrically arranged at the bottom end of the placement element and are respectively connected to the placement element;
[0017] Two rotating elements are respectively disposed through the corresponding first support element and are rotatably connected to the corresponding control unit;
[0018] A through-slot element is provided through the placement element and is detachably connected to the locking unit;
[0019] A first mounting element is disposed at the top of the placement element, communicates with the through slot element, and is detachably connected to the mounting unit.
[0020] In some embodiments, the first adjustment unit includes:
[0021] A first adjusting element is disposed on the side of the placement unit and slidably connected to the support device, used to drive the placement unit to reciprocate in the vertical direction;
[0022] A first limiting element is disposed through the first adjusting element and is slidably connected to the corresponding first limiting unit.
[0023] In some embodiments, the second adjustment unit includes:
[0024] The second adjustment element is disposed on the side of the placement unit and located behind the corresponding first adjustment unit, and is slidably connected to the support device to drive the placement unit to reciprocate along the vertical direction.
[0025] The second limiting element passes through the second adjusting element and is slidably connected to the corresponding first limiting unit.
[0026] In some embodiments, the first limiting unit includes:
[0027] The second support element is movably disposed inside the bracket device and located below the placement unit, and is rotatably connected to the corresponding control unit for reciprocating motion in the horizontal direction under the action of the control unit.
[0028] The third limiting element is disposed on the side of the second support element and is slidably connected to the corresponding first adjustment unit and bracket device, respectively, and is used to reciprocate in the horizontal direction under the action of the second support element to limit the movement range of the first adjustment unit.
[0029] A fourth limiting element is disposed on the side of the second support element and is slidably connected to the corresponding second adjustment unit and bracket device, respectively, for reciprocating in the horizontal direction under the action of the second support element to limit the movement range of the second adjustment unit.
[0030] In some embodiments, the first adjustment unit further includes:
[0031] A first marking element is disposed at the front end of the first adjusting element and is used to mark the position of the first adjusting element.
[0032] In some embodiments, the control unit includes:
[0033] The control element is rotatably connected to the placement unit and the corresponding first limiting unit, and is used to drive the first limiting unit to reciprocate in the horizontal direction.
[0034] In some embodiments, the mounting unit includes:
[0035] A second mounting element is detachably disposed at the top of the placement unit and connected to the battery pack for reciprocating motion in the horizontal direction to install the battery pack.
[0036] A first locking element is disposed at the bottom end of the second mounting element and is detachably connected to the locking unit.
[0037] In some embodiments, the locking unit includes:
[0038] The second locking element is disposed at the bottom end of the placement unit and is detachably connected to both the placement unit and the installation unit, thereby limiting the range of motion of the installation unit.
[0039] In a second aspect, a support device for a battery energy storage container is provided for cooperating with at least one battery bracket device as described in the first aspect, comprising:
[0040] The support unit is disposed on a horizontal plane.
[0041] Two first sliding units are symmetrically arranged on both sides inside the bracket unit and are slidably connected to the first adjusting unit of the battery bracket device, respectively.
[0042] Two second sliding units are symmetrically arranged on both sides inside the bracket unit and are slidably connected to the second adjustment unit of the battery holder device, respectively.
[0043] Two second limiting units are respectively disposed on the corresponding first sliding unit and respectively limited and connected to the first end of the corresponding first limiting unit;
[0044] Two third limiting units are respectively disposed on the corresponding second sliding units and respectively connected to the second end of the corresponding first limiting unit for limiting.
[0045] In some embodiments, the support unit includes:
[0046] The first lateral support element is disposed on a horizontal plane;
[0047] Two vertical support elements are symmetrically arranged at the top of the first horizontal support element. The sides of the two vertical support elements are respectively provided with the first sliding unit and the second sliding unit. At least one battery bracket device is provided between the two vertical support elements.
[0048] The second lateral support element is disposed at the top of the two vertical support elements and is connected to the two vertical support elements respectively.
[0049] In some embodiments, the support unit further includes:
[0050] A plurality of second marking elements are respectively disposed at the front end of the corresponding vertical support element for marking the position of the battery bracket device.
[0051] In some embodiments, the second limiting unit includes:
[0052] A plurality of fifth limiting elements are respectively disposed on the corresponding first sliding unit and respectively limited and connected to the first end of the corresponding first limiting unit.
[0053] In some embodiments, the third limiting unit includes:
[0054] A plurality of sixth limiting elements are respectively disposed on the corresponding second sliding unit and respectively limited and connected to the second end of the corresponding first limiting unit.
[0055] Thirdly, a battery energy storage container is provided, comprising:
[0056] At least one battery tray device as described in the first aspect;
[0057] The support device as described in the second aspect;
[0058] At least one battery energy storage device is disposed at the top of the mounting unit of the battery bracket assembly for energy storage.
[0059] The present invention adopts the above technical solution and has the following technical effects compared with the prior art:
[0060] This utility model discloses a battery rack device, a support device, and a battery storage container for a battery energy storage container. The placement unit, a first adjustment unit, a second adjustment unit, a limiting unit, and a control unit work together to adjust the position of the placement unit within the support unit. This allows for adjustment of the distance between the placement units according to the size of the battery storage container, improving the practicality of the battery rack. An installation unit is used to install the battery storage container, allowing for direct attachment of the battery storage container to the placement unit, facilitating installation and removal. A locking unit secures the battery storage container to the placement unit, enhancing stability. Attached Figure Description
[0061] Figure 1 This is a three-dimensional structural schematic diagram of the battery holder device according to an embodiment of the present utility model;
[0062] Figure 2 This is an exploded view of the battery holder device according to an embodiment of the present utility model;
[0063] Figure 3 This is a three-dimensional structural diagram of the placement unit according to an embodiment of the present utility model;
[0064] Figure 4 This is a three-dimensional structural schematic diagram of the first adjustment unit according to an embodiment of the present utility model;
[0065] Figure 5 This is a three-dimensional structural schematic diagram of the second adjustment unit according to an embodiment of the present utility model;
[0066] Figure 6 This is a three-dimensional structural schematic diagram of the limiting unit according to an embodiment of the present utility model;
[0067] Figure 7 This is a three-dimensional structural diagram of the control unit according to an embodiment of the present utility model;
[0068] Figure 8 This is a three-dimensional structural diagram of the installation unit according to an embodiment of the present utility model;
[0069] Figure 9 This is a three-dimensional structural schematic diagram of the locking unit according to an embodiment of the present utility model;
[0070] Figure 10 This is a three-dimensional structural schematic diagram of the support device according to an embodiment of the present utility model;
[0071] Figure 11 This is a three-dimensional structural schematic diagram of a portion of the support device according to an embodiment of the present utility model;
[0072] Figure 12 This is an exploded view of the support unit according to an embodiment of the present utility model;
[0073] Figure 13 This is a three-dimensional structural schematic diagram of the second limiting unit according to an embodiment of the present utility model;
[0074] Figure 14 This is a three-dimensional structural schematic diagram of the third limiting unit according to an embodiment of the present utility model;
[0075] Figure 15 This is a structural schematic diagram of a battery energy storage container according to an embodiment of the present utility model;
[0076] The attached figures are labeled as follows: 100, battery bracket device;
[0077] 110. Placement unit; 111. Placement element; 112. First support element; 113. Rotating element; 114. Through slot element; 115. First mounting element;
[0078] 120. First adjustment unit; 121. First adjustment element; 122. First limiting element; 123. First marking element;
[0079] 130. Second adjustment unit; 131. Second adjustment element; 132. Second limit element;
[0080] 140. First limiting unit; 141. Second supporting element; 142. Third limiting element; 143. Fourth limiting element;
[0081] 150. Control unit; 151. Control element;
[0082] 160. Mounting unit; 161. Second mounting element; 162. First locking element;
[0083] 170. Locking unit; 171. Second locking element;
[0084] 200. Support device;
[0085] 210. Support unit; 211. First lateral support element; 212. Vertical support element; 213. Second lateral support element; 214. Second marking element;
[0086] 220. First sliding unit;
[0087] 230. Second sliding unit;
[0088] 240. Second limiting unit; 241. Fifth limiting element;
[0089] 250. Third limiting unit; 251. Sixth limiting element;
[0090] 300. Battery energy storage device. Detailed Implementation
[0091] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.
[0092] It should be noted that, unless otherwise specified, the embodiments and features described in these embodiments can be combined with each other.
[0093] The present invention will be further described below with reference to the accompanying drawings and specific embodiments, but this is not intended to limit the present invention.
[0094] Example 1
[0095] This embodiment relates to the battery holder device of this utility model.
[0096] like Figure 1 , Figure 2 As shown, a battery rack device 100 for a battery energy storage container includes a placement unit 110, two first adjustment units 120, two second adjustment units 130, two first limiting units 140, two control units 150, an installation unit 160, and a locking unit 170. The placement unit 110 is movably disposed inside the support device and is used for reciprocating movement in the vertical direction. The two first adjustment units 120 are symmetrically disposed on both sides of the placement unit 110 and are slidably connected to the support device, respectively, for driving the placement unit 110 to reciprocate in the vertical direction. The two second adjustment units 130 are symmetrically disposed on both sides of the placement unit 110 and located behind the corresponding two first adjustment units 120, respectively, and are slidably connected to the support device, for driving the placement unit 110 to reciprocate in the vertical direction. The two first limiting units 140 are slidably connected to the corresponding first adjustment units 120 and second adjustment units 130, respectively, and are also slidably connected to the support device. The frame device is limited by a positioning connection, which is used to reciprocate in the horizontal direction to limit the movement range of the first adjustment unit 120 and the second adjustment unit 130; the two control units 150 are respectively rotatably connected to the placement unit 110 and the corresponding first limiting unit 140, and are used to drive the first limiting unit 140 to reciprocate in the horizontal direction; the mounting unit 160 is detachably disposed at the top of the placement unit 110 and connected to the battery pack, and is used to reciprocate in the horizontal direction to install the battery pack; the locking unit 170 is disposed at the bottom of the placement unit 110 and is detachably connected to the placement unit 110 and the mounting unit 160, respectively, and is used to limit the movement range of the mounting unit 160.
[0097] like Figure 3As shown, the placement unit 110 includes a placement element 111, two first support elements 112, two rotating elements 113, a through-slot element 114, and a first mounting element 115. The placement element 111 is movably disposed inside the support device. Two first adjustment units 120 and two second adjustment units 130 are respectively disposed on both sides of the placement element 111, for reciprocating vertical movement under the action of the first adjustment units 120 and second adjustment units 130. The two first support elements 112 are symmetrically disposed at the bottom end of the placement element 111 and are respectively connected to the placement element 111. The two rotating elements 113 are respectively disposed through the corresponding first support elements 112 and are respectively rotatably connected to the corresponding control unit 150. The through-slot element 114 is disposed through the placement element 111 and is detachably connected to the locking unit 170. The first mounting element 115 is disposed at the top end of the placement element 111, communicates with the through-slot element 114, and is detachably connected to the mounting unit 160.
[0098] The cross-section of component 111 is rectangular.
[0099] In some of these embodiments, the placement element 111 is made of stainless steel.
[0100] In some of these embodiments, the placement element 111 is a placement plate.
[0101] The cross-section of the first support element 112 is rectangular.
[0102] The dimensions of the first support element 112 are matched with the dimensions of the placement element 111. Generally, the length of the first support element 112 is less than the width of the placement element 111, the width of the first support element 112 is less than the length of the placement element 111, and the height of the first support element 112 is greater than the height of the placement element 111.
[0103] In some of these embodiments, the first support element 112 is fixedly connected to the placement element 111, including but not limited to bolt connection, welding, and integral molding.
[0104] In some of these embodiments, the first support element 112 is made of stainless steel.
[0105] In some of these embodiments, the first support element 112 is a first support plate.
[0106] The cross-section of the rotating element 113 is circular.
[0107] The dimensions of the rotating element 113 are matched with the dimensions of the first support element 112. Generally, the diameter of the rotating element 113 is smaller than the length and height of the first support element 112, and the axial dimension of the rotating element 113 is equal to the width of the first support element 112.
[0108] In some of these embodiments, the rotating element 113 is a first threaded hole.
[0109] The cross-section of the through slot element 114 is circular.
[0110] The dimensions of the through-slot element 114 are matched with the dimensions of the placement element 111. Generally, the diameter of the through-slot element 114 is smaller than the length and width of the placement element 111, and the axial dimension of the through-slot element 114 is equal to the height of the placement element 111.
[0111] In some of these embodiments, the slot element 114 is a through hole.
[0112] The first mounting element 115 has a convex cross-section. Specifically, the first mounting element 115 includes a first mounting groove and a second mounting groove. The first mounting groove is disposed at the top of the placement element 111 and is detachably connected to the mounting unit 160; the second mounting groove is disposed inside the placement element 111 and communicates with the first mounting groove and the through groove element 114, and is detachably connected to the mounting unit 160.
[0113] The dimensions of the first mounting slot are matched with the dimensions of the component 111. Generally, the length of the first mounting slot is less than the length of the component 111, the width of the first mounting slot is less than the width of the component 111, and the height of the first mounting slot is less than the height of the component 111.
[0114] The dimensions of the second mounting slot are matched with the dimensions of the component 111. Generally, the length of the second mounting slot is less than the length of the component 111, the width of the second mounting slot is less than the width of the component 111, and the height of the second mounting slot is less than the height of the component 111.
[0115] The dimensions of the second mounting slot match those of the first mounting slot. Generally, the length of the second mounting slot is greater than the length of the first mounting slot, and the width of the second mounting slot is equal to the width of the first mounting slot.
[0116] In some of these embodiments, the height of the second mounting slot is equal to the height of the first mounting slot.
[0117] The dimensions of the second mounting groove match the dimensions of the through-slot element 114. Generally, the length and width of the second mounting groove are greater than the diameter of the through-slot element 114.
[0118] like Figure 4As shown, the first adjustment unit 120 includes a first adjustment element 121 and a first limiting element 122. The first adjustment element 121 is disposed on the side of the placement unit 110 and is slidably connected to the support device, and is used to drive the placement unit 110 to reciprocate in the vertical direction; the first limiting element 122 is disposed through the first adjustment element 121 and is slidably connected to the corresponding first limiting unit 140.
[0119] Specifically, the first adjustment element 121 is disposed on the side of the placement element 111.
[0120] In some of these embodiments, the first adjustment element 121 is disposed at the bottom end of the placement element 111.
[0121] The first adjusting element 121 has a convex cross-section. Specifically, the first adjusting element 121 includes a first slider and a second slider. The first side of the first slider is provided with a placement element 111 and is slidably connected to the support device; the second slider is disposed on the second side of the first slider and is slidably connected to the support device.
[0122] The dimensions of the first slider are matched with the dimensions of the placement element 111. Generally, the length of the first slider is less than the length of the placement element 111, the width of the first slider is less than the width of the placement element 111, and the height of the first slider is greater than the height of the placement element 111.
[0123] The dimensions of the second slider match those of the first slider. Generally, the length of the second slider is greater than the length of the first slider, the width of the second slider is equal to the width of the first slider, and the height of the second slider is equal to the height of the first slider.
[0124] In some of these embodiments, the first adjusting element 121 is made of stainless steel.
[0125] The first limiting element 122 is respectively installed through the first slider and the second slider.
[0126] The cross-section of the first limiting element 122 is circular, rounded rectangle, ellipse, etc.
[0127] The dimensions of the first limiting element 122 are matched with the dimensions of the first slider (second slider). Generally, the radial dimension of the first limiting element 122 is smaller than the length and height of the first slider (second slider), and the axial dimension of the first limiting element 122 is larger than the width of the first slider (second slider).
[0128] In some embodiments, the axial dimension of the first limiting element 122 is equal to the sum of the width of the first slider and the width of the second slider.
[0129] In some of these embodiments, the first limiting element 122 is a first limiting groove.
[0130] Furthermore, the first adjustment unit 120 also includes a first marking element 123. The first marking element 123 is disposed at the front end of the first adjustment element 121 and is used to mark the position of the first adjustment element 121.
[0131] Specifically, the first marking element 123 is disposed at the front end of the first slider.
[0132] The cross-section of the first marking element 123 is rectangular.
[0133] The dimensions of the first marking element 123 are matched with the dimensions of the first slider. Generally, the length of the first marking element 123 is less than the width of the first slider, the width of the first marking element 123 is less than the length of the first slider, and the height of the first marking element 123 is less than the height of the first slider.
[0134] In some of these embodiments, the first marking element 123 is a first marking groove.
[0135] like Figure 5 As shown, the second adjustment unit 130 includes a second adjustment element 131 and a second limiting element 132. The second adjustment element 131 is disposed on the side of the placement unit 110 and located behind the corresponding first adjustment unit 120, and is slidably connected to the support device, for driving the placement unit 110 to reciprocate in the vertical direction; the second limiting element 132 is disposed through the second adjustment element 131 and is slidably connected to the corresponding first limiting unit 140.
[0136] Specifically, the second adjustment element 131 is disposed on the side of the placement element 111 and is located behind the corresponding first adjustment element 121.
[0137] In some of these embodiments, the second adjustment element 131 is disposed at the bottom end of the placement element 111.
[0138] The second adjusting element 131 has a convex cross-section. Specifically, the second adjusting element 131 includes a third slider and a fourth slider. The first side of the third slider is provided with a placement element 111 and is slidably connected to the support device; the fourth slider is disposed on the second side of the third slider and is slidably connected to the support device.
[0139] The dimensions of the third slider are matched with the dimensions of the placement element 111. Generally, the length of the third slider is less than the length of the placement element 111, the width of the third slider is less than the width of the placement element 111, and the height of the third slider is greater than the height of the placement element 111.
[0140] The dimensions of the third slider match those of the first slider. Generally, the length of the third slider is equal to the length of the first slider, the width of the third slider is equal to the width of the first slider, and the height of the third slider is equal to the height of the first slider.
[0141] The dimensions of the fourth slider match those of the second slider. Generally, the length of the fourth slider is equal to the length of the second slider, the width of the fourth slider is equal to the width of the second slider, and the height of the fourth slider is equal to the height of the second slider.
[0142] The dimensions of the fourth slider match those of the third slider. Generally, the length of the fourth slider is greater than the length of the third slider, the width of the fourth slider is equal to the width of the third slider, and the height of the fourth slider is equal to the height of the third slider.
[0143] In some of these embodiments, the second adjustment element 131 is made of stainless steel.
[0144] The second limiting element 132 is respectively set through the third slider and the fourth slider.
[0145] The cross-section of the second limiting element 132 is circular, rounded rectangle, ellipse, etc.
[0146] The dimensions of the second limiting element 132 are matched with the dimensions of the third slider (fourth slider). Generally, the radial dimension of the second limiting element 132 is smaller than the length and height of the third slider (fourth slider), and the axial dimension of the second limiting element 132 is larger than the width of the third slider (fourth slider).
[0147] In some embodiments, the axial dimension of the second limiting element 132 is equal to the sum of the widths of the third slider and the fourth slider.
[0148] The dimensions of the second limiting element 132 are matched with the dimensions of the first limiting element 122. Generally, the radial dimension of the second limiting element 132 is equal to the radial dimension of the first limiting element 122, and the axial dimension of the second limiting element 132 is equal to the axial dimension of the first limiting element 122.
[0149] In some of these embodiments, the second limiting element 132 is a second limiting groove.
[0150] like Figure 6As shown, the first limiting unit 140 includes a second supporting element 141, a third limiting element 142, and a fourth limiting element 143. The second supporting element 141 is movably disposed inside the bracket device and located below the placement unit 110, and is rotatably connected to the corresponding control unit 150, for reciprocating horizontally under the action of the control unit 150. The third limiting element 142 is disposed on the side of the second supporting element 141 and is slidably connected to the corresponding first adjusting unit 120 and the bracket device, for reciprocating horizontally under the action of the second supporting element 141 to limit the movement range of the first adjusting unit 120. The fourth limiting element 143 is disposed on the side of the second supporting element 141 and is slidably connected to the corresponding second adjusting unit 130 and the bracket device, for reciprocating horizontally under the action of the second supporting element 141 to limit the movement range of the second adjusting unit 130.
[0151] Specifically, the second support element 141 is located below the placement element 111; the third limiting element 142 is slidably connected to the first limiting element 122; and the fourth limiting element 143 is slidably connected to the second limiting element 132.
[0152] The cross-section of the second support element 141 is rectangular.
[0153] The dimensions of the second support element 141 are matched with the dimensions of the placement element 111. Generally, the length of the second support element 141 is less than the width of the placement element 111, the width of the second support element 141 is less than the length of the placement element 111, and the height of the second support element 141 is greater than the height of the placement element 111.
[0154] In some of these embodiments, the second support element 141 is made of stainless steel.
[0155] In some of these embodiments, the second support element 141 is a second support plate.
[0156] The cross-section of the third limiting element 142 is circular, rounded rectangle, ellipse, etc.
[0157] The dimensions of the third limiting element 142 are matched with the dimensions of the second support element 141. Generally, the radial dimension of the third limiting element 142 is smaller than the length and height of the second support element 141, and the axial dimension of the third limiting element 142 is larger than the width of the second support element 141.
[0158] The dimensions of the third limiting element 142 are matched with the dimensions of the first limiting element 122. Generally, the radial dimension of the third limiting element 142 is equal to the radial dimension of the first limiting element 122, and the axial dimension of the third limiting element 142 is greater than the axial dimension of the first limiting element 122.
[0159] In some embodiments, the third limiting element 142 is fixedly connected to the second support element 141, including but not limited to integral molding.
[0160] In some of these embodiments, the third limiting element 142 is made of stainless steel.
[0161] In some of these embodiments, the third limiting element 142 is the first limiting post.
[0162] The cross-section of the fourth limiting element 143 is circular, rounded rectangle, ellipse, etc.
[0163] The dimensions of the fourth limiting element 143 are matched with the dimensions of the second support element 141. Generally, the radial dimension of the fourth limiting element 143 is smaller than the length and height of the second support element 141, and the axial dimension of the fourth limiting element 143 is larger than the width of the second support element 141.
[0164] The dimensions of the fourth limiting element 143 are matched with the dimensions of the second limiting element 132. Generally, the radial dimension of the fourth limiting element 143 is equal to the radial dimension of the second limiting element 132, and the axial dimension of the fourth limiting element 143 is greater than the axial dimension of the second limiting element 132.
[0165] The dimensions of the fourth limiting element 143 are matched with those of the third limiting element 142. Generally, the radial dimension of the fourth limiting element 143 is equal to the radial dimension of the third limiting element 142, and the axial dimension of the fourth limiting element 143 is equal to the axial dimension of the third limiting element 142.
[0166] In some embodiments, the fourth limiting element 143 is fixedly connected to the second support element 141, including but not limited to integral molding.
[0167] In some of these embodiments, the fourth limiting element 143 is made of stainless steel.
[0168] In some of these embodiments, the fourth limiting element 143 is a second limiting post.
[0169] like Figure 7 As shown, the control unit 150 includes a control element 151. The control element 151 is rotatably connected to the placement unit 110 and the corresponding first limiting unit 140, respectively, and is used to drive the first limiting unit 140 to reciprocate in the horizontal direction.
[0170] Specifically, the control element 151 is rotatably connected to the rotating element 113 and the second support element 141, respectively.
[0171] In some embodiments, the control element 151 includes a first screw and a first control disk. The first screw is rotatably connected to the rotating element 113 and the second support element 141, respectively; the first control disk is disposed at the end of the first screw and connected to the first screw, and is used to drive the first screw to rotate.
[0172] The dimensions of the first screw are matched with the dimensions of the rotating element 113. Generally, the diameter of the first screw is equal to the diameter of the rotating element 113, and the axial dimension of the first screw is greater than the axial dimension of the rotating element 113.
[0173] The dimensions of the first screw are matched with the dimensions of the second support element 141. Generally, the diameter of the first screw is smaller than the length and height of the second support element 141, and the axial dimension of the first screw is larger than the width of the second support element 141.
[0174] The dimensions of the first operating disc are matched with the dimensions of the first screw. Generally, the radial dimension of the first operating disc is larger than the diameter of the first screw, and the axial dimension of the first operating disc is smaller than the axial dimension of the first screw.
[0175] The dimensions of the first operating plate are matched with the dimensions of the first support element 112. Generally, the radial dimension of the first operating plate is smaller than the length and height of the first support element 112, and the axial dimension of the first operating plate is smaller than the width of the first support element 112.
[0176] In some embodiments, the control element 151 and the second support element 141 are rotatably connected without separation. For example, the control element 151 and the second support element 141 are connected via a bearing housing.
[0177] In some of these embodiments, the control element 151 is made of stainless steel.
[0178] like Figure 8 As shown, the mounting unit 160 includes a second mounting element 161 and a first locking element 162. The second mounting element 161 is detachably disposed at the top of the placement unit 110 and connected to the battery pack, and is used for reciprocating in the horizontal direction to install the battery pack; the first locking element 162 is disposed at the bottom of the second mounting element 161 and is detachably connected to the locking unit 170.
[0179] Specifically, the second mounting element 161 is detachably connected to the first mounting element 115; the first locking element 162 corresponds to the through slot element 114.
[0180] The second mounting element 161 has a convex cross-section. Specifically, the second mounting element 161 includes a first mounting block and a second mounting block. The top of the first mounting block is provided with a battery pack and is detachably connected to the first mounting groove; the second mounting block is located at the bottom of the first mounting block, and the bottom of the second mounting block is provided with a first locking element 162 and is detachably connected to the second mounting groove.
[0181] The dimensions of the first mounting block match the dimensions of the first mounting slot. Generally, the length of the first mounting block is equal to the length of the first mounting slot, the width of the first mounting block is equal to the width of the first mounting slot, and the height of the first mounting block is not less than the height of the first mounting slot.
[0182] The dimensions of the second mounting block match the dimensions of the second mounting slot. Generally, the length of the second mounting block is equal to the length of the second mounting slot, the width of the second mounting block is equal to the width of the second mounting slot, and the height of the second mounting block is equal to the height of the second mounting slot.
[0183] The dimensions of the second mounting block match those of the first mounting block. Generally, the length of the second mounting block is greater than the length of the first mounting block, the width of the second mounting block is equal to the width of the first mounting block, and the height of the second mounting block is less than the height of the first mounting block.
[0184] In some of these embodiments, the second mounting element 161 is made of stainless steel.
[0185] The first locking element 162 has a circular cross-section.
[0186] The dimensions of the first locking element 162 are matched with the dimensions of the second mounting block. Generally, the diameter of the first locking element 162 is smaller than the length and width of the second mounting block, and the axial dimension of the first locking element 162 is not greater than the height of the second mounting block.
[0187] The dimensions of the first locking element 162 are matched with the dimensions of the through slot element 114. Generally, the diameter of the first locking element 162 is equal to the diameter of the through slot element 114.
[0188] In some of these embodiments, the first locking element 162 is a second threaded hole.
[0189] like Figure 9 As shown, the locking unit 170 includes a second locking element 171. The second locking element 171 is disposed at the bottom end of the placement unit 110 and is detachably connected to the placement unit 110 and the mounting unit 160, respectively, to limit the range of motion of the mounting unit 160.
[0190] Specifically, the second locking element 171 is disposed at the bottom end of the placement element 111 and is detachably connected to the through slot element 114 and the first locking element 162 respectively.
[0191] In some embodiments, the second locking element 171 includes a second screw and a second operating disc. The second screw is detachably connected to the through-slot element 114 and the first locking element 162, respectively; the second operating disc is disposed at the bottom end of the second screw and is used to drive the second screw to rotate.
[0192] The dimensions of the second screw are matched with the dimensions of the through-slot element 114 (first locking element 162). Generally, the diameter of the second screw is equal to the diameter of the through-slot element 114 (first locking element 162), and the axial dimension of the second screw is greater than the axial dimension of the through-slot element 114 (first locking element 162).
[0193] The dimensions of the second operating disc are matched with the dimensions of the second screw. Generally, the radial dimension of the second operating disc is larger than the diameter of the second screw, and the axial dimension of the second operating disc is smaller than the axial dimension of the second screw.
[0194] The dimensions of the second operating panel are matched with the dimensions of the placement element 111. Generally, the radial dimension of the second operating panel is smaller than the length and width of the placement element 111.
[0195] In some of these embodiments, the second locking element 171 is made of stainless steel.
[0196] In some of these embodiments, the second locking element 171 is a locking bolt.
[0197] The method of using this utility model is as follows:
[0198] (a) Adjusting the placement of component 111
[0199] Twist the control element 151 counterclockwise so that it rotates along the circumference of the rotating element 113 and moves accordingly along the axial direction of the rotating element 113.
[0200] The control element 151 drives the third limiting element 142 and the fourth limiting element 143 to move along the axial direction of the first limiting element 122 and the second limiting element 132 via the second support element 141, so that the third limiting element 142 and the fourth limiting element 143 gradually move away from the support device until they are separated. This puts the placement element 111 into a relaxed state.
[0201] The placement element 111 is moved vertically by the first adjusting element 121 and the second adjusting element 131, either upwards or downwards.
[0202] During the process, the positions of the first limiting element 122 and the second limiting element 132 are determined by the first marking element 123;
[0203] (II) Fixed placement of components 111
[0204] Twist the control element 151 clockwise so that it rotates along the circumference of the rotating element 113 and moves accordingly along the axial direction of the rotating element 113.
[0205] The control element 151 drives the third limiting element 142 and the fourth limiting element 143 to move along the axial direction of the first limiting element 122 and the second limiting element 132 via the second support element 141, so that the third limiting element 142 and the fourth limiting element 143 gradually approach the bracket device and until they are in close contact. This puts the placement element 111 in a fixed state.
[0206] (III) Installing the battery pack
[0207] The battery pack is placed in the second mounting element 161 and secured by bolts.
[0208] The second mounting element 161, on which the battery pack is installed, is snapped into the first mounting element 115 where the placement element 111 is located;
[0209] The second locking element 171 is threadedly connected to the first locking element 162 via the through slot element 114 until it is tightened.
[0210] The advantages of this invention are as follows: by utilizing the cooperation of the placement unit, the first adjustment unit, the second adjustment unit, the limiting unit, and the control unit, the position of the placement unit within the support unit can be adjusted, so as to adjust the distance between each placement unit according to the size of the battery energy storage container, thereby improving the practicality of the battery rack; by using the installation unit to install the battery energy storage container, it is possible to directly snap the battery energy storage container onto the placement unit, thus facilitating the installation and removal of the battery energy storage container; and by using the locking unit, the battery energy storage container can be fixed on the placement unit to improve stability.
[0211] Example 2
[0212] This embodiment relates to the support device of this utility model.
[0213] like Figure 10 , Figure 11As shown, a support device 200 for a battery energy storage container, used to cooperate with at least one battery bracket device 100 as described in Embodiment 1, includes a support unit 210, two first sliding units 220, two second sliding units 230, two second limiting units 240, and two third limiting units 250. The support unit 210 is disposed on a horizontal plane; the two first sliding units 220 are symmetrically disposed on both sides inside the support unit 210 and are slidably connected to the first adjusting unit 120 of the battery bracket device 100 respectively; the two second sliding units 230 are symmetrically disposed on both sides inside the support unit 210 and are slidably connected to the second adjusting unit 130 of the battery bracket device 100 respectively; the two second limiting units 240 are respectively disposed on the corresponding first sliding units 220 and are respectively limited to the first end of the corresponding first limiting unit 140; the two third limiting units 250 are respectively disposed on the corresponding second sliding units 230 and are respectively limited to the second end of the corresponding first limiting unit 140.
[0214] Specifically, the two first sliding units 220 are slidably connected to the corresponding first adjusting element 121; the two second sliding units 230 are slidably connected to the corresponding second adjusting element 131.
[0215] More specifically, the two first sliding units 220 are slidably connected to the corresponding first slider and second slider, respectively; the two second sliding units 230 are slidably connected to the corresponding third slider and fourth slider, respectively.
[0216] like Figure 12 As shown, the support unit 210 includes a first horizontal support element 211, two vertical support elements 212, and a second horizontal support element 213. The first horizontal support element 211 is disposed on a horizontal plane; the two vertical support elements 212 are symmetrically disposed at the top of the first horizontal support element 211, and the sides of the two vertical support elements 212 are respectively provided with corresponding first sliding units 220 and second sliding units 230; at least one battery holder device 100 is disposed between the two vertical support elements 212; the second horizontal support element 213 is disposed at the top of the two vertical support elements 212 and is connected to each of the two vertical support elements 212.
[0217] Specifically, at least one placement element 111 is provided between the two vertical support elements 212.
[0218] The cross-section of the first transverse support element 211 is rectangular.
[0219] In some of these embodiments, the first lateral support element 211 is made of stainless steel.
[0220] In some of these embodiments, the first lateral support element 211 is a base plate.
[0221] The vertical support element 212 has a rectangular cross-section.
[0222] The dimensions of the vertical support element 212 are matched with the dimensions of the first horizontal support element 211. Generally, the length of the vertical support element 212 is equal to the width of the first horizontal support element 211, the width of the vertical support element 212 is less than the length of the first horizontal support element 211, and the height of the vertical support element 212 is greater than the height of the first horizontal support element 211.
[0223] The dimensions of the vertical support element 212 are matched with the dimensions of the placement element 111. Generally, the length of the vertical support element 212 is greater than the width of the placement element 111, the width of the vertical support element 212 is less than the length of the placement element 111, and the height of the vertical support element 212 is greater than the height of the placement element 111.
[0224] In some embodiments, the distance between the two vertical support elements 212 is greater than the length of the placement element 111.
[0225] In some embodiments, the vertical support element 212 is fixedly connected to the first horizontal support element 211, including but not limited to being integrally formed.
[0226] In some of these embodiments, the vertical support element 212 is made of stainless steel.
[0227] In some of these embodiments, the vertical support element 212 is a vertical plate.
[0228] The cross-section of the second transverse support element 213 is rectangular.
[0229] The dimensions of the second lateral support element 213 match those of the first lateral support element 211. Generally, the length of the second lateral support element 213 is equal to the length of the first lateral support element 211, the width of the vertical support element 212 is equal to the width of the second lateral support element 213, and the height of the vertical support element 212 is equal to the height of the second lateral support element 213.
[0230] The dimensions of the second horizontal support element 213 are matched with the dimensions of the vertical support element 212. Generally, the length of the second horizontal support element 213 is greater than the width of the vertical support element 212, the width of the vertical support element 212 is equal to the length of the vertical support element 212, and the height of the vertical support element 212 is less than the height of the vertical support element 212.
[0231] In some embodiments, the second lateral support element 213 is fixedly connected to the vertical support element 212, including but not limited to being integrally formed.
[0232] In some of these embodiments, the second lateral support element 213 is made of stainless steel.
[0233] In some of these embodiments, the second lateral support element 213 is a top plate.
[0234] Furthermore, the support unit 210 also includes a plurality of second marking elements 214. The plurality of second marking elements 214 are respectively disposed at the front end of the corresponding vertical support element 212 for marking the position of the battery bracket device 100.
[0235] Specifically, the second marking element 214 corresponds to the first marking element 123.
[0236] The cross-section of the second marking element 214 is rectangular.
[0237] The dimensions of the second marking element 214 are matched with the dimensions of the vertical support element 212. Generally, the length of the second marking element 214 is less than the width of the vertical support element 212, the width of the second marking element 214 is less than the length of the vertical support element 212, and the height of the second marking element 214 is less than the height of the vertical support element 212.
[0238] The dimensions of the second marking element 214 match the dimensions of the first marking element 123. Generally, the length of the second marking element 214 is equal to the length of the first marking element 123, the width of the second marking element 214 is equal to the width of the first marking element 123, and the height of the second marking element 214 is equal to the height of the first marking element 123.
[0239] In some of these embodiments, a plurality of second marking elements 214 are spaced apart along the height direction of the vertical support element 212.
[0240] In some of these embodiments, the second marking element 214 is a second marking groove.
[0241] The first sliding unit 220 has a convex cross-section. Specifically, the first sliding unit 220 includes a first sliding groove and a second sliding groove. The first sliding groove is disposed on the side of the vertical support element 212 and is slidably connected to the corresponding first slider; the second sliding groove is disposed inside the vertical support element 212, and a corresponding second limiting unit 240 is disposed inside the second sliding groove, and is respectively connected to the first sliding groove and the corresponding second limiting unit 240, and is slidably connected to the corresponding second slider.
[0242] The dimensions of the first slide groove are matched with the dimensions of the vertical support element 212. Generally, the length of the first slide groove is less than the length of the vertical support element 212, the width of the first slide groove is less than the width of the vertical support element 212, and the height of the first slide groove is less than the height of the vertical support element 212.
[0243] The dimensions of the first slide groove are matched with the dimensions of the first slider. Generally, the length of the first slide groove is equal to the length of the first slider, the width of the first slide groove is not greater than the width of the first slider, and the height of the first slide groove is greater than the height of the first slider.
[0244] The dimensions of the second slide groove are matched with the dimensions of the vertical support element 212. Generally, the length of the second slide groove is less than the length of the vertical support element 212, the width of the second slide groove is less than the width of the vertical support element 212, and the height of the second slide groove is less than the height of the vertical support element 212.
[0245] The dimensions of the second slide groove are matched with the dimensions of the second slider. Generally, the length of the second slide groove is equal to the length of the second slider, the width of the second slide groove is equal to the width of the second slider, and the height of the second slide groove is greater than the height of the second slider.
[0246] The dimensions of the second slide groove match those of the first slide groove. Generally, the length of the second slide groove is greater than the length of the first slide groove, the width of the second slide groove is greater than the width of the first slide groove, and the height of the second slide groove is equal to the height of the first slide groove.
[0247] In some embodiments, the sum of the widths of the first groove and the second groove is less than the width of the vertical support element 212.
[0248] The cross-section of the second sliding unit 230 is convex. Specifically, the second sliding unit 230 includes a third sliding groove and a fourth sliding groove. The third sliding groove is disposed on the side of the vertical support element 212 and is symmetrically arranged with the first sliding groove, and is slidably connected to the corresponding third slider; the fourth sliding groove is disposed inside the vertical support element 212, and a corresponding third limiting unit 250 is disposed inside the fourth sliding groove, and is respectively connected to the third sliding groove and the corresponding third limiting unit 250, and is slidably connected to the corresponding fourth slider.
[0249] The dimensions of the third slide groove are matched with the dimensions of the vertical support element 212. Generally, the length of the third slide groove is less than the length of the vertical support element 212, the width of the third slide groove is less than the width of the vertical support element 212, and the height of the third slide groove is less than the height of the vertical support element 212.
[0250] The dimensions of the third slide groove match those of the first slide groove. Generally, the length of the third slide groove is equal to the length of the first slide groove, the width of the third slide groove is equal to the width of the first slide groove, and the height of the third slide groove is equal to the height of the first slide groove.
[0251] The dimensions of the third slide groove match the dimensions of the third slider. Generally, the length of the third slide groove is equal to the length of the third slider, the width of the third slide groove is no greater than the width of the third slider, and the height of the third slide groove is greater than the height of the third slider.
[0252] The dimensions of the fourth slide groove match the dimensions of the vertical support element 212. Generally, the length of the fourth slide groove is less than the length of the vertical support element 212, the width of the fourth slide groove is less than the width of the vertical support element 212, and the height of the fourth slide groove is less than the height of the vertical support element 212.
[0253] The dimensions of the fourth slide groove match those of the second slide groove. Generally, the length of the fourth slide groove is equal to the length of the second slide groove, the width of the fourth slide groove is equal to the width of the second slide groove, and the height of the fourth slide groove is equal to the height of the second slide groove.
[0254] The dimensions of the fourth slide groove match the dimensions of the fourth slider. Generally, the length of the fourth slide groove is equal to the length of the fourth slider, the width of the fourth slide groove is equal to the width of the fourth slider, and the height of the fourth slide groove is greater than the height of the fourth slider.
[0255] The dimensions of the fourth slide groove match those of the third slide groove. Generally, the length of the fourth slide groove is greater than the length of the third slide groove, the width of the fourth slide groove is greater than the width of the third slide groove, and the height of the fourth slide groove is equal to the height of the third slide groove.
[0256] In some embodiments, the sum of the widths of the third and fourth grooves is less than the width of the vertical support element 212.
[0257] like Figure 13 As shown, the second limiting unit 240 includes a plurality of fifth limiting elements 241. The plurality of fifth limiting elements 241 are respectively disposed in the corresponding first sliding unit 220 and respectively limited and connected to the first end of the corresponding first limiting unit 140.
[0258] Specifically, the fifth limiting element 241 is disposed in the corresponding second slide groove and corresponds to the corresponding first limiting element 122, and is limitedly connected to the third limiting element 142.
[0259] The cross-section of the fifth limiting element 241 is circular, rounded rectangle, ellipse, etc.
[0260] The dimensions of the fifth limiting element 241 are matched with the dimensions of the second slide groove. Generally, the radial dimension of the fifth limiting element 241 is smaller than the length and height of the second slide groove, and the axial dimension of the fifth limiting element 241 is smaller than the width of the second slide groove.
[0261] The dimensions of the fifth limiting element 241 are matched with the dimensions of the first limiting element 122. Generally, the radial dimension of the fifth limiting element 241 is equal to the radial dimension of the first limiting element 122, and the axial dimension of the fifth limiting element 241 is smaller than the axial dimension of the first limiting element 122.
[0262] The dimensions of the fifth limiting element 241 are matched with those of the third limiting element 142. Generally, the radial dimension of the fifth limiting element 241 is equal to the radial dimension of the third limiting element 142, and the axial dimension of the fifth limiting element 241 is smaller than the axial dimension of the third limiting element 142.
[0263] In some embodiments, the sum of the axial dimension of the fifth limiting element 241, the width of the first groove, and the width of the second groove is less than the width of the vertical support element 212.
[0264] The number of fifth limiting elements 241 matches the number of second marking elements 214. Generally, the number of fifth limiting elements 241 of a second limiting unit 240 is equal to the number of second marking elements 214 of a vertical support element 212.
[0265] In some embodiments, a plurality of fifth limiting elements 241 are spaced apart along the height direction of the second groove.
[0266] In some of these embodiments, the fifth limiting element 241 is the third limiting groove.
[0267] like Figure 14 As shown, the third limiting unit 250 includes a plurality of sixth limiting elements 251. The plurality of sixth limiting elements 251 are respectively disposed in the corresponding second sliding unit 230 and respectively connected to the second end of the corresponding first limiting unit 140 for limiting.
[0268] Specifically, the sixth limiting element 251 is disposed in the corresponding fourth slide groove, and corresponds to the corresponding second limiting element 132, and is limitedly connected to the fourth limiting element 143.
[0269] The cross-section of the sixth limiting element 251 is circular, rounded rectangle, ellipse, etc.
[0270] The dimensions of the sixth limiting element 251 are matched with the dimensions of the fourth slide groove. Generally, the radial dimension of the sixth limiting element 251 is smaller than the length and height of the fourth slide groove, and the axial dimension of the sixth limiting element 251 is smaller than the width of the fourth slide groove.
[0271] The dimensions of the sixth limiting element 251 are matched with the dimensions of the second limiting element 132. Generally, the radial dimension of the sixth limiting element 251 is equal to the radial dimension of the second limiting element 132, and the axial dimension of the sixth limiting element 251 is smaller than the axial dimension of the second limiting element 132.
[0272] The dimensions of the sixth limiting element 251 are matched with those of the fourth limiting element 143. Generally, the radial dimension of the sixth limiting element 251 is equal to the radial dimension of the fourth limiting element 143, and the axial dimension of the sixth limiting element 251 is smaller than the axial dimension of the fourth limiting element 143.
[0273] In some embodiments, the sum of the axial dimension of the sixth limiting element 251, the width of the third slide groove, and the width of the fourth slide groove is less than the width of the vertical support element 212.
[0274] The number of sixth limiting elements 251 matches the number of fifth limiting elements 241. Generally, the number of sixth limiting elements 251 in a third limiting unit 250 is equal to the number of fifth limiting elements 241 in a second limiting unit 240.
[0275] In some embodiments, a plurality of sixth limiting elements 251 are spaced apart along the height direction of the fourth groove.
[0276] In some of these embodiments, the sixth limiting element 251 is the fourth limiting groove.
[0277] The method of using this utility model is as follows:
[0278] (a) Adjusting the placement of component 111
[0279] Twist the control element 151 counterclockwise so that it rotates along the circumference of the rotating element 113 and moves accordingly along the axial direction of the rotating element 113.
[0280] The control element 151, through the second support element 141, drives the third limiting element 142 and the fourth limiting element 143 to move along the axial direction of the first limiting element 122 and the second limiting element 132, so that the third limiting element 142 and the fourth limiting element 143 gradually move away from the fifth limiting element 241 and the sixth limiting element 251, until they separate from the fifth limiting element 241 and the sixth limiting element 251. This allows the placement element 111 to be in a relaxed state.
[0281] The placement element 111 is moved upward or downward via the first adjusting element 121 and the second adjusting element 131 along the height direction of the first sliding unit 220 and the second sliding unit 230, respectively.
[0282] During the process, the positions of the first limiting element 122 and the second limiting element 132 are determined to correspond with the fifth limiting element 241 and the sixth limiting element 251 by the first marking element 123 and the second marking element 214.
[0283] (II) Fixed placement of components 111
[0284] Twist the control element 151 clockwise so that it rotates along the circumference of the rotating element 113 and moves accordingly along the axial direction of the rotating element 113.
[0285] The control element 151, through the second support element 141, drives the third limiting element 142 and the fourth limiting element 143 to move along the axial direction of the first limiting element 122 and the second limiting element 132, so that the third limiting element 142 and the fourth limiting element 143 gradually approach the fifth limiting element 241 and the sixth limiting element 251, until they are in close contact with the fifth limiting element 241 and the sixth limiting element 251. This puts the placement element 111 into a fixed state.
[0286] Example 3
[0287] This embodiment relates to the battery energy storage container of this utility model.
[0288] like Figure 15 As shown, a battery energy storage container includes at least one battery bracket device 100 as described in Embodiment 1, a support device 200 as described in Embodiment 2, and at least one battery energy storage device 300. The battery energy storage device 300 is disposed at the top of the mounting unit 160 of the battery bracket device 100 and is used for energy storage.
[0289] Specifically, the battery energy storage device 300 is disposed on the top of the second mounting element 161 and connected to the second mounting element 161.
[0290] In some of these embodiments, the battery energy storage device 300 is a battery pack.
[0291] The method of using this utility model is as follows:
[0292] The battery energy storage device 300 is placed on the second mounting element 161 and fixed by bolt connection;
[0293] The second mounting element 161, on which the battery energy storage device 300 is installed, is snapped into the first mounting element 115 where the placement element 111 is located;
[0294] The second locking element 171 is threadedly connected to the first locking element 162 via the through slot element 114 until it is tightened.
[0295] The above description is only a preferred embodiment of the present utility model and does not limit the implementation method and protection scope of the present utility model. Those skilled in the art should realize that all solutions obtained by equivalent substitutions and obvious changes made based on the description and illustrations of the present utility model should be included within the protection scope of the present utility model.
Claims
1. A battery cradle arrangement for a battery energy storage container, characterized by, include: A placement unit is movably disposed inside the support device and is used for reciprocating motion in the vertical direction; Two first adjustment units are symmetrically arranged on both sides of the placement unit and are slidably connected to the support device respectively, for driving the placement unit to reciprocate in the vertical direction; Two second adjustment units are symmetrically arranged on both sides of the placement unit and located behind the corresponding two first adjustment units, and are slidably connected to the support device to drive the placement unit to reciprocate in the vertical direction. Two first limiting units are slidably connected to the corresponding first adjusting unit and second adjusting unit, respectively, and are limited by the support device, for reciprocating motion in the horizontal direction to limit the range of motion of the first adjusting unit and the second adjusting unit; Two control units are respectively rotatably connected to the placement unit and the corresponding first limiting unit, and are used to drive the first limiting unit to reciprocate along the horizontal direction; The mounting unit is detachably disposed at the top of the placement unit and connected to the battery pack, and is used for reciprocating in the horizontal direction to install the battery pack; A locking unit is disposed at the bottom end of the placement unit and is detachably connected to both the placement unit and the installation unit, thereby limiting the range of motion of the installation unit.
2. The battery carriage apparatus of claim 1, wherein, The placement unit includes: A placement element is movably disposed inside the support device. Two first adjustment units and two second adjustment units are respectively disposed on both sides of the placement element, which are used to reciprocate in the vertical direction under the action of the first adjustment unit and the second adjustment unit. Two first support elements are symmetrically arranged at the bottom end of the placement element and are respectively connected to the placement element; Two rotating elements are respectively disposed through the corresponding first support element and are rotatably connected to the corresponding control unit; A through-slot element is provided through the placement element and is detachably connected to the locking unit; A first mounting element is disposed at the top of the placement element, communicates with the through slot element, and is detachably connected to the mounting unit.
3. The battery carriage apparatus of claim 1, wherein, The first adjustment unit includes: A first adjusting element is disposed on the side of the placement unit and slidably connected to the support device, used to drive the placement unit to reciprocate in the vertical direction; A first limiting element, which passes through the first adjusting element and is slidably connected to a corresponding first limiting unit; and / or The second adjustment unit includes: The second adjustment element is disposed on the side of the placement unit and located behind the corresponding first adjustment unit, and is slidably connected to the support device to drive the placement unit to reciprocate along the vertical direction. A second limiting element passes through the second adjusting element and is slidably connected to the corresponding first limiting unit; and / or The first limiting unit includes: The second support element is movably disposed inside the bracket device and located below the placement unit, and is rotatably connected to the corresponding control unit for reciprocating motion in the horizontal direction under the action of the control unit. The third limiting element is disposed on the side of the second support element and is slidably connected to the corresponding first adjustment unit and bracket device, respectively, and is used to reciprocate in the horizontal direction under the action of the second support element to limit the movement range of the first adjustment unit. A fourth limiting element is disposed on the side of the second support element and is slidably connected to the corresponding second adjustment unit and bracket device, respectively, for reciprocating in the horizontal direction under the action of the second support element to limit the movement range of the second adjustment unit.
4. The battery carriage apparatus of claim 3, wherein, The first adjustment unit further includes: A first marking element is disposed at the front end of the first adjusting element and is used to mark the position of the first adjusting element.
5. The battery holder apparatus of claim 1, wherein, The control unit includes: The control element is rotatably connected to the placement unit and the corresponding first limiting unit, and is used to drive the first limiting unit to reciprocate in the horizontal direction.
6. The battery holder apparatus of claim 1, wherein, The installation unit includes: A second mounting element is detachably disposed at the top of the placement unit and connected to the battery pack for reciprocating motion in the horizontal direction to install the battery pack. A first locking element is disposed at the bottom end of the second mounting element and is detachably connected to the locking unit; and / or The locking unit includes: The second locking element is disposed at the bottom end of the placement unit and is detachably connected to both the placement unit and the installation unit, thereby limiting the range of motion of the installation unit.
7. A support device for a battery energy storage container for cooperation with at least one battery cradle device as claimed in any one of claims 1 to 6, characterized in that include: A support unit, wherein the support unit is disposed on a horizontal plane; Two first sliding units are symmetrically arranged on both sides inside the bracket unit and are slidably connected to the first adjusting unit of the battery bracket device, respectively. Two second sliding units are symmetrically arranged on both sides inside the bracket unit and are slidably connected to the second adjustment unit of the battery holder device, respectively. Two second limiting units are respectively disposed on the corresponding first sliding unit and respectively limited and connected to the first end of the corresponding first limiting unit; Two third limiting units are respectively disposed on the corresponding second sliding units and respectively connected to the second end of the corresponding first limiting unit for limiting.
8. The stent device of claim 7, wherein, The support unit includes: The first lateral support element is disposed on a horizontal plane; Two vertical support elements are symmetrically arranged at the top of the first horizontal support element. The sides of the two vertical support elements are respectively provided with the first sliding unit and the second sliding unit. At least one battery bracket device is provided between the two vertical support elements. A second lateral support element is disposed at the top of the two vertical support elements and is connected to the two vertical support elements respectively; and / or The second limiting unit includes: A plurality of fifth limiting elements, each of which is disposed on a corresponding first sliding unit and respectively connected to a first end of the corresponding first limiting unit for limiting; and / or The third limiting unit includes: A plurality of sixth limiting elements are respectively disposed on the corresponding second sliding unit and respectively limited and connected to the second end of the corresponding first limiting unit.
9. The stent device of claim 8, wherein, The support unit also includes: A plurality of second marking elements are respectively disposed at the front end of the corresponding vertical support element for marking the position of the battery bracket device.
10. A battery energy storage container, characterized by, include: At least one battery holder device as described in any one of claims 1 to 6; The support device as described in any one of claims 7 to 9; At least one battery energy storage device is disposed at the top of the mounting unit of the battery bracket assembly for energy storage.