Sensor support and sensor assembly
Through the design of the sensor bracket, the movable connection between the locking member and the assembly adjustment member is solved, and the problem of re-drilling or screwing into self-tapping of the sensor position is achieved, achieving rapid installation and efficient production of the sensor position.
Patent Information
- Application Number
- CN202422979460.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-03
- Publication Date
- 2025-08-22
- Estimated Expiration
- 2034-12-03
AI Technical Summary
In the prior art, when the sensor is fine-tuned, it is necessary to re-drill the connecting hole or screw in the self-tapping wire, resulting in low production efficiency.
The sensor bracket is adopted, including a fixing bracket, assembly bracket and locking member. Through the active connection between the locking member and the assembly adjustment member, the sensor is quickly installed and fine-tuned, avoiding re-drilling or screwing into self-tapping.
It improves the simplicity and speed of fine-tuning of sensor position and improves production and processing efficiency.
Smart Images

Figure CN223257879U_ABST
Abstract
Description
Technical Field
[0001] The present application relates to the field of sensor technology, and in particular, to a sensor bracket and a sensor assembly. Background Art
[0002] During the process of power battery injection, it is necessary to ensure that the injection hole of the power battery and the injection needle and other structures of the injection equipment are accurately docked. Therefore, the position of the power battery needs to be precisely controlled. Usually, sensors are used to accurately identify the fixed position of the power battery.
[0003] In existing technology, sensors are typically secured to specific workstations using a sensor bracket. These brackets are typically secured to the sensors using screws or other similar structures. However, fine-tuning the sensor's position based on specific field conditions is often necessary. This often requires re-drilling connection holes or re-screwing self-tapping screws, reducing overall production efficiency. Utility Model Content
[0004] The purpose of the present application is to provide a sensor bracket and a sensor assembly, which can solve the problem in the prior art that when the sensor position is adjusted, it is necessary to re-drill the connection hole or screw in the self-tapping screw, resulting in low production efficiency.
[0005] In order to achieve the above-mentioned purpose, according to the first aspect of the present application, an embodiment of the present application provides a sensor bracket for fixing a sensor, wherein the sensor bracket includes a fixing bracket, an assembly bracket and a locking member. The fixing bracket is connected to a work station, the assembly bracket is directly or indirectly connected to the fixing bracket, and at least one assembly adjustment member is provided on the assembly bracket. The locking member is movably connected to the assembly adjustment member and can be relatively locked, and the locking member is used to connect the sensor. Different locking positions of the locking member and the assembly adjustment member correspond to different installation positions of the sensor.
[0006] Based on the above-mentioned embodiments of the present application, when the sensor bracket is in use, the fixed bracket is directly fixed to the work station, and the sensor is fixed to the assembly adjustment member on the assembly bracket via a locking member. At the same time, the locking member can, on the one hand, lock the sensor relative to the assembly adjustment member during normal use after the sensor position is determined. On the other hand, the locking member can also move relative to the assembly adjustment member when necessary, thereby allowing the sensor to move relative to the assembly adjustment member, thereby achieving rapid installation and fixation of the sensor in different positions. As a result, when fine-tuning the sensor position, there is no need to re-drill through holes or screw in self-tapping screws, making the sensor position fine-tuning process simpler and faster, thereby improving production and processing efficiency.
[0007] In some embodiments, the assembly adjustment member is disposed along a first direction, the locking member and the assembly adjustment member are movable relative to each other along the first direction, and the locking member can be locked at different positions on the assembly adjustment member to adjust the position of the sensor.
[0008] Based on the above-mentioned embodiments of the present application, the locking member can move in a first direction relative to the assembly adjustment member, that is, along the setting direction of the assembly adjustment member, so that the movable range of the locking member and the sensor can be limited by limiting the setting direction and size of the assembly adjustment member, that is, limiting the fine-tuning range of the sensor.
[0009] In some embodiments, at least two assembly adjustment members are provided on the assembly bracket along the first direction, at least two locking members are provided, and different locking members are provided on different assembly adjustment members.
[0010] Based on the above-described embodiments of the present application, by providing at least two assembly adjustment members, the same sensor can be simultaneously secured by at least two locking members when securing the sensor, making the sensor securement more stable. Furthermore, different locking members are provided on different assembly adjustment members. In this case, the movable range of a single locking member is also the size range of a single assembly adjustment member, thereby limiting the movable range of the single locking member and, in turn, the fine-tuning range of the sensor, making the sensor fine-tuning process simpler and faster.
[0011] In some embodiments, at least two assembly adjustment members are provided on the assembly bracket along the second direction, at least two locking members are provided, different locking members are provided on the same assembly adjustment member, and the second direction is provided at an angle to the first direction.
[0012] Based on the above-described embodiments of the present application, by providing different assembly adjustment members along the second direction, the locking member and the sensor can be adjusted in a second direction different from the first direction, thereby expanding the adjustable range of the sensor during fine-tuning. Furthermore, when the locking member is provided on the same assembly adjustment member, if the locking member and the sensor need to be adjusted to a different assembly adjustment member, the locking member and the sensor need to be moved as a whole to the other assembly adjustment member.
[0013] In some embodiments, the first direction corresponds to a movable direction of the locking member relative to the assembly adjustment member, and the second direction is perpendicular to the movable direction of the locking member relative to the assembly adjustment member.
[0014] Based on the above-mentioned embodiments of the present application, the first direction and the second direction are perpendicular to each other, so that the above-mentioned two setting methods can be combined to expand the adjustable range of the locking member and the sensor as a whole.
[0015] In some embodiments, the assembly adjustment member is configured as an elongated assembly edge, and the locking member can move relative to the assembly edge. Alternatively, the assembly adjustment member is configured as an elongated assembly hole, and the locking member is inserted into the assembly hole and can be movably connected to the assembly hole.
[0016] Based on the above-mentioned embodiments of the present application, the assembly adjustment member can be configured in a variety of different structures. When the assembly adjustment member is configured as an assembly edge, it can be slidably connected to the sensor through a snap-fit method, and then locked by a locking member. When the assembly adjustment member is configured as an assembly hole, the locking member can be configured as a screw or bolt, and the locking member can slide along the assembly hole. In the above-mentioned long strip-shaped configuration, the locking member and the sensor can move along the length of the assembly adjustment member when they move, thereby limiting the fine-tuning direction and range of the sensor.
[0017] In some embodiments, a connecting plate is provided between the assembly bracket and the fixing bracket, the connecting plate is provided at an angle to the assembly bracket, and the connecting plate is provided at an angle to the fixing bracket.
[0018] Based on the above-mentioned embodiments of the present application, by setting a connecting plate between the assembly bracket and the fixed bracket, compared with directly connecting the assembly bracket and the fixed bracket, the setting of the connecting plate between the two can make the relative position between the assembly bracket and the fixed bracket more flexible, thereby enabling the sensor bracket to adapt to more complex connection requirements.
[0019] In some embodiments, a first transition portion is provided at the connection position between the assembly bracket and the connection plate, and the first transition portion is provided as an arc structure. A second transition portion is provided at the connection position between the fixing bracket and the connection plate, and the second transition portion is provided as an arc structure.
[0020] Based on the above embodiments of the present application, by providing the first transition portion, the arc-shaped first transition portion can enhance the connection strength between the assembly bracket and the connecting plate. Similarly, by providing the second transition portion, the connection strength between the fixed bracket and the connecting plate can be enhanced.
[0021] In some embodiments, the fixing bracket includes a connecting portion and an extending portion, the connecting portion is connected to the connecting plate, the extending portion is connected to a side of the connecting portion away from the connecting plate, and the connecting portion and the extending portion are arranged at an angle.
[0022] Based on the above-mentioned embodiments of the present application, by specifically dividing the fixed bracket into a connecting portion and an extending portion, the fixed bracket can be adjusted to a variety of structures, thereby enabling the fixed bracket and the sensor bracket as a whole to adapt to a more complex workstation structure.
[0023] According to a second aspect of the present application, a sensor assembly is provided. The sensor assembly includes a sensor and the above-mentioned sensor bracket. The sensor is connected to an assembly adjustment member, and the sensor can slide along the assembly adjustment member.
[0024] Based on the above-mentioned embodiments of the present application, the sensor assembly provided by the present application includes the above-mentioned sensor bracket. Through the setting of the above-mentioned sensor bracket, the sensor can be moved directly along the assembly adjustment part when fine-tuning the sensor position, avoiding the need to re-drill the connection hole or screw in the self-tapping screw when fine-tuning the sensor position, resulting in low production efficiency.
[0025] Other features and advantages of the present application will be described in detail in the subsequent detailed description. BRIEF DESCRIPTION OF THE DRAWINGS
[0026] The accompanying drawings are used to provide a further understanding of the present application and constitute a part of the specification. Together with the following detailed description, they are used to explain the present application but do not constitute a limitation of the present application. In the accompanying drawings:
[0027] Figure 1 It is a structural schematic diagram of the sensor bracket provided in an embodiment of the present application.
[0028] Figure 2 It is a structural schematic diagram of an assembly bracket and an assembly adjustment member in a sensor bracket provided by an embodiment of the present application.
[0029] Figure 3 It is a structural schematic diagram of an assembly bracket and an assembly adjustment member in a sensor bracket provided in another embodiment of the present application.
[0030] Figure 4 It is a plan view of a sensor bracket provided in one embodiment of the present application.
[0031] Figure 5 It is a plan view of the sensor bracket provided in the second embodiment of the present application.
[0032] Figure 6 It is a plan view of the sensor bracket provided in the third embodiment of the present application.
[0033] Figure 7 It is a plan view of the sensor bracket provided in the fourth embodiment of the present application.
[0034] Description of Reference Numerals
[0035] 1. Fixed bracket; 11. Second transition portion; 12. Connecting portion; 13. Extending portion; 14. Connecting hole; 2. Assembly bracket; 21. First transition portion; 3. Assembly adjustment member; 4. Locking member; 5. Connecting plate; 6. Sensor. DETAILED DESCRIPTION
[0036] In order to make the purpose, technical solutions and advantages of this application more clearly understood, the present application is further described in detail below with reference to the accompanying drawings and embodiments. It should be understood that the specific embodiments described herein are only used to explain this application and are not intended to limit this application.
[0037] To make the objectives, technical solutions, and advantages of the embodiments of the present application more clear, the technical solutions in the embodiments of the present application will be clearly and completely described below in conjunction with the accompanying drawings of the embodiments of the present application. Obviously, the described embodiments are only part of the embodiments of the present application, not all of the embodiments. Generally, the components of the embodiments of the present application described and shown in the drawings herein can be arranged and designed in various different configurations.
[0038] Therefore, the following detailed description of the embodiments of the present application provided in the accompanying drawings is not intended to limit the scope of the present application for protection, but merely represents selected embodiments of the present application. All other embodiments obtained by persons of ordinary skill in the art based on the embodiments in the present application without making any creative efforts shall fall within the scope of protection of the present application.
[0039] It should be noted that similar reference numerals and letters denote similar items in the following drawings, and therefore, once an item is defined in one drawing, it does not need to be further defined or explained in subsequent drawings.
[0040] In the description of this application, it should be noted that, unless otherwise stated, the terms "inner" and "outer" and the like indicate orientations or positional relationships based on the orientations or positional relationships shown in the accompanying drawings, or the orientations or positional relationships in which the product of this application is typically placed when in use. These terms are intended solely to facilitate the description of this application and simplify the description, and are not intended to indicate or imply that the device or element referred to must have a specific orientation, be constructed, or operate in a specific orientation. Therefore, they should not be construed as limitations on this application. Furthermore, the terms "first" and "second" and the like are used solely to distinguish descriptions and should not be construed as indicating or implying relative importance.
[0041] It should also be noted that, in the description of this application, unless otherwise expressly specified or limited, the terms "disposed" and "connected" should be understood in a broad sense. For example, they can refer to fixed connections, detachable connections, or integral connections; they can refer to direct connections, indirect connections through an intermediate medium, or internal connections between two components. Those skilled in the art will understand the specific meanings of the above terms in this application based on specific circumstances.
[0042] During the process of injecting liquid into the power battery, it is necessary to ensure that the injection hole of the power battery is precisely docked with the injection needle and other structures of the injection equipment. Therefore, the position of the power battery needs to be precisely controlled. Usually, electronic equipment is used to accurately identify the fixed position of the power battery.
[0043] In the prior art, the aforementioned electronic devices can typically be configured as photoelectric sensors, etc., which are secured to a specific workstation by means of a sensor bracket. The photoelectric sensors are typically secured to the bracket using screws or other structures. However, during actual use, the position of the photoelectric sensor often requires fine-tuning based on site conditions. Based on the aforementioned structure, fine-tuning the position of the photoelectric sensor typically requires re-drilling connection holes or inserting self-tapping screws for securing, resulting in reduced overall production efficiency.
[0044] In order to solve the above problems in the prior art, Figure 1 As shown in , according to a first aspect of the present application, a sensor bracket is provided for fixing a sensor 6, the sensor bracket comprising a fixing bracket 1, an assembly bracket 2 and a locking member 4. The fixing bracket 1 is connected to a work station, the assembly bracket 2 is directly or indirectly connected to the fixing bracket 1, and at least one assembly adjustment member 3 is provided on the assembly bracket 2. The locking member 4 is movably connected to the assembly adjustment member 3 and can be relatively locked, and the locking member 4 is used to connect the sensor 6. Different locking positions of the locking member 4 and the assembly adjustment member 3 correspond to different installation positions of the sensor 6.
[0045] Specifically, the sensor bracket in this application is used to fix the sensor 6, so a certain strength needs to be ensured during the production and processing. In actual production and processing, the sensor bracket can be set to a material such as metal or resin, which can facilitate processing and ensure the strength of the sensor bracket itself.
[0046] Furthermore, the above-mentioned working position in this application refers to the position of the sensor bracket when the sensor 6 is fixed to a suitable position through the sensor bracket. The specific position can be selected according to factors such as the structure of the sensor bracket, and this application does not impose any specific restrictions on this.
[0047] Based on the above-described embodiment of the present application, when the sensor bracket is in use, the fixed bracket 1 is directly fixed to the workstation, and the sensor 6 is fixed to the assembly adjustment member 3 on the assembly bracket 2 via the locking member 4. Furthermore, the locking member 4 can, on the one hand, lock the sensor 6 relative to the assembly adjustment member 3 when the sensor 6 is positioned and fixed for use. On the other hand, the locking member 4 can also move relative to the assembly adjustment member 3 when necessary, thereby allowing the sensor 6 to move relative to the assembly adjustment member 3 and thus fine-tune the position of the sensor 6. This process eliminates the need to re-drill through holes or insert self-tapping screws, making the process of fine-tuning the position of the sensor 6 simpler and faster, thereby improving production and processing efficiency.
[0048] Specifically, when the above-mentioned structure of the present application is used for precise measurement during the power battery filling process, the sensor 6 can be specifically configured as a photoelectric sensor. The sensor 6 is fixed to the assembly adjustment member 3 on the assembly bracket 2 via a locking member 4. The sensor bracket as a whole is connected to the working station on the side of the structure such as the injection needle via a fixing bracket 1. Subsequently, during the filling process, the injection hole of the battery cell is connected to the injection needle for filling. At this time, the photoelectric sensor measures the position of the battery cell to ensure that the injection hole of the battery cell and the injection structure such as the injection needle are accurately connected.
[0049] During subsequent use, the position of the photoelectric sensor can be fine-tuned based on the injection situation at the injection position. Initially, the locking member 4 is released. The locking member 4 and the photoelectric sensor are then moved along the assembly adjustment member 3. The locking member 4 and the photoelectric sensor are then moved relative to the assembly adjustment member 3 and tested for leakage at the injection position at the corresponding positions. This ultimately determines the appropriate fixed position for the photoelectric sensor. The photoelectric sensor is then locked to the assembly adjustment member 3 using the locking member 4.
[0050] Furthermore, it should be noted that the sensor bracket described in this application is applicable to any compatible sensor structure, not just photoelectric sensors. It can be applied to various sensor structures, such as displacement sensors, temperature sensors, and pressure sensors, and can even be used for fixed installation of other measuring equipment, without any specific limitations in this application.
[0051] In the present application, the specific structure of the assembly adjustment member 3 can be set to any appropriate structure. In an exemplary embodiment provided in the present application, the assembly adjustment member 3 can be set to a long strip of assembly edge, and the locking member 4 can move relative to the assembly edge.
[0052] Based on the above-mentioned embodiments of the present application, when the assembly adjustment member 3 is configured as an assembly edge, it can be slidably connected to the sensor 6 by means of snap connection or the like, and then locked by the locking member 4 .
[0053] Specifically, when the assembly adjustment member 3 is configured as an assembly rib, the cross-sectional shape of the assembly rib can be any suitable shape. For example, the cross-sectional shape of the assembly rib can be configured as an L-shape, a T-shape, a triangle, or other shapes. In this case, a corresponding slot of a corresponding shape can be provided on the sensor 6. The assembly rib is engaged in the slot and slidably connected to the sensor 6 to achieve fine adjustment of the position of the sensor 6. When the sensor 6 is in operation, the assembly rib is locked to the slot by the locking member 4, thereby securing the sensor 6.
[0054] Or, refer to Figures 1 to 3As shown in , in another embodiment of the present application, the assembly adjustment member 3 is configured as an elongated assembly hole, the locking member 4 is passed through the assembly hole, and the locking member 4 can be movably connected to the assembly hole.
[0055] Based on the above-mentioned embodiment of the present application, when the assembly adjustment member 3 is configured as an assembly hole, the locking member 4 can be configured as a screw or bolt, and the locking member 4 can slide along the assembly hole. With the above-mentioned long strip-shaped configuration, the locking member 4 and the sensor 6 can move along the length of the assembly adjustment member 3, thereby limiting the fine-tuning direction and range of the sensor 6.
[0056] In the present application, the locking member 4 can be configured as any suitable structure. In some embodiments of the present application, when the assembly adjustment member 3 is specifically configured as an assembly ridge, the locking member 4 can be specifically configured as a top screw. In this case, the sensor 6 is provided with a slot to engage with the assembly ridge, and the top screw is then threaded onto the sensor 6 and abuts against the assembly ridge. When the locking member 4 is to be locked, the top screw is tightened so that the end of the top screw abuts against the assembly ridge. When the locking member 4 is to be loosened, the top screw is rotated so that the end of the top screw is out of contact with the assembly ridge.
[0057] Alternatively, in some other embodiments of the present application, when the assembly adjustment member 3 is specifically configured as an assembly hole, the locking member 4 can be specifically configured as a bolt or screw. The bolt hole or screw hole can be pre-set on the outer wall of the sensor 6, and the bolt or screw can then pass through the assembly hole to secure the sensor 6 to the sensor bracket. In addition, to prevent damage to the sensor 6 during fixation, a flange structure can be provided on the outer wall of the sensor 6, and the bolt hole or screw hole can be set on the flange structure.
[0058] Furthermore, when setting the locking piece 4 for locking the sensor 6 and the sensor bracket, multiple locking pieces 4 can be provided, and multiple locking pieces 4 are used to lock the same sensor 6 and the sensor bracket at the same time, so that the locking between the two is more stable, reducing or even avoiding the shaking of the sensor 6 that affects the accuracy of injection.
[0059] refer to Figure 1 and Figure 2 As shown in , in some embodiments of the present application, the assembly adjustment member 3 can be set along the first direction, the locking member 4 and the assembly adjustment member 3 can move relative to each other along the first direction, and the locking member 4 can be locked at different positions on the assembly adjustment member 3 to adjust the position of the sensor 6.
[0060] Based on the above-mentioned embodiments of the present application, the locking member 4 can move along a first direction relative to the assembly adjustment member 3, that is, along the setting direction of the assembly adjustment member 3, so that the range of movement of the locking member 4 and the sensor 6 can be limited by limiting the setting direction and size of the assembly adjustment member 3, that is, limiting the fine-tuning range of the sensor 6.
[0061] refer to Figure 2 As shown in , in some embodiments of the present application, at least two assembly adjustment members 3 may be provided on the assembly bracket 2 along the first direction, at least two locking members 4 may be provided, and different locking members 4 are provided on different assembly adjustment members 3 .
[0062] Based on the above-described embodiment of the present application, by providing at least two assembly adjustment members 3, when securing the sensor 6, the same sensor 6 can be secured simultaneously by at least two locking members 4, making the securing of the sensor 6 more stable. Furthermore, different locking members 4 are provided on different assembly adjustment members 3. In this case, the movable range of a single locking member 4 is also the size range of a single assembly adjustment member 3, thereby limiting the movable range of a single locking member 4 and, in turn, limiting the fine-tuning range of the sensor 6, making the fine-tuning process of the sensor 6 simpler and faster.
[0063] Specifically, when the sensor 6 and the sensor bracket are connected simultaneously via two locking members 4, taking the example of an assembly adjustment member 3 configured as an assembly hole and a locking member 4 configured as a bolt, two assembly holes can be provided, with their lengths overlapping and both arranged along the first direction. During fixation, the two bolts pass through the two assembly holes, respectively. To fine-tune the position of the sensor 6, the bolts are loosened and the sensor 6 is moved along the length of the assembly holes, allowing the two bolts to move within the two assembly holes, respectively, until the sensor 6 is positioned appropriately. The bolts are then tightened to complete the fixation.
[0064] During the above fixing and adjusting process, the adjustable range of the sensor 6 is the length range of a single assembly hole, thereby limiting the adjustable range of the sensor 6 .
[0065] Alternatively, the number of the assembly adjustment members 3 can be greater than the number of the locking members 4. Figure 2 As shown in , also taking bolt fixation as an example, when two bolts are provided between the sensor 6 and the sensor bracket for fixation, the number of assembly holes can be set to four. The four assembly holes are arranged at equal intervals, and the length directions of the four assembly holes overlap with each other. In this case, when fixing the sensor 6 to the sensor bracket, the approximate position of the sensor 6 to be fixed is first determined. Then, two adjacent assembly holes are selected based on the approximate position to be fixed. Two bolts are respectively placed in the two assembly holes to achieve the initial fixation between the sensor bracket and the sensor 6. The position of the sensor 6 can then be fine-tuned by moving the position of the bolts within the assembly holes.
[0066] In summary, the above arrangement divides the securing process of sensor 6 into two steps: initial securing to the sensor bracket, followed by moving the bolts within the assembly hole to fine-tune the position of sensor 6. This arrangement not only expands the entire adjustable range of sensor 6, i.e., the adjustable range of sensor 6 falls within the range of the four assembly adjustment members 3, but also limits the length of a single assembly adjustment member 3, thereby limiting the fine-tuning range of sensor 6. This makes fine-tuning the position of sensor 6 faster and more accurate.
[0067] Furthermore, in the above-mentioned embodiment of the present application, when a plurality of assembly adjustment members 3 are provided, the plurality of assembly adjustment members 3 can be provided independently of each other or can be connected to each other.
[0068] Based on the above-described embodiments of the present application, when multiple assembly adjustment members 3 are interconnected, they form a long ridge or slot structure. Therefore, when fine-tuning the position of the sensor 6 along the assembly adjustment members 3, the sensor 6 can be moved and adjusted along the entire ridge or slot structure, thereby expanding the adjustment range. When the assembly adjustment members 3 are independently provided, the adjustable range of the sensor 6 during fine-tuning is the length range of a single assembly adjustment member 3, thereby limiting the adjustable range of the sensor 6 during fine-tuning.
[0069] Alternatively, refer to Figure 3 As shown in , in some other embodiments of the present application, the assembly bracket 2 may be provided with at least two assembly adjustment members 3 along the second direction, and at least two locking members 4 may be provided, with different locking members 4 being provided on the same assembly adjustment member 3. The first direction corresponds to the movable direction of the locking member 4 relative to the assembly adjustment member 3, and the second direction is perpendicular to the movable direction of the locking member 4 relative to the assembly adjustment member 3.
[0070] Based on the above-described embodiment of the present application, by providing different assembly adjustment members 3 along the second direction, the locking member 4 and the sensor 6 can be adjusted along the second direction different from the first direction, thereby expanding the adjustable range of the sensor 6 during fine-tuning. Furthermore, when the locking member 4 is provided on the same assembly adjustment member 3, if it is necessary to adjust the locking member 4 and the sensor 6 to a different assembly adjustment member 3, the locking member 4 and the sensor 6 need to be moved as a whole to the other assembly adjustment member 3.
[0071] Specifically, since the assembly adjustment member 3 itself is arranged along the first direction, at least two assembly adjustment members 3 are arranged along the second direction, that is, at least two assembly adjustment members 3 parallel to each other are arranged. Therefore, when fine-tuning the position of the sensor 6, the sensor 6 is moved from one assembly adjustment member 3 to another assembly adjustment member 3 parallel to each other, which can achieve fine-tuning of the position of the sensor 6 in the width direction of the assembly adjustment member 3, thereby making the position setting of the sensor 6 more flexible.
[0072] Or, refer to Figure 3 As shown in , in some other embodiments of the present application, multiple assembly adjustment members 3 can be set along the first direction and the second direction at the same time, that is, multiple assembly adjustment members 3 are set in an array, so as to further expand the adjustable range of the sensor 6.
[0073] In the present application, the fixing bracket 1 and the working station can be fixed in any suitable manner.
[0074] refer to Figure 1 As shown in , in an exemplary embodiment provided in the present application, a connection hole 14 may be provided on the fixing bracket 1 so as to fix the fixing bracket 1 to the working station through the connection hole 14 .
[0075] Based on the above-mentioned embodiments of the present application, by providing the connection hole 14, when the fixing bracket 1 is fixed to the work station, the fixing bracket 1 can be quickly and stably fixed to the work station by bolts or screws, thereby improving the fixing efficiency.
[0076] Furthermore, in some other embodiments of the present application, the fixed bracket 1 can also be connected to the work station by welding or other methods. The specific selection can be based on factors such as strength requirements and connection requirements, and the present application does not impose any specific restrictions on this.
[0077] refer to Figures 4 to 7 As shown in , in some embodiments of the present application, a connecting plate 5 is provided between the assembly bracket 2 and the fixing bracket 1 , and the connecting plate 5 is provided at an angle to the assembly bracket 2 , and the connecting plate 5 is provided at an angle to the fixing bracket 1 .
[0078] Based on the above-mentioned embodiments of the present application, by setting a connecting plate 5 between the assembly bracket 2 and the fixed bracket 1, compared with directly connecting the assembly bracket 2 and the fixed bracket 1, the setting of the connecting plate 5 between the two can make the relative position between the assembly bracket 2 and the fixed bracket 1 more flexible, thereby enabling the sensor bracket to adapt to more complex connection requirements.
[0079] Specifically, when the assembly bracket 2 and the fixed bracket 1 are directly connected, an L-shaped structure is formed between the assembly bracket 2 and the fixed bracket 1. When the overall structure of the assembly bracket 2 and the fixed bracket 1 needs to be adjusted, only the angle between the assembly bracket 2 and the fixed bracket 1 and the size ratio of the two can be adjusted. By adding the connecting plate 5, the assembly bracket 2, the connecting plate 5 and the fixed bracket 1 can now form a variety of structures, including U-shaped and Z-shaped. At the same time, during the adjustment, the angle between the assembly bracket 2 and the connecting plate 5, as well as the angle between the fixed bracket 1 and the connecting plate 5, can be adjusted, and the size ratio of the three can also be adjusted. This makes the overall structure of the sensor bracket more diverse and the relative position between the assembly bracket 2 and the fixed bracket 1 more flexible, thereby being able to adapt to more complex workstation structures and connection requirements.
[0080] Further, refer to Figures 4 to 7 As shown in , in some embodiments of the present application, a first transition portion 21 may be provided at the connection position between the assembly bracket 2 and the connecting plate 5, and the first transition portion 21 is configured as an arc structure. A second transition portion 11 may be provided at the connection position between the fixing bracket 1 and the connecting plate 5, and the second transition portion 11 is configured as an arc structure.
[0081] Based on the above-mentioned embodiment of the present application, by providing the first transition portion 21, the arc-shaped first transition portion 21 can enhance the connection strength between the assembly bracket 2 and the connecting plate 5. Similarly, the provision of the second transition portion 11 can enhance the connection strength between the fixing bracket 1 and the connecting plate 5.
[0082] Specifically, compared with directly setting a bent structure between the assembly bracket 2 and the connecting plate 5 and between the fixing bracket 1 and the connecting plate 5, setting an arc structure can reduce stress concentration, thereby improving the connection strength of the corresponding positions.
[0083] Furthermore, when the sensor bracket is made of metal as a whole, the metal plate structure itself has a certain deformability. When it is necessary to adjust the angle between the assembly bracket 2 and the connecting plate 5 and the angle between the fixed bracket 1 and the connecting plate 5, the assembly bracket 2 or the fixed bracket 1 can be bent directly relative to the connecting plate 5. The setting of the first transition portion 21 and the second transition portion 11 of the arc structure can make the bending process easier to implement, and can also reduce the impact of the bending process on the strength of the connection position between the connecting plate 5 and the assembly bracket 2 and the fixed bracket 1.
[0084] refer to Figure 6 and Figure 7 As shown in , in some embodiments of the present application, the fixing bracket 1 may include a connecting portion 12 and an extending portion 13, the connecting portion 12 is connected to the connecting plate 5, the extending portion 13 is connected to the side of the connecting portion 12 away from the connecting plate 5, and the connecting portion 12 and the extending portion 13 are arranged at an angle.
[0085] Based on the above-mentioned embodiments of the present application, by specifically dividing the fixed bracket 1 into a connecting portion 12 and an extension portion 13, and the extension portion 13 is connected to the work station, the fixed bracket 1 can be adjusted to a variety of structures, thereby enabling the fixed bracket 1 and the sensor bracket as a whole to adapt to a more complex work station structure.
[0086] Specifically, when the fixed bracket 1 includes a connecting portion 12 and an extension portion 13, the angle between the connecting portion 12 and the extension portion 13 is adjusted, thereby changing the relative angle between the extension portion 13 and the connecting plate 5 and the assembly bracket 2, and the extension portion 13 can be directly connected to the work station, so that the relative position and angle between the sensor 6 connected to the assembly bracket 2 and the work station can be more diversified.
[0087] On the basis of the above technical solution, according to the second aspect of the present application, a sensor assembly is provided, which includes a sensor 6 and the above-mentioned sensor bracket, the sensor 6 is connected to the assembly adjustment member 3, and the sensor 6 can slide along the assembly adjustment member 3.
[0088] Based on the above-mentioned embodiments of the present application, the sensor assembly provided by the present application includes the above-mentioned sensor bracket. Through the setting of the above-mentioned sensor bracket, the sensor 6 can be directly moved along the assembly adjustment part 3 when fine-tuning the position of the sensor 6, thereby avoiding the need to re-drill a through hole or screw in a self-tapping screw when fine-tuning the position of the sensor 6, resulting in low production efficiency.
[0089] In addition, it should be noted that the sensor 6 in this application can select any suitable structure in the prior art. Since this application does not involve improvements to the specific structure of the sensor 6, no specific restrictions are imposed on this.
[0090] In summary, when the sensor 6 is used for testing during the electrolyte injection process, the fixing and adjustment process of the sensor 6 is as follows: first, the sensor bracket is fixed to the work station by bolting or welding, and then the sensor 6 is fixed to the position of the assembly adjustment part 3 on the assembly bracket 2 by bolts or screws. Then the battery cell is placed at the injection position, the injection is turned on and the injection effect is confirmed, that is, whether there is leakage or the like. The position of the sensor 6 is fine-tuned according to the injection effect, that is, the bolts or screws and the position of the sensor 6 are moved along the length direction of the assembly adjustment part 3, the position of the battery cell is adjusted according to the position of the sensor 6, and the injection effect of the injection position is detected at the same time until the injection effect reaches the predetermined effect. At this time, the sensor 6 is fixed to the assembly adjustment part 3 again by bolts or screws. Through the above arrangement, the position of the sensor 6 can be adjusted without re-drilling a through hole or screwing in a self-tapping screw, thereby improving the injection efficiency.
[0091] The preferred embodiments of the present application are described in detail above in conjunction with the accompanying drawings. However, the present application is not limited to the specific details in the above embodiments. Within the technical concept of the present application, various simple modifications can be made to the technical solution of the present application, and these simple modifications all fall within the scope of protection of the present application.
[0092] It should also be noted that the various specific technical features described in the above specific embodiments can be combined in any appropriate manner unless there is any contradiction. In order to avoid unnecessary repetition, this application will not further describe various possible combinations.
[0093] In addition, the various implementation methods of the present application may be arbitrarily combined, and as long as they do not violate the concept of the present application, they should also be regarded as the contents disclosed in the present application.
Claims
1. A sensor bracket for fixing a sensor, characterized in that: The sensor bracket comprises: Fixed bracket, connected to the work station; an assembly bracket, directly or indirectly connected to the fixing bracket, and provided with at least one assembly adjustment member; a locking member, movably connected to the assembly adjustment member and capable of being relatively locked, the locking member being used to connect to the sensor; Different locking positions of the locking member and the assembly adjustment member correspond to different installation positions of the sensor.
2. The sensor bracket according to claim 1, characterized in that The assembly adjustment member is arranged along a first direction, the locking member and the assembly adjustment member are movable relative to each other along the first direction, and the locking member can be locked at different positions on the assembly adjustment member to adjust the position of the sensor.
3. The sensor bracket according to claim 2, characterized in that: At least two assembly adjustment members are provided on the assembly bracket along the first direction, and at least two locking members are provided, with different locking members being provided on different assembly adjustment members.
4. The sensor bracket according to claim 2, characterized in that: At least two assembly adjustment members are provided on the assembly bracket along the second direction, at least two locking members are provided, and different locking members are provided on the same assembly adjustment member. The second direction is provided at an angle to the first direction.
5. The sensor bracket according to claim 4, characterized in that: The first direction corresponds to a moving direction of the locking member relative to the assembly adjusting member, and the second direction is perpendicular to the moving direction of the locking member relative to the assembly adjusting member.
6. The sensor bracket according to any one of claims 1 to 5, characterized in that: The assembly adjustment member is configured as a long strip of assembly edge, and the locking member can move relative to the assembly edge; or, The assembly adjustment member is configured as a long strip-shaped assembly hole, the locking member is passed through the assembly hole, and the locking member can be movably connected to the assembly hole.
7. The sensor bracket according to claim 1, characterized in that: A connecting plate is provided between the assembly bracket and the fixing bracket. The connecting plate is arranged at an angle to the assembly bracket, and the connecting plate is arranged at an angle to the fixing bracket.
8. The sensor bracket according to claim 7, characterized in that: A first transition portion is provided at the connection position between the assembly bracket and the connecting plate, and the first transition portion is provided with an arc-shaped structure; A second transition portion is provided at the connection position between the fixing bracket and the connecting plate, and the second transition portion is provided with an arc-shaped structure.
9. The sensor bracket according to claim 7, characterized in that: The fixing bracket includes a connecting portion and an extending portion, the connecting portion is connected to the connecting plate, the extending portion is connected to a side of the connecting portion away from the connecting plate, and the connecting portion and the extending portion are arranged at an angle.
10. A sensor assembly, characterized in that: The sensor assembly comprises: Sensors; and The sensor bracket according to any one of claims 1 to 9, wherein the sensor is connected to the assembly adjustment member, and the sensor is capable of sliding along the assembly adjustment member.