Thermal imaging host, mounting bracket and thermal imaging assembly
Through the combination of sliding clamping and limiting parts, the problem of cumbersome operation of the thermal imaging equipment host and the fixing frame is solved, convenient installation and stable connection are achieved, and protective functions are provided.
Patent Information
- Application Number
- CN202422172650.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-09-04
- Publication Date
- 2025-08-26
- Estimated Expiration
- 2034-09-04
AI Technical Summary
The host and fixture of existing thermal imaging equipment are screwed and operated in a cumbersome manner, resulting in inconvenient installation.
The sliding clamping method is adopted, and the first clamping part of the thermal imaging host is slidingly clamped or unblocked by the second clamping part of the mounting bracket, combined with the limiting function of the limiting part, it realizes convenient installation and disassembly.
It realizes convenient installation of the thermal imaging host and installation bracket, improves installation stability and reliability, reduces the overall volume, and has the effects of dustproof, waterproof and foreign matter-proof.
Smart Images

Figure CN223274160U_ABST
Abstract
Description
Technical Field
[0001] The present application belongs to the field of thermal imaging technology, and specifically relates to a thermal imaging host, a mounting bracket, and a thermal imaging component. Background Art
[0002] Some thermal imaging devices on the market may include a main unit and a fixing frame, and the main unit is generally mounted to the fixing frame using screws or a clamping structure. However, the installation method using screws has the problem of cumbersome operation. Utility Model Content
[0003] The purpose of the embodiments of the present application is to provide a thermal imaging host, a mounting bracket and a thermal imaging component, which can at least solve the problem of cumbersome operation.
[0004] In order to solve the above technical problems, this application is implemented as follows:
[0005] An embodiment of the present application provides a thermal imaging host, which includes a shell, and a side wall of the shell is provided with a first clamping portion, which is used to slide and engage or release the second clamping portion provided on the mounting bracket.
[0006] An embodiment of the present application further provides a mounting bracket, which includes a fixing member and a second clamping portion provided on the fixing member, wherein the second clamping portion is used to slidably engage or disengage with a first clamping portion provided on the thermal imaging host.
[0007] An embodiment of the present application also provides a thermal imaging assembly, including the above-mentioned thermal imaging host and a mounting bracket.
[0008] In the embodiment of the present application, the thermal imaging host and the mounting bracket are installed or disassembled by sliding the first clamping part and the second clamping part. Compared with the screw connection method, the embodiment of the present application can realize the convenient installation of the thermal imaging host and the mounting bracket, thereby overcoming the problem of cumbersome installation operation of the thermal imaging host and the mounting bracket. BRIEF DESCRIPTION OF THE DRAWINGS
[0009] Figure 1 This is a disassembled schematic diagram of the thermal imaging assembly disclosed in an embodiment of the present application;
[0010] Figure 2 This is a schematic diagram of the assembly of the thermal imaging assembly disclosed in an embodiment of the present application;
[0011] Figure 3 A schematic cross-sectional view of a thermal imaging assembly disclosed in an embodiment of the present application;
[0012] Figure 4 for Figure 3 A partial enlarged view of point A in the middle;
[0013] Figure 5 A first structural schematic diagram of the first shell disclosed in an embodiment of the present application;
[0014] Figure 6 A second structural diagram of the first shell disclosed in an embodiment of the present application;
[0015] Figure 7 This is a schematic diagram of the first structure of the mounting bracket disclosed in an embodiment of the present application;
[0016] Figure 8 This is a second structural schematic diagram of the mounting bracket disclosed in an embodiment of the present application;
[0017] Figure 9 This is a schematic structural diagram of another form of mounting bracket disclosed in an embodiment of the present application;
[0018] Figure 10 This is a schematic diagram of assembling the first clamping portion on the first shell and the second clamping portion on the mounting bracket disclosed in an embodiment of the present application;
[0019] Figure 11 This is a schematic structural diagram of the limiting member disclosed in an embodiment of the present application.
[0020] Description of reference numerals:
[0021] 10-thermal imaging host;
[0022] 11-shell; 111-first shell; 1111-side wall; 112-second shell;
[0023] 12 - first clamping portion; 121 - first groove; 122 - second groove; 123 - through hole; 124 - first clamping slot; 125 - second clamping slot; 126 - boss structure;
[0024] 13-limiting member; 131-limiting protrusion; 132-first hook structure; 133-second hook structure; 134-first limiting end; 135-second limiting end;
[0025] 14- shielding member;
[0026] 20-Mounting bracket;
[0027] 21-fixing piece; 211-mounting interface; 212-mounting hole; 213-mounting plate;
[0028] 22- second clamping portion; 221- connecting section; 222- clamping section; 2221- limiting groove;
[0029] 23-magnetic parts;
[0030] 24-Clamping plate. DETAILED DESCRIPTION
[0031] The following will be combined with the drawings in the embodiments of this application to clearly and completely describe the technical solutions in the embodiments of this application. Obviously, the embodiments described are part of the embodiments of this application, not all of them. Based on the embodiments in this application, all other embodiments obtained by ordinary technicians in this field without making creative efforts are within the scope of protection of this application.
[0032] The terms "first," "second," and the like in the specification and claims of this application are used to distinguish similar objects, and are not used to describe a specific order or precedence. It should be understood that the terms used in this manner are interchangeable where appropriate, so that the embodiments of this application can be implemented in an order other than that illustrated or described herein, and that the objects distinguished by "first," "second," and the like are generally of the same type, and do not limit the number of objects; for example, the first object can be one or more. In addition, the term "and / or" in the specification and claims refers to at least one of the connected objects, and the character " / " generally indicates that the objects connected are in an "or" relationship.
[0033] The embodiments of the present application are described in detail below through specific embodiments and their application scenarios in conjunction with the accompanying drawings.
[0034] refer to Figures 1 to 11 The embodiment of the present application discloses a thermal imaging host 10, which is used for sliding installation or removal with a mounting bracket 20, and the mounting bracket 20 is used to connect with a mobile terminal, wherein the mobile terminal can be an electronic device such as a mobile phone or a tablet computer; in addition, the mounting bracket 20 can also be connected to other mounting bases, as long as the installation stability of the mounting bracket 20 can be guaranteed, the specific form is not limited.
[0035] The sliding installation or removal method may be achieved by pushing or pulling the thermal imaging host 10 and the mounting bracket 20. For example, pushing or pulling the thermal imaging host 10 in a first direction may lock the thermal imaging host 10 and the mounting bracket 20, thereby achieving installation; pushing or pulling the thermal imaging host 10 in a direction opposite to the first direction may unlock the thermal imaging host 10 and the mounting bracket 20, thereby achieving removal. Of course, it is also possible to apply a pushing force or a pulling force to the mounting bracket 20 in the first direction or in a direction opposite to the first direction, respectively, to cause the mounting bracket 20 to slide relative to the thermal imaging host 10, thereby achieving installation or removal.
[0036] In the embodiment of the present application, the thermal imaging host 10 and the mounting bracket 20 are installed or disassembled by sliding. Compared with the screw connection method, the embodiment of the present application can realize the convenient installation of the thermal imaging host 10 and the mounting bracket 20, thereby overcoming the problem of cumbersome installation operation of the thermal imaging host 10 and the mounting bracket 20.
[0037] In some embodiments, the thermal imaging host 10 may include a housing 11. Of course, the thermal imaging host 10 may also include electrical components that implement thermal imaging functions. These electrical components may be installed within the housing 11 to protect the electrical components. It should be noted that the specific operating principles of the thermal imaging host 10 can be referenced in the prior art and will not be elaborated upon here.
[0038] For example, Figure 1 As shown, the housing 11 may include a first shell 111 and a second shell 112. The first shell 111 and the second shell 112 are engaged with each other to form an inner cavity of the housing 11. In addition, the first shell 111 and the second shell 112 may be connected by fasteners.
[0039] Furthermore, the shell 11 may have a side wall 1111 close to the mounting bracket 20. In this way, after the thermal imaging host 10 is connected to the mounting bracket 20, the side wall 1111 and the mounting bracket 20 are close to each other, which is beneficial to reducing the space between the thermal imaging host 10 and the mounting bracket 20, thereby helping to reduce the overall volume of the thermal imaging host 10 and the mounting bracket 20.
[0040] The side wall 1111 of the housing 11 may be provided with a first engaging portion 12, which is configured to slide and engage with or disengage the second engaging portion 22 of the mounting bracket 20. The first engaging portion 12 may be provided in an area of the side wall 1111 near the mounting bracket 20, while the second engaging portion 22 may be provided on a side of the mounting bracket 20 near the housing 11. Thus, the first engaging portion 12 and the second engaging portion 22 slide together to achieve engagement or disengagement, thereby facilitating the detachable installation of the thermal imaging host 10 and the mounting bracket 20.
[0041] In the embodiment of the present application, the first clamping portion 12 may include a first groove 121 and a second groove 122, and the first groove 121 and the second groove 122 are respectively used to accommodate the second clamping portion 22. Figures 4 to 6. Among them, the notch of the first groove 121 is set toward the inside of the shell 11, and the notch of the second groove 122 is set toward the outside of the shell 11. It should be noted here that the side wall 1111 of the shell 11 close to the mounting bracket 20 has a certain thickness. The first groove 121 can be formed by recessing from the inner surface to the outer surface in a local area of the side wall 1111, and the notch of the first groove 121 is made to face the inside of the shell 11; similarly, the second groove 122 can be formed by recessing from the outer surface to the inner surface in other areas of the side wall 1111, and the notch of the second groove 122 is made to face the outside of the shell 11.
[0042] Furthermore, the first groove 121 and the second groove 122 are staggered in the extension direction of the side wall 1111, and the first groove 121 and the second groove 122 are connected by a through hole 123. In this way, the second clamping portion 22 can be clamped into the first groove 121 from the outside to the inside relative to the housing 11, thereby achieving a clamping fit between the first clamping portion 12 and the second clamping portion 22. The through hole 123 can be provided along the extension direction of the side wall 1111 to connect the first groove 121 and the second groove 122 in the extension direction of the side wall 1111.
[0043] The above-mentioned misalignment arrangement can include complete misalignment and partial misalignment, wherein complete misalignment means that there is no overlapping area between the projection of the first groove 121 and the projection of the second groove 122 in the thickness direction of the side wall 1111, that is, the two projections are completely separated; partial misalignment means that there is a certain overlapping area between the projection of the first groove 121 and the projection of the second groove 122 in the thickness direction of the side wall 1111, that is, the two projections are not completely separated. Whether complete misalignment or partial misalignment, both belong to the implementation methods to be protected by the embodiments of this application.
[0044] In the embodiment of this application, Figure 1 As shown, the second clamping portion 22 can extend from the second groove 122 to the first groove 121 via the through hole 123. In this way, the second clamping portion 22 can be provided with an accommodation space through the second groove 122, thereby reducing the space occupied by the second clamping portion 22, and thus helping to reduce the overall volume of the thermal imaging host 10 and the mounting bracket 20; and the portion of the second clamping portion 22 extending into the first groove 121 provides an accommodation space for the second clamping portion 22 through the first groove 121, and the portion extending into the first groove 121 is also limited by the bottom of the first groove 121, which can prevent the second clamping portion 22 from escaping from the second groove 122 to a certain extent.
[0045] refer to Figure 4In some embodiments, the thermal imaging host 10 may further include a limiting member 13, which is provided in the first groove 121 and is used to cooperate with the second clamping portion 22 in a limiting manner. In this way, under the limiting action of the limiting member 13, the portion of the second clamping portion 22 extending into the first groove 121 can be effectively prevented from detaching from the first groove 121 and sliding into the second groove 122.
[0046] Based on the above arrangement, a detachable connection between the thermal imaging host 10 and the mounting bracket 20 can be achieved through the engagement of the first clamping portion 12 and the second clamping portion 22, thereby facilitating assembly and disassembly. Furthermore, the second clamping portion 22 can be limited by the limiting member 13 so that the second clamping portion 22 is not easily separated from the first clamping portion 12, thereby ensuring the stability of the installation between the thermal imaging host 10 and the mounting bracket 20. Compared to the connection method using screws and a clamping structure, the embodiment of the present application can achieve convenient installation of the thermal imaging host 10 and the mounting bracket 20, thereby overcoming the problems of cumbersome installation operations of the thermal imaging host 10 and the mounting bracket 20 and damage to the thermal imaging host 10 during assembly and disassembly. Furthermore, the stability of the installation can be improved, thereby overcoming the problem of poor installation stability.
[0047] In order to improve the reliability of the limiting cooperation between the limiting member 13 and the second clamping portion 22, in the embodiment of the present application, Figure 10 and Figure 11 As shown, the limiting member 13 is provided with a limiting protrusion 131, which is used to limit the position of the limiting groove 2221 provided on the second clamping portion 22; alternatively, the limiting member 13 is provided with a limiting groove 2221, which is used to limit the position of the limiting protrusion 131 provided on the second clamping portion 22. Based on this configuration, the limiting effect of the limiting member 13 on the second clamping portion 22 can be further improved, thereby preventing the second clamping portion 22 from sliding from the first groove 121 into the second groove 122 at will, thereby preventing the second clamping portion 22 from accidentally being unfastened from the first clamping portion 12, thereby ensuring the reliability and stability of the clamping fit, and further ensuring the reliability and stability of the connection between the thermal imaging host 10 and the mounting bracket 20.
[0048] For example, the number of pairs of mutually cooperating limiting protrusions 131 and limiting grooves 2221 is not limited and can be one pair, two pairs, three pairs, etc. The specific number can be selected according to actual needs. In addition, the arrangement of the limiting protrusions 131 and limiting grooves 2221 can also be set according to actual needs.
[0049] Considering that the limiting member 13 is located in the first groove 121, in order to prevent the limiting member 13 from being separated from the first groove 121, the thermal imaging host 10 may further include a shielding member 14, such as Figure 1As shown, the shielding member 14 is provided at the notch of the first groove 121 to block the notch of the first groove 121. Based on this, the shielding member 14 can shield the limiting member 13, thereby effectively preventing the limiting member 13 from being separated from the first groove 121 through the notch, thereby ensuring the reliability and stability of the engagement between the limiting member 13 and the second engaging portion 22.
[0050] Moreover, since the first groove 121 is connected to the second groove 122 through the through hole 123, and the first groove 121 is set toward the inside of the shell 11 and the second groove 122 is set toward the outside of the shell 11, external dust, impurities, water, etc. will enter the interior of the shell 11 through the second groove 122, the through hole 123 and the first groove 121, thereby causing damage to the electrical components located in the shell 11 and affecting the normal operation of the thermal imaging host 10.
[0051] Based on the above arrangement, the shielding member 14 blocks the opening of the first groove 121, thereby separating the first groove 121 from the inner cavity of the housing 11. This effectively prevents external dust, impurities, water, etc. from entering the inner cavity of the housing 11 through the first groove 121, thereby achieving waterproof, dustproof, and foreign body-proofing effects. Therefore, the electrical components located within the housing 11 are protected from the external environment, thereby ensuring the normal operation of the thermal imaging host 10.
[0052] Exemplarily, the shielding member 14 may be a shielding plate, such as a polyester plate (ie, PC plate), a plastic plate, a metal plate, etc. Of course, it may also be of other shapes and materials, which are not specifically limited here.
[0053] Continue to refer Figure 10 and Figure 11 In some embodiments, the limiting member 13 can extend along the circumference of the first groove 121, and the limiting member 13 includes a first limiting end 134 and a second limiting end 135 spaced apart from each other. The first limiting end 134 and the second limiting end 135 are disposed on either side of the through hole 123, and are respectively configured to engage with the portion of the second clamping portion 22 extending into the first groove 121. Based on this arrangement, the contact area between the limiting member 13 and the second clamping portion 22 can be increased, thereby improving the limiting effect of the limiting member 13 on the second clamping portion 22 to a certain extent.
[0054] like Figure 11 As shown, the limiting protrusion 131 can be arranged on the side of the first limiting end 134 facing the second limiting end 135, and on the side of the second limiting end 135 facing the first limiting end 134, so as to enhance the limiting effect of the first limiting end 134 and the second limiting end 135 respectively with the second clamping portion 22.
[0055] In some embodiments, the limiting member 13 can be an integral concave member, which extends circumferentially along the first groove 121, and the notch of the concave member is arranged opposite to the through hole 123, so that the second clamping portion 22 extends through the through hole 123 and the notch to the concave space surrounded by the concave member. In addition, the two ends of the concave member are the first limiting end 134 and the second limiting end 135. In this way, the second clamping portion 22 is limited by the two ends of the concave member to prevent the second clamping portion 22 from detaching from the first groove 121.
[0056] In other embodiments, the limiting member 13 may also include two limiting units, each limiting unit is respectively arranged on both sides of the through hole 123, and the respective ends of the two limiting units are respectively a first limiting end 134 and a second limiting end 135, so as to facilitate limiting the second clamping portion 22 from both sides.
[0057] In order to further improve the installation stability of the limiting member 13, as Figure 5 As shown, the groove wall of the first groove 121 can be provided with a first engaging groove 124 and a second engaging groove 125, and the first engaging groove 124 and the second engaging groove 125 are provided on opposite sides of the through hole 123, and the first limiting end 134 is engaged with the first engaging groove 124, and the second limiting end 135 is engaged with the second engaging groove 125. Based on this, the first limiting end 134 and the second limiting end 135 can be installed separately, thereby preventing the limiting member 13 from blocking the through hole 123 and causing interference between the limiting member 13 and the second engaging portion 22, and further improving the installation stability of the limiting member 13.
[0058] refer to Figure 5 、 Figure 10 and Figure 11 In some embodiments, the first limiting end 134 may be provided with a first hook structure 132 bent back to the second limiting end 135, and the first hook structure 132 is clamped in the first slot 124. In this way, through the cooperation between the first hook structure 132 and the first slot 124, the contact area between the first limiting end 134 and the first slot 124 can be increased, which can improve the reliability and stability of the cooperation to a certain extent.
[0059] Similarly, the second limiting end 135 can be provided with a second hook structure 133 bent back to the first limiting end 134, and the second hook structure 133 is clamped in the second slot 125. In this way, through the cooperation between the second hook structure 133 and the second slot 125, the contact area between the second limiting end 135 and the second slot 125 can be increased, which can improve the reliability and stability of the cooperation to a certain extent.
[0060] In some embodiments, the first hook structure 132 and the second hook structure 133 can both be made of elastic material so that both have elastic characteristics. In this way, the stability of the fit between the first hook structure 132 and the first slot 124, as well as the stability of the fit between the second hook structure 133 and the second slot 125 can be further increased, thereby further improving the installation stability of the limiter 13.
[0061] In the embodiment of the present application, the limiting member 13 may be an integral structure, or may be formed by connecting and splicing multiple structures.
[0062] In some more specific embodiments, the limiting member 13 can be a concave spring piece having elastic characteristics, so that when the second clamping portion 22 enters the first groove 121 from the second groove 122, the limiting member 13 can be elastically deformed, which is conducive to the second clamping portion 22 entering the concave space surrounded by the concave spring piece; and, after the second clamping portion 22 enters the concave space, the second clamping portion 22 can be clamped by elastic deformation, so that the second clamping portion 22 is not easy to separate from the first groove 121, which is conducive to improving the reliability and stability of the connection between the thermal imaging host 10 and the mounting bracket 20.
[0063] Considering that the first card slot 124 and the second card slot 125 are spaced apart, a boss structure 126 can be formed between the two. Figure 4 and Figure 5 As shown, the boss structure 126 protrudes from the groove wall of the first groove 121 close to the through hole 123, and the boss structure 126 can also limit the first hook structure 132 and the second hook structure 133 to prevent the first hook structure 132 and the second hook structure 133 from moving at will.
[0064] In addition, the end surface of the boss structure 126 facing the bottom of the first groove 121 can serve as a portion of the bottom of the second groove 122, and the second clamping portion 22 abuts against the end surface of the boss structure 126 facing the bottom of the first groove 121. Based on this, the boss structure 126 can limit the second clamping portion 22 to prevent it from excessively moving into the housing 11.
[0065] In order to further improve the stability of the installation between the thermal imaging host 10 and the mounting bracket 20, as shown in FIG. Figure 1As shown, the thermal imaging host 10 may include multiple first clamping portions 12 and multiple limiting members 13. Correspondingly, the mounting bracket 20 may include multiple second clamping portions 22. In this way, the multiple first clamping portions 12 are correspondingly engaged with the multiple second clamping portions 22, and the multiple limiting members 13 are correspondingly engaged with the multiple second clamping portions 22. Based on this arrangement, the engaging area between the thermal imaging host 10 and the mounting bracket 20 can be increased, thereby improving the reliability and stability of the connection between the thermal imaging host 10 and the mounting bracket 20. In addition, under the limiting action of the multiple limiting members 13, the multiple second clamping portions 22 are not easily separated from the corresponding first clamping portions 12, thereby effectively overcoming the problem of easy separation between the thermal imaging host 10 and the mounting bracket 20.
[0066] In the embodiment of the present application, the first engaging portion 12 and the housing 11 can be integrally formed. During the manufacturing process of the housing 11, the first groove 121, the second groove 122, and the through hole 123 are simultaneously formed on the sidewall 1111 to facilitate the formation of the first engaging portion 12. This approach can shorten the manufacturing cycle of the housing 11 and improve manufacturing efficiency.
[0067] In other embodiments, the housing 11 may be manufactured first, and then the first groove 121, the second groove 122, and the through hole 123 may be formed by machining on the side wall 1111 of the housing 11 to form the first clamping portion 12. This method can reduce manufacturing difficulty and improve manufacturing accuracy.
[0068] The present application also discloses a mounting bracket 20, which is used for sliding installation or removal from the thermal imaging host 10 and for connecting to a mobile terminal. The mobile terminal can be an electronic device such as a mobile phone or tablet computer. Furthermore, the mounting bracket 20 can be connected to other mounting bases, and the specific form is not limited as long as the mounting stability of the mounting bracket 20 is guaranteed.
[0069] The mounting bracket 20 and the thermal imaging host 10 in the embodiment of the present application are installed or disassembled by sliding. Compared with the screw connection method, the embodiment of the present application can realize the convenient installation of the mounting bracket 20 and the thermal imaging host 10, thereby overcoming the problem of cumbersome installation operation of the mounting bracket 20 and the thermal imaging host 10.
[0070] refer to Figure 1 、 Figure 7 and Figure 8 In some embodiments, the mounting bracket 20 may include a fixing member 21 and a second clamping portion 22 provided on the fixing member 21, wherein the second clamping portion 22 is used to slide and engage or disengage with the first clamping portion 12 provided on the thermal imaging host 10.
[0071] Optionally, the fixing member 21 may be a plate, and the second clamping portion 22 may be provided on a side of the fixing member 21 facing the thermal imaging host 10 .
[0072] In the embodiment of the present application, the second clamping portion 22 and the fixing member 21 can be an integral structure. The fixing member 21 and the second clamping portion 22 are formed simultaneously during the manufacturing process of the mounting bracket 20. This approach can shorten the manufacturing cycle of the mounting bracket 20 and improve manufacturing efficiency.
[0073] In other embodiments, the fixing member 21 may be manufactured first, and the second clamping portion 22 may be formed on the fixing member 21 later by a fixed connection. This method can reduce manufacturing difficulty and improve manufacturing accuracy. The fixing method may be welding, bonding, riveting, screwing, clamping, etc.
[0074] refer to Figure 7 and Figure 8 In some embodiments, the second engaging portion 22 may include a connecting section 221 and a connecting section 222. The connecting section 221 is connected to the fixing member 21, and the connecting section 222 is connected to the end of the connecting section 221 facing away from the fixing member 21. The connecting section 222 is arranged at an angle to the connecting section 221, so that a portion of the connecting section 222 is suspended in the air, forming a hook structure. Based on this, a connecting space can be formed between the connecting section 222, the connecting section 221, and the fixing member 21 to facilitate connecting to the first engaging portion 12 provided on the side wall 1111 of the housing 11.
[0075] Based on the above configuration, after the thermal imaging host 10 and the mounting bracket 20 are installed, the connecting section 221 is located in the second groove 122, so that the connecting section 221 is accommodated by the second groove 122, thereby preventing the connecting section 221 from being located outside the second groove 122, which would cause a large space to be left between the thermal imaging host 10 and the mounting bracket 20, thereby reducing the overall volume of the thermal imaging host 10 and the mounting bracket 20.
[0076] Furthermore, one end of the clamping section 222 is located in the second groove 122, and the end face of the clamping section 222 facing away from the fixing member 21 abuts against the bottom of the second groove 122. In this way, the bottom of the second groove 122 can play a certain supporting and limiting role on the second clamping portion 22 in the thickness direction of the side wall 1111.
[0077] The other end of the engaging section 222 extends through the through hole 123 into the first groove 121, and the end surface of the engaging section 222 facing the fixing member 21 abuts against the bottom wall of the first groove 121. Furthermore, the end of the bottom of the first groove 121 is also located in the aforementioned engaging space. As a result, the bottom of the first groove 121 provides a certain degree of support and positioning for the second engaging portion 22 in the thickness direction of the side wall 1111.
[0078] Based on the above arrangement, the bottom of the first groove 121 and the bottom of the second groove 122 act together to limit the second clamping portion 22 in two directions, thereby preventing the second clamping portion 22 from moving in the thickness direction of the side wall 1111. It should be noted that the clamping engagement between the first clamping portion 12 and the second clamping portion 22 prevents the thermal imaging host 10 and the mounting bracket 20 from separating from each other in the thickness direction of the side wall 1111.
[0079] To achieve installation, the end of the fixing member 21 along its own extension direction can be provided with a mounting plate 213. The extension direction of the mounting plate 213 is set at an angle to the extension direction of the fixing member 21, and the mounting plate 213 can be provided with a mounting interface 211, such as Figure 3 、 Figure 7 and Figure 8 As shown, the mounting plate 213 can be abutted against other components, and the mounting bracket 20 can be mounted to other components through the mounting interface 211, so that the thermal imaging host 10 can be mounted through the mounting bracket 20, meeting the multi-functional installation requirements of the thermal imaging host 10. Among them, the mounting bracket 20 can be connected to a mobile terminal, such as a mobile phone, tablet computer, etc., so as to realize the thermal imaging function of the mobile terminal.
[0080] Optionally, the fixing member 21 may be provided with a threaded interface. For example, the fixing member 21 may be provided with a triangular nut to form a threaded interface through the triangular nut.
[0081] For example, mounting plate 213 can be part of fixing member 21, i.e., the fixing member 21 is integrally formed. Alternatively, mounting plate 213 can be fixed to the end of fixing member 21 rather than being part of fixing member 21. Either approach ensures the stability of mounting plate 213. Furthermore, mounting plate 213 can extend perpendicular to the direction of fixing member 21, or at other angles depending on the actual working conditions.
[0082] In addition, the fixing member 21 may also be provided with a mounting hole 212, such as Figure 7 and Figure 8 As shown, the mounting bracket 20 is fixed by fasteners passing through the mounting holes 212 and fastened to the mounting base.
[0083] In other embodiments, the mounting bracket 20 may further include a magnetic member 23 disposed on the fixing member 21. In this way, the mounting bracket 20 can be attached to an electronic device such as a mobile phone or tablet computer via the magnetic member 23. Of course, the mounting bracket 20 can also be attached to other mounting bases to ensure the stability of the mounting bracket 20. For example, the magnetic member 23 may be a magnet.
[0084] In addition, a mounting groove may be provided on the side of the fixing member 21, and the magnetic member 23 may be disposed in the mounting groove to ensure its installation stability.
[0085] In some more specific embodiments, the fixing member 21 can be provided with a magnetic member 23, a mounting hole 212 and a mounting interface 211 at the same time. In this way, three different installation methods of the same mounting bracket 20 can be realized, thereby improving the applicable scenarios of the mounting bracket 20.
[0086] refer to Figure 9 In other embodiments, two spaced-apart clamping plates 24 may be provided on the side of the fixing member 21 facing away from the second clamping portion 22, and the two clamping plates 24 may be relatively close to or relatively far away from each other. In this way, the fixing bracket 20 can be clamped on an electronic device such as a mobile phone, a tablet or other mounting base when the two clamping plates 24 are relatively close to each other, thereby ensuring the stability of the mounting bracket 20.
[0087] The manner in which the two clamping plates 24 are relatively close to or relatively far away from each other may include: one of the clamping plates 24 may move toward or away from the other clamping plate 24 , or the two clamping plates 24 may move toward or away from each other.
[0088] To ensure the clamping effect of the two clamping plates 24, at least one clamping plate 24 can also be connected to an elastic member provided on the fixing member 21, so that the elastic member applies an elastic force to at least one clamping plate 24 to make the two relatively close to each other, thereby achieving a clamping effect.
[0089] In the embodiment of the present application, the installation process of the thermal imaging host 10 and the mounting bracket 20 is as follows:
[0090] The second clamping portion 22 is placed in the second groove 122, and then the mounting bracket 20 is pushed upward along the extension direction of the side wall 1111, so that the second clamping portion 22 moves from the second groove 122 into the first groove 121 and is limited by the limiting member 13, that is, the limiting protrusion 131 cooperates with the limiting groove 2221. In this way, the second clamping portion 22 can be restricted from moving from the first groove 121 to the second groove 122, ensuring reliable and stable installation of the thermal imaging host 10 and the mounting bracket 20.
[0091] In the embodiment of the present application, the disassembly process of the thermal imaging host 10 and the mounting bracket 20 is as follows:
[0092] A force is applied to the mounting bracket 20 to move it downward along the extension direction of the side wall 1111. At this time, an extrusion force is applied to the limiting member 13 through the second clamping portion 22 to deform the limiting member 13, thereby separating the limiting protrusion 131 from the limiting groove 2221, and moving the second clamping portion 22 from the first groove 121 to the second groove 122, thereby releasing the clamping effect of the first clamping portion 12 on the second clamping portion 22, thereby realizing the separation of the thermal imaging host 10 from the mounting bracket 20.
[0093] Based on the above-mentioned thermal imaging host 10 and mounting bracket 20 , an embodiment of the present application further discloses a thermal imaging assembly. The disclosed thermal imaging assembly includes the thermal imaging host 10 and the mounting bracket 20 .
[0094] In summary, the embodiment of the present application can realize the convenient installation of the thermal imaging host 10 and the mounting bracket 20, improve the stability of the installation, and facilitate disassembly; it can also reduce the overall volume of the thermal imaging host 10 and the mounting bracket 20; in addition, it can also play the role of dustproof, waterproof, and foreign body proof.
[0095] The embodiments of the present application are described above in conjunction with the accompanying drawings, but the present application is not limited to the above-mentioned specific implementation methods. The above-mentioned specific implementation methods are merely illustrative and not restrictive. Under the guidance of this application, ordinary technicians in this field can also make many forms without departing from the purpose of this application and the scope of protection of the claims, all of which are within the protection of this application.
Claims
1. A thermal imaging host, characterized in that: The thermal imaging host (10) comprises a housing (11); a side wall (1111) of the housing (11) is provided with a first clamping portion (12); the first clamping portion (12) is used for slidingly engaging or disengaging with a second clamping portion (22) provided on a mounting bracket (20).
2. The thermal imaging host according to claim 1, characterized in that: The first clamping portion (12) comprises a first groove (121) and a second groove (122) for respectively accommodating the second clamping portion (22); the notch of the second groove (122) is arranged toward the outside of the housing (11); the first groove (121) and the second groove (122) are staggered in the extension direction of the side wall (1111) and are connected via a through hole (123).
3. The thermal imaging host according to claim 2, characterized in that: The thermal imaging host (10) further comprises a limiting member (13), wherein the limiting member (13) is provided in the first groove (121) and is used for partially limiting cooperation with the second clamping portion (22) accommodated in the first groove (121).
4. The thermal imaging host according to claim 3, characterized in that: The limiting member (13) is provided with a limiting protrusion (131), and the limiting protrusion (131) is used to cooperate with a limiting groove (2221) provided on the second clamping portion (22); Alternatively, the limiting member (13) is provided with a limiting groove (2221), and the limiting groove (2221) is used for limiting cooperation with a limiting protrusion (131) provided on the second clamping portion (22).
5. The thermal imaging host according to claim 2 or 3, characterized in that: The thermal imaging host (10) further comprises a shielding member (14), wherein the shielding member (14) is arranged at the notch of the first groove (121) and is used to block the notch of the first groove (121).
6. The thermal imaging host according to claim 3, characterized in that: The limiting member (13) extends along the circumference of the first groove (121), and the limiting member (13) includes a first limiting end (134) and a second limiting end (135) arranged at intervals, and the first limiting end (134) and the second limiting end (135) are arranged on both sides of the through hole (123), and are respectively used to cooperate with the part of the second clamping portion (22) (32) accommodated in the first groove (121).
7. The thermal imaging host according to claim 6, characterized in that: The groove wall of the first groove (121) is provided with a first clamping groove (124) and a second clamping groove (125) respectively located on opposite sides of the through hole (123); The first limiting end (134) is provided with a first hook structure (132) bent away from the second limiting end (135), and the first hook structure (132) is clamped in the first clamping groove (124); The second limiting end (135) is provided with a second hook structure (133) bent away from the first limiting end (134), and the second hook structure (133) is clamped in the second clamping groove (125).
8. A mounting bracket, characterized in that: The mounting bracket (20) comprises a fixing member (21) and a second clamping portion (22) provided on the fixing member (21), wherein the second clamping portion (22) is used for slidingly engaging or disengaging with a first clamping portion (12) provided on the thermal imaging host (10).
9. The mounting bracket according to claim 8, wherein: The second clamping portion (22) comprises a connecting section (221) and a clamping section (222); The connecting section (221) is connected to the fixing member (21), and the locking section (222) is connected to an end of the connecting section (221) facing away from the fixing member (21), and is arranged at an angle with the connecting section (221) to form a hook structure.
10. The mounting bracket according to claim 8, wherein: The mounting bracket (20) further includes a magnetic member (23), and the magnetic member (23) is provided on the fixing member (21); The fixing member (21) is provided with a mounting hole (212); The end of the fixing member (21) along its own extension direction is provided with a mounting plate (213), the extension direction of the mounting plate (213) is arranged at an angle to the extension direction of the fixing member (21), and the mounting plate (213) is provided with a mounting interface (211).
11. The mounting bracket according to claim 8, wherein: Two spaced-apart clamping plates (24) are provided on a side of the fixing member (21) facing away from the second clamping portion (22), and the two clamping plates (24) can be relatively close to or relatively far away from each other.
12. A thermal imaging assembly, characterized in that: include: The thermal imaging host (10) according to any one of claims 1 to 7, and the mounting bracket (20) according to any one of claims 8 to 11.