Spectrometer debugging tool and spectrometer module
By designing a spectrometer debugging fixture, and utilizing a rotary table and a liftable jack, the problem of time-consuming and labor-intensive disassembly of the spectrometer's base plate was solved, achieving time-saving and labor-saving maintenance and improved testing stability.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- 奥谱天成(湖南)信息科技有限公司
- Filing Date
- 2025-05-26
- Publication Date
- 2026-05-01
AI Technical Summary
During the assembly and debugging of the spectrometer, the spectrometer needs to be flipped over when disassembling the base plate, which is time-consuming and laborious and may cause minor stress deformation of the optical path components.
A spectrometer debugging fixture is used, including a rotary table, a support plate, and a liftable lifting block. By switching between the natural state and the lifted state of the lifting block, the spectrometer can be stably supported and suspended, avoiding the need for flipping operations.
It saves time and effort to disassemble the spectrometer base plate, reduces the steps of readjusting optical components, improves operational efficiency, and maintains detection stability.
Smart Images

Figure CN224189872U_ABST
Abstract
Description
Spectrometer debugging fixtures and spectrometer modules Technical Field
[0001] This utility model relates to the field of optical testing technology, and more specifically, to a spectrometer debugging fixture and a spectrometer module. Background Technology
[0002] A spectrometer is a physical optical instrument that acquires spectral information closely related to the analyte by capturing phenomena such as light dispersion, absorption, and scattering. In practical applications, if problems arise during the assembly and debugging of a spectrometer, the base plate needs to be disassembled to troubleshoot hardware issues. Traditionally, this is done by flipping the spectrometer so that the base plate faces upwards for easy disassembly. However, the vibrations generated by flipping the spectrometer can cause minor stress deformations in the internal optical path components, requiring readjustment, which is time-consuming and labor-intensive. Summary of the Invention
[0003] The purpose of this utility model is to provide a spectrometer debugging fixture and spectrometer module to solve the problem of time-consuming and laborious operation caused by flipping the spectrometer when disassembling the base plate.
[0004] To solve the above-mentioned technical problems, the present invention adopts the following technical solution.
[0005] On one hand, this utility model provides a spectrometer debugging fixture, which includes: a rotating stage; a support plate supported on the rotating stage; and two lifting blocks arranged at intervals along the horizontal direction. Both lifting blocks are located above the support plate and are vertically connected to the support plate, allowing the spectrometer debugging fixture to have a natural state and a lifted state. In the natural state, the height of the two lifting blocks is lower than their height in the lifted state. In the natural state, the support plate supports the bottom of the spectrometer, and the two lifting blocks abut against or are vertically spaced from the two sides of the spectrometer in the horizontal direction. In the lifted state, the two lifting blocks abut against the two sides of the spectrometer in the horizontal direction and suspend the spectrometer above the support plate, so that there is a vertical gap between the bottom of the spectrometer and the support plate.
[0006] In some embodiments of this application, the support plate is provided with two sets of mounting holes spaced apart along the horizontal direction, each set including at least one mounting hole penetrating the upper and lower sides of the support plate; the spectrometer debugging fixture further includes two sets of adjusting members spaced apart along the horizontal direction, each set including at least one adjusting member disposed on the support plate; the mounting hole sets, the adjusting member sets, and the lifting block are arranged in a one-to-one correspondence, and the mounting holes and adjusting members are arranged in a one-to-one correspondence, the adjusting members are movably inserted into the mounting holes, and their upper ends extend out of the mounting holes and connect to the lifting block.
[0007] In some embodiments of this application, the mounting hole has an internal thread; the adjusting member is a bolt assembly, including a screw and a nut, the screw having an external thread and being screwed to the nut and the mounting hole respectively, and the nut being located between the support plate and the lifting block;
[0008] The lifting block has a vertically extending positioning hole. The diameter of the positioning hole is greater than or equal to the diameter of the screw and less than the outer diameter of the nut. The lifting block is fitted onto the upper end of the screw through the positioning hole and abuts against the nut.
[0009] In some embodiments of this application, the support plate includes a first plate and a second plate connected to each other, the first plate and the second plate being arranged sequentially and vertically opposite each other, the first plate being supported on the rotating platform, and the bottom of the second plate being higher than the bottom of the rotating platform; the adjusting component is an electric cylinder, including a cylinder body and a piston rod that can move along the cylinder body axially, the cylinder body being located between the first plate and the second plate and supported on the second plate body, the piston rod passing through the mounting hole, and its upper end being connected to the lifting block.
[0010] In some embodiments of this application, the second plate includes two second sub-plates, which are spaced apart in the horizontal direction, and the rotary table is located between the two second sub-plates in the horizontal direction. The electric cylinders of the adjusting members of the two adjusting member groups are respectively supported on the two second sub-plates.
[0011] In some embodiments of this application, the horizontal direction includes a first horizontal direction and a second horizontal direction that are perpendicular to each other; the two lifting blocks, the two sets of mounting hole groups, and the two sets of adjusting member groups are all distributed at intervals along the first horizontal direction, each set of mounting hole groups includes at least two mounting holes distributed at intervals along the second horizontal direction, each set of adjusting member groups includes at least two adjusting members arranged at intervals along the second horizontal direction, and the lifting block is in the shape of a long strip plate and extends in the second horizontal direction.
[0012] On the other hand, this utility model provides a spectrometer module, which includes: a spectrometer and the spectrometer debugging fixture described in any of the above embodiments. The spectrometer includes a body, a base plate, and foot pads arranged sequentially from top to bottom. The body has a rectangular structure, with downwardly extending connecting parts at each of its four corners, and the body has a bottom opening. The base plate has four clearance openings, and the base plate is detachably connected to the body to close the openings. Each of the connecting parts passes through each of the clearance openings and is detachably connected to the foot pads. In the natural state, the support plate is used to support each of the foot pads. In the lifted state, the two lifting blocks abut against the two sides of the body in the horizontal direction.
[0013] In some embodiments of this application, the support plate is further provided with a first through hole and a second through hole that pass through vertically. The spectrometer debugging fixture also includes a first fastener and a second fastener. The first fastener passes through the first through hole and is locked to the base plate, and the second fastener passes through the second through hole and is locked to the foot pad.
[0014] As can be seen from the above technical solution, the embodiments of this utility model have at least the following advantages and positive effects:
[0015] In the spectrometer debugging fixture of this embodiment, two horizontally spaced lifting blocks switch between a natural state and a lifted state through a lifting motion. In the natural state, the two lifting blocks are at a lower height, and the support plate is in direct contact with the bottom of the spectrometer, providing stable and reliable support for the spectrometer to meet the stability requirements of routine detection work. During the switch from the natural state to the lifted state, the two lifting blocks rise and raise the two sides of the spectrometer, causing the entire spectrometer to be suspended in the air. At this time, the vertical gap formed between the bottom of the spectrometer and the support plate allows the operator to perform maintenance and repair work from the bottom, such as disassembling the base plate, without having to flip the spectrometer over, thus eliminating the need to readjust the internal optical components of the spectrometer, making the operation more time-saving and labor-saving. On the other hand, the rotary table provides basic support for the entire spectrometer debugging fixture. Its rotatable characteristics allow the support plate, lifting plate and spectrometer on it to rotate synchronously when rotated. This not only meets the needs of multi-angle debugging of the spectrometer during its routine testing work, but also reduces the movement of operators when performing maintenance and repair work from the bottom, such as disassembling the base plate. Attached Figure Description
[0016] The various objectives, features, and advantages of this invention will become more apparent from the following detailed description of preferred embodiments in conjunction with the accompanying drawings. The drawings are merely illustrative illustrations of the invention and are not necessarily drawn to scale. In the drawings, the same reference numerals always denote the same or similar parts. Wherein:
[0017] Figure 1 is a schematic diagram of the structure of a spectrometer debugging fixture according to an exemplary embodiment.
[0018] Figure 2 is a schematic diagram of the structure of a spectrometer debugging fixture according to another exemplary embodiment.
[0019] Figure 3 is a schematic diagram of the combination structure of Figure 1 and the spectrometer.
[0020] Figure 4 is a schematic diagram of the mating structure of Figure 3 in another state.
[0021] Figure 5 is a schematic diagram of the combination structure of Figure 2 and the spectrometer.
[0022] Figure 6 is a cross-sectional view of Figure 3.
[0023] Figure 7 is a cross-sectional view of Figure 4.
[0024] The annotations in the attached figures are explained as follows:
[0025] 1. Rotary table; 11. Turntable; 12. Rotating shaft; 13. Fixed plate;
[0026] 2. Support plate; 21. First plate; 22. Second plate; 221. Second sub-plate; 23. Mounting hole assembly; 231. Mounting hole;
[0027] 3. Lifting block; 31. Positioning hole;
[0028] 4. Adjusting assembly; 41. Adjusting component; 411. Screw; 412. Nut; 413. Cylinder body; 414. Piston rod;
[0029] 5. Spectrometer; 51. Body; 511. Connecting part; 512. Opening; 52. Base plate; 521. Clearance opening; 53. Foot pad;
[0030] D1, first horizontal direction; D2, second horizontal direction. Detailed Implementation
[0031] Although the present invention can be readily embodied in various forms, only some specific embodiments are shown in the accompanying drawings and will be described in detail in this specification. It is understood that this specification should be regarded as an exemplary illustration of the principles of the present invention and is not intended to limit the present invention to what is described herein.
[0032] Therefore, a feature pointed out in this specification is used to describe one feature of one embodiment of the present invention, and does not imply that every embodiment of the present invention must have the described feature. Furthermore, it should be noted that this specification describes many features. Although certain features may be combined to illustrate possible system designs, these features may also be used in other combinations not explicitly stated. Therefore, unless otherwise stated, the described combinations are not intended to be limiting.
[0033] In the embodiments shown in the accompanying drawings, the directional indications (such as up, down, left, right, front, and back) used to explain the structure and movement of the various elements of this invention are relative rather than absolute. These descriptions are appropriate when these elements are in the positions shown in the drawings. If the descriptions of the positions of these elements change, these directional indications also change accordingly.
[0034] Please refer to Figures 1 to 5. An embodiment of this utility model provides a spectrometer 5 debugging fixture, which mainly includes a rotary table 1, a support plate 2, and lifting blocks 3. The support plate 2 is supported on the rotary table 1. Two lifting blocks 3 are arranged at intervals along the horizontal direction, both located above the support plate 2 and connected to it vertically, allowing the spectrometer 5 debugging fixture to have a natural state and a lifted state. The height of the two lifting blocks 3 in the natural state is lower than their height in the lifted state. In the natural state, the support plate 2 supports the bottom of the spectrometer 5, and the two lifting blocks 3 abut against or are vertically spaced from the two sides of the spectrometer 5 in the horizontal direction. In the lifted state, the two lifting blocks 3 abut against the two sides of the spectrometer 5 in the horizontal direction, suspending the spectrometer 5 above the support plate 2, so that there is a vertical gap between the bottom of the spectrometer 5 and the support plate 2.
[0035] In the spectrometer 5 debugging fixture of this embodiment, two horizontally spaced lifting blocks 3 switch between a natural state and a lifted state through lifting and lowering movements. In the natural state, the two lifting blocks 3 are at a lower height, and the support plate 2 is in direct contact with the bottom of the spectrometer 5, providing stable and reliable support for the spectrometer 5 to meet the stability requirements of the spectrometer 5 during routine testing. During the switch from the natural state to the lifted state, the two lifting blocks 3 rise and raise the two sides of the spectrometer 5, causing the entire spectrometer 5 to be suspended in the air. At this time, the vertical gap formed between the bottom of the spectrometer 5 and the support plate 2 allows the operator to perform maintenance and repair work from the bottom, such as disassembling the base plate 52, without having to flip the spectrometer 5, thus eliminating the need to readjust the internal optical components of the spectrometer 5, making the operation more time-saving and labor-saving. On the other hand, the rotary table 1 is used to provide basic support for the entire spectrometer 5 debugging fixture, and its rotatable characteristics enable it to drive the support plate 2, the lifting plate and the spectrometer 5 to rotate synchronously when it is rotated. This can not only meet the needs of multi-angle debugging of the spectrometer 5 when it is performing its routine testing work, but also reduce the movement of operators when performing maintenance and repair work from the bottom, such as disassembling the base plate 52.
[0036] In one embodiment where both lifting blocks 3 are located above the support plate 2 and are vertically connected to it, the support plate 2 has two horizontally spaced mounting hole groups 23, each including at least one mounting hole 231 penetrating the upper and lower sides of the support plate 2. The spectrometer 5 debugging fixture also includes horizontally spaced adjusting member groups 4, each including at least one adjusting member 41 on the support plate 2. The mounting hole groups 23, adjusting member groups 4, and lifting blocks 3 are arranged in a one-to-one correspondence, with each mounting hole 231 corresponding to an adjusting member 41. The adjusting member 41 is vertically movable and passes through the mounting hole 231, with its upper end extending out of the mounting hole 231 and connecting to the lifting block 3. Through the coordinated operation of the mounting holes 231, adjusting members 41, and lifting blocks 3, the lifting block 3 can be raised and lowered above the support plate 2, and the mounting holes 231 guide the vertical movement of the adjusting member 41, thereby improving the stability of the lifting block 3 during the raising and lowering process.
[0037] Please refer to Figures 1, 3, 4, 6, and 7. In one embodiment, the adjusting member 41 is movably inserted into the mounting hole 231, with its upper end extending out of the mounting hole 231 and connected to the lifting block 3. The mounting hole 231 has internal threads. The adjusting member 41 is a bolt assembly, including a screw 411 and a nut 412. The screw 411 has external threads and is screwed to both the nut 412 and the mounting hole 231. The nut 412 is located between the support plate 2 and the lifting block 3. A vertically extending positioning hole 31 is provided on the lifting block 3. The diameter of the positioning hole 31 is greater than or equal to the diameter of the screw 411 and smaller than the outer diameter of the nut 412. The lifting block 3 is fitted onto the upper end of the screw 411 through the positioning hole 31 and abuts against the nut 412.
[0038] Since the diameter of the positioning hole 31 is greater than or equal to the diameter of the screw 411, but less than the outer diameter of the nut 412, when the screw 411 is rotated relative to the mounting hole 231, the screw 411 can rise or fall relative to the support plate 2, driving the lifting block 3 to rise and fall synchronously, and the lifting block 3 and the screw 411 do not rotate synchronously. When the screw 411 stops rotating, the screw 411 locks relative to the support plate 2, and keeps the lifting block 3 at its height position. The lifting of the lifting block 3 and its holding at its height position can be achieved by rotating the screw 411, which has the advantages of low operating cost and high reliability.
[0039] It should be noted that in this embodiment, the screw 411 can be rotated relative to the mounting hole 231 until its lower end is flush with the bottom surface of the rotating table 1, so that it can be supported against the ground or table surface in its natural state, thus preventing the spectrometer 5 on the support plate 2 from rotating and shifting during its routine detection work.
[0040] It should be noted that Figures 3 and 6 show the cooperation between the spectrometer debugging fixture and the spectrometer 5 in the natural state, while Figures 4 and 7 show the cooperation between the spectrometer debugging fixture and the spectrometer 5 in the lifting state.
[0041] Referring to Figures 2 and 5, in another embodiment where the adjusting member 41 is movably inserted into the mounting hole 231, with its upper end extending out of the mounting hole 231 and connected to the lifting block 3, the support plate 2 includes a first plate 21 and a second plate 22 connected to each other. The first plate 21 and the second plate 22 are arranged vertically opposite each other. The first plate 21 is supported on the rotary table 1, and the bottom of the second plate 22 is higher than the bottom of the rotary table 1. The adjusting member 41 is an electric cylinder, including a cylinder body 413 and a piston rod 414 that can move axially along the cylinder body 413. The cylinder body 413 is located between the first plate 21 and the second plate 22 and is supported on the second plate 22. The piston rod 414 passes through the mounting hole 231, and its upper end is connected to the lifting block 3. The second plate 22 is used to ensure the stability of the overall position of the electric cylinder, thereby ensuring that the electric cylinder can stably and reliably drive the lifting block 3 to rise and fall. The electric cylinder is used to realize automated control, which can improve the consistency and smoothness of the lifting amplitude, and improve the control precision and accuracy of the lifting block 3.
[0042] It should be noted that the adjusting component 41 can be a driving component such as an electric cylinder, a pneumatic cylinder, or a hydraulic cylinder. In this embodiment, the adjusting component 41 is an electric cylinder.
[0043] In a further embodiment, the second plate 22 includes two second sub-plates 221, which are spaced apart in the horizontal direction. The rotary table 1 is located between the two second sub-plates 221 in the horizontal direction. The electric cylinders of the adjusting members 41 of the two adjusting member groups 4 are respectively supported on the two second sub-plates 221 to optimize the layout and save the material cost of the second plate 22.
[0044] In other embodiments, the second plate 22 has an annular structure, and the rotating platform 1 is located within the annular opening 512.
[0045] Please refer to Figures 1 and 2. In a specific embodiment, the horizontal direction includes a first horizontal direction D1 and a second horizontal direction D2 that are perpendicular to each other. The two lifting blocks 3, the two sets of mounting holes 23, and the two sets of adjusting members 4 are all distributed at intervals along the first horizontal direction D1. Each set of mounting holes 23 includes at least two mounting holes 231 distributed at intervals along the second horizontal direction D2. Each set of adjusting members 4 includes at least two adjusting members 41 arranged at intervals along the second horizontal direction D2. The lifting blocks 3 are elongated and extend along the second horizontal direction D2 to avoid instability caused by stress concentration when connected at a single point. Furthermore, the elongated lifting blocks 3 can have a larger contact area with the side of the spectrometer 5, thereby enhancing the overall stability and reliability.
[0046] In other embodiments, the lifting block 3 includes lifting sub-blocks, and the elongated lifting block 3 in the above embodiments can be replaced by at least two lifting sub-blocks arranged at intervals along the second horizontal direction D2.
[0047] It can be assumed that the positioning holes 31 of each lifting block 3, the mounting holes 231 of each set of mounting holes 231, and the adjusting parts 41 of each set of adjusting parts 4 are set one-to-one.
[0048] Please refer to Figures 3 to 7. Another embodiment of the spectrometer module provided by this utility model mainly includes a spectrometer 5 and the spectrometer 5 debugging fixture described in the above embodiments. The spectrometer 5 includes a body 51, a base plate 52, and foot pads 53 arranged sequentially from top to bottom. The body 51 has a rectangular structure, with downwardly extending connecting portions 511 at each of its four corners. The body 51 has a bottom opening 512. The base plate 52 has four clearance openings 521. The base plate 52 is detachably connected to the body 51 to close the openings 512, and each connecting portion 511 passes through each clearance opening 521 and is detachably connected to the foot pads 53. In its natural state, the support plate 2 supports each foot pad 53. In the lifted state, the two lifting blocks 3 abut against the two sides of the body 51 in the horizontal direction. The foot pads 53 provide anti-slip, wear-resistant, heat-insulating, and shock-resistant effects. The main body 51 and the base plate 52, as well as the main body 51 and the foot pads 53, are detachably connected, making it convenient for operators to maintain and repair the bottom of the spectrometer 5 while it is in a raised state.
[0049] In a specific embodiment, the support plate 2 is also provided with a first through hole and a second through hole that pass through vertically. The spectrometer 5 debugging fixture also includes a first fastener and a second fastener. The first fastener passes through the first through hole and is locked with the base plate 52, and the second fastener passes through the second through hole and is locked with the foot pad 53, thereby ensuring a stable connection between the spectrometer 5 and the support plate 2, avoiding deviation when the spectrometer 5 performs routine detection work, thereby improving the stability and accuracy of the detection.
[0050] In this embodiment, both the first and second fasteners are bolts. The base plate 52 also has a first screw hole aligned with the first through hole and a second screw hole aligned with the second through hole. The first fastener is screwed into the first screw hole, and the second fastener is connected to the second screw hole. This design offers the advantages of easy assembly and disassembly and reliable connection.
[0051] In the above embodiments, the rotary table 1 includes a turntable 11, a rotating shaft 12, and a fixed disk 13 arranged sequentially from top to bottom. The turntable 11 is rotatably connected to the rotating shaft 12, and the fixed disk 13 is fixedly connected to the rotating shaft 12. The turntable 11 has a first connecting hole arranged along its circumference, and the support plate 2 has a plurality of second connecting holes arranged in a ring at intervals. Each first connecting hole and each second connecting hole are aligned one-to-one, and the first connecting holes and the second connecting holes are connected by bolts, providing a specific and feasible implementation method for the rotary table 1 to stably drive the support plate 2 to rotate.
[0052] Although the present invention has been described with reference to several typical embodiments, it should be understood that the terminology used is descriptive and exemplary, and not restrictive. Since the present invention can be embodied in many forms without departing from the spirit or essence of the invention, it should be understood that the above embodiments are not limited to any of the foregoing details, but should be interpreted broadly within the spirit and scope defined by the appended claims. Therefore, all variations and modifications falling within the scope of the claims or their equivalents should be covered by the appended claims.
Claims
1. A spectrometer debugging fixture for supporting a spectrometer, characterized in that, include: Rotary table; A support plate is provided on the rotating platform; Two lifting blocks are arranged at horizontal intervals. Both lifting blocks are located above the support plate and are vertically connected to the support plate to allow the spectrometer debugging fixture to have a natural state and a lifted state. In the natural state, the height of the two lifting blocks is lower than their height in the lifted state. In the natural state, the support plate supports the bottom of the spectrometer, and the two lifting blocks abut against or are vertically spaced from the two sides of the spectrometer in the horizontal direction. In the lifted state, the two lifting blocks abut against the two sides of the spectrometer in the horizontal direction and suspend the spectrometer above the support plate, so that there is a vertical gap between the bottom of the spectrometer and the support plate.
2. The spectrometer debugging fixture according to claim 1, characterized in that, The support plate is provided with two sets of mounting holes spaced apart along the horizontal direction. Each set of mounting holes includes at least one mounting hole penetrating the upper and lower sides of the support plate. The spectrometer debugging fixture also includes two sets of adjusting components spaced apart along the horizontal direction. Each set of adjusting components includes at least one adjusting component disposed on the support plate. The mounting hole sets, the adjusting component sets, and the lifting block are arranged in a one-to-one correspondence, and the mounting holes and adjusting components are arranged in a one-to-one correspondence. The adjusting component is movably inserted into the mounting hole, and its upper end extends out of the mounting hole and connects to the lifting block.
3. The spectrometer debugging fixture according to claim 2, characterized in that, The mounting hole has an internal thread; the adjusting component is a bolt assembly, including a screw and a nut, the screw having an external thread and being screwed to the nut and the mounting hole respectively, and the nut being located between the support plate and the lifting block; the lifting block has a vertically extending positioning hole, the diameter of the positioning hole being greater than or equal to the diameter of the screw and less than the outer diameter of the nut, the lifting block being fitted onto the upper end of the screw through the positioning hole and abutting against the nut.
4. The spectrometer debugging fixture according to claim 2, characterized in that, The support plate includes a first plate and a second plate connected to each other. The first plate and the second plate are arranged vertically opposite each other. The first plate is supported on the rotating platform, and the bottom of the second plate is higher than the bottom of the rotating platform. The adjusting component is an electric cylinder, which includes a cylinder body and a piston rod that can move along the cylinder body axis. The cylinder body is located between the first plate and the second plate and is supported on the second plate. The piston rod passes through the mounting hole and its upper end is connected to the lifting block.
5. The spectrometer debugging fixture according to claim 4, characterized in that, The second plate includes two second sub-plates, which are spaced apart in the horizontal direction, and the rotary table is located between the two second sub-plates in the horizontal direction. The electric cylinders of the adjusting members of the two adjusting member groups are respectively supported on the two second sub-plates.
6. The spectrometer debugging fixture according to claim 2, characterized in that, The horizontal direction includes a first horizontal direction and a second horizontal direction that are perpendicular to each other; the two lifting blocks, the two sets of mounting hole groups, and the two sets of adjusting member groups are all distributed at intervals along the first horizontal direction, each set of mounting hole groups includes at least two mounting holes distributed at intervals along the second horizontal direction, each set of adjusting member groups includes at least two adjusting members arranged at intervals along the second horizontal direction, and the lifting block is in the shape of a long strip plate and extends in the second horizontal direction.
7. A spectrometer module, comprising a spectrometer and the spectrometer debugging fixture according to any one of claims 1-6, characterized in that, The spectrometer includes a main body, a base plate, and foot pads arranged sequentially from top to bottom. The main body has a rectangular structure with downwardly extending connecting parts at each of its four corners and a bottom opening. The base plate has four clearance openings, which are detachably connected to the main body to close the openings. Each connecting part passes through one of the clearance openings and is detachably connected to the foot pads. In its natural state, the support plate supports each of the foot pads. In its lifted state, two lifting blocks abut against the two sides of the main body in the horizontal direction.
8. The spectrometer module according to claim 7, characterized in that, The support plate is also provided with a first through hole and a second through hole that pass through the top and bottom. The spectrometer debugging fixture also includes a first fastener and a second fastener. The first fastener passes through the first through hole and is locked to the base plate. The second fastener passes through the second through hole and is locked to the foot pad.