An integrated mirror set mounting module

CN224745203UActive Publication Date: 2026-09-11NANJING ENIGMA IND AUTOMATION TECH CO LTD
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Patent Information

Application Number
CN202521772186.2
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-08-19
Publication Date
2026-09-11
Estimated Expiration
2035-08-19

AI Technical Summary

Technical Problem

[0003]然而,现有的反射镜结构安装至光学整形模块上时,需要在光学整形模块外壳内部有限空间内先安装反射镜固定座,完成反射镜固定座安装后,再依次安装冷却水管和传感器线路安装及内外接头的连接,最后再将光学整形模块外壳的上盖固定好,才能够完成安装,且在壳体内部连接水管和线路时易碰触或干扰到反射镜,影响反射镜角度调节精度;同时,在后续从检修维护过程中也需要先打开外壳,再倒序依次拆卸,现有的安装拆卸过程不仅操作繁琐,且装配拆卸效率低

Benefits of technology

1.将镜座模块安装到光学整形模块上时,可以脱离光学整形模块外壳的束缚,只需要在开阔处先将反射镜等安装在镜座上,再将镜座通过调节组件安装到安装座上,随后将内接头组件中依次与外接头组件对接,最后直接将安装座扣在光学整形模块的壳体上,即可完成光学整形模块的组装,实现了反射镜角度调节及管路线路的一体化设计,集成度高;同时,后续维修过程中仅需要拆开安装座就能够完成拆卸,相较于传统的将组件在空间狭小的光学整形模块内逐个安装或拆卸,提高了安装便捷性和效率以及后续的维修效率。

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Abstract

This application relates to an integrated lens assembly mounting module, belonging to the field of optical devices. It includes a lens mount with a reflector mounted on it, and an inner connector assembly on the lens mount. It also includes a mounting base on which the lens mount is mounted. An adjustment assembly is located within the mounting base to adjust the angle of the lens mount. An outer connector assembly is located on the mounting base for connecting to the inner connector assembly. This application improves installation efficiency and enhances wiring neatness.
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Description

Technical Field

[0001] This application relates to the field of optical device technology, and in particular to an integrated lens assembly mounting module. Background Technology

[0002] A mirror mount in an optical instrument is a type of mounting element used to fix a mirror in a specific position, providing high stability support for the mounted mirror. Simultaneously, the mount allows for precise adjustment of the mirror angle through pitch and yaw angle adjustments, effectively improving the positioning accuracy of optical components. It is a key component in optical systems for achieving stable fixation and precise alignment of mirrors, and is widely applicable to various optical instruments requiring optical path reversal and calibration.

[0003] However, when installing the existing reflector structure onto the optical shaping module, a reflector mounting bracket needs to be installed first within the limited space inside the optical shaping module's housing. After the reflector mounting bracket is installed, the cooling water pipes and sensor wiring are installed in sequence, along with the connection of the internal and external connectors. Finally, the top cover of the optical shaping module's housing is fixed in place to complete the installation. Furthermore, connecting the water pipes and wiring inside the housing can easily bump into or interfere with the reflector, affecting the accuracy of the reflector's angle adjustment. At the same time, during subsequent maintenance and repair, the housing needs to be opened first, and then the components are disassembled in reverse order. The existing installation and disassembly process is not only cumbersome but also inefficient. Utility Model Content

[0004] To improve installation efficiency and wiring neatness, this application provides an integrated mirror assembly mounting module.

[0005] This application provides an integrated lens assembly mounting module. The technical solution adopted is as follows: An integrated mirror assembly mounting module includes a mirror mount, on which a reflector is mounted, and an internal connector assembly is provided on the mirror mount; It also includes a mounting base, on which the mirror mount is mounted. The mounting base is provided with an adjustment component for adjusting the angle of the mirror mount. The mounting base is provided with an external connector component for connecting with the internal connector component.

[0006] By adopting the above technical solution, when installing the mirror mount module onto the optical shaping module, it is only necessary to first install the reflector and other components on the mirror mount externally, then install the mirror mount onto the mounting base using the adjustment component, subsequently mate the inner connector component with the outer connector component in sequence, and use the adjustment component to adjust the reflector angle. Finally, the mounting base is directly snapped onto the housing of the optical shaping module to complete the assembly of the optical shaping module. This achieves an integrated design of reflector angle adjustment and pipeline routing, resulting in a high degree of integration. At the same time, during subsequent maintenance, disassembly can be completed simply by removing the mounting base. Compared with the traditional method of installing or removing components one by one in the confined space of the optical shaping module, this improves the convenience and efficiency of installation as well as the efficiency of subsequent maintenance.

[0007] Optionally, the adjustment assembly includes several tension springs, one end of which is connected to the mirror mount and the other end of which is connected to the mounting base; It also includes several threaded push rods, several locking nuts, and several fixing nuts. The mounting base has several first through slots. The fixing nuts are fixed in the first through slots on the side of the mounting base facing the mirror base. The locking nuts are fixed in the first through slots on the mounting base away from the mirror base. The threaded push rods are threadedly connected to the locking nuts and fixing nuts. The threaded push rods pass through the first through slots and abut against the mirror base. The locking nuts are used to lock the threaded push rods.

[0008] By adopting the above technical solution, the angle of the lens mount can be adjusted by the cooperation of the tension spring, the threaded push rod and the fixing nut. The threaded push rod can push the lens mount to produce an angle change, and the locking nut can accurately lock the adjusted position to prevent loosening and displacement. Thus, the tilt state of the lens mount can be adjusted by rotating different adjusting bolts, so as to achieve fine control of the lens mount at multiple angles.

[0009] Optionally, the mirror mount is provided with a plurality of first receiving grooves, the first receiving grooves extending to the side of the mirror mount away from the reflector, and a first fixing rod is provided in the first receiving groove; The mounting base has a second receiving groove on the side near the mirror base. The second receiving groove is arranged opposite to the first receiving groove, and a second fixing rod is provided in the second receiving groove. The tension spring is located in the first receiving groove, one end of the tension spring is connected to the first fixing rod, and the other end of the tension spring is connected to the second fixing rod.

[0010] By adopting the above technical solution, the ends of the tension spring are respectively fitted onto the first fixed rod and the second fixed rod to prevent the tension spring from falling off when under force, thereby improving the stability of the tension spring connection, and the tension spring is located in the first receiving groove to save space.

[0011] Optionally, a first connecting block is detachably connected to the first receiving groove, and a second connecting block is detachably connected to the second receiving groove. The first connecting block has a first through hole at the end away from the mounting base, and the second connecting block has a second through hole at the end away from the mirror base. The first fixing rod passes through the first through hole, and the second fixing rod passes through the second through hole.

[0012] By adopting the above technical solution, the first connecting block and the second connecting block can be quickly installed and disassembled. When the tension spring needs to be replaced, there is no need to disassemble the overall structure of the mirror base and the mounting base. Only the connecting block needs to be disassembled to complete the replacement, which shortens the installation time and reduces the complexity of operation.

[0013] Optionally, a positioning ball socket is provided at one corner of the mirror base facing the mounting base, and positioning grooves are provided at the other two corners of the mirror base facing the mounting base. Both positioning grooves point to the positioning ball socket and are perpendicular to each other. One of the threaded push rods passes through the first through groove and abuts against the positioning ball socket, and the other two threaded push rods pass through the first through groove and abut against the positioning grooves.

[0014] By adopting the above technical solution, the helical push rod corresponding to the positioning ball socket is used as the axis to provide a stable adjustment center for the mirror mount. The helical push rods in the two mutually perpendicular positioning slots can work together to adjust the mirror mount to achieve precise pitch and yaw angle adjustment. At the same time, the constraint between the positioning ball socket and the positioning slot can always limit the contact position of the threaded push rod, prevent the helical push rod from slipping or shifting, and ensure the stability and accuracy of the adjustment process.

[0015] Optionally, the internal connector assembly includes a water inlet and a water outlet, and a water circulation pipe is provided inside the mirror mount. Both the water inlet and the water outlet are connected to the water circulation pipe, and the water circulation pipe is located close to the reflector.

[0016] By adopting the above technical solution, the water circulation pipe is close to the reflector, which allows the circulating cooling water to directly cool the core heat-generating areas of the reflector and the mirror mount, effectively avoiding damage to the mirror surface caused by local temperature rise, and providing a reliable guarantee for long-term stable operation.

[0017] Optionally, the mirror base has an interface receiving groove on its side, the water inlet and the water outlet are located on the interface receiving groove, and the water inlet and the water outlet are respectively connected to the external connector assembly.

[0018] By adopting the above technical solution, the interface receiving groove avoids the water inlet and outlet ports protruding from the plane of the mirror base. The water inlet and outlet ports are set in the interface receiving groove, saving space and making the internal space more compact. In addition, the interface receiving groove plays a certain role in restraining the water pipes connected to the water inlet and outlet ports, preventing the water pipes from bending and interfering with the adjustment of the mirror base.

[0019] Optionally, the external connector assembly includes a connector base, which is provided with an air injection pipe interface and two cold water pipe interfaces. One of the cold water pipe interfaces is connected to the water inlet interface via a water pipe, and the other cold water pipe interface is connected to the water outlet interface via a water pipe. The connector base is also provided with a first through hole.

[0020] By adopting the above technical solution, the pipelines, gas lines and wiring are centrally set up. The cold water pipe interface, gas injection pipe interface and wiring are uniformly oriented and gathered in the connection seat. This not only avoids the mess and tangling caused by the scattered layout of pipelines, but also prevents the pipelines from interfering with the angle adjustment of the mirror mount through the unified layout. Furthermore, the standardization of pipeline routing reduces mutual cross-interference, which facilitates intuitive inspection and maintenance in the later stage.

[0021] Optionally, the connector includes a first connector shell and a second connector shell. The air injection pipe interface, the cold water pipe interface, and the first through hole are located on the first connector shell. The second connector shell is an annular shell. The mounting base is provided with a second through groove. The second connector shell is mounted on the mounting base. The second through groove communicates with the second connector shell. The first connector shell is mounted on the second connector shell.

[0022] By adopting the above technical solution, the connector adopts a split design of the first connecting shell and the second connecting shell, which facilitates the bevel machining inside the first connecting shell and the second connecting shell, reduces the manufacturing difficulty of the shell, facilitates processing, and improves production efficiency and component precision. The second connecting shell and the second through groove together form a through channel structure, providing a higher and wider path for the pipeline to pass through. This not only avoids pipeline squeezing and friction caused by narrow channels, but also provides space for the cold water pipe to move. It also provides a starting channel for the subsequent maintenance of the water inlet and outlet interfaces without having to remove the entire mirror base, thus improving the convenience of maintenance.

[0023] Optionally, the mirror mount has a third through groove, which passes through the side of the mirror mount near the mounting base, the side of the mirror mount near the interface receiving groove, and the side of the mirror mount where the reflector is located. A temperature sensor is provided in the mirror mount near the reflector. A second through hole is provided in the third through groove, and the wire of the temperature sensor passes through the first through hole and the second through hole.

[0024] By adopting the above technical solution, the third through slot provides a clear spatial guide for the docking of the inner connector assembly and the outer connector assembly, reducing pipe loops and messy layout, and improving the efficiency of internal and external pipe connection; the opening of the third through slot reduces the weight of the mirror mount, and the lightweight mirror mount helps to improve the accuracy of the mirror angle adjustment.

[0025] In summary, this application includes at least one of the following beneficial technical effects: 1. When installing the mirror mount module onto the optical shaping module, it can be freed from the constraints of the optical shaping module's outer shell. Simply install the reflector and other components onto the mirror mount in an open area, then install the mirror mount onto the mounting base using the adjustment components. Subsequently, align the inner connector components with the outer connector components in sequence, and finally, directly snap the mounting base onto the housing of the optical shaping module to complete the assembly of the optical shaping module. This achieves an integrated design of reflector angle adjustment and piping, resulting in a high degree of integration. Furthermore, during subsequent maintenance, disassembly can be completed simply by removing the mounting base. Compared to the traditional method of installing or removing components one by one within the confined space of the optical shaping module, this improves the convenience and efficiency of installation, as well as the efficiency of subsequent maintenance.

[0026] 2. The angle of the lens mount is adjusted by the cooperation of the tension spring, the threaded push rod and the locking nut. The threaded push rod can push the lens mount to produce an angle change, and the locking nut can accurately lock the adjusted position to prevent loosening and displacement. Thus, the tilt state of the lens mount can be adjusted by rotating different adjusting bolts, so as to achieve fine control of the lens mount at multiple angles. The ends of the tension springs are respectively fitted onto the first and second fixing rods to prevent the tension springs from falling off when under force, thus improving the stability of the tension spring connection. At the same time, it avoids the tension springs being directly connected between the mounting base and the mirror base, which would increase the space occupied by the tension springs. The tension springs are located in the first receiving groove, saving space. With the helical push rod corresponding to the positioning ball socket as the axis, a stable adjustment center is provided for the mirror mount. Together with the helical push rods in the two mutually perpendicular positioning slots, the mirror mount can be adjusted to achieve precise pitch and yaw angle adjustment. At the same time, the constraint between the positioning ball socket and the positioning slot can always limit the contact position of the threaded push rod, preventing the helical push rod from slipping or shifting, and ensuring stability and accuracy during the adjustment process.

[0027] 3. The connector adopts a split design of the first connecting shell and the second connecting shell, which facilitates the bevel machining inside the first connecting shell and the second connecting shell, reduces the manufacturing difficulty of the shell, facilitates processing, and improves production efficiency and component precision. The second connecting shell and the second through groove together form a through channel structure, providing a higher and wider path for the pipeline. This not only avoids pipeline squeezing and friction caused by narrow channels, but also provides space for the cold water pipe to move. It also provides a starting channel for subsequent maintenance of the water inlet and outlet interfaces without having to remove the entire mirror base, thus improving the convenience of maintenance.

[0028] 4. The third through slot provides clear spatial guidance for the docking of the inner and outer connector components, reducing pipe loops and messy layout, and improving the efficiency of internal and external pipe connection; the opening of the third through slot reduces the weight of the mirror mount, and the lightweight mirror mount helps to improve the accuracy of the mirror angle adjustment. Attached Figure Description

[0029] Figure 1 This is a schematic diagram of the overall structure of an embodiment of this application.

[0030] Figure 2 This is a schematic diagram illustrating the structure of the reflective lens and the interface slot in an embodiment of this application.

[0031] Figure 3 This is a cross-sectional structural diagram of a water circulation pipeline, as illustrated in the embodiments of this application.

[0032] Figure 4 This is a cross-sectional structural diagram illustrating the temperature sensor in an embodiment of this application.

[0033] Figure 5 This is a schematic diagram illustrating the structure of the tension spring, the first receiving groove, and the first connecting block in an embodiment of this application.

[0034] Figure 6 This is a schematic diagram illustrating the structure of the second receiving groove and the second connecting block in an embodiment of this application.

[0035] Figure 7 This is a schematic diagram illustrating the structure of the positioning ball socket and positioning groove in an embodiment of this application.

[0036] Figure 8 This is a schematic diagram illustrating the structure of the threaded push rod and the locking nut in an embodiment of this application.

[0037] Figure 9 This is a schematic diagram illustrating the structure of the external connector assembly in an embodiment of this application.

[0038] Explanation of reference numerals in the attached drawings: 1. Mirror base; 111. First receiving groove; 112. First fixing rod; 113. Second receiving groove; 114. Second fixing rod; 115. First connecting block; 116. Second connecting block; 117. First through hole; 118. Second through hole; 12. Positioning ball socket; 13. Positioning groove; 14. Third through groove; 15. Second through hole; 2. Reflector; 3. Internal connector assembly; 31. Water inlet; 32. Water outlet; 33. Water circulation pipe; 4. Mounting base; 41. First through groove; 42. Interface receiving groove; 43. Second through groove; 5. Adjustment component; 51. Tension spring; 52. Threaded push rod; 53. Locking nut; 54. Fixing nut; 6. External connector assembly; 61. Connecting base; 611. First connecting shell; 612. Second connecting shell; 62. Air injection pipe interface; 63. Cold water pipe interface; 64. First through hole; 7. Temperature sensor; 8. Mounting groove. Detailed Implementation

[0039] The following is in conjunction with the appendix Figure 1-9 This application will be described in further detail.

[0040] This application discloses an integrated lens assembly mounting module.

[0041] like Figure 1 , Figure 2 and Figure 3 The integrated mirror assembly mounting module includes a mirror base 1, which is a near-right-angled triangular prism structure. An interface receiving groove 42 is provided on the side of the mirror base 1. One end of the interface receiving groove 42 extends to the side of the mirror base 1 away from the reflector 2, and the other end extends to the top surface of the mirror base 1. An internal connector assembly 3 is provided in the interface receiving groove 42. The internal connector assembly 3 includes a water inlet 31 and a water outlet 32. The water inlet 31 and the water outlet 32 ​​are arranged facing the top of the mirror base 1. A water circulation pipe 33 is provided in the mirror base 1. The two ends of the water circulation pipe 33 are connected to the water inlet 31 and the water outlet 32, respectively. The water circulation pipe 33 is located close to the reflector 2. In other embodiments, the internal connector assembly 3 can also be a cooling gas inlet, a cooling gas outlet, and a cold air circulation pipe. A third through groove 14 is provided on the top of the mirror base 1. The third through groove 14 is connected to the interface receiving groove 42. One side of the third through groove 14 extends to the top surface, the inclined surface and the side of the mirror base 1 near the interface receiving groove 42. A second through hole 15 is provided at the bottom of the third through groove 14.

[0042] like Figure 2 and Figure 4 A mounting groove 8 is provided on the inclined surface of the mirror base 1. A second through hole 15 extends into the mounting groove 8. A temperature sensor 7 is installed in the second through hole 15. The wires of the temperature sensor 7 pass through the second through hole 15. A reflector 2 is installed in the mounting groove 8.

[0043] like Figure 5 The top surface of the mirror mount 1 has two first receiving grooves 111, one of which extends to the side away from the reflector 2, and the other first receiving groove 111 extends to the side opposite to the interface receiving groove 42. Each of the two first receiving grooves 111 is detachably connected to a first connecting block 115. The first connecting block 115 is flush with the plane of the mirror base 1. The first connecting block 115 divides the first receiving groove 111 into two identical areas. A first through hole 117 is provided on the end of the first connecting block 115 near the mirror base 1. The first through hole 117 is a cylindrical hole. A first fixing rod 112 is inserted into the first through hole 117. The first fixing rod 112 is a cylindrical rod and is located in the first receiving groove 111.

[0044] like Figure 5 and Figure 6 The integrated lens assembly mounting module also includes a mounting base 4. The lens base 1 is mounted on the mounting base 4 via an adjustment component 5. The mounting base 4 has two second receiving grooves 113 on the side facing the lens base 1. The second receiving grooves 113 are opposite to the first receiving grooves 111. The second receiving grooves 113 are U-shaped or waist-shaped grooves. A second connecting block 116 can be detachably connected to each of the two second receiving grooves 113. One end of the second connecting block 116 is fixed to the U-shaped head by a bolt. The second connecting block 116 divides the second receiving groove 113 into two consistent areas. A second through hole 118 is provided on the end of the second connecting block 116 away from the lens base 1. The second through hole 118 is a cylindrical hole. A second fixing rod 114 passes through the second through hole 118. The second fixing rod 114 is a cylindrical rod and is located inside the second receiving groove 113. The adjustment assembly 5 includes four tension springs 51, with each pair of tension springs 51 forming a group. In each group, the two tension springs 51 are located in the same first receiving groove 111, and the two tension springs 51 are respectively located in the area separated by the first connecting block 115 within the first receiving groove 111. The two tension springs 51 in the same first receiving groove 111 hook one end of the first fixing rod 112, and the other end of the tension spring 51 hooks the second fixing rod 114 opposite to the first fixing rod 112.

[0045] like Figure 7 A positioning ball socket 12 is provided at the right angle of the side of the mirror base 1 facing the mounting base 4. Positioning grooves 13 are provided at the other two corners of the side of the mirror base 1 facing the mounting base 4. The positioning grooves 13 both point to the positioning ball socket 12. The two positioning grooves 13 are arranged perpendicular to each other and extend to the side of the mirror base 1 away from the positioning ball socket 12.

[0046] like Figure 1 , Figure 7 and Figure 8The mounting base 4 has three first through slots 41, and the positions of the three first through slots 41 correspond one-to-one with the positions of the positioning ball socket 12 and the two positioning slots 13 on the mirror base 1. The adjustment assembly 5 also includes three threaded push rods 52, three locking nuts 53, and three fixing nuts 54. The three fixing nuts 54 are bolted to the side of the mounting base 4 near the mirror base 1, and the three fixing nuts 54 correspond one-to-one with the three first through slots 41. The locking nuts 53 are fixed to the side of the mounting base 4 away from the mirror base 1, and the three locking nuts 53 correspond one-to-one with the three first through slots 41. The threaded push rods 52 pass through the locking nuts 53, the first through slots 41, and the fixing nuts 54 and abut against the mirror base 1. One of the threaded push rods abuts against the positioning ball socket 12, and the other two threaded push rods abut against the two positioning slots 13. The locking nuts 53 are screwed onto the threaded push rods, and the threaded push rods are helically connected to the locking nuts 53 and the fixing nuts 54.

[0047] like Figure 1 and Figure 9 An external connector assembly 6 is provided on the side of the mounting base 4 facing away from the mirror base 1. The external connector assembly 6 includes a connecting base 61, which includes a first connecting shell 611 and a second connecting shell 612. The second connecting shell 612 is fixed to the mounting base 4 by bolts. A second through groove 43 is provided on the mounting base 4. The second connecting shell 612 and the second through groove 43 are positioned opposite each other. The second connecting shell 612 is an annular shell. The cross-sectional area of ​​the second through groove 43 is one-quarter of the cross-sectional area of ​​the mounting base 4. The cross-sectional area of ​​the internal space of the second connecting shell 612 is the same as the cross-sectional area of ​​the second through groove 43. The first connecting shell 611 is fixed to the top of the second connecting shell 612 by bolts. An air injection port is provided on the first connecting shell 611. The device includes a pipe interface 62 and two cold water pipe interfaces 63. One cold water pipe interface 63 is connected to the water inlet interface 31 via a water pipe, and the other cold water pipe interface 63 is connected to the water outlet interface 32 via a water pipe. The water pipes connecting the water inlet interface 31 and the water outlet interface 32 pass through the interface receiving groove 42, the third through groove 14, the second through groove 43, and the second connecting shell 612 in sequence, and are connected to the cold water pipe interface 63 on the first connecting shell 611. The first connecting shell 611 is also provided with a first through hole 64. The first through hole 64 and the second through hole 15 are connected by a line. The connecting line of the temperature sensor 7 passes through the second through hole 15, the third through groove 14, the second through groove 43, and the second connecting shell 612 in sequence, and is connected to the first through hole 64.

[0048] The implementation principle of this application embodiment is as follows: When installing the mirror mount 1 module onto the optical shaping module, it is only necessary to first install the reflector 2 and other components onto the mirror mount 1 externally, then install the mirror mount 1 onto the mounting base 4 via the adjustment component 5, then connect the inner connector component 3 to the outer connector component 6 in sequence, and use the adjustment component 5 to adjust the angle of the reflector 2. Finally, directly fasten the mounting base 4 onto the housing of the optical shaping module to complete the assembly of the optical shaping module. This achieves an integrated design of the reflector 2 angle adjustment and pipeline routing, resulting in high integration. At the same time, during subsequent maintenance, disassembly can be completed simply by removing the mounting base 4. Compared with the traditional method of installing or removing components one by one in the confined space of the optical shaping module, the internal slot design makes the whole compact, occupies little space, simplifies the pipeline layout, improves assembly efficiency, and facilitates subsequent maintenance.

[0049] The above are all preferred embodiments of this application, and are not intended to limit the scope of protection of this application. Therefore, all equivalent changes made in accordance with the structure, shape and principle of this application should be covered within the scope of protection of this application.

Claims

1. An integrated lens assembly mounting module, characterized in that: Includes a mirror mount (1), on which a reflector (2) is mounted, and an internal connector assembly (3) is provided on the mirror mount (1); It also includes a mounting base (4), on which the mirror mount (1) is mounted. An adjustment component (5) is provided inside the mounting base (4), which is used to drive the mirror mount (1) to adjust the angle. An external connector component (6) is provided on the mounting base (4), which is used to connect with the internal connector component (3).

2. The integrated lens assembly mounting module according to claim 1, characterized in that: The adjustment assembly (5) includes several tension springs (51), one end of which is connected to the mirror base (1), and the other end of which is connected to the mounting base (4). It also includes several threaded push rods (52), several locking nuts (53) and several fixing nuts (54). The mounting base (4) is provided with several first through slots (41). The fixing nuts (54) are fixed in the first through slots (41) on the side of the mounting base (4) facing the mirror base (1). The locking nuts (53) are fixed in the first through slots (41) on the mounting base (4) away from the mirror base (1). The threaded push rods (52) are threadedly connected to the locking nuts (53) and the fixing nuts (54). The threaded push rods (52) pass through the first through slots (41) and abut against the mirror base (1). The locking nuts (53) are used to lock the threaded push rods (52).

3. The integrated lens assembly mounting module according to claim 2, characterized in that: The mirror base (1) is provided with a plurality of first receiving grooves (111), the first receiving grooves (111) extending to the side of the mirror base (1) away from the reflector (2), and a first fixing rod (112) is provided in the first receiving groove (111). The mounting base (4) has a second receiving groove (113) on the side near the mirror base (1). The second receiving groove (113) is opposite to the first receiving groove (111), and a second fixing rod (114) is provided in the second receiving groove (113). The tension spring (51) is located in the first receiving groove (111), one end of the tension spring (51) is connected to the first fixing rod (112), and the other end of the tension spring (51) is connected to the second fixing rod (114).

4. The integrated lens assembly mounting module according to claim 3, characterized in that: A first connecting block (115) is detachably connected to the first receiving groove (111), and a second connecting block (116) is detachably connected to the second receiving groove (113). A first through hole (117) is provided at the end of the first connecting block (115) away from the mounting base (4), and a second through hole (118) is provided at the end of the second connecting block (116) away from the mirror base (1). The first fixing rod (112) passes through the first through hole (117), and the second fixing rod (114) passes through the second through hole (118).

5. The integrated lens assembly mounting module according to claim 4, characterized in that: The mirror base (1) has a positioning ball socket (12) at one corner of the side facing the mounting base (4), and positioning grooves (13) are provided on the other two corners of the mirror base (1) facing the mounting base (4). The two positioning grooves (13) point to the positioning ball socket (12) and are perpendicular to each other. One of the threaded push rods (52) passes through the first through groove (41) and abuts against the positioning ball socket (12), and the other two threaded push rods (52) pass through the first through groove (41) and abut against the positioning grooves (13).

6. The integrated lens assembly mounting module according to claim 1, characterized in that: The inner connector assembly (3) includes a water inlet (31) and a water outlet (32). A water circulation pipe (33) is provided inside the mirror base (1). The water inlet (31) and the water outlet (32) are both connected to the water circulation pipe (33). The water circulation pipe is located close to the reflector (2).

7. The integrated lens assembly mounting module according to claim 6, characterized in that: The mirror base (1) has an interface receiving groove (42) on its side. The water inlet (31) and the water outlet (32) are located on the interface receiving groove (42). The water inlet (31) and the water outlet (32) are respectively connected to the external connector assembly (6).

8. The integrated lens assembly mounting module according to claim 7, characterized in that: The external connector assembly (6) includes a connector (61), on which an air injection pipe interface (62) and two cold water pipe interfaces (63) are provided. One of the cold water pipe interfaces (63) is connected to the water inlet interface (31) through a water pipe, and the other cold water pipe interface (63) is connected to the water outlet interface (32) through a water pipe. The connector (61) is also provided with a first through hole (64).

9. The integrated lens assembly mounting module according to claim 8, characterized in that: The connecting base (61) includes a first connecting shell (611) and a second connecting shell (612). The air injection pipe interface (62), the cold water pipe interface (63), and the first through hole (64) are located on the first connecting shell (611). The second connecting shell (612) is an annular shell. The mounting base (4) is provided with a second through groove (43). The second connecting shell (612) is mounted on the mounting base (4). The second through groove (43) communicates with the second connecting shell (612). The first connecting shell (611) is mounted on the second connecting shell (612).

10. The integrated lens assembly mounting module according to claim 8, characterized in that: The mirror mount (1) has a third through groove (14) that passes through the side of the mirror mount (1) near the mounting base (4), the side of the mirror mount (1) near the interface receiving groove (42), and the side of the mirror mount (1) where the reflector (2) is located. A temperature sensor (7) is provided in the mirror mount (1) near the reflector (2). A second through hole (15) is provided in the third through groove (14). The wire of the temperature sensor (7) passes through the first through hole (64) and the second through hole (15).