High-precision handheld laser methane gas remote sensing instrument
Through the design of the piston adsorption mechanism and the electromagnet locking, combined with the articulation structure and the angle fixing component, the problem of degradation of measurement accuracy caused by jitter of the handheld methane laser telemeter is solved, and high-precision measurement attitude stability is achieved.
Patent Information
- Application Number
- CN202510974719.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-07-15
- Publication Date
- 2025-08-15
- Estimated Expiration
- 2045-07-15
AI Technical Summary
The existing handheld methane laser telemeter is prone to deviating the optical path due to jitter during handheld operation, which affects the measurement accuracy.
The design is adopted for combining the piston adsorption mechanism with the electromagnet lock. Through the hinged structure of the handle and the case, the electromagnet is used to adsorb and fix the handle, and combine the angle fixing assembly and the sprocket chain transmission assembly to achieve stability of handheld operation.
Effectively eliminates mechanical vibration during handheld operation, ensures stable measurement attitude and improves measurement accuracy.
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Figure CN120489958A_ABST
Abstract
Description
Technical Field
[0001] The invention belongs to the technical field of methane gas detection, and in particular relates to a high-precision handheld laser methane gas remote detector. Background Art
[0002] Methane is a key component of city gas, and real-time monitoring of its concentration is crucial for ensuring its safe use. In recent years, laser absorption spectroscopy has become a key tool for measuring gas concentrations. Compared to traditional patrol inspections, this technology can shorten detection time, enhance sensitivity, and improve accuracy. Handheld laser methane remote sensors offer the advantages of high sensitivity and fast response, while saving space and being portable.
[0003] In the prior art, the utility model with announcement number CN213275344U discloses a handheld methane laser telemeter, which includes a gun body, a handle, a laser lens, a lens protection cover, an aiming device, a measuring trigger switch, a button platform, and a touch display screen. The touch display screen is arranged on the top surface of the rear end of the gun body, the button platform is arranged on the rear end side of the gun body, the handle is arranged on the rear end bottom side of the gun body, the laser lens is arranged on the front side of the front end of the gun body, the lens protection cover is sleeved on the front side of the laser lens, the aiming device is arranged on the top surface of the front end of the gun body, and the measuring trigger switch is arranged on the top front side of the handle.
[0004] In field applications, the above-mentioned handheld methane laser telemeter has the disadvantage that the operator has to operate it by hand. Due to factors such as weight and operating habits, the user is prone to hand shaking, which causes the gun body to shake. During the laser detection process, shaking occurs, causing the optical path to shift, affecting the measurement accuracy. Summary of the Invention
[0005] The purpose of the present invention is to provide a high-precision handheld laser methane gas remote detector to solve the problems existing in the prior art.
[0006] The present invention provides the following technical solution: a high-precision handheld laser methane gas remote detector, comprising a remote detector body and a handle; the housing of the remote detector body is hinged to the handle, and an angle fixing component is provided at the hinge position; A piston chamber is constructed in the handle, and the suction port of the piston chamber is located at the bottom end of the handle. A sealing gasket is provided on the edge of the suction port. A piston is assembled in the piston chamber, and the piston is connected to the lifting mechanism in the handle. The lifting mechanism drives the piston to move so that the handle can be adsorbed on the surface of the component through the suction port.
[0007] Furthermore, the lifting mechanism includes a lifting frame, a guide frame and a sprocket chain transmission assembly; there are more than two lifting frames, which are distributed on the top of the piston, and the guide frames correspond to the lifting frames one by one, and the guide frames are slidably assembled in the sockets of the lifting frames; the upper ends of the guide frames are fixed to the casing; one of the lifting frames is equipped with a rack three, and the sprocket chain transmission assembly is engaged with the rack three through the driving gear.
[0008] Furthermore, a supporting top plate and electromagnet 2 are fixed in the casing. Electromagnet 2 is located below the supporting top plate. The upper end of the guide frame passes through electromagnet 2 and is fixedly connected to the supporting top plate. Electromagnet 2 can absorb the top of the lifting frame after being energized.
[0009] Furthermore, the sprocket chain transmission assembly includes a driving sprocket, a driven sprocket, a chain and an operating wheel; the driven sprocket and the driving gear share a mounting shaft 2, the driving sprocket and the operating wheel share a mounting shaft 3, and the mounting shaft 2 and the mounting shaft 3 are installed on the handle; the driving sprocket and the driven sprocket are connected by a chain.
[0010] Furthermore, a single hinged ear is provided on the casing, and a double hinged ear is provided on the handle. The single hinged ear extends between the double hinged ears and is penetrated together by a mounting shaft 1; the mounting shaft 1 is fixedly connected to the single hinged ear and the casing; the mounting shaft 1 is rotatably matched with the double hinged ears.
[0011] Furthermore, both ends of the mounting shaft 1 protrude relative to the double hinged ears, and an electromagnet 1 is fixedly mounted on the protruding portion of the mounting shaft 1. The electromagnet 1 can adsorb and fix the double hinged ears after being energized.
[0012] Furthermore, the angle fixing assembly includes a fixed friction plate, a first dynamic friction plate, a dynamic push plate, a second dynamic friction plate and a bolt; a fixed friction plate is fixed to the top of each of the two ear plates of the double-hinged ear, the bolt is inserted into the casing from the outside, the bolt is screwed into the casing thread, and the end of the bolt entering the casing is connected to the first dynamic friction plate and the dynamic push plate, and the first dynamic friction plate and the dynamic push plate are circumferentially free and circumferentially fixed; The cantilever bracket on the dynamic push plate passes over the double hinged ears and is connected to the transmission plate. The transmission plate is confined between two guide baffles, and the guide baffles are fixed to the casing. A gear 1 is provided below the transmission plate between the two guide baffles, and the gear 1 is meshed with a rack 1 on the bottom surface of the transmission plate. A rack 2 is fixed on the second dynamic friction plate, and the gear 1 is also meshed with the rack 2. When the transmission plate moves, the gear 1 is rubbed through the rack 1, and the gear 1 pushes the second dynamic friction plate through the rack 2; the second dynamic friction plate is connected to the casing through a telescopic rod.
[0013] Furthermore, the laser lens of the telemeter body is located at the end of the casing away from the handle; the charging port, touch screen and operation panel of the telemeter body are exposed on the casing.
[0014] Furthermore, a sliding guide frame is fixedly installed on the top of the casing, a telephoto camera aiming device is slidably installed on the outside of the sliding guide frame, and a zoom lens aiming device is fixedly installed on the top of the telephoto camera aiming device.
[0015] Furthermore, heat dissipation mesh holes are opened on both sides of the casing, and sealing frames are slidably connected on both sides of the casing. A connecting frame is fixedly installed between the sealing frames on both sides, and a solenoid valve is fixedly installed at the bottom of the casing. An internal threaded pipe is installed on the valve port of the solenoid valve, and the internal threaded pipe is used to connect the cooling air path.
[0016] Compared with the prior art, the advantages of the present invention are: The present invention provides a high-precision handheld laser methane gas remote detector. The handle has a built-in piston adsorption mechanism that forms a vacuum fixation with the component surface, and the magnetic attraction locking of the lifting frame by the second electromagnet effectively eliminates mechanical vibration during handheld operation. The housing and the handle adopt an articulated design, combined with the linkage locking mechanism of the first electromagnet, the fixed friction plate and the dynamic friction plate, which can flexibly adjust the pitch angle of the fuselage and ensure the stability of the measurement posture through friction locking. The electromagnet adsorption is combined with the dynamic push plate structure to further fix the hinge angle and effectively suppress the shaking of the fuselage caused by hand shaking. The manual / semi-automatic operation mode of the sprocket chain transmission assembly and the lifting mechanism simplifies the adsorption and fixation process. BRIEF DESCRIPTION OF THE DRAWINGS
[0017] Figure 1 This is a schematic diagram of a high-precision handheld laser methane gas remote detector; Figure 2 for Figure 1 Enlarged view of point A in the middle; Figure 3 This is a schematic diagram of the telemeter fuselage; Figure 4 It is a schematic diagram of the hinge between the housing and the handle; Figure 5 for Figure 4 Enlarged view of point B in the middle; Figure 6 is a schematic diagram of an angle fixing component; Figure 7 for Figure 6 Enlarged view of point C in the middle; Figure 8 is a schematic diagram of the cantilever bracket; Figure 9 is a schematic diagram of electromagnet 1; Figure 10 is a schematic diagram of the lifting mechanism; Figure 11 is a schematic diagram of a sprocket and chain transmission assembly; Figure 12 is a schematic diagram of a lifting frame; Figure 13Schematic diagram of the drive gear.
[0018] In the figure: 1 - housing; 2 - laser lens; 3 - lens protection cover; 4 - charging port; 5 - sliding guide frame; 6 - telephoto camera aiming device; 7 - zoom lens aiming device; 8 - touch screen; 9 - operation panel; 10 - heat dissipation mesh; 11 - sealing frame; 12 - connecting frame 1; 13 - solenoid valve; 14 - internally threaded pipe; 15 - handle; 16 - double hinged ear; 17 - single hinged ear; 18 - mounting shaft 1; 19 - electromagnet 1; 20 - fixed friction plate; 21 - bolt; 22 - first dynamic friction plate; 23 - dynamic push plate; 24 - cantilever bracket; 25-transmission plate; 26-rack one; 27-gear one; 28-guide baffle; 29-rack two; 30-second dynamic friction plate; 31-telescopic rod; 32-movable chamber; 33-mounting ring; 34-rubber sleeve; 35-piston; 36-lifting frame; 37-rack three; 38-guide frame; 39-support top plate; 40-electromagnet two; 41-mounting shaft two; 42-driving gear; 43-driving sprocket; 44-chain; 45-mounting shaft three; 46-operating wheel; 47-jack; 48-reserved groove; 49-sealing gasket; 50-driven sprocket. DETAILED DESCRIPTION
[0019] In order to more clearly illustrate the embodiments of the present invention or the technical solutions in the prior art, the following briefly introduces the drawings required for use in the embodiments or the description of the prior art. Obviously, the drawings described below are only some embodiments of the present invention. For ordinary technicians in this field, other drawings can be obtained based on these drawings without paying any creative work.
[0020] like Figure 1 、 Figure 10 As shown: A handheld laser methane gas remote detector, comprising a remote detector body and a handle 15; the housing 1 of the remote detector body is hinged to the handle 15, and an angle fixing component is provided at the hinge position; A piston chamber is constructed in the handle 15, and the suction port of the piston chamber is located at the bottom end of the handle 15. A sealing gasket 49 is provided at the edge of the suction port. A piston 35 is assembled in the piston chamber, and the piston 35 is connected to the lifting mechanism in the handle 15. The lifting mechanism drives the piston 35 to move, so that the handle 15 can be adsorbed on the surface of the component through the suction port.
[0021] like Figure 11 、 Figure 12 、 Figure 13As shown: the lifting mechanism includes a lifting frame 36, a guide frame 38 and a sprocket chain transmission assembly; there are more than two lifting frames 36, which are distributed on the top of the piston 35, and the guide frames 38 correspond to the lifting frames 36 one by one. The guide frames 38 are slidably assembled in the sockets 47 of the lifting frames 36; the upper ends of the guide frames 38 are fixed to the casing 1; a rack three 37 is installed on one of the lifting frames 36, and the sprocket chain transmission assembly is engaged with the rack three 37 through the drive gear 42.
[0022] Specifically, there are three lifting racks 36 , and the three lifting racks 36 cooperate with the guide rack 38 to slide and guide to restrict the piston 35 to move only up and down.
[0023] like Figure 10 As shown: a support top plate 39 and an electromagnet 2 40 are fixed in the casing 1, the electromagnet 2 40 is located below the support top plate 39, and the upper end of the guide frame 38 passes through the electromagnet 2 40 and is fixedly connected to the support top plate 39; the electromagnet 2 40 can absorb the top of the pulling frame 36 after being energized.
[0024] like Figure 11 、 Figure 13 As shown, the sprocket chain transmission assembly includes a driving sprocket 43, a driven sprocket 50, a chain 44, and an operating wheel 46. The driven sprocket 50 and the driving gear 42 share a mounting shaft 2 41, while the driving sprocket 43 and the operating wheel 46 share a mounting shaft 3 45. The mounting shaft 2 41 and the mounting shaft 3 45 are mounted on the handle 15. The driving sprocket 43 and the driven sprocket 50 are connected by the chain 44. The operating wheel 46 is placed in a reserved groove 48 of the support top plate 39 and the electromagnet 2 40. The operating wheel 46 is exposed from the window of the handle 15. When the operating wheel 46 is rotated, the driving sprocket 43, the driven sprocket 50, and the chain 44 drive the driving gear 42 to rotate, and the rack 3 37 engaged with the driving gear 42 moves up and down. The rack 3 37 drives the lifting frame 36 to move. When the lifting frame 36 moves upward, it drives the piston 35 upward. The handle 15 can be adsorbed on the surface of the component through the suction port, forming a temporary fixed fulcrum, which greatly reduces the shaking during hand-held operation.
[0025] like Figure 4 As shown: a single hinged ear 17 is provided on the housing 1, and a double hinged ear 16 is provided on the handle 15. The single hinged ear 17 extends between the double hinged ears 16 and is penetrated together by a mounting shaft 18; the mounting shaft 18 is fixedly connected to the single hinged ear 17 and the housing 1; the mounting shaft 18 is rotatably matched with the double hinged ears 16.
[0026] A rubber sleeve 34 is sleeved at the hinge position between the casing 1 and the handle 15, and a mounting ring 33 is fixedly sleeved on the top outer side of the handle 15. The bottom tube mouth of the rubber sleeve 34 is connected to the mounting ring 33, and the top tube mouth is connected to the casing 1; when the handle 15 rotates relative to the casing 1, the rubber sleeve 34 can be deformed to meet the movement requirements of the double hinged ears 16 and the single hinged ears 17. The setting of the rubber sleeve 34 can prevent the double hinged ears 16 and the single hinged ears 17 from causing damage to the hands of the staff.
[0027] like Figure 9 As shown: both ends of the mounting shaft 18 protrude relative to the double hinged ear 16, and an electromagnet 19 is fixedly installed on the protruding part of the mounting shaft 18. When the electromagnet 19 is powered off, there is no magnetic attraction. The electromagnet 19 rotates with the mounting shaft 18 and the single hinged ear 17. When the electromagnet 19 is energized, it can adsorb and fix the double hinged ear 16. The magnetic attraction between the electromagnet 19 and the double hinged ear 16 hinders the rotation of the single hinged ear 17, that is, the angle between the housing 1 and the handle 15 is fixed.
[0028] The magnetic locking structure between the electromagnet 19 and the double hinged ears 16 has low strength and is used to temporarily fix the angle between the housing 1 and the handle 15; when the angle between the housing 1 and the handle 15 needs to be fixed for a long time, an angle fixing component is used.
[0029] like Figure 6 、 Figure 7 、 Figure 8 As shown, the angle fixing assembly includes a fixed friction plate 20, a first dynamic friction plate 22, a dynamic push plate 23, a second dynamic friction plate 30, and a bolt 21. A fixed friction plate 20 is fixed to the top of each of the two ear plates of the double hinged ear 16. The bolt 21 penetrates into the housing 1 from the outside and is screwed into the housing 1. The end of the bolt 21 entering the housing 1 is connected to the first dynamic friction plate 22 and the dynamic push plate 23. The first dynamic friction plate 22 and the dynamic push plate 23 are circumferentially free and circumferentially fixed. The cantilever bracket 24 on the dynamic push plate 23 passes over the double hinge ears 16 and is connected to the transmission plate 25. The transmission plate 25 is confined between two guide baffles 28, and the guide baffles 28 are fixed to the housing 1. A gear 27 is provided below the transmission plate 25 between the two guide baffles 28. The gear 27 meshes with the rack 26 on the bottom surface of the transmission plate 25. A rack 29 is fixed to the second dynamic friction plate 30. The gear 27 also meshes with the rack 29. When the transmission plate 25 moves, the gear 27 is rubbed through the rack 26, and the gear 27 pushes the second dynamic friction plate 30 through the rack 29. The second dynamic friction plate 30 is connected to the housing 1 through a telescopic rod 31.
[0030] Rotating the bolt 21 causes the bolt 21 to move toward the fixed friction plate 20. The first dynamic friction plate connected by the rotation of one end of the bolt 21 squeezes the fixed friction plate 20 on the left, and the fixed friction plate 20 on the left is limited. At the same time, the dynamic push plate 23 pushes the cantilever bracket 24 to move in the direction away from the bolt 21, and the transmission plate 25 and the rack 1 26 on the transmission plate 25 move. The rack 1 26 drives the gear 1 27 to rotate, and the gear 1 27 drives the rack 2 29 to move. After the gear 1 27 changes the thrust direction, the rack 2 29 pushes the second dynamic friction plate 20. The rubbing plate 30 squeezes the fixed friction plate 20 on the right side, and the fixed friction plate 20 on the right side is limited. Therefore, it is only necessary to rotate the operating bolt 21 to limit the two fixed friction plates 20 at the same time, and the double hinge ears 16 fixedly connected to the fixed friction plates 20 are limited and cannot rotate, and the handle 15 cannot rotate. Similarly, by rotating the bolt 21 in the opposite direction, the first dynamic friction plate 22 and the second dynamic friction plate 30 can be simultaneously separated from the two fixed friction plates 20, the fixed friction plates 20 are no longer limited, and the handle 15 can rotate freely.
[0031] In summary, by operating the bolt 21, the working state of the angle fixing assembly can be changed, so that the limit imposed on the handle 15 is released and it can rotate, or the handle 15 is restricted and cannot rotate.
[0032] like Figure 4 、 Figure 5 As shown: two movable cavities 32 are opened at the bottom of the casing 1, the first dynamic friction plate 22 and the second dynamic friction plate 30 are respectively arranged inside the two movable cavities 32, and the cantilever bracket 24 is movable through the casing 1. The two ends of the cantilever bracket 24 are respectively arranged inside the two movable cavities 32. Under the limiting action of the cantilever bracket 24, the dynamic push plate 23 can only move horizontally and cannot rotate, and the first dynamic friction plate 22 and the second dynamic friction plate 30 are respectively arranged inside the two movable cavities 32, with sufficient space for movement.
[0033] like Figure 1 As shown: the laser lens 2 of the telemeter body is located at the end of the casing 1 away from the handle 15, and a lens protection cover 3 is provided on the outside of the laser lens 2. The lens protection cover 3 provides certain protection for the laser lens 2 when the laser lens 2 is not in use; the charging port 4, touch display screen 8 and operation panel 9 of the telemeter body are exposed on the casing 1.
[0034] like Figure 3As shown: a sliding guide frame 5 is fixedly installed on the top of the casing 1, a telephoto camera aiming device 6 is slidably installed on the outside of the sliding guide frame 5, and a zoom lens aiming device 7 is fixedly installed on the top of the telephoto camera aiming device 6; there is a large sliding resistance between the telephoto camera aiming device 6 and the sliding guide frame 5, and the telephoto camera aiming device 6 can only slide under the guidance of the sliding guide frame 5 after a certain force is applied to the telephoto camera aiming device 6, thereby adjusting the position of the zoom lens aiming device 7 fixedly installed on the top of the telephoto camera aiming device 6.
[0035] like Figure 1 、 Figure 2 As shown: heat dissipation mesh holes 10 are provided on both sides of the casing 1 for dissipating the heat generated by the components in the casing 1. Sealing frames 11 are slidably connected to both sides of the casing 1. There is a large sliding resistance between the sealing frame 11 and the casing 1. A certain thrust is applied to the sealing frame 11 so that the sealing frame 11 can move. The sealing frame 11 covers the heat dissipation mesh holes 10. When not in operation, dust is prevented from entering the heat dissipation mesh holes 10. A connecting frame 12 is fixedly installed between the sealing frames 11 on both sides, and the sealing frame 11 is synchronously pushed by the connecting frame 12. A solenoid valve 13 is fixedly installed at the bottom of the casing 1, and an internal threaded pipe 14 is installed on the valve port of the solenoid valve 13. The internal threaded pipe 14 is used to connect the cooling air path; the cooling air path blows air into the casing 1, and the gas is discharged from the heat dissipation mesh holes 10 provided on the outside of the casing 1. In extreme environments, the heat dissipation rate is increased.
[0036] The above description of the disclosed embodiments will enable one skilled in the art to implement or use the present invention. Various modifications to these embodiments will be readily apparent to one skilled in the art, and the general principles defined herein may be implemented in other embodiments without departing from the spirit or scope of the present invention. Therefore, the present invention is not limited to the embodiments shown herein, but is to be construed in the widest manner consistent with the principles and novel features disclosed herein.
Claims
1. A handheld laser methane gas remote detector, characterized by: It comprises a telemeter body and a handle (15); the housing (1) of the telemeter body is hinged to the handle (15), and an angle fixing component is provided at the hinge position; A piston cavity is constructed in the handle (15), and a suction port of the piston cavity is located at the bottom end of the handle (15). A sealing gasket (49) is provided at the edge of the suction port. A piston (35) is assembled in the piston cavity. The piston (35) is connected to a lifting mechanism in the handle (15). The lifting mechanism drives the piston (35) to move so that the handle (15) can be adsorbed on the surface of the component through the suction port.
2. A handheld laser methane gas remote detector according to claim 1, characterized in that: The lifting mechanism includes a lifting frame (36), a guide frame (38) and a sprocket chain transmission assembly; there are more than two lifting frames (36), the lifting frames (36) are distributed on the top of the piston (35), the guide frames (38) correspond to the lifting frames (36) one by one, and the guide frames (38) are slidably assembled in the sockets (47) of the lifting frames (36); the upper ends of the guide frames (38) are fixed to the casing (1); a rack three (37) is installed on one of the lifting frames (36), and the sprocket chain transmission assembly is engaged with the rack three (37) through the driving gear (42).
3. A handheld laser methane gas remote detector according to claim 2, characterized in that: A supporting top plate (39) and electromagnet 2 (40) are fixed in the casing (1). Electromagnet 2 (40) is located below the supporting top plate (39). The upper end of the guide frame (38) passes through electromagnet 2 (40) and is fixedly connected to the supporting top plate (39). Electromagnet 2 (40) can absorb the top of the lifting frame (36) after being energized.
4. A handheld laser methane gas remote detector according to claim 3, characterized in that: The sprocket chain transmission assembly includes a driving sprocket (43), a driven sprocket (50), a chain (44) and an operating wheel (46); the driven sprocket (50) and the driving gear (42) share a mounting shaft 2 (41), the driving sprocket (43) and the operating wheel (46) share a mounting shaft 3 (45), and the mounting shaft 2 (41) and the mounting shaft 3 (45) are mounted on the handle (15); the driving sprocket (43) and the driven sprocket (50) are connected by a chain (44).
5. A handheld laser methane gas remote detector according to claim 1 or 4, characterized in that: The housing (1) is provided with a single hinged ear (17), and the handle (15) is provided with a double hinged ear (16). The single hinged ear (17) extends between the double hinged ears (16) and is connected together by a mounting shaft (18); the mounting shaft (18) is fixedly connected to the single hinged ear (17) and the housing (1); and the mounting shaft (18) is rotatably matched with the double hinged ears (16).
6. The handheld laser methane gas remote detector according to claim 5, characterized in that: The two ends of the installation shaft 1 (18) protrude relative to the double hinged ears (16), and the protruding part of the installation shaft 1 (18) is fixedly mounted with an electromagnet 1 (19), which can adsorb and fix the double hinged ears (16) after being energized.
7. The handheld laser methane gas remote detector according to claim 5, characterized in that: The angle fixing assembly includes a fixed friction plate (20), a first dynamic friction plate (22), a dynamic push plate (23), a second dynamic friction plate (30) and a bolt (21); a fixed friction plate (20) is fixed to the top of each of the two ear plates of the double hinged ear (16); the bolt (21) penetrates into the casing (1) from the outside, the bolt (21) is screwed into the casing (1), and the end of the bolt (21) entering the casing (1) is connected to the first dynamic friction plate (22) and the dynamic push plate (23); the first dynamic friction plate (22) and the dynamic push plate (23) are circumferentially free and circumferentially fixed; The cantilever bracket (24) on the dynamic push plate (23) passes over the double hinged ears (16) and is connected to the transmission plate (25). The transmission plate (25) is limited between two guide baffles (28), and the guide baffles (28) are fixed on the housing (1); A gear 1 (27) is provided below the transmission plate (25) between the two guide baffles (28). The gear 1 (27) is meshed with a rack 1 (26) on the bottom surface of the transmission plate (25). A rack 2 (29) is fixed to the second dynamic friction plate (30). The gear 1 (27) is also meshed with the rack 2 (29). When the transmission plate (25) moves, the gear 1 (27) is rubbed through the rack 1 (26). The gear 1 (27) pushes the second dynamic friction plate (30) through the rack 2 (29); the second dynamic friction plate (30) is connected to the housing (1) through a telescopic rod (31).
8. The handheld laser methane gas remote detector according to claim 1, characterized in that: The laser lens (2) of the telemeter body is located at one end of the housing (1) away from the handle (15); the charging interface (4), touch screen (8) and operation panel (9) of the telemeter body are exposed outside the housing (1).
9. The handheld laser methane gas remote detector according to claim 8, characterized in that: A sliding guide frame (5) is fixedly mounted on the top of the housing (1), a telephoto camera aiming device (6) is slidably mounted on the outer side of the sliding guide frame (5), and a zoom lens aiming device (7) is fixedly mounted on the top of the telephoto camera aiming device (6).
10. The handheld laser methane gas remote detector according to claim 9, characterized in that: Both sides of the housing (1) are provided with heat dissipation mesh holes (10), both sides of the housing (1) are slidably connected with sealing frames (11), a connecting frame (12) is fixedly installed between the sealing frames (11) on both sides, a solenoid valve (13) is fixedly installed at the bottom of the housing (1), and an internal threaded pipe (14) is installed on the valve port of the solenoid valve (13), and the internal threaded pipe (14) is used to connect the cooling air path.
Citation Information
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