Intelligent detection equipment for mask production and processing
By designing an intelligent testing device that separates the silicone body from the metal nose bridge strip, the flame retardant performance of masks can be tested independently. This solves the problem that existing devices cannot test the area of the metal nose bridge strip, and achieves a more accurate assessment of flame retardant performance.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-12-08
- Publication Date
- 2026-03-27
AI Technical Summary
Existing testing equipment cannot effectively test the flame retardant properties of the metal nose bridge strip area on masks, which has significant limitations.
An intelligent detection device was designed to simulate the wearing state of a human body by separating the silicone body from the metal nose bridge strip, and to independently detect the flame retardant performance of the mask. The device is precisely controlled and detected by components such as an electric push rod, a temperature sensor, and a flame nozzle.
This method enables the testing of the flame retardant properties of face masks under thermally conductive conditions with metal nose bridge strips, avoiding the influence of metal head molds on the test results and improving the accuracy and reliability of the test.
Smart Images

Figure CN121741101A_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The present application relates to the field of mask processing, especially to a mask production and processing intelligent detection equipment. BACKGROUND
[0002] The mask is generally composed of an outer layer of non-woven fabric and an inner layer of melt-blown fabric, and has ear bands and metal nose strips for fixing the mask to the face of the wearer. When testing the flame retardant performance of the mask with the existing detection equipment, the mask is usually first put on a metal head mold, and then the head mold with the mask is slowly passed through the flame. However, the metal nose strip on the mask is used to fit the nose bridge of the wearer to fix the mask, and the metal nose strip has heat conduction performance. Moreover, the metal nose strip is located in the interlayer of the mask, which makes the heat transferred to the inner layer of the mask through the metal nose strip when the flame burns the outer layer of the mask. As a result, more heat is gathered in the metal nose strip, and the flame retardant performance of the mask changes under the additional heat conduction of the metal nose strip. The existing detection equipment cannot detect the flame retardant performance of the area of the metal nose strip on the mask, which has great limitations. SUMMARY
[0003] In order to overcome the shortcomings of the existing detection equipment that cannot detect the flame retardant performance of the area of the metal nose strip on the mask, the present application provides a mask production and processing intelligent detection equipment.
[0004] The technical scheme of the present application is as follows: a mask production and processing intelligent detection equipment, comprising a box body, a box door, an exhaust port and a camera; the box body is rotatably connected with the box door; the box body is provided with an exhaust port; the box body is connected with a camera; further comprising an electric guide rail; the box body is fixedly connected with an electric guide rail; the electric guide rail is slidably connected with a moving block; the moving block is fixedly connected with a connecting frame, and the connecting frame is fixedly connected with the camera; the connecting frame is fixedly connected with a motor; the connecting frame is rotatably connected with a hollow head mold, and the head mold is fixedly connected with the output shaft of the motor, and a magnet is arranged in the head mold; an electric push rod I is fixedly connected in the head mold; a flexible end of the electric push rod I is fixedly connected with a silica gel body embedded on the outer surface of the head mold; the head mold is fixedly connected with an electric push plate; the box body is connected with a flame jet head; the head mold is connected with a connecting block.
[0005] As a further preferred scheme, further comprising a temperature sensor; a plurality of temperature sensors are fixedly connected to the head mold, and the temperature sensors are located on opposite sides of the silica gel body.
[0006] As a further preferred scheme, further comprising a gas pump; the head mold is provided with a plurality of circular holes, and the circular holes are located on opposite sides of the silica gel body; the head mold is fixedly connected with a gas pump, and the gas pump is located at the circular hole.
[0007] As a further preferred scheme, the electric push rod II is further included; the head mold is fixedly connected with the electric push rod II, and the telescopic end of the electric push rod II is fixedly connected with the connecting block.
[0008] As a further preferred scheme, the electric push rod III and the collecting bucket are further included; the box body is fixedly connected with the electric push rod III; the telescopic end of the electric push rod III is fixedly connected with the collecting bucket, and the collecting bucket is located directly below the head mold, and the shape of the inner side of the collecting bucket is consistent with the shape of the outer side of the head mold.
[0009] As a further preferred scheme, the box door is made of transparent high-temperature-resistant material.
[0010] As a further preferred scheme, the electric push rod IV, the connecting plate and the pull plate are further included; the connecting frame is fixedly connected with a plurality of electric push rods IV; the telescopic end of each electric push rod IV is fixedly connected with a connecting plate; each connecting plate is rotatably connected with a pull plate, and a torsional spring is arranged between the pull plate and the connecting plate; the connecting block is provided with a tension sensor.
[0011] As a further preferred scheme, the motor and the baffle are further included; each connecting plate is fixedly connected with a motor; each connecting plate is rotatably connected with a baffle, and the baffle is fixedly connected with the output shaft of the corresponding motor.
[0012] As a further preferred scheme, the cleaning plate is further included; each baffle is detachably connected with a cleaning plate, and the cleaning plate is made of fireproof material.
[0013] As a further preferred scheme, the electric rotating disc, the sliding rail and the electric sliding block are further included; the inner wall of the connecting block is provided with an electric roller; the silica gel body is provided with an electric suction cup; the box body is rotatably connected with an electric rotating disc; the electric rotating disc is slidably connected with a sliding rail; the sliding rail is slidably connected with an electric sliding block, and the electric sliding block is fixedly connected with the flame spraying head.
[0014] The present application has the following advantages: the silica gel body is lowered by controlling the electric push rod I, so that the silica gel body pushes the mask body downward, the ear band is in a stretched state, the silica gel body and the mask body are temporarily separated from the head mold made of metal material, the flame retardant performance of the mask body under the additional heat conduction condition of the metal nose strip is detected, and the problem that the mask body with the metal nose strip is directly sleeved on the outer surface of the metal head mold, so that the metal head mold affects the heat conduction condition of the metal nose strip is avoided.
[0015] When the mask body is excessively combusted and the fire has a trend of expansion, the collecting bucket is quickly raised by controlling the electric push rod III, so that the collecting bucket is sleeved on the lower surface of the head mold, and the mask body combusted is covered on the lower surface of the head mold for rapid fire extinguishing.
[0016] By controlling the electric push rod IV to drive the connecting plate and the pull plate to move downward, the pull plate is hooked to the mask body and then pulled downward, so that the ear band is stretched, the tensile property of the ear band is detected by the tension sensor in the connecting block, and whether the connection between the ear band and the mask body will be disconnected under the predetermined tension is detected. BRIEF DESCRIPTION OF DRAWINGS
[0017] Figure 1 The structure schematic view of the intelligent detection equipment for mask production and processing is disclosed. Figure 2 The internal structure schematic view of the box of the intelligent detection equipment for mask production and processing is disclosed. Figure 3 The combination local structure schematic view of the electric guide rail, the moving block, the connecting frame, the motor and the head mold of the intelligent detection equipment for mask production and processing is disclosed. Figure 4 The sectional view of the head mold of the intelligent detection equipment for mask production and processing is disclosed. Figure 5 The combination local structure schematic view of the connecting plate, the pull plate, the motor and the baffle of the intelligent detection equipment for mask production and processing is disclosed. Figure 6 The first use state diagram of the intelligent detection equipment for mask production and processing is disclosed. Figure 7 The second use state diagram of the intelligent detection equipment for mask production and processing is disclosed.
[0018] Wherein: 1-box, 2-box door, 3-exhaust port, 4-camera, 5-mask body, 101-electric guide rail, 102-moving block, 103-connecting frame, 104-motor, 105-head mold, 106-electric push rod I, 107-silica gel, 108-electric push plate, 109-flame head, 1010-temperature sensor, 1011-electric push rod II, 1012-connecting block, 1013-electric push rod III, 1014-collector, 201-electric push rod IV, 202-connecting plate, 203-pull plate, 204-motor, 205-baffle, 206-cleaning plate, 301-electric rotating disc, 302-slideway, 303-electric sliding block, 51-metal nose bridge, 52-ear band, 11-round hole, 12-air pump, 13-magnet. DETAILED DESCRIPTION
[0019] The present invention will be further described below with reference to specific embodiments. It should also be noted that, unless otherwise explicitly specified and limited, terms such as "set," "install," "connect," and "link" should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral connection; they can refer to a mechanical connection or an electrical connection; they can refer to a direct connection or an indirect connection through an intermediate medium; and they can refer to the internal connection of two components. Those skilled in the art can understand the specific meaning of the above terms in the present invention based on the specific circumstances.
[0020] Example 1: An intelligent testing device for mask production and processing, such as... Figures 1-7 As shown, it includes a box body 1, a box door 2, an exhaust port 3, and a camera 4; the box body 1 is rotatably connected to the box door 2; the box body 1 has an exhaust port 3; the box body 1 is connected to the camera 4; It also includes an electric guide rail 101, a moving block 102, a connecting frame 103, a motor 104, a head mold 105, an electric push rod I 106, a silicone body 107, an electric push plate 108, a flame head 109, and a connecting block 1012; the housing 1 is bolted to the electric guide rail 101; the electric guide rail 101 is slidably connected to the moving block 102; the moving block 102 is fixedly connected to the connecting frame 103, and the connecting frame 103 is fixedly connected to the camera 4; the connecting frame 103 is bolted to the motor 104; the connecting frame 103 rotates... A hollow head mold 105 is dynamically connected and fixedly connected to the output shaft of a motor 104. The head mold 105 is made of high-temperature resistant metal and contains a magnet 13. An electric push rod I 106 is fixedly connected inside the head mold 105. A silicone body 107 is fixedly connected to the telescopic end of the electric push rod I 106 and is embedded in the outer surface of the head mold 105. An electric push plate 108 is fixedly connected to the head mold 105. A flame head 109 is connected to the housing 1. A connecting block 1012 is connected to the head mold 105.
[0021] It also includes a temperature sensor 1010; a number of temperature sensors 1010 are fixedly attached to the head mold 105, and the temperature sensors 1010 are located on the opposite side of the silicone body 107.
[0022] It also includes an air pump 12; the head mold 105 has several round holes 11, and the round holes 11 are located on the opposite side of the silicone body 107; the head mold 105 is fixedly connected to the air pump 12, and the nozzle of the air pump 12 is located at the round holes 11.
[0023] It also includes an electric push rod II 1011; the head mold 105 is bolted to the electric push rod II 1011, and the telescopic end of the electric push rod II 1011 is fixedly connected to the connecting block 1012.
[0024] It also includes an electric push rod Ⅲ1013 and a collection hopper 1014; the box 1 is bolted to the electric push rod Ⅲ1013; the telescopic end of the electric push rod Ⅲ1013 is fixed to the collection hopper 1014, and the collection hopper 1014 is located directly below the head mold 105, and the inner shape of the collection hopper 1014 is consistent with the outer shape of the head mold 105.
[0025] The door 2 is made of transparent, high-temperature resistant material, which allows operators to observe the burning status of the mask body 5 inside the box 1 and make timely adjustments.
[0026] To face Figure 1 With the orientation as a reference, the initial silicone body 107 is located under the head mold 105. During use, the external pump is connected to the exhaust port 3. The operator opens the door 2 and places the mask body 5 to be tested onto the lower surface of the head mold 105. The metal nose bridge strip 51 is bent and attached to the outside of the silicone body 107. At this time, the metal nose bridge strip 51 is temporarily attracted and fixed to the surface of the head mold 105 under the magnetic attraction of the magnet 13. The two ear loops 52 are then hung on the corresponding connecting blocks 1012. Subsequently, the electric push plate 108 is controlled to pull the mask body 5 backward, unfolding the pleated areas on the mask body 5 to simulate the state when the mask is worn normally. Next, the electric push rod I 106 is controlled to move the silicone body 107 downward, causing the silicone body 107 to push the mask body 5 downward. The metal nose bridge strip 51 overcomes the magnetic attraction of the magnet 13 and separates from the head mold 105. The ear loops 52 are in a stretched state, temporarily connecting the silicone body 107 and the mask body 5 to the metal head mold. After the mold 105 is separated, the flame head 109 is ignited and positioned directly below the metal nose bridge strip 51 area of the mask body 5. Then, the electric guide rail 101 is controlled to move the moving block 102 to drive the connecting frame 103 and its connected parts to move slowly forward, so that the silicone body 107 and the metal nose bridge strip 51 area on the mask body 5 slowly pass over the flame of the flame head 109. The silicone body 107 simulates the state of a human wearing the mask body 5. The camera 4 observes the combustion state of the metal nose bridge strip 51 area on the mask body 5 to detect the flame retardant performance of the mask body 5 under the additional heat conduction of the metal nose bridge strip 51. Since the silicone body 107 and the mask body 5 have been separated from the metal head mold 105, the problem of directly putting the mask body 5 with the metal nose bridge strip 51 on the outer surface of the metal head mold 105, which would have affected the heat conduction of the metal nose bridge strip 51, is avoided.
[0027] Next, the electric push rod I 106 is controlled to move the silicone body 107 upward, so that the mask body 5, under the elastic force of the ear loops 52, re-fits onto the outer surface of the head mold 105. Then, the motor 104 is started, and the output shaft of the motor 104 drives the head mold 105 to rotate 180 degrees, so that the silicone body 107 faces upward and detaches from the mask body 5. At this time, the mask body 5 is in complete contact with the outer surface of the metal and high-temperature resistant head mold 105. Figure 6 As shown, next, the flame head 109 is ignited again and positioned directly below the mask body 5. Then, the electric guide rail 101 is controlled to move the moving block 102 to drive the connecting frame 103 and its connected parts to move slowly backward, so that the head mold 105 and the mask body 5 slowly pass over the flame of the flame head 109. The camera 4 observes the burning state of the mask body 5 and completes the flame retardant performance test of the mask body 5 under normal conditions. After the test is completed, the external pump is controlled to draw air into the box 1 through the exhaust port 3 to remove the smoke from the box 1. Then, the operator opens the box door 2.
[0028] Since the heat insulation performance of the mask body 5 directly affects the degree of burns when the wearer is accidentally exposed to a fire source, it is also necessary to test the heat insulation performance of the mask body 5. By setting a temperature sensor 1010 on the head mold 105, when the flame head 109 burns the outside of the mask body 5, the temperature sensor 1010 detects whether the temperature of the inside of the mask body 5 is within the range that the human body can tolerate, thereby detecting the heat insulation performance of the mask body 5.
[0029] When wearing the mask body 5, the wearer also breathes. Breathing allows outside air to flow through the mask body 5, and the airflow also affects the burning state of the mask body 5 by the flame of the burner head 109. Therefore, in order to more realistically simulate the flame retardant performance of the mask body 5 after the wearer wears the mask body 5 and comes into contact with the fire source after a fire, the air pump 12 is activated during the test. The air pump 12 reciprocates the air jet and air intake inside the head mold 105, so that the air repeatedly passes through the round hole 11 and the mask body 5, simulating the wearer's breathing situation, thereby testing the flame retardant performance of the mask body 5 under the breathing state.
[0030] Considering that different people have different head sizes, the ear loops 52 cannot firmly tighten the mask body 5. The tightness of the mask body 5 affects the stretching of the mask body 5 material. When the stretching of the mask body 5 is small, there will be more wrinkles on the mask body 5 that are not unfolded, which will result in different flame retardant properties of the mask body 5. Therefore, when conducting flame retardant tests on the mask body 5, the electric push rod II 1011 is controlled to drive the connecting block 1012 to pull the ear loops 52 to move vertically, so that the ear loops 52 apply different degrees of tension to the mask body 5, resulting in different stretching of the mask body 5, and thus testing the flame retardant performance of the mask body 5 under different stretching.
[0031] Considering that the mask body 5 will produce a large number of molten droplets that drip down onto the box 1 after it continues to burn due to insufficient flame retardant performance, and that the molten droplets are difficult to clean after solidification, a collection hopper 1014 is set below the head mold 105 to collect the molten droplets and debris generated by the combustion. When the mask body 5 is overburned and the fire tends to expand, the electric push rod Ⅲ 1013 is controlled to drive the collection hopper 1014 to move upward quickly, so that the collection hopper 1014 is placed on the lower surface of the head mold 105, thereby covering the burning mask body 5 on the lower surface of the head mold 105 for rapid fire extinguishing.
[0032] Example 2, based on Example 1, such as Figures 2-7 As shown, it also includes an electric push rod IV 201, a connecting plate 202, and a pull plate 203; the connecting frame 103 is bolted to two electric push rods IV 201; each electric push rod IV 201 has a connecting plate 202 fixedly connected to its telescopic end; each connecting plate 202 is rotatably connected to a pull plate 203, and a torsion spring is provided between the pull plate 203 and the connecting plate 202; a tension sensor is located inside the connecting block 1012.
[0033] It also includes a motor 204 and a baffle 205; each connecting plate 202 is bolted to a motor 204; each connecting plate 202 is rotatably connected to a baffle 205, and the baffle 205 is fixedly connected to the output shaft of the corresponding motor 204.
[0034] It also includes a cleaning plate 206; each baffle 205 is connected to a cleaning plate 206 by a snap fastener, and the cleaning plate 206 is made of fireproof material.
[0035] When testing the mask body 5, the tensile strength test of the ear loops 52 and the connection stability between the ear loops 52 and the mask body 5 are crucial. Therefore, after the ear loops 52 are fixed to the connecting block 1012, the electric push rod IV 201 is controlled to move the connecting plate 202 and the pull plate 203 upward. When the pull plate 203 moves upward against the outer side of the mask body 5 and is in the lower half of the head mold 105, the pull plate 203 is in a downward rotating state under the limit of the head mold 105, and the torsion spring is compressed. When the pull plate 203 moves upward beyond the upper half of the head mold 105, the pull plate 203 returns to a horizontal state under the elastic force of the torsion spring. At this time, the pull plate 203 hooks the upper side of the mask body 5, such as... Figure 5 As shown, next, the electric push rod IV201 is controlled to drive the connecting plate 202 and the pull plate 203 to move downward, so that the pull plate 203 hooks onto the mask body 5 and pulls downward, thereby stretching the ear loop 52. The tension sensor in the connecting block 1012 detects the tension on the ear loop 52 to detect the tensile performance of the ear loop 52, and whether the connection between the ear loop 52 and the mask body 5 will break under the predetermined tension.
[0036] Furthermore, during the flame retardant test on the outside of the mask body 5, the control motor 204 drives the baffle 205 to rotate downwards, thereby blocking the molten droplets splashing from the front and back sides of the mask body 5, thus preventing the molten droplets from splashing after continuous burning on the outside of the mask body 5.
[0037] Considering that after the mask body 5 is burned through due to substandard flame retardant performance, molten droplets will adhere to the head mold 105, which will be difficult to clean after solidification, making it inconvenient to test the next mask, in order to solve this problem, after the mask body 5 is tested, the operator opens the box door 2 to remove the mask body 5 from the head mold 105. Before putting another mask body 5 on the head mold 105, the motor 204 is controlled to drive the baffle 205 to rotate downwards until the cleaning plates 206 on the two baffles 205 contact the outer surface of the head mold 105. Then, the motor 104 is controlled to drive the head mold 105 to rotate, so that there is relative movement between the head mold 105 and the cleaning plate 206, thereby allowing the cleaning plate 206 to remove the molten droplets adhering to the surface of the head mold 105. The operator can then remove the cleaning plate 206 from the baffle 205 for quick replacement.
[0038] Example 3, based on Example 2, such as Figure 2 and Figure 7 As shown, it also includes an electric turntable 301, a slide rail 302, and an electric slider 303; an electric roller is provided on the inner wall of the connecting block 1012, and the lower side of the connecting block 1012 is inclined; an electric suction cup is provided inside the silicone body 107; the box 1 is rotatably connected to the electric turntable 301; the electric turntable 301 is slidably connected to the slide rail 302; the slide rail 302 is slidably connected to the electric slider 303, and the electric slider 303 is fixedly connected to the flame head 109.
[0039] Considering that the mask body 5 is composed of non-woven fabric and meltblown fabric from the outside to the inside, and since the flame retardant properties of different materials are different, it is necessary to test whether the flame retardant properties of the meltblown fabric on the inside of the mask body 5 meet the standards. At this time, firstly, control the motor 104 to drive the head mold 105 to rotate 180 degrees, so that the silicone body 107 faces downward and contacts the inside of the mask body 5. Then, control the electric push rod Ⅲ 1013 to drive the collection bucket 1014 to move downward. Next, control the electric suction cup in the silicone body 107 to adhere to the inside of the mask body 5. Subsequently, control the electric suction cup in the connecting block 1012 to adhere to the inside of the mask body 5. The roller rotates, causing the connecting block 1012 to rotate 180 degrees. After the inclined surface of the connecting block 1012 contacts the ear loop 52, the ear loop 52 slides off the inclined surface of the connecting block 1012 and separates. Then, the electric push rod IV 201 is controlled to move the connecting plate 202 and its components downwards. This causes the pull plate 203 to hook onto the front and back sides of the mask body 5, pulling the mask body 5 downwards into an inwardly unfolded, flipped-over state. Next, the electric turntable 301 is controlled to rotate its components until the flame head 109 is aligned with the inwardly unfolded side of the mask body 5. Figure 7 As shown, the flame head 109 is then ignited and moved to the right, allowing it to slowly pass over the top of the inside of the mask body 5, thereby detecting the flame retardant properties of the meltblown fabric inside the mask body 5.
[0040] When conducting a flame retardant test on the inside of the mask body 5, the control motor 204 drives the baffle 205 to rotate upward, thereby blocking the molten droplets splashing from the front and back of the mask body 5, and preventing the molten droplets from splashing after continuous burning on the inside of the mask body 5.
[0041] Furthermore, when the flame retardant performance of the inner side of the mask body 5 fails to meet the standard and continues to burn, the electric push rod IV 201 is controlled to drive the connecting plate 202 and its parts to move upward quickly. After the pull plate 203 hooks the front and back sides of the mask body 5, it pulls the mask body 5 upward, so that the mask body 5 returns to the state of being covered on the outer surface of the head mold 105. In this way, the burning inner side of the mask body 5 is quickly covered on the outer surface of the head mold 105 to extinguish the fire and prevent the fire from spreading rapidly.
[0042] The technical principles of the embodiments of the present invention have been described above with reference to specific examples. These descriptions are merely for explaining the principles of the embodiments of the present invention and should not be construed as limiting the scope of protection of the embodiments of the present invention in any way. Based on the explanation herein, those skilled in the art can conceive of other specific embodiments of the present invention without creative effort, and these embodiments will all fall within the scope of protection of the embodiments of the present invention.
Claims
1. An intelligent testing device for mask production and processing, comprising a housing (1), a door (2), an exhaust port (3), and a camera (4); the housing (1) is rotatably connected to the door (2); the housing (1) has an exhaust port (3); the housing (1) is connected to the camera (4); characterized in that: It also includes an electric guide rail (101); the housing (1) is fixedly connected to the electric guide rail (101); the electric guide rail (101) is slidably connected to a moving block (102); the moving block (102) is fixedly connected to a connecting frame (103), and the connecting frame (103) is fixedly connected to the camera (4); the connecting frame (103) is fixedly connected to a motor (104); the connecting frame (103) is rotatably connected to a hollow head mold (105), and the head mold (105) is connected to the electric guide rail (104). The output shaft of the machine (104) is fixedly connected, and a magnet (13) is provided inside the head mold (105); an electric push rod I (106) is fixedly connected inside the head mold (105); a silicone body (107) embedded in the outer surface of the head mold (105) is fixedly connected to the telescopic end of the electric push rod I (106); an electric push plate (108) is fixedly connected to the head mold (1); a flame head (109) is connected to the box (1); and a connecting block (1012) is connected to the head mold (105).
2. The intelligent testing equipment for mask production and processing according to claim 1, characterized in that: It also includes temperature sensors (1010); the head mold (105) is fixed with several temperature sensors (1010), and the temperature sensors (1010) are located on the opposite side of the silicone body (107).
3. The intelligent testing equipment for mask production and processing according to claim 1, characterized in that: It also includes an air pump (12); the head mold (105) has several round holes (11), and the round holes (11) are located on the opposite side of the silicone body (107); the head mold (105) is fixedly connected to the air pump (12), and the nozzle of the air pump (12) is located at the round hole (11).
4. The intelligent testing equipment for mask production and processing according to claim 1, characterized in that: It also includes an electric push rod II (1011); the head mold (105) is fixedly connected to the electric push rod II (1011), and the telescopic end of the electric push rod II (1011) is fixedly connected to the connecting block (1012).
5. The intelligent testing equipment for mask production and processing according to claim 1, characterized in that: It also includes an electric push rod III (1013) and a collection hopper (1014); the box (1) is fixedly connected to the electric push rod III (1013); the telescopic end of the electric push rod III (1013) is fixedly connected to the collection hopper (1014), and the collection hopper (1014) is located directly below the head mold (105), and the shape of the inner side of the collection hopper (1014) is consistent with the shape of the outer side of the head mold (105).
6. The intelligent testing equipment for mask production and processing according to claim 1, characterized in that: The door (2) is made of transparent, high-temperature resistant material.
7. The intelligent testing equipment for mask production and processing according to claim 4, characterized in that: It also includes an electric push rod IV (201), a connecting plate (202) and a pull plate (203); a number of electric push rods IV (201) are fixedly connected to the connecting frame (103); a connecting plate (202) is fixedly connected to the telescopic end of each electric push rod IV (201); a pull plate (203) is rotatably connected to each connecting plate (202), and a torsion spring is provided between the pull plate (203) and the connecting plate (202); a tension sensor is provided inside the connecting block (1012).
8. The intelligent testing equipment for mask production and processing according to claim 7, characterized in that: It also includes a motor (204) and a baffle (205); each connecting plate (202) is fixedly connected to a motor (204); each connecting plate (202) is rotatably connected to a baffle (205), and the baffle (205) is fixedly connected to the output shaft of the corresponding motor (204).
9. The intelligent testing equipment for mask production and processing according to claim 8, characterized in that: It also includes a cleaning plate (206); each baffle (205) is detachably connected to a cleaning plate (206), and the cleaning plate (206) is made of fire-resistant material.
10. The intelligent testing equipment for mask production and processing according to claim 1, characterized in that: It also includes an electric turntable (301), a slide rail (302) and an electric slider (303); an electric roller is provided on the inner wall of the connecting block (1012); an electric suction cup is provided inside the silicone body (107); the box (1) is rotatably connected to the electric turntable (301); the electric turntable (301) is slidably connected to the slide rail (302); the slide rail (302) is slidably connected to the electric slider (303), and the electric slider (303) is fixedly connected to the flame head (109).