Ozone accelerated aging test box for ceramic material

Through the cooperation of the fixed block and the mounting frame, the periodic flip of the ceramic material and the automatic decomposition of the catalytic decomposition agent are solved, and the problems of zero-contact ozone and emission pollution in the ozone accelerated aging test chamber of ceramic material are improved, and the accuracy of the test and environmental protection effect are improved.

CN120489919AInactive Publication Date: 2025-08-15SUZHOU LITAN NEW ENERGY DEVELOPMENT CO LTD
View PDF 0 Cites 0 Cited by

Patent Information

Application Number
CN202510654674.1
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-05-21
Publication Date
2025-08-15
Estimated Expiration
Not applicable · inactive patent

AI Technical Summary

Technical Problem

The existing ozone accelerated aging test chamber of ceramic materials has a zero-contact ozone area, which leads to inaccurate test results and lack of effective ozone decomposition treatment devices, resulting in ozone emission pollution.

Method used

By cooperating with the fixing block and the double-headed screw and slide rod on the mounting frame, periodic flip of the ceramic material is achieved, the zero-contact area of ozone on the contact surface is eliminated, and the ozone is automatically decomposed by catalytic decomposition agent after the test, improving the linkage and environmental protection effect of the device.

Benefits of technology

Eliminates the zero-contact area of ozone, improves the accuracy of test results, and reduces pollution by automatically decomposing ozone, achieving environmentally friendly ozone treatment.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN120489919A_ABST
    Figure CN120489919A_ABST
Patent Text Reader

Abstract

The invention provides an ozone accelerated aging test box for a ceramic material, and relates to the technical field of environmental simulation experiment equipment. A group of outer sealing plates are slidably mounted at the front end of the test box, a group of ozone generators are fixedly mounted at the top of the test box, a group of generating bins are fixed at the bottom end in the test box, an outer plate is fixed at the outer end of the top of a discharging barrel, the outer end of the discharging barrel is in meshing transmission connection with a rotating shaft, and a group of limiting plates are further fixedly mounted at the bottom of a catalytic decomposer tank; after the test, a driving motor drives a rotating shaft to rotate, when a push plate is not in contact with an outer sealing plate, a discharging barrel moves leftwards through meshing transmission, a limiting plate relieves limiting of a lower leakage plate, and a catalyst falls into a spreading box to decompose ozone, so that the linkage property and the environmental protection effect of the device are improved; the problems that most test boxes are lack of effective ozone decomposition treatment devices, ozone cannot be automatically decomposed in time after a test is finished, and the ozone emission problem is prominent are solved.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] The invention relates to the technical field of environmental simulation experimental equipment, in particular to an ozone accelerated aging test box for ceramic materials. Background Art

[0002] In the field of materials science and engineering, the performance stability and durability of materials play a vital role in their performance in various practical application scenarios; in particular, ceramic materials, as an important material widely used in many key industries such as electronics, machinery, chemicals, aerospace, etc., the long-term stability of their performance is directly related to the quality, reliability and service life of related products; and in the actual use of ceramic materials, they will inevitably be affected by various environmental factors, which will lead to a gradual decline in performance and aging; among them, ozone, as a common environmental factor, has a significant impact on the performance of ceramic materials; ozone has strong oxidizing properties and can react with the chemical composition on the surface of ceramic materials, destroying their microstructure, and thus affecting the mechanical properties, electrical properties, thermal properties, etc. of ceramic materials; in order to accurately evaluate the anti-aging performance of ceramic materials in an ozone environment, so as to take effective anti-aging measures and improve the service life of materials, an ozone accelerated aging test chamber for ceramic materials is required for performance testing.

[0003] As for the currently available ozone accelerated aging test chambers for ceramic materials, directly placing the ceramic material for the test can easily result in an ozone zero contact area being formed on the contact surface between the material and the fixture, resulting in this part of the material not being fully exposed to the ozone environment, making it impossible for the test results to fully and accurately reflect the aging of the material in the actual ozone environment, thereby affecting the test effect and the reliability of the material anti-aging performance evaluation. In addition, during the test, a certain amount of ozone will be generated in the test chamber. After the test, if this ozone is directly discharged into the environment, it will cause air pollution. Most existing test chambers lack effective ozone decomposition and treatment devices, and are unable to decompose and treat ozone in a timely and automatic manner after the test, resulting in prominent ozone emission problems. Summary of the Invention

[0004] An embodiment of the present invention relates to an ozone accelerated aging test chamber for ceramic materials, which cooperates with two sets of fixed blocks and double-headed screws and sliding rods on the mounting frame to rotate the double-headed screws to fix the two ends of the ceramic material to be tested, and then the connecting motor drives the mounting frame and the material to flip periodically, eliminating the zero-contact area of ozone on the contact surface to improve the test effect; after the test, the driving motor drives the rotating shaft to rotate, so that the moving block moves upward under the meshing transmission, and its push plate drives the outer sealing plate to move upward, which is convenient for taking materials, and the outer sealing plate automatically resets and seals under the action of the elastic part when the rotating shaft rotates; after the test, the driving motor drives the rotating shaft to rotate, and when the push plate does not contact the outer sealing plate, the discharge barrel moves left through the meshing transmission, the limit plate releases the limit on the lower leakage plate, and the catalyst falls to the material paving box to decompose the ozone, thereby improving the linkage and environmental protection effect of the device.

[0005] In a first aspect, the present invention provides an ozone accelerated aging test chamber for ceramic materials, comprising: a test chamber; A group of outer sealing plates are slidably installed at the front end of the test box, and a group of ozone generators are fixedly installed on the top of the test box. A group of generating chambers are fixed at the bottom end of the interior of the test box, and a group of material paving boxes are slidably installed on the generating chamber. A group of material guide platforms are fixed at the right end of the generating chamber. A group of driving motors are also fixed at the front end of the test box, and a group of rotating shafts are fixedly installed on the transmission shaft of the driving motor. A group of moving blocks are also slidably installed on the right end of the test box, and the moving blocks are meshed with the rotating shaft for transmission connection. A group of push plates are fixedly installed on the bottom of the moving block, and the push plates are placed at the bottom of the outer sealing plates. A group of connecting motors are fixedly installed on the side ends of the test box, and a group of mounting brackets are fixedly installed on the transmission shaft of the connecting motor, and two groups of fixed blocks are threadedly installed on the mounting bracket. A catalytic decomposition tank is also fixed at the right end of the test box, and a group of discharging barrels are slidably installed on the bottom of the catalytic decomposition tank. The top outer end of the discharging barrel is fixed with an outer plate, and the outer end of the discharging barrel is meshed with the rotating shaft for transmission connection, and a group of limit plates are also fixedly installed on the bottom of the catalytic decomposition tank.

[0006] In at least some embodiments, a group of fixing rods are fixedly installed on both sides of the front end of the test box, a connecting plate is fixedly installed on the inner end of the outer sealing plate, a sliding hole is opened on the connecting plate, and the sliding hole of the connecting plate at the inner end of the outer sealing plate is slidably installed on the fixing rods at the front end of the test box.

[0007] In at least some embodiments, a set of second racks is fixedly mounted on the right end of the moving block, a set of first gears is fixedly mounted on the rotating shaft, and the second racks on the right end of the moving block are meshed and transmission-connected with the first gears on the rotating shaft.

[0008] In at least some embodiments, the bottom of the catalytic decomposition tank is a discharge trough, a through slot is provided at a corresponding position of the discharge barrel, and a group of lower leakage plates are rotatably mounted on the bottom of the discharge barrel.

[0009] In at least some embodiments, a set of slide bars are fixedly mounted on the rear end of the mounting frame, a set of slide holes are opened on the rear end of the fixing block, and the slide holes at the rear ends of the two sets of fixing blocks are slidably mounted on both ends of the slide bars on the mounting frame.

[0010] In at least some embodiments, two sets of guide grooves are provided at the bottom of the catalytic decomposition tank, guide blocks are fixedly installed at the front and rear ends of the top of the discharge cylinder, and the guide blocks in the guide grooves at the top of the discharge cylinder are slidably installed on the guide grooves at the bottom of the catalytic decomposition tank.

[0011] In at least some embodiments, a group of connecting rods are fixedly installed on the right end of the test box, and a group of side panels are fixedly installed on the side ends of the moving block. Sliding holes are opened on the side panels, and the sliding holes of the side panels at the side ends of the moving block are slidably installed on the connecting rods at the right end of the test box.

[0012] In at least some embodiments, a group of elastic members are respectively sleeved and mounted on the fixing rods at the front end of the test box, and the bottom ends of the elastic members are respectively in contact with the top surfaces of the connecting plates on the outer sealing plate.

[0013] In at least some embodiments, a set of first racks is fixedly connected to the outer end of the discharge barrel, a set of second gears is fixedly mounted on the rotating shaft, and the first racks at the outer end of the discharge barrel are meshed and transmission-connected with the second gears on the rotating shaft.

[0014] In at least some embodiments, a set of double-headed screws are rotatably mounted on the front end of the mounting frame, a set of threaded holes are opened on the front end of the fixing block, and the threaded holes at the front ends of the two sets of fixing blocks are respectively threadedly mounted on the two ends of the double-headed screws on the mounting frame.

[0015] The present invention provides an ozone accelerated aging test chamber for ceramic materials, which has the following beneficial effects: In the present invention, the two sets of fixed blocks cooperate with the double-headed screws and sliding rods on the mounting frame, and the double-headed screws are rotated to fix the two ends of the ceramic material to be tested. The mounting frame and the material are then driven by the connecting motor to periodically flip, thereby eliminating the zero-contact area of ozone on the contact surface to improve the test effect; after the test, the driving motor drives the rotating shaft to rotate, so that the moving block moves upward under the meshing transmission, and its push plate drives the outer sealing plate to move upward, which is convenient for taking the material. When the rotating shaft rotates, the outer sealing plate automatically resets and seals under the action of the elastic part; after the test, the driving motor drives the rotating shaft to rotate. When the push plate does not contact the outer sealing plate, the discharge barrel moves left through the meshing transmission, the limit plate releases the limit on the lower leakage plate, and the catalyst falls to the material paving box to decompose ozone, thereby improving the linkage and environmental protection effect of the device.

[0016] In addition, the threaded holes at the front ends of the two sets of fixing blocks are respectively threadedly installed on the two ends of the double-headed screw on the mounting frame, and the sliding holes at the rear ends of the two sets of fixing blocks are slidably installed on the two ends of the slide rod on the mounting frame. The ceramic material to be tested is placed between the two sets of fixing blocks, and the double-headed screw is rotated so that the two sets of fixing blocks move inward at the same time to fix the two ends of the ceramic material to be tested. The mounting frame and the ceramic material to be tested are driven by the connecting motor to perform periodic flipping, thereby eliminating the zero-contact area of ozone on the contact surface caused by direct placement test, thereby improving the test effect of the device.

[0017] In addition, after the device test is completed, the sliding hole of the side plate of the moving block is slidably installed on the connecting rod at the right end of the test box, and the second rack at the right end of the moving block is meshed with the first gear on the rotating shaft for transmission connection, and the driving motor drives the rotating shaft to rotate to drive the moving block to move upward, and the push plate on the moving block is placed at the bottom of the outer sealing plate, and the sliding hole of the connecting plate at the inner end of the outer sealing plate is slidably installed on the fixed rod at the front end of the test box until the push plate moves to contact the outer sealing plate, driving the outer sealing plate to move upward so as to pick up the ceramic material to be tested on the mounting frame, and when the rotating shaft rotates and resets, under the action of the elastic part on the fixed rod, the outer sealing plate automatically moves down and resets the seal.

[0018] In addition, the ozone decomposition catalyst manganese dioxide is stored in the catalytic decomposition tank. At the initial position, the discharge barrel is placed directly below the catalytic decomposition tank, and the decomposition catalyst automatically falls into the discharge barrel. At this time, under the action of the limit plate at the bottom of the catalytic decomposition tank, the lower leakage plate at the bottom of the discharge barrel rotates to the horizontal to seal the decomposition catalyst in the discharge barrel. The guide block at the top of the discharge barrel is slidably installed on the guide groove at the bottom of the catalytic decomposition tank. When the device test is completed, the drive motor drives the shaft to rotate. When the push plate does not contact the outer sealing plate, the outer end of the discharge barrel is The first rack is meshed with the second gear on the rotating shaft to drive the discharge barrel to move to the left, the limit plate releases the limit on the lower leakage plate, the lower leakage plate rotates to vertical, and the decomposition catalyst in the discharge barrel falls to the material box of the generating bin through the material guide platform to automatically decompose the ozone in the test chamber, thereby improving the linkage of the device, reducing emission pollution, and improving the environmental protection effect of the device, avoiding the problem that the test chamber lacks an effective ozone decomposition treatment device, and cannot decompose and treat ozone in a timely and automatic manner after the test, resulting in prominent ozone emission problems. BRIEF DESCRIPTION OF THE DRAWINGS

[0019] In order to more clearly illustrate the technical solutions of the embodiments of the present invention, the drawings of the embodiments are briefly introduced below.

[0020] The drawings described below only relate to some embodiments of the present invention, but are not intended to limit the present invention.

[0021] In the attached figure: Figure 1It is a front axial schematic diagram of an ozone accelerated aging test chamber for ceramic materials of the present invention.

[0022] Figure 2 It is a rear axial schematic diagram of the ozone accelerated aging test chamber for ceramic materials of the present invention.

[0023] Figure 3 It is a schematic diagram of the interior of the ozone accelerated aging test chamber for ceramic materials of the present invention.

[0024] Figure 4 It is a schematic diagram of a mounting frame of an ozone accelerated aging test chamber for ceramic materials of the present invention.

[0025] Figure 5 The present invention is a schematic diagram of disassembling and assembling the outer sealing plate of the ozone accelerated aging test box for ceramic materials.

[0026] Figure 6 The diagram is a schematic diagram of the inner end of an outer sealing plate of an ozone accelerated aging test chamber for ceramic materials of the present invention.

[0027] Figure 7 The present invention is a schematic diagram of the installation of the rotating shaft of the ozone accelerated aging test box for ceramic materials.

[0028] Figure 8 The present invention is a schematic diagram of the interior of a catalytic decomposition tank of an ozone accelerated aging test chamber for ceramic materials.

[0029] Figure 9 The present invention is a schematic diagram of the installation of a catalytic decomposition agent tank of an ozone accelerated aging test box for ceramic materials.

[0030] Reference Signs List 1. Test chamber; 101. Outer sealing plate; 1011. Connecting plate; 102. Fixed rod; 1021. Elastic member; 103. Generator chamber; 1031. Material laying box; 1032. Material guide platform; 104. Connecting rod; 105. Drive motor; 106. Rotating shaft; 1061. First gear; 1062. Second gear; 2. Ozone generator; 3. Connecting motor; 301. Mounting bracket; 302. Fixed block; 303. Double-headed screw; 304. Sliding rod; 4. Catalytic decomposition tank; 401. Discharge chute; 402. Guide trough; 403. Limiting plate; 404. Discharge barrel; 4041. Guide block; 4042. Outer plate; 4043. First rack; 405. Lower drain plate; 5. Moving block; 501. Push plate; 502. Side plate; 503. Second rack. DETAILED DESCRIPTION

[0031] To make the purpose, technical solutions, and advantages of the embodiments of the present invention more clear, the technical solutions of the embodiments of the present invention will be clearly and completely described below in conjunction with the accompanying drawings of the embodiments of the present invention. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. Based on the described embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without creative work are within the scope of protection of the present invention.

[0032] Please refer to Figures 1 to 9 As shown: Example 1: The present invention provides an ozone accelerated aging test chamber for ceramic materials, comprising a test chamber 1; A group of outer sealing plates 101 are slidably installed at the front end of the test box 1, a group of ozone generators 2 are fixedly installed on the top of the test box 1, a group of generating chambers 103 are fixed at the bottom end of the test box 1, a group of material laying boxes 1031 are slidably installed on the generating chamber 103, a group of material guide tables 1032 are fixed at the right end of the generating chamber 103, a group of driving motors 105 are also fixed at the front end of the test box 1, a group of rotating shafts 106 are fixedly installed on the transmission shaft of the driving motor 105, a group of moving blocks 5 are also slidably installed at the right end of the test box 1, the moving blocks 5 are meshed with the rotating shaft 106 for transmission connection, and the bottom of the moving block 5 is fixedly installed with A group of push plates 501 are placed at the bottom of the outer sealing plate 101. A group of connecting motors 3 are fixedly installed on the side end of the test box 1, and a group of mounting brackets 301 are fixedly installed on the transmission shaft of the connecting motor 3. Two groups of fixing blocks 302 are threadedly installed on the mounting brackets 301. A catalytic decomposition tank 4 is also fixed at the right end of the test box 1. A group of discharge barrels 404 are slidably installed at the bottom of the catalytic decomposition tank 4. An outer plate 4042 is fixed to the top outer end of the discharge barrel 404. The outer end of the discharge barrel 404 is meshed and transmission-connected with the rotating shaft 106. A group of limit plates 403 are also fixedly installed at the bottom of the catalytic decomposition tank 4.

[0033] Among them, Figure 4As shown, a set of double-headed screws 303 are rotatably installed at the front end of the mounting frame 301, a set of threaded holes are opened at the front end of the fixing block 302, and the threaded holes at the front ends of the two sets of fixing blocks 302 are respectively threadedly installed at the two ends of the double-headed screws 303 on the mounting frame 301, and a set of sliding rods 304 are fixedly installed at the rear end of the mounting frame 301, a set of sliding holes are opened at the rear end of the fixing block 302, and the sliding holes at the rear ends of the two sets of fixing blocks 302 are slidably installed at the two ends of the sliding rods 304 on the mounting frame 301; specifically, the threaded holes at the front ends of the two sets of fixing blocks 302 are respectively threadedly installed At both ends of the double-headed screw 303 on the mounting frame 301, and the sliding holes at the rear ends of the two groups of fixed blocks 302 are slidably installed on the two ends of the slide rod 304 on the mounting frame 301, the ceramic material to be tested is placed between the two groups of fixed blocks 302, and the double-headed screw 303 is rotated so that the two groups of fixed blocks 302 move inward at the same time to fix the two ends of the ceramic material to be tested, and the mounting frame 301 and the ceramic material to be tested are driven by the connecting motor 3 to perform periodic flipping, thereby eliminating the zero-contact area of ozone on the contact surface caused by direct placement test, thereby improving the test effect of the device.

[0034] In the embodiment of the present invention, Among them, Figures 5 to 7As shown, a group of connecting rods 104 are fixedly installed on the right end of the test box 1, and a group of side plates 502 are fixedly installed on the side ends of the moving block 5. Slide holes are opened on the side plates 502, and the slide holes of the side plates 502 on the side ends of the moving block 5 are slidably installed on the connecting rod 104 on the right end of the test box 1. A group of second racks 503 are fixedly installed on the right end of the moving block 5, and a group of first gears 1061 are fixedly installed on the rotating shaft 106, and the second rack 503 on the right end of the moving block 5 is fixedly installed with the rotating shaft 1 06 is meshed with the first gear 1061 on the test box 1, and a group of fixed rods 102 are fixedly installed on both sides of the front end of the test box 1. The inner end of the outer sealing plate 101 is fixedly installed with a connecting plate 1011. A sliding hole is opened on the connecting plate 1011, and the sliding hole of the connecting plate 1011 at the inner end of the outer sealing plate 101 is slidably installed on the fixed rod 102 at the front end of the test box 1. A group of elastic members 1021 are respectively sleeved and installed on the fixed rod 102 at the front end of the test box 1, and the elastic members 10 The bottom ends of the two ends of the movable block 5 are respectively in contact with the top surfaces of the connecting plates 1011 on the outer sealing plate 101; specifically, when the device test is completed, the sliding hole of the side plate 502 of the side end of the movable block 5 is slidably mounted on the connecting rod 104 at the right end of the test box 1, and the second rack 503 at the right end of the movable block 5 is meshed with the first gear 1061 on the rotating shaft 106 for transmission connection, and the driving motor 105 drives the rotating shaft 106 to rotate, thereby driving the movable block 5 to move upward, and the push plate 501 on the movable block 5 is pushed upward. It is placed at the bottom of the outer sealing plate 101, and the sliding hole of the connecting plate 1011 at the inner end of the outer sealing plate 101 is slidably installed on the fixed rod 102 at the front end of the test box 1, until the push plate 501 moves to contact the outer sealing plate 101, driving the outer sealing plate 101 to move upward so as to take the ceramic material to be tested on the mounting frame 301, and when the rotating shaft 106 rotates and resets, under the action of the elastic member 1021 on the fixed rod 102, the outer sealing plate 101 automatically moves down and resets the seal.

[0035] Example 2: Based on Example 1, Figures 7 to 9As shown, the outer end of the discharge cylinder 404 is fixedly connected to a group of first racks 4043, and a group of second gears 1062 are fixedly installed on the rotating shaft 106, and the first racks 4043 at the outer end of the discharge cylinder 404 are meshed and connected with the second gears 1062 on the rotating shaft 106. The bottom of the catalytic decomposition tank 4 is provided with two groups of guide grooves 402, and the front and rear ends of the top of the discharge cylinder 404 are respectively fixedly installed with guide blocks 4041, and the guide groove guide blocks 4041 on the top of the discharge cylinder 404 are connected to the guide groove guide blocks 4041. The guide groove 402 at the bottom of the catalytic decomposition tank 4 is slidably mounted. The bottom of the catalytic decomposition tank 4 is a discharge groove 401. A through groove is provided at the corresponding position of the discharge cylinder 404. A set of lower leakage plates 405 are rotatably mounted at the bottom of the discharge cylinder 404. Specifically, the catalytic decomposition tank 4 contains manganese dioxide, an ozone decomposition catalyst. In the initial position, the discharge cylinder 404 is placed directly below the catalytic decomposition tank 4, and the decomposition catalyst automatically falls into the discharge cylinder 404. Under the action of the limit plate 403 at the bottom of the catalytic decomposition tank 4, the lower leakage plate 405 at the bottom of the discharge barrel 404 rotates to the horizontal to seal the decomposition catalyst in the discharge barrel 404, and the guide block 4041 at the top of the discharge barrel 404 is slidably installed on the guide groove 402 at the bottom of the catalytic decomposition tank 4. When the device test is completed, the driving motor 105 drives the rotating shaft 106 to rotate. When the push plate 501 does not contact the outer sealing plate 101, the first rack at the outer end of the discharge barrel 404 4043 is meshed with the second gear 1062 on the rotating shaft 106 for transmission connection to drive the discharge barrel 404 to move to the left, the limit plate 403 releases the limit on the lower leakage plate 405, the lower leakage plate 405 rotates to vertical, and the decomposition catalyst in the discharge barrel 404 falls to the material box 1031 of the generating bin 103 through the material guide platform 1032 to automatically decompose the ozone in the test chamber 1, thereby improving the linkage of the device, reducing emission pollution, and improving the environmental protection effect of the device.

[0036] Specific usage and function of this embodiment: In the present invention, the threaded holes at the front ends of the two groups of fixing blocks 302 are respectively threadedly installed on the two ends of the double-headed screw 303 on the mounting frame 301, and the sliding holes at the rear ends of the two groups of fixing blocks 302 are slidably installed on the two ends of the slide rod 304 on the mounting frame 301. The ceramic material to be tested is placed between the two groups of fixing blocks 302, and the double-headed screw 303 is rotated so that the two groups of fixing blocks 302 move inward at the same time to fix the two ends of the ceramic material to be tested. The mounting frame 301 and the ceramic material to be tested are driven to perform periodic flipping by connecting the motor 3 to eliminate the zero contact area of ozone on the contact surface caused by direct placement test, thereby improving the test performance of the device. After the test of the device is completed, the sliding hole of the side plate 502 at the side end of the moving block 5 is slidably installed on the connecting rod 104 at the right end of the test box 1, and the second rack 503 at the right end of the moving block 5 is meshed with the first gear 1061 on the rotating shaft 106 for transmission connection, and the driving motor 105 drives the rotating shaft 106 to rotate to drive the moving block 5 to move upward, and the push plate 501 on the moving block 5 is placed on the bottom of the outer sealing plate 101, and the sliding hole of the connecting plate 1011 at the inner end of the outer sealing plate 101 is slidably installed on the fixed rod 102 at the front end of the test box 1, until the push plate 501 moves to contact with the outer sealing plate 101, driving the outer sealing plate 101 to move upward, so as to adjust the position of the mounting frame 301. The ceramic material to be tested is taken out, and when the rotating shaft 106 rotates and resets, the outer sealing plate 101 automatically moves down and resets to seal under the action of the elastic member 1021 on the fixed rod 102; the catalytic decomposition agent tank 4 contains ozone decomposition catalyst manganese dioxide. In the initial position, the discharge barrel 404 is placed directly below the catalytic decomposition agent tank 4, and the decomposition catalyst automatically falls into the discharge barrel 404. At this time, under the action of the limiting plate 403 at the bottom of the catalytic decomposition agent tank 4, the lower leakage plate 405 at the bottom of the discharge barrel 404 rotates to the horizontal to seal the decomposition catalyst in the discharge barrel 404, and the guide block 4041 at the top of the discharge barrel 404 is slidably installed on the bottom of the catalytic decomposition agent tank 4 On the guide groove 402, when the device test is completed, the driving motor 105 drives the rotating shaft 106 to rotate. When the push plate 501 is not in contact with the outer sealing plate 101, the first rack 4043 at the outer end of the discharge barrel 404 is engaged with the second gear 1062 on the rotating shaft 106 for transmission connection to drive the discharge barrel 404 to move to the left, and the limit plate 403 releases the limit on the lower leakage plate 405. The lower leakage plate 405 rotates to vertical, and the decomposition catalyst in the discharge barrel 404 falls to the material box 1031 of the generating bin 103 through the guide platform 1032 to automatically decompose the ozone in the test box 1, thereby improving the linkage of the device, reducing emission pollution, and improving the environmental protection effect of the device.

Claims

1. An ozone accelerated aging test chamber for ceramic materials, characterized in that: Including test box (1); The front end of the test box (1) is slidably mounted with a set of outer sealing plates (101), the top of the test box (1) is fixedly mounted with a set of ozone generators (2), the bottom of the inner part of the test box (1) is fixed with a set of generating chambers (103), a set of material laying boxes (1031) are slidably mounted on the generating chambers (103), a set of material guide tables (1032) are fixed on the right end of the generating chambers (103), a set of driving motors (105) are also fixed on the front end of the test box (1), a set of rotating shafts (106) are fixedly mounted on the transmission shaft of the driving motors (105), a set of moving blocks (5) are also slidably mounted on the right end of the test box (1), the moving blocks (5) are meshed and transmission-connected with the rotating shafts (106), and the bottom of the moving blocks (5) is fixedly mounted. There is a set of push plates (501), and the push plates (501) are placed at the bottom of the outer sealing plate (101). A set of connecting motors (3) are fixedly installed on the side end of the test box (1), and a set of mounting frames (301) are fixedly installed on the transmission shaft of the connecting motor (3). Two sets of fixing blocks (302) are threadedly installed on the mounting frames (301). A catalytic decomposition tank (4) is also fixed on the right end of the test box (1). A set of discharge barrels (404) are slidably installed on the bottom of the catalytic decomposition tank (4). An outer plate (4042) is fixed on the top outer end of the discharge barrel (404). The outer end of the discharge barrel (404) is meshed with the rotating shaft (106) for transmission connection. A set of limit plates (403) are also fixed on the bottom of the catalytic decomposition tank (4).

2. The ozone accelerated aging test chamber for ceramic materials according to claim 1, characterized in that: A set of double-headed screws (303) are rotatably mounted on the front end of the mounting frame (301), a set of threaded holes are opened on the front end of the fixing block (302), and the threaded holes at the front ends of the two sets of fixing blocks (302) are respectively threadedly mounted on the two ends of the double-headed screws (303) on the mounting frame (301).

3. The ozone accelerated aging test chamber for ceramic materials according to claim 1, characterized in that: A group of slide bars (304) are fixedly mounted on the rear end of the mounting frame (301), a group of slide holes are opened on the rear end of the fixing block (302), and the slide holes at the rear ends of the two groups of fixing blocks (302) are slidably mounted on the two ends of the slide bars (304) on the mounting frame (301).

4. The ozone accelerated aging test chamber for ceramic materials according to claim 1, characterized in that: The right end of the test box (1) is also fixedly mounted with a set of connecting rods (104), and the side ends of the moving block (5) are fixedly mounted with a set of side plates (502), the side plates (502) are provided with sliding holes, and the sliding holes of the side plates (502) at the side ends of the moving block (5) are slidably mounted on the connecting rods (104) at the right end of the test box (1).

5. The ozone accelerated aging test chamber for ceramic materials according to claim 1, characterized in that: A set of second racks (503) are fixedly mounted on the right end of the moving block (5), a set of first gears (1061) are fixedly mounted on the rotating shaft (106), and the second racks (503) at the right end of the moving block (5) are meshed and transmission-connected with the first gears (1061) on the rotating shaft (106).

6. The ozone accelerated aging test chamber for ceramic materials according to claim 1, characterized in that: A set of fixing rods (102) are fixedly installed on both sides of the front end of the test box (1), and a connecting plate (1011) is fixedly installed on the inner end of the outer sealing plate (101). The connecting plate (1011) is provided with a sliding hole, and the sliding hole of the connecting plate (1011) at the inner end of the outer sealing plate (101) is slidably installed on the fixing rods (102) at the front end of the test box (1).

7. The ozone accelerated aging test chamber for ceramic materials according to claim 1, characterized in that: A group of elastic members (1021) are respectively sleeved and mounted on the fixing rods (102) at the front end of the test box (1), and the bottom ends of the elastic members (1021) are respectively in contact with the top surfaces of the connecting plates (1011) on the outer sealing plate (101).

8. The ozone accelerated aging test chamber for ceramic materials according to claim 1, characterized in that: A set of first racks (4043) are fixedly connected to the outer end of the discharge barrel (404), a set of second gears (1062) are fixedly installed on the rotating shaft (106), and the first racks (4043) at the outer end of the discharge barrel (404) are meshed and transmission-connected with the second gears (1062) on the rotating shaft (106).

9. The ozone accelerated aging test chamber for ceramic materials according to claim 1, characterized in that: Two sets of guide grooves (402) are provided at the bottom of the catalytic decomposition tank (4), and guide blocks (4041) are fixedly installed at the front and rear ends of the top of the discharge cylinder (404), and the guide groove guide blocks (4041) at the top of the discharge cylinder (404) are slidably installed on the guide grooves (402) at the bottom of the catalytic decomposition tank (4).

10. The ozone accelerated aging test chamber for ceramic materials according to claim 1, characterized in that: The bottom of the catalytic decomposition tank (4) is a discharge trough (401), a through slot is provided at a corresponding position of the discharge cylinder (404), and a group of lower leakage plates (405) are rotatably mounted on the bottom of the discharge cylinder (404).