Cremation machine operating surface cooling device

By combining a refrigeration unit and a wiping mechanism on the operating surface of the cremator, and using a cold air blower and wind power to drive the wiper, the problem of poor performance of existing cooling devices is solved, achieving comprehensive cooling and cleaning, avoiding high-temperature burns, and possessing automated operation capabilities.

CN115681979BActive Publication Date: 2025-11-18江西仙廷精藏设备有限公司
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Patent Information

Application Number
CN202211196262.0
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2022-09-28
Publication Date
2025-11-18
Estimated Expiration
2042-09-28

AI Technical Summary

Technical Problem

Existing cooling devices cannot effectively reduce the temperature of the cremator's operating surface by simply spraying water, resulting in the harmful effects of radiant heat from the operating surface on human health.

Method used

A cooling device for the operating surface of a cremator was designed, which combines a refrigeration unit and a wiping mechanism. It achieves comprehensive cooling and cleaning through a cold air blower, and uses wind power to drive the wiper to wipe automatically. Combined with the wind direction and air volume adjustment mechanism, it realizes automated operation.

Benefits of technology

It achieves comprehensive cooling and cleaning of the cremator's operating surface, avoiding high-temperature burns, saving manpower, and allowing for adjustment of the size and direction of the cold air as needed.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present application relates to the technical field of cooling equipment, and more particularly to a cremator operation surface cooling device.The present application provides a comprehensive cremator operation surface cooling device.A cremator operation surface cooling device comprises a cremator, a refrigerator, a cold air passage pipe, an air outlet, an operation surface, a protective plate and a cover plate, etc.The cremator is provided with the refrigerator on the top front side, the refrigerator is connected with the cold air passage pipe on the front side, the cold air passage pipe is connected with the front part of the cremator, the air outlet is rotatably connected with the lower side of the front part of the cold air passage pipe, the operation surface is installed on the right side of the front part of the cremator, the protective plate is connected with the right side of the front part of the cremator, and the cover plate is connected with the right side of the front part of the cremator.The present application enables the cold air to blow to the operation surface through the air outlet by starting the refrigerator, and the wiper moves up and down to clean the operation surface, thereby achieving the cooling effect and comprehensive cooling.
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Description

Technical Field

[0001] This invention relates to the field of cooling equipment technology, and in particular to a cooling device for the operating surface of a cremator. Background Technology

[0002] Cremator is a device used to cremate remains. During operation, the external temperature of the cremator is high, which can easily cause the operating surface to become very hot. When people work on the operating surface, they are easily exposed to the radiant heat from the hot surface. To avoid this, people usually use a cooling device to cool the operating surface before working on it. However, existing cooling devices have the following problems: they cool the operating surface by spraying water, but since water easily vaporizes when it comes into contact with the high temperature of the cremator, simple water spraying is insufficient to cool the operating surface. Therefore, a new cooling device needs to be designed.

[0003] We designed a comprehensive cooling device for the operating surface of crematoriums to overcome the limitations of existing cooling devices that rely on simple water spraying for effective cooling. Summary of the Invention

[0004] To address the shortcomings of existing technologies, this invention provides a comprehensive cooling device for the operating surface of a cremator, overcoming the drawback of existing cooling devices that cannot achieve cooling through simple water spraying.

[0005] To achieve the above objectives, the present invention provides a cooling device for the operating surface of a cremator, comprising:

[0006] Cremation machine and refrigeration unit; the refrigeration unit is installed on the front of the top of the cremation machine.

[0007] A cold air passage pipe is connected to the front of the refrigeration unit, and the cold air passage pipe is connected to the front of the cremator.

[0008] The air outlet is rotatably connected to the lower front part of the air duct;

[0009] The operating panel is installed on the front right side of the cremator;

[0010] A protective plate is attached to the front right side of the cremator.

[0011] A cover plate is attached to the front right side of the cremator.

[0012] Liquid dispensing mechanism: A liquid dispensing mechanism is located on the front right side of the cremator, which is used to hold water.

[0013] A wiping mechanism is provided between the front right side of the cremator and the liquid dispensing mechanism. The wiping mechanism is used to wipe the operating surface.

[0014] As an improvement to the above solution, the liquid dispensing mechanism includes:

[0015] A liquid storage tank is connected to the front right side of the cremator for holding water.

[0016] A cover is placed on top of the liquid storage tank;

[0017] The opening and closing frame is slidably connected to the bottom of the liquid storage tank;

[0018] A first compression spring is connected between the opening / closing frame and the liquid storage tank.

[0019] As an improvement to the above solution, a protrusion is connected to the rear bottom of the opening and closing frame.

[0020] As an improvement to the above solution, the wiping mechanism includes:

[0021] A limiting frame is connected to the front right side of the cremator.

[0022] A rack and pinion rod is slidably connected to the upper side of the limiting frame;

[0023] A second compression spring is connected between the bottom of the rack and the bottom of the limiting frame;

[0024] The first rotating frame is rotatably connected to the front right side of the cremator.

[0025] A gear is connected to the front left side of the first rotating frame, and the gear meshes with the rack and pinion.

[0026] A sliding rail connects the front right side of the cremator to the bottom right side of the liquid storage tank.

[0027] A slider is slidably connected to the slide rail, and the slider is slidably connected to the first rotating frame;

[0028] Wiping device, the left side of the slider is connected to a wiping device for wiping the operating surface;

[0029] A wedge-shaped block is attached to the left side of the wiper.

[0030] As an improvement to the above solution, a wind-driven operating mechanism for automatically wiping the operating surface is also included. The wind-driven operating mechanism includes:

[0031] A rotating disc is rotatably connected to the lower front part of the air conditioning duct.

[0032] Triangular fan blades are connected to the rear of the rotating disk, and the triangular fan blades are rotatably connected to the air conditioning duct.

[0033] The drive is slidably connected to the front side of the rotating disk;

[0034] The rack has a fixed shaft connected to the left side.

[0035] As an improvement to the above solution, a limiting mechanism for adjusting the position of the drive is also included. The limiting mechanism includes:

[0036] The first locking pin is slidably connected to the upper part of the actuator;

[0037] The third compression spring is connected between the first locking pin and the drive unit. The third compression spring is wound around the first locking pin, and there are two slots on the front side of the upper part of the rotating disk.

[0038] As an improvement to the above solution, a wind direction adjustment mechanism for changing the angle of the cold air is also included. The wind direction adjustment mechanism includes:

[0039] Limit turntable, the left side of the air outlet is rotatably connected to the limit turntable;

[0040] An adjustable air outlet is connected to the top of the air outlet, and the upper right side of the limit turntable is connected to the adjustable air outlet.

[0041] The second locking pin is a sliding connection on the left side of the air outlet;

[0042] The fourth compression spring is connected between the second locking pin and the air outlet. The fourth compression spring is wound around the second locking pin.

[0043] As an improvement to the above solution, an air outlet size adjustment mechanism for changing the amount of cold air is also included. The air outlet size adjustment mechanism includes:

[0044] The second rotating frame is rotatably connected to the air vent, and the second rotating frame passes horizontally across the upper side of the air vent.

[0045] The regulator is a rotating connection on the right side of the air vent.

[0046] A connecting rod is rotatably connected to the lower side of the adjuster, and the connecting rod is rotatably connected to the second rotating frame.

[0047] A wind deflector is attached to the second rotating frame.

[0048] The advantages of this invention are: 1. This invention achieves a cooling effect by having people start the refrigeration unit, so that cold air is blown to the operating surface through the air outlet, and at the same time, the rack moves up and down to drive the wiper to cool and clean the operating surface, thereby achieving a cooling effect and a more comprehensive cooling effect;

[0049] 2. The triangular fan blades are rotated by cold air, which in turn causes the rotating disk and drive to rotate. The rotation of the drive causes the fixed shaft to move downward, which in turn moves the rack and pinion downward, thus achieving the effect of automatic wiping and saving manpower.

[0050] 3. By manually rotating the regulator, the connecting rod and the second rotating frame rotate, causing the wind deflector to rotate. When the wind deflector rotates to the appropriate position, people stop rotating the regulator, thus achieving the effect of adjusting the amount of cold air. Attached Figure Description

[0051] Figure 1 This is a schematic diagram of the first structure of the present invention.

[0052] Figure 2 This is a schematic diagram of the second three-dimensional structure of the present invention.

[0053] Figure 3 This is a schematic diagram of the first three-dimensional structure of the liquid dispensing mechanism of the present invention.

[0054] Figure 4 This is a schematic diagram of a second three-dimensional structure of the liquid dispensing mechanism of the present invention.

[0055] Figure 5 This is a schematic diagram of the first three-dimensional structure of the wiping mechanism of the present invention.

[0056] Figure 6 This is a schematic diagram of a second three-dimensional structure of the wiping mechanism of the present invention.

[0057] Figure 7 This is a schematic diagram of a third three-dimensional structure of the wiping mechanism of the present invention.

[0058] Figure 8 This is a schematic diagram of the first three-dimensional structure of the wind-driven operating mechanism of the present invention.

[0059] Figure 9 This is a schematic diagram of a second three-dimensional structure of the wind-driven operating mechanism of the present invention.

[0060] Figure 10 This is a three-dimensional structural diagram of the limiting mechanism of the present invention.

[0061] Figure 11 This is a three-dimensional structural diagram of the wind direction angle adjustment mechanism of the present invention.

[0062] Figure 12 This is a schematic diagram of the first three-dimensional structure of the air outlet size adjustment mechanism of the present invention.

[0063] Figure 13 This is a schematic diagram of a second three-dimensional structure of the air outlet size adjustment mechanism of the present invention.

[0064] The meanings of the reference numerals in the diagram are as follows: 1. Cremation machine; 2. Refrigeration unit; 3. Cold air duct pipe; 4. Air outlet; 5. Operating surface; 6. Protective plate; 7. Cover plate; 8. Liquid dispensing mechanism; 81. Liquid storage tank; 82. Cover; 83. Opening and closing frame; 84. First compression spring; 9. Wiping mechanism; 91. Limiting frame; 92. Rack and pinion; 93. Second compression spring; 94. Gear; 95. First rotating frame; 96. Slider; 97. Slide rail; 98. Wiper; 99. Wedge block; 10. Wind-driven mechanism. Operating mechanism, 101, rotating disk, 102, triangular fan blade, 103, drive unit, 104, fixed shaft, 11, limiting mechanism, 111, first locking pin, 112, third compression spring, 113, slot, 12, wind direction angle adjustment mechanism, 121, air outlet adjuster, 122, limiting turntable, 123, second locking pin, 124, fourth compression spring, 13, air outlet size adjustment mechanism, 131, adjuster, 132, connecting rod, 133, second rotating frame, 134, wind deflector. Detailed Implementation

[0065] The present invention will now be further described with reference to the accompanying drawings and specific embodiments:

[0066] Example 1

[0067] A cooling device for the operating surface of a cremator, now referenced. Figure 1 and Figure 2 The system includes a cremator 1, a refrigeration unit 2, a cold air duct 3, an air outlet 4, an operating surface 5, a protective plate 6, a cover plate 7, a liquid dispensing mechanism 8, and a wiping mechanism 9. The refrigeration unit 2 is installed on the top front side of the cremator 1. The front of the refrigeration unit 2 is connected to the cold air duct 3, which is connected to the front of the cremator 1. The air outlet 4 is rotatably connected to the lower front side of the cold air duct 3. The air outlet 4 is made of damping material. The operating surface 5 is installed on the front right side of the cremator 1. The protective plate 6 is welded to the front right side of the cremator 1 and is located below the operating surface 5. The cover plate 7 is welded to the front right side of the cremator 1 and is located to the left of the protective plate 6. The liquid dispensing mechanism 8 is provided on the front right side of the cremator 1. The wiping mechanism 9 is provided between the front right side of the cremator 1 and the liquid dispensing mechanism 8.

[0068] For reference Figures 1-4 The liquid dispensing mechanism 8 includes a liquid storage tank 81, a cover 82, an opening and closing frame 83, and a first compression spring 84. The liquid storage tank 81 is connected to the front right side of the cremator 1. The liquid storage tank 81 is located on the upper side of the operating surface 5. The cover 82 is placed on the top of the liquid storage tank 81. The opening and closing frame 83 is slidably connected to the bottom of the liquid storage tank 81. A protrusion is connected to the rear side of the bottom of the opening and closing frame 83. The first compression spring 84 is connected to the opening and closing frame 83 and the liquid storage tank 81 through a hook.

[0069] For reference Figure 1 , Figure 2, Figure 5 , Figure 6 and Figure 7 The wiping mechanism 9 includes a limiting frame 91, a rack 92, a second compression spring 93, a gear 94, a first rotating frame 95, a slider 96, a slide rail 97, a wiper 98, and a wedge block 99. The limiting frame 91 is welded to the right side of the front part of the cremator 1. The limiting frame 91 is located on the right side of the cold air passage pipe 3. The rack 92 is slidably connected to the upper side of the limiting frame 91. The second compression spring 93 is connected between the bottom of the rack 92 and the bottom of the limiting frame 91. The second compression spring 93 is located inside the limiting frame 91. The front right side of the cremator 1 is rotatably connected to a first rotating frame 95. The front left side of the first rotating frame 95 is connected to a gear 94, which meshes with a rack and pinion 92. A slide rail 97 is connected between the front right side of the cremator 1 and the bottom right side of the liquid storage tank 81. A slider 96 is slidably connected to the slide rail 97. The slider 96 is slidably connected to the first rotating frame 95. A wiper 98 is connected to the left side of the slider 96. A wedge block 99 is connected to the left side of the wiper 98. After the wedge block 99 moves, it contacts the opening and closing frame 83.

[0070] When it is necessary to cool the operating surface 5 of the cremator 1, this cremator operating surface cooling device can be used. First, the cover 82 is removed from the top of the liquid storage tank 81. After removal, an appropriate amount of water is injected into the liquid storage tank 81. Because the opening and closing frame 83 blocks the lower part of the liquid storage tank 81, the water will not flow out through the liquid storage tank 81. After injection, the cover 82 is placed on top of the liquid storage tank 81. When it is necessary to cool the front of the cremator 1 and the operating surface 5, the cooling unit 2 can be started. The cooling unit 2 cools the airflow, and then the cooling... Airflow flows through the cold air duct 3 into the air outlet 4, causing the air outlet 4 to blow out cold air. When it is necessary to change the direction of the cold air, the air outlet 4 can be manually rotated to change the direction of the cold air. When it is not necessary to change the direction of the cold air, the air outlet 4 can be stopped. When it is necessary to operate on the operating surface 5, the rack 92 can be manually moved downwards, causing the gear 94 and the first rotating frame 95 to rotate. The second compression spring 93 is compressed, causing the slider 96 and the wiper 98 to move upwards, thereby moving the wedge block. 99 moves upward, and the wiper 98 moves upward to wipe the dust on the operating surface 5. When the wedge block 99 moves upward and contacts the protrusion on the opening and closing frame 83, the wedge block 99 drives the opening and closing frame 83 and the protrusion to move forward. The first compression spring 84 is compressed, causing the opening and closing frame 83 to open the lower part of the liquid storage tank 81, so that water flows through the liquid storage tank 81 to the wiper 98 and the operating surface 5, making the wiper 98 wet. Then, the rack and pinion 92 is released, causing the second compression spring 93 to return to its original position and drive the rack and pinion 92 to move upward, thereby causing the gear 9... 4 and the first rotating frame 95 rotate in opposite directions, causing the slider 96 and the wiper 98 to move downwards, and then the wedge block 99 to move downwards. The wet wiper 98 wipes the operating surface 5, thereby achieving the effect of cooling and cleaning, making it convenient for people to operate on the operating surface 5 and avoiding burns to their hands due to high temperature. When the wedge block 99 moves downwards and away from the protrusion on the opening and closing frame 83, the first compression spring 84 resets, driving the opening and closing frame 83 and the protrusion to move backwards and reset, so that the opening and closing frame 83 blocks the lower part of the liquid storage tank 81, and then people can operate on the operating surface 5.

[0071] Example 2

[0072] Based on Example 1, now refer to Figure 2 , Figure 8 and Figure 9It also includes a wind-driven operating mechanism 10, which includes a rotating disk 101, a triangular fan blade 102, a drive unit 103, and a fixed shaft 104. The rotating disk 101 is rotatably connected to the lower front side of the air duct 3, and the triangular fan blade 102 is connected to the rear of the rotating disk 101. The triangular fan blade 102 is rotatably connected to the air duct 3. The drive unit 103 is slidably connected to the front side of the rotating disk 101. The fixed shaft 104 is welded to the left side of the rack 92. After the drive unit 103 rotates, it contacts the fixed shaft 104.

[0073] For reference Figure 2 and Figure 10 It also includes a limiting mechanism 11, which includes a first locking pin 111 and a third compression spring 112. The first locking pin 111 is slidably connected to the upper part of the drive 103. The third compression spring 112 is connected between the first locking pin 111 and the drive 103. The third compression spring 112 is wound around the first locking pin 111. Two slots 113 are opened on the front side of the upper part of the rotating disk 101. The first locking pin 111 contacts the right slot 113.

[0074] For reference Figure 2 and Figure 11 It also includes a wind direction angle adjustment mechanism 12, which includes an adjusting air outlet 121, a limiting turntable 122, a second locking pin 123, and a fourth compression spring 124. The left side of the air outlet 4 is rotatably connected to the limiting turntable 122, the top of the air outlet 4 is connected to the adjusting air outlet 121, the upper right side of the limiting turntable 122 is connected to the adjusting air outlet 121, the left side of the air outlet 4 is slidably connected to the second locking pin 123, the second locking pin 123 is in contact with the limiting turntable 122, and the fourth compression spring 124 is connected between the second locking pin 123 and the air outlet 4. The fourth compression spring 124 is wound around the second locking pin 123.

[0075] For reference Figure 2 , Figure 12 and Figure 13 It also includes an air outlet size adjustment mechanism 13, which includes an adjuster 131, a connecting rod 132, a second rotating frame 133, and a baffle plate 134. The second rotating frame 133 is rotatably connected to the air outlet 121. The second rotating frame 133 passes through the upper side of the air outlet 121. The adjuster 131 is rotatably connected to the right side of the air outlet 121. The connecting rod 132 is rotatably connected to the lower side of the adjuster 131. The connecting rod 132 is rotatably connected to the second rotating frame 133. A baffle plate 134 is welded onto the second rotating frame 133 and is located inside the air outlet 121.

[0076] When cold air passes through the air duct 3, the cold air drives the triangular fan blades 102 to rotate, which in turn causes the rotating disk 101 to rotate, causing the drive unit 103 to rotate. When the drive unit 103 rotates and contacts the fixed shaft 104, the drive unit 103 drives the fixed shaft 104 to move downward, causing the rack rod 92 to move downward, and the second compression spring 93 to be compressed, thereby achieving the effect of automatic wiping. When the drive unit 103 rotates away from the fixed shaft 104, the second compression spring 93 returns to its original position and drives the rack rod 92 to move upward, thereby causing the fixed shaft 104 to move upward.

[0077] Before operating on the operating surface 5, the user can manually move the first locking pin 111 upwards, thereby stretching the third compression spring 112. When the first locking pin 111 moves upwards away from the right-side slot 113, the user can manually move the actuator 103 to the left, causing the first locking pin 111 to move to the left. When the first locking pin 111 moves to the left and is above the right-side slot 113, the user releases the first locking pin 111, causing the third compression spring 112 to reset and move the first locking pin 111 downwards into the left-side slot 113, thus causing the first locking pin 111 to drive... The device 103 is locked onto the rotating disk 101, thereby achieving the adjustment effect. This prevents the drive device 103 from rotating and contacting the fixed shaft 104. Then, people can operate on the operating surface 5. When people need to automatically wipe the operating surface 5, they can move the first locking pin 111 upward according to the above steps. When the first locking pin 111 moves upward away from the left slot 113, people can move the drive device 103 to the right, causing the first locking pin 111 to move to the right. When the first locking pin 111 moves to the top of the right slot 113, people can release the first locking pin 111 according to the above steps.

[0078] When the angle of the cold air needs to be changed, the second locking pin 123 can be manually moved to the left, which stretches the fourth compression spring 124. Then, the limiting turntable 122 can be manually rotated, causing the air vent 121 to deform. When the air vent 121 is deformed to a certain angle, the second locking pin 123 can be released, causing the fourth compression spring 124 to return to its original position and move the second locking pin 123 to the right, locking the limiting turntable 122. When the air vent 121 needs to be deformed in the opposite direction, the second locking pin 123 can be moved to the left following the same steps. When the second locking pin 123 moves to the left away from the limiting turntable 122, the limiting turntable 122 can be manually rotated in the opposite direction, causing the air vent 121 to deform in the opposite direction. When the air vent 121 is deformed in the opposite direction to a certain angle, the second locking pin 123 can be released following the same steps, thus achieving the adjustment effect.

[0079] When people need to increase the airflow, they can manually rotate the regulator 131, which causes the connecting rod 132 to rotate, which in turn causes the second rotating frame 133 to rotate, and then the wind deflector 134 to rotate. When the wind deflector 134 rotates to a vertical position, people can stop rotating the regulator 131. When people need to decrease the airflow, they can manually rotate the regulator 131, which causes the connecting rod 132 to rotate, which in turn causes the second rotating frame 133 to rotate, and then the wind deflector 134 to rotate. When the wind deflector 134 rotates to a certain angle, people can stop rotating the regulator 131. This achieves the effect of adjusting the airflow.

[0080] For those skilled in the art, various other corresponding changes and modifications can be made based on the technical solutions and concepts described above, and all such changes and modifications should fall within the protection scope of the claims of this invention.

Claims

1. A cooling device for the operating surface of a cremator, characterized in that it comprises: Cremation machine (1) and refrigeration machine (2), with refrigeration machine (2) installed on the front side of the top of cremation machine (1); Cold air passage pipe (3), the front of the refrigeration unit (2) is connected to the cold air passage pipe (3), and the cold air passage pipe (3) is connected to the front of the cremator (1); The air outlet (4) is rotatably connected to the lower front of the cold air duct (3). Operating surface (5), the operating surface (5) is installed on the front right side of the cremator (1); Protective plate (6), the front right side of the cremator (1) is connected to the protective plate (6); Cover plate (7) is connected to the front right side of the cremator (1); Liquid dispensing mechanism (8): The liquid dispensing mechanism (8) is provided on the right side of the front part of the cremator (1). The liquid dispensing mechanism (8) is used to hold water. Wiping mechanism (9): A wiping mechanism (9) is provided between the front right side of the cremator (1) and the liquid dispensing mechanism (8). The wiping mechanism (9) is used to wipe the operating surface (5). The liquid dispensing mechanism (8) includes: A liquid storage tank (81) is connected to the right side of the front of the cremator (1) for holding water. A cover (82) is placed on top of the liquid storage tank (81); The opening and closing frame (83) is slidably connected to the bottom of the liquid storage tank (81); A first compression spring (84) is connected between the opening and closing frame (83) and the liquid storage tank (81). The wiping mechanism (9) includes: Limit frame (91), the front right side of the cremator (1) is connected to the limit frame (91); The rack (92) is slidably connected to the upper side of the limiting frame (91). The second compression spring (93) is connected between the bottom of the rack (92) and the bottom of the inner side of the limiting frame (91). The first rotating frame (95) is rotatably connected to the front right side of the cremator (1). Gear (94), the gear (94) is connected to the left side of the front part of the first rotating frame (95), and the gear (94) meshes with the rack rod (92); A slide rail (97) is connected between the front right side of the cremator (1) and the bottom right side of the liquid storage tank (81). The slider (96) is slidably connected to the slide rail (97), and the slider (96) is slidably connected to the first rotating frame (95). Wiper (98), the left side of the slider (96) is connected to a wiper (98) for wiping the operating surface (5); Wedge (99), the wiper (98) is connected to the left side of the wedge (99); The rack (92) moves downward, causing the gear (94) and the first rotating frame (95) to rotate. The second compression spring (93) is compressed, causing the slider (96) and the wiper (98) to move upward. Consequently, the wedge block (99) moves upward, and the wiper (98) moves upward to wipe the dust on the operating surface (5). When the wedge block (99) moves upward and contacts the protrusion on the opening and closing frame (83), the wedge block (99) drives the opening and closing frame (83) and the protrusion to move forward. The first compression spring (84) is compressed, causing the opening and closing frame (83) to open the lower part of the liquid storage tank (81), thereby allowing water to flow through the liquid storage tank (81) to the wiper (98) and the operating surface (5), making the wiper (98) wet. It also includes a wind-driven operating mechanism (10) for automatically wiping the operating surface (5), the wind-driven operating mechanism (10) including: Rotary disc (101) is rotatably connected to the lower front part of the cold air passage pipe (3). The triangular fan blade (102) is connected to the rear of the rotating disk (101), and the triangular fan blade (102) is rotatably connected to the cold air passage pipe (3); Drive (103), the drive (103) is slidably connected to the front side of the rotating disk (101). Fixed shaft (104), the left side of rack (92) is connected to fixed shaft (104); When cold air passes through the cold air duct (3), the cold air drives the triangular fan blades (102) to rotate, which in turn causes the rotating disk (101) to rotate, causing the drive (103) to rotate. When the drive (103) rotates and contacts the fixed shaft (104), the drive (103) drives the fixed shaft (104) to move downward, causing the rack (92) to move downward, and the second compression spring (93) to be compressed, thereby achieving the effect of automatic wiping. When the drive (103) rotates away from the fixed shaft (104), the second compression spring (93) resets and drives the rack (92) to move upward, thereby causing the fixed shaft (104) to move upward.

2. The cooling device for the operating surface of a cremator according to claim 1, characterized in that, The bottom rear side of the opening and closing frame (83) is connected to a protrusion.

3. A cooling device for the operating surface of a cremator according to claim 2, characterized in that, It also includes a limiting mechanism (11) for adjusting the position of the actuator (103), the limiting mechanism (11) including: The first locking pin (111) is slidably connected to the upper part of the actuator (103). The third compression spring (112) is connected between the first locking pin (111) and the drive (103). The third compression spring (112) is wrapped around the first locking pin (111). There are two slots (113) on the front side of the upper part of the rotating disk (101).

4. A cooling device for the operating surface of a cremator according to claim 3, characterized in that, It also includes a wind direction angle adjustment mechanism (12) for changing the angle of the cold air, the wind direction angle adjustment mechanism (12) including: The left side of the air outlet (4) is connected to the limit turntable (122) in a rotating manner. The top of the air outlet (4) is connected to the adjustable air outlet (121), and the upper right side of the limit turntable (122) is connected to the adjustable air outlet (121). The second locking pin (123) is slidably connected to the left side of the air outlet (4). The fourth compression spring (124) is connected between the second locking pin (123) and the air outlet (4), and the fourth compression spring (124) is wound around the second locking pin (123).

5. A cooling device for the operating surface of a cremator according to claim 4, characterized in that, It also includes an air outlet size adjustment mechanism (13) for changing the size of the cold air, the air outlet size adjustment mechanism (13) includes: The second rotating frame (133) is rotatably connected to the regulating air outlet (121), and the second rotating frame (133) passes through the upper side of the regulating air outlet (121); Regulator (131), the right side of the regulating vent (121) is rotatably connected to the regulator (131). The connecting rod (132) is rotatably connected to the lower side of the adjuster (131), and the connecting rod (132) is rotatably connected to the second rotating frame (133); A wind deflector (134) is attached to the second rotating frame (133).

Citation Information

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