A detection device and method for detecting failure of carbon molecular sieve

By introducing a fixed motor-driven threaded rod and a linkage gear system into the muffle furnace, combined with a heating and cooling device, the problems of uneven heating and slow cooling of the carbon molecular sieve were solved, rapid collection was achieved, and detection efficiency was improved.

CN115235941BActive Publication Date: 2025-09-30ZHEJIANG JIRUITONG NEW MATERIAL CO LTD
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Patent Information

Application Number
CN202210887115.1
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2022-07-26
Publication Date
2025-09-30
Estimated Expiration
2042-07-26

AI Technical Summary

Technical Problem

When testing carbon molecular sieves, existing muffle furnaces have problems such as uneven heating, slow cooling, and inconvenient material collection, which affect the testing effect.

Method used

The threaded rod is driven by a fixed motor to make the movable plate drive the storage frame to move. Combined with the design of the heating tube, linkage gear and stirring rod, the carbon molecular sieve can be fully heated and quickly cooled. The cooperation of the rotating motor and the pushing plate can achieve rapid collection.

Benefits of technology

The carbon molecular sieve is fully heated and quickly cooled, the detection efficiency is improved, and the material collection process is simplified.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention discloses a detection device and a method for using the failure detection of carbon molecular sieve, comprising: a muffle furnace body, a front surface of the muffle furnace body being rotatably connected to a box door, and an inner surface wall of the muffle furnace body being fixedly connected to a heating tube, two threaded rods being rotated by a fixed motor so that a movable plate drives a storage frame to move, a rotating tube can be rotated by installing a motor, and simultaneously a connecting tube can be driven to rotate and a connecting rod to move, a stirring rod is rotated by gear meshing transmission, the carbon molecular sieve is fully heated by a blower and a heating box, closing the heating box can accelerate the cooling of the carbon molecular sieve, and the carbon molecular sieve is fully heated or cooled, the rotating plate can be driven to rotate by the rotation of the rotating motor, and then the motor can be installed so that the rotating tube can drive the pushing plate to rotate, pushing the carbon molecular sieve to fall from a discharge port onto the box door, and then enter the collection frame through the box door for collection, so that the carbon molecular sieve can be quickly collected.
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Description

Technical Field

[0001] The present invention belongs to the technical field, and specifically relates to a detection device and a method for using the detection device for failure detection of carbon molecular sieves. Background Art

[0002] Carbon molecular sieve is a new type of adsorbent developed in the 1970s. It is an excellent non-polar carbon material. Nitrogen-producing carbon molecular sieve is used to separate nitrogen from air. It utilizes a room-temperature, low-pressure nitrogen production process, which offers advantages over traditional cryogenic, high-pressure nitrogen production processes, such as lower investment costs, faster nitrogen production, and lower nitrogen costs. Therefore, it is the engineering community's preferred nitrogen-enriching adsorbent for pressure swing adsorption (PSA) air separation. This nitrogen is widely used in the chemical industry, petroleum and natural gas industry, electronics industry, food industry, coal industry, pharmaceutical industry, cable industry, metal heat treatment, transportation, and storage. If it has not been used for a long time, it is tested for failure using a muffle furnace burn test.

[0003] When some existing muffle furnaces are used to test a large number of carbon molecular sieves in actual use, there are too many carbon molecular sieves. When heating, the carbon molecules close to the inside cannot be fully heated, resulting in poor detection results. At the same time, the muffle furnace needs to wait for the test items to cool down before being taken out, and its cooling speed is slow. In addition, in actual use, some existing muffle furnaces are more troublesome to collect materials. Summary of the Invention

[0004] The present invention aims to provide a detection device for failure detection of carbon molecular sieve, wherein a fixed motor is used to rotate two threaded rods so that a movable plate drives a storage frame to move to the outside of a muffle furnace body. The carbon molecular sieve in the storage frame can be heated by heating the heating tube. At the same time, the rotation of the installed motor can drive a linkage gear transmission, so that the rotating tube drives the connecting tube to rotate, and the rotating tube drives the connecting rod to move. The connecting rod is rotated by the meshing of the gears, and the rotation of the connecting rod can drive the connecting gear to rotate, so that the stirring gear drives the stirring rod to rotate. The blower blows air through the heating box and enters the storage frame from the rotating tube and the connecting tube, so that the carbon molecular sieve can be fully heated. Closing the heating box can accelerate the cooling of the carbon molecular sieve, thereby achieving sufficient heating of the carbon molecular sieve and accelerating the cooling of the carbon molecular sieve. The rotation of the rotating motor can drive the rotating plate to rotate, and then the rotation of the installed motor can cause the rotating tube to drive the pushing plate to rotate, pushing the carbon molecular sieve in the storage frame, and the carbon molecular sieve falls from the discharge port on the storage frame onto the box door, and enters the collection box through the box door for collection, so that the carbon molecular sieve can be quickly collected.

[0005] The technical solution adopted by the present invention is as follows: a detection device for failure detection of carbon molecular sieves, comprising:

[0006] A muffle furnace body, wherein the front surface of the muffle furnace body is rotatably connected to a box door, and the inner surface wall of the muffle furnace body is fixedly connected to a heating tube;

[0007] A moving mechanism, comprising a moving plate, a power component, and two groups of moving components, wherein the moving plate is slidably embedded between the inner walls of the muffle furnace body, each group of moving components is arranged on the moving plate, and the power component is arranged on the moving components; and

[0008] The installation mechanism includes a storage frame, a rotating part, two sets of linkage parts, a material receiving part and a transmission part. The storage frame is fixedly connected to the top of the movable plate. The rotating part and the material receiving part are both arranged on the movable plate. The transmission part and the linkage part are both arranged on the rotating part.

[0009] Among them, each group of the moving parts includes a threaded rod and a limiting rod, one end of the threaded rod rotates and passes through the outer surface of one side of the muffle furnace body, the moving plate is threadedly sleeved on the outer surface of the threaded rod, the limiting rod is fixedly connected to the inner wall of one side of the muffle furnace body, and the limiting rod slides through the moving plate.

[0010] Among them, the power component includes a fixed motor and three fixed synchronous wheels. The fixed motor is fixedly connected to the outer surface of one side of the muffle furnace body. One of the fixed synchronous wheels is fixedly sleeved on the output end of the fixed motor, and the other two fixed synchronous wheels are fixedly sleeved on one end of the threaded rod. The three fixed synchronous wheels are driven by synchronous belts.

[0011] Among them, the rotating component includes an installation box, an installation motor, a installation rod, a rotating tube, a connecting tube, a pushing plate and two linkage gears. The installation box is fixedly connected to the bottom of the movable plate, the installation motor is fixedly connected to the inner wall of one side of the installation box, the bottom end of the installation rod is fixedly connected to the lower inner wall of the installation box, the bottom end of the rotating tube is rotatably connected to the top of the installation rod, the pushing plate is fixedly sleeved on the outer surface of the rotating tube, and each of the connecting tubes is fixedly connected to the outer surface of the rotating tube. One of the linkage gears is fixedly sleeved on the output end of the installation motor, and the other linkage gear is fixedly sleeved on the outer surface of the rotating tube, and the two linkage gears are meshed with each other.

[0012] Among them, each group of the linkage components includes a fixed rod, two mounting gears and three groups of stirring components. The mixing component is arranged on the mounting gear. The bottom end of the fixed rod is fixedly connected to the top center of the mounting rod. The two mounting gears are fixedly sleeved on the outer surface of the fixed rod. Each group of the stirring components is arranged on the rotating tube and the connecting tube.

[0013] Among them, each group of stirring components includes a rotating gear, a connecting rod, two connecting gears, four stirring gears and four stirring rods. The connecting rod rotates and passes through the outer surface of the rotating tube. The rotating gear is fixedly sleeved on one end of the rotating tube, and the rotating gear and the mounting gear are engaged with each other. Each of the connecting gears is fixedly sleeved on the outer surface of the connecting rod. Each of the stirring rods rotates and passes through the connecting tube. Each of the stirring gears is fixedly sleeved on the outer surface of the stirring rod, and the stirring gear and the connecting gear are engaged with each other.

[0014] Among them, the material receiving component includes a rotating motor and a rotating plate, a discharge port is opened on the top of the movable plate, and the rotating plate is rotatably connected between the inner walls on both sides of the discharge port. The rotating motor is fixedly connected to the movable plate, and the output end of the rotating motor is fixedly connected to one end of the rotating plate.

[0015] In which, the transmission component includes a blower and a heating box, and the blower and the heating box are fixedly connected to the lower inner wall of the installation box. The output end of the blower is connected to the outer surface of one side of the heating box, and the outer surface of the other side of the heating box is connected to the installation rod.

[0016] A method for using a detection device for failure detection of a carbon molecular sieve comprises the following steps:

[0017] Step 1: Add carbon molecular sieve: Open the box door and turn on the fixed motor. The fixed motor rotates to drive one of the fixed synchronous wheels to rotate. The other two fixed synchronous wheels can drive the two threaded rods to rotate through the transmission of the synchronous belt. The movable plate can drive the storage frame to move to the outside of the muffle furnace body through the limit rod. Turn off the fixed motor, and then place the carbon molecular sieve into the storage frame. The storage frame can then be restored to its original position by rotating the fixed motor.

[0018] Step 2, heating the carbon molecular sieve: the carbon molecular sieve in the storage frame can be heated by heating the heating tube, and at the same time, the installation motor is turned on, and the rotation of the installation motor can drive one of the linkage gears to rotate, and the transmission between the linkage gears can make the rotating tube drive the connecting tube to rotate, and the rotating tube drives the connecting rod to move, and the connecting rod can be rotated by the meshing of the installation gear and the rotating gear, and the connecting gear can be driven to rotate by the rotation of the connecting rod, and the stirring gear can be engaged with the stirring gear, so that the stirring gear can drive the stirring rod to rotate, and stir the carbon molecular sieve, and at the same time, the blower and the heating box are turned on, and air is blown through the heating box by the blower and enters the storage frame from the rotating tube and the connecting tube, so that the carbon molecular sieve can be fully heated;

[0019] Step 3: Cooling the carbon molecular sieve: After heating is completed, the heating box is closed and air is blown through the heating box by a blower and then enters the storage frame through the rotating tube and the connecting tube to accelerate the cooling of the carbon molecular sieve.

[0020] Step 4. Collect the carbon molecular sieve: After cooling, open the box door and place the collection frame at the bottom of the box door. The rotation of the motor can drive the rotating plate to rotate, and then the rotation of the installed motor can make the rotating tube drive the push plate to rotate, pushing the carbon molecular sieve in the storage frame, and it falls from the discharge port on the storage frame onto the box door, and then enters the collection frame through the box door for collection.

[0021] In summary, due to the adoption of the above technical solution, the beneficial effects of the present invention are:

[0022] (1) In the present invention, the two threaded rods are rotated by fixing the motor so that the movable plate drives the storage frame to move to the outside of the muffle furnace body. The carbon molecular sieve in the storage frame can be heated by the heating of the heating tube. At the same time, the rotation of the motor can drive the linkage gear transmission, so that the rotating tube drives the connecting tube to rotate, and the rotating tube drives the connecting rod to move. The connecting rod is rotated by the engagement of the gears, and the rotation of the connecting rod can drive the connecting gear to rotate, so that the stirring gear drives the stirring rod to rotate. The air is blown through the heating box by the blower and enters the storage frame from the rotating tube and the connecting tube, so that the carbon molecular sieve can be fully heated. Closing the heating box can accelerate the cooling of the carbon molecular sieve, thereby achieving full heating of the carbon molecular sieve and accelerating the cooling of the carbon molecular sieve.

[0023] (2) In the present invention, the rotation of the rotating motor can drive the rotating plate to rotate, and then the rotation of the installed motor can cause the rotating tube to drive the pushing plate to rotate, pushing the carbon molecular sieve in the storage frame, and dropping it from the discharge port on the storage frame onto the box door, and then entering the collection frame through the box door for collection, so that the carbon molecular sieve can be quickly collected. BRIEF DESCRIPTION OF THE DRAWINGS

[0024] Figure 1 It is a front perspective view of the present invention;

[0025] Figure 2 is a rear perspective view of the present invention;

[0026] Figure 3 It is a front perspective partial cross-sectional view of the present invention;

[0027] Figure 4 It is a front perspective half-section view of the present invention;

[0028] Figure 5 is a side perspective cross-sectional view of the present invention;

[0029] Figure 6 It is a top perspective partial cross-sectional view of the present invention;

[0030] Figure 7 It is a partially exploded perspective view of the present invention.

[0031] Markings in the figure: 1. Muffle furnace body; 2. Box door; 3. Moving mechanism; 301. Moving plate; 302. Fixed motor; 303. Fixed synchronous wheel; 304. Threaded rod; 305. Limit rod; 4. Mounting mechanism; 401. Storage frame; 402. Rotating tube; 403. Connecting tube; 404. Pushing plate; 405. Fixed rod; 406. Mounting gear; 407. Rotating gear; 408. Connecting rod; 409. Connecting gear; 410. Stirring gear; 411. Stirring rod; 412. Mounting rod; 413. Mounting motor; 414. Linkage gear; 415. Mounting box; 416. Blower; 417. Heating box; 418. Rotating plate; 419. Rotating motor; 5. Heating tube. DETAILED DESCRIPTION

[0032] In order to make the purpose, technical solutions and advantages of the present invention more clearly understood, the present invention will be further described in detail below with reference to the accompanying drawings and embodiments. It should be understood that the specific embodiments described herein are only used to explain the present invention and are not intended to limit the present invention.

[0033] Example 1

[0034] Reference Figure 1-Figure 7 : The present invention provides a technical solution: a detection device for failure detection of carbon molecular sieve, comprising: a muffle furnace body 1, the front surface of the muffle furnace body 1 is rotatably connected to a box door 2, and the inner wall of the muffle furnace body 1 is fixedly connected to a heating tube 5; a moving mechanism 3, the moving mechanism 3 includes a moving plate 301, a power component and two groups of moving components, the moving plate 301 is slidably embedded between the inner walls on both sides of the muffle furnace body 1, each group of moving components is arranged on the moving plate 301, and the power component is arranged on the moving component; and an installation mechanism 4, the installation mechanism 4 includes a storage frame 401, a rotating component, two groups of linkage components, a material receiving component and a transmission component, the storage frame 401 is fixedly connected to the top of the moving plate 301, the rotating component and the material receiving component are both arranged on the moving plate 301, and the transmission component and the linkage component are both arranged on the rotating component.

[0035] In this embodiment: the muffle furnace body 1 is configured to detect carbon molecular sieves, the side of the box door 2 close to the muffle furnace body 1 is inclined, the box door 2 is configured to seal, and the configuration of the box door 2 can facilitate users to collect carbon molecular sieves, the heating tube 5 is electrically connected to an external heating device, and can control the heating of the heating tube 5, the configuration of the moving mechanism 3 can adjust the position of the moving plate 301, the power component is configured to provide rotational force, the configuration of the moving component can move the moving plate 301, the configuration of the moving plate 301 is used for support and installation, the configuration of the mounting mechanism 4 is used to heat, cool and collect carbon molecular sieves, the storage frame 401 is configured to store carbon molecular sieves, the cooperation of the rotating component and the linkage component can stir the carbon molecular sieve in the storage frame 401, the configuration of the material receiving component can facilitate users to collect the detected carbon molecular sieves, and the configuration of the transmission component can heat or cool the carbon molecular sieve.

[0036] Specifically, each group of moving parts includes a threaded rod 304 and a limiting rod 305. One end of the threaded rod 304 rotates and passes through the outer surface of one side of the muffle furnace body 1. The moving plate 301 is threadedly sleeved on the outer surface of the threaded rod 304. The limiting rod 305 is fixedly connected to the inner wall of one side of the muffle furnace body 1, and the limiting rod 305 slides through the moving plate 301.

[0037] In this embodiment, the threaded rod 304 is provided to enable the movable plate 301 to move, and the limiting rod 305 is provided to limit the position, so that the movable plate 301 can move stably.

[0038] Specifically, the power component includes a fixed motor 302 and three fixed synchronous wheels 303. The fixed motor 302 is fixedly connected to the outer surface of one side of the muffle furnace body 1. One of the fixed synchronous wheels 303 is fixedly sleeved on the output end of the fixed motor 302, and the other two fixed synchronous wheels 303 are fixedly sleeved on one end of the threaded rod 304. The three fixed synchronous wheels 303 are driven by a synchronous belt.

[0039] In this embodiment: the setting of the fixed motor 302 provides rotational force, and the setting of three fixed synchronous wheels 303 is used for transmission. The rotation of the fixed motor 302 can make one of the fixed synchronous wheels 303 rotate, and the transmission of the synchronous belt can make the other two fixed synchronous wheels 303 drive the two threaded rods 304 to rotate, thereby moving the movable plate 301. The structure and principle of the fixed motor 302 belong to the existing technology and are not described in detail here. Its model can be selected according to actual usage.

[0040] Specifically, the rotating components include an installation box 415, an installation motor 413, an installation rod 412, a rotating tube 402, a connecting tube 403, a pushing plate 404 and two linkage gears 414. The installation box 415 is fixedly connected to the bottom of the movable plate 301, the installation motor 413 is fixedly connected to the inner wall of one side of the installation box 415, the bottom end of the installation rod 412 is fixedly connected to the lower inner wall of the installation box 415, the bottom end of the rotating tube 402 is rotatably connected to the top of the installation rod 412, the pushing plate 404 is fixedly sleeved on the outer surface of the rotating tube 402, and each connecting tube 403 is fixedly connected to the outer surface of the rotating tube 402. One of the linkage gears 414 is fixedly sleeved on the output end of the installation motor 413, and the other linkage gear 414 is fixedly sleeved on the outer surface of the rotating tube 402, and the two linkage gears 414 are engaged with each other.

[0041] In this embodiment: the installation box 415 is provided for installation and fixation, the installation motor 413 is provided to provide rotational force, the installation rod 412 is provided to install and support the rotating tube 402, the rotating tube 402 and the connecting tube 403 are provided for installation and mixing, the push plate 404 is provided to facilitate the collection of carbon molecular sieves, the two linkage gears 414 are provided for transmission, the structure and principle of the installation motor 413 belong to the prior art and will not be introduced in detail here. Its model can be selected according to actual usage.

[0042] Specifically, each set of linkage components includes a fixed rod 405, two mounting gears 406 and three sets of stirring components. The mixing component is set on the mounting gear 406. The bottom end of the fixed rod 405 is fixedly connected to the top center of the mounting rod 412. The two mounting gears 406 are fixedly sleeved on the outer surface of the fixed rod 405. Each set of stirring components is set on the rotating tube 402 and the connecting tube 403.

[0043] In this embodiment, the fixing rod 405 is used to fix the two mounting gears 406 , the mounting gears 406 are used for transmission, and the stirring assembly is used for mixing and stirring.

[0044] Specifically, each group of stirring components includes a rotating gear 407, a connecting rod 408, two connecting gears 409, four stirring gears 410 and four stirring rods 411. The connecting rod 408 rotates and passes through the outer surface of the rotating tube 402. The rotating gear 407 is fixedly mounted on one end of the rotating tube 402, and the rotating gear 407 and the mounting gear 406 are engaged with each other. Each connecting gear 409 is fixedly mounted on the outer surface of the connecting rod 408. Each stirring rod 411 rotates and passes through the connecting tube 403. Each stirring gear 410 is fixedly mounted on the outer surface of the stirring rod 411, and the stirring gear 410 and the connecting gear 409 are engaged with each other.

[0045] In this embodiment, the rotating gear 407, the two connecting gears 409 and the four stirring gears 410 are provided for transmission, the connecting rod 408 is used for connection and installation, and the four stirring rods 411 are provided for stirring.

[0046] Specifically, the material receiving component includes a rotating motor 419 and a rotating plate 418. A discharge port is opened at the top of the movable plate 301. The rotating plate 418 is rotatably connected between the inner walls on both sides of the discharge port. The rotating motor 419 is fixedly connected to the movable plate 301, and the output end of the rotating motor 419 is fixedly connected to one end of the rotating plate 418.

[0047] In this embodiment: the rotating motor 419 is configured to rotate, the rotating plate 418 is configured to seal the movable plate 301, and the rotation of the rotating motor 419 can rotate the rotating plate 418. The structure and principle of the rotating motor 419 belong to the prior art and will not be introduced in detail here. The model can be selected according to actual usage.

[0048] Specifically, the transmission component includes a blower 416 and a heating box 417, both of which are fixedly connected to the lower inner wall of the mounting box 415, and the output end of the blower 416 is connected to the outer surface of one side of the heating box 417, and the outer surface of the other side of the heating box 417 is connected to the mounting rod 412.

[0049] In this embodiment: the heating box 417 is electrically connected to an external controller for controlling the switch of the heating box 417, and the blower 416 is provided for blowing air. The structure and principle of the blower 416 and the heating box 417 belong to the prior art and will not be introduced in detail here. The model can be selected according to actual usage.

[0050] The following is a detailed description of a detection device and method for use of a failure detection device for carbon molecular sieves provided by an embodiment of the present invention. The method of use includes the following steps: Step 1, adding carbon molecular sieve: Open the box door 2, turn on the fixed motor 302, the fixed motor 302 rotates to drive one of the fixed synchronous wheels 303 to rotate, and the other two fixed synchronous wheels 303 can drive the two threaded rods 304 to rotate through the transmission of the synchronous belt. Through the limiting rod 305, the movable plate 301 can drive the storage frame 401 to move to the outside of the muffle furnace body 1, and the fixed motor is closed. 302, then place the carbon molecular sieve into the storage frame 401, and then the storage frame 401 can be restored to its original position by rotating the fixed motor 302; Step 2, heating the carbon molecular sieve: The carbon molecular sieve in the storage frame 401 can be heated by heating the heating tube 5, and at the same time, the installation motor 413 is turned on, and the rotation of the installation motor 413 can drive one of the linkage gears 414 to rotate, and the transmission between the linkage gears 414 can make the rotating tube 402 drive the connecting tube 403 to rotate, and the rotating tube 402 drives the connecting rod 408 to move, and the meshing of the installation gear 406 and the rotating gear 407 is achieved. , the connecting rod 408 can be rotated, and the rotation of the connecting rod 408 can drive the connecting gear 409 to rotate. Through the engagement of the connecting gear 409 and the stirring gear 410, the stirring gear 410 can drive the stirring rod 411 to rotate, stirring the carbon molecular sieve, and at the same time, the blower 416 and the heating box 417 are turned on, and the blower 416 blows air through the heating box 417 and enters the storage frame 401 from the rotating tube 402 and the connecting tube 403, so that the carbon molecular sieve can be fully heated; Step 3, cooling the carbon molecular sieve: After heating is completed, the heating box 417 is turned off, and the blower 41 6 Blow air through the heating box 417 and enters the storage frame 401 from the rotating tube 402 and the connecting tube 403, which can accelerate the cooling of the carbon molecular sieve; Step 4, collecting the carbon molecular sieve: After cooling is completed, open the box door 2, place the collection frame at the bottom of the box door 2, and drive the rotating plate 418 to rotate by rotating the motor 419. Then, the rotation of the installation motor 413 can make the rotating tube 402 drive the pushing plate 404 to rotate, pushing the carbon molecular sieve in the storage frame 401, and dropping it from the discharge port on the storage frame 401 onto the box door 2, and then entering the collection frame through the box door 2 for collection.

[0051] The above description is only a preferred embodiment of the present invention and is not intended to limit the present invention. Any modifications, equivalent substitutions and improvements made within the spirit and principles of the present invention should be included in the scope of protection of the present invention.

Claims

1. A detection device for failure detection of carbon molecular sieves, characterized in that: include: A muffle furnace body (1), wherein the front surface of the muffle furnace body (1) is rotatably connected to a chamber door (2), and the inner surface wall of the muffle furnace body (1) is fixedly connected to a heating tube (5); A moving mechanism (3), the moving mechanism (3) comprising a moving plate (301), a power component, and two groups of moving components, the moving plate (301) being slidably embedded between two inner walls of the muffle furnace body (1), each group of the moving components being arranged on the moving plate (301), and the power component being arranged on the moving components; and A mounting mechanism (4), the mounting mechanism (4) comprising a storage frame (401), a rotating component, two sets of linkage components, a material receiving component, and a transmission component, the storage frame (401) being fixedly connected to the top of the movable plate (301), the rotating component and the material receiving component being both arranged on the movable plate (301), and the transmission component and the linkage component being both arranged on the rotating component; The rotating component includes a mounting box (415), a mounting motor (413), a mounting rod (412), a rotating tube (402), a connecting tube (403), a pushing plate (404) and two linkage gears (414). The mounting box (415) is fixedly connected to the bottom of the moving plate (301). The mounting motor (413) is fixedly connected to the inner wall of one side of the mounting box (415). The bottom end of the mounting rod (412) is fixedly connected to the lower inner wall of the mounting box (415). The bottom end of the tube (402) is rotatably connected to the top end of the mounting rod (412), the pushing plate (404) is fixedly sleeved on the outer surface of the rotating tube (402), each of the connecting tubes (403) is fixedly connected to the outer surface of the rotating tube (402), one of the linkage gears (414) is fixedly sleeved on the output end of the mounting motor (413), and the other linkage gear (414) is fixedly sleeved on the outer surface of the rotating tube (402), and the two linkage gears (414) are meshed with each other; Each group of linkage components includes a fixed rod (405), two mounting gears (406) and three groups of stirring components, wherein the stirring components are arranged on the mounting gears (406), the bottom end of the fixed rod (405) is fixedly connected to the top center of the mounting rod (412), the two mounting gears (406) are fixedly sleeved on the outer surface of the fixed rod (405), and each group of stirring components is arranged on the rotating tube (402) and the connecting tube (403); Each group of the stirring components comprises a rotating gear (407), a connecting rod (408), two connecting gears (409), four stirring gears (410) and four stirring rods (411), wherein the connecting rod (408) rotates and passes through the outer surface of the rotating tube (402), the rotating gear (407) is fixedly sleeved on one end of the rotating tube (402), and the rotating gear (407) and the mounting gear (406) are meshed with each other, each of the connecting gears (409) is fixedly sleeved on the outer surface of the connecting rod (408), each of the stirring rods (411) rotates and passes through the connecting tube (403), each of the stirring gears (410) is fixedly sleeved on the outer surface of the stirring rod (411), and the stirring gears (410) and the connecting gears (409) are meshed with each other.

2. The device for detecting failure of a carbon molecular sieve according to claim 1, wherein: Each group of the movable parts comprises a threaded rod (304) and a limiting rod (305), one end of the threaded rod (304) rotates and penetrates the outer surface of one side of the muffle furnace body (1), the movable plate (301) is threadedly sleeved on the outer surface of the threaded rod (304), the limiting rod (305) is fixedly connected to the inner wall of one side of the muffle furnace body (1), and the limiting rod (305) slides and penetrates the movable plate (301).

3. The device for detecting failure of a carbon molecular sieve according to claim 2, wherein: The power component comprises a fixed motor (302) and three fixed synchronous wheels (303), wherein the fixed motor (302) is fixedly connected to an outer surface of one side of the muffle furnace body (1), wherein one of the fixed synchronous wheels (303) is fixedly sleeved on an output end of the fixed motor (302), and the other two fixed synchronous wheels (303) are fixedly sleeved on one end of a threaded rod (304), and the three fixed synchronous wheels (303) are driven by a synchronous belt.

4. The device for detecting failure of a carbon molecular sieve according to claim 3, wherein: The material receiving component includes a rotating motor (419) and a rotating plate (418). A discharge port is provided at the top of the movable plate (301). The rotating plate (418) is rotatably connected between the inner walls on both sides of the discharge port. The rotating motor (419) is fixedly connected to the movable plate (301), and the output end of the rotating motor (419) is fixedly connected to one end of the rotating plate (418).

5. The device for detecting failure of a carbon molecular sieve according to claim 4, characterized in that: The transmission component includes a blower (416) and a heating box (417), and the blower (416) and the heating box (417) are fixedly connected to the lower inner wall of the installation box (415). The output end of the blower (416) is connected to the outer surface of one side of the heating box (417), and the outer surface of the other side of the heating box (417) is connected to the installation rod (412).

6. A method for using a detection device for failure detection of carbon molecular sieves, characterized in that: The detection device for failure detection of carbon molecular sieves according to claim 5 comprises the following steps: S1. Adding carbon molecular sieve: Open the box door (2), turn on the fixed motor (302), rotate the fixed motor (302) to drive one of the fixed synchronous wheels (303), and drive the other two fixed synchronous wheels (303) to drive the two threaded rods (304) to rotate through the transmission of the synchronous belt. The movable plate (301) drives the storage frame (401) to move to the outside of the muffle furnace body (1) through the limit of the limit rod (305), turn off the fixed motor (302), and then place the carbon molecular sieve in the storage frame (401), and then restore the storage frame (401) to its original position by rotating the fixed motor (302); S2. Heating the carbon molecular sieve: The carbon molecular sieve in the storage frame (401) is heated by heating the heating tube (5), and the installation motor (413) is turned on at the same time. The installation motor (413) rotates to drive one of the linkage gears (414) to rotate. The transmission between the linkage gears (414) causes the rotating tube (402) to drive the connecting tube (403) to rotate. The rotating tube (402) drives the connecting rod (408) to move. The installation gear (406) and the rotating gear (407) are engaged to make the connecting rod (408) move. 08) rotates, the connecting gear (409) is driven to rotate by the rotation of the connecting rod (408), and the stirring gear (410) is meshed with the connecting gear (409), so that the stirring gear (410) drives the stirring rod (411) to rotate, stirring the carbon molecular sieve, and at the same time, the blower (416) and the heating box (417) are turned on, and the blower (416) blows air through the heating box (417) and enters the storage frame (401) from the rotating tube (402) and the connecting tube (403), thereby fully heating the carbon molecular sieve; S3. Cooling the carbon molecular sieve: After heating is completed, the heating box (417) is closed, and the blower (416) blows air through the heating box (417) and into the storage frame (401) through the rotating tube (402) and the connecting tube (403), thereby accelerating the cooling of the carbon molecular sieve; S4. Collecting the carbon molecular sieve: After cooling is completed, the box door (2) is opened, and a collection frame is placed at the bottom of the box door (2). The rotating plate (418) is driven to rotate by the rotation of the rotating motor (419), and then the rotating tube (402) is driven to rotate by the rotation of the motor (413), so as to drive the pushing plate (404) to rotate, and the carbon molecular sieve in the storage frame (401) is pushed, and falls from the discharge port on the storage frame (401) onto the box door (2), and enters the collection frame through the box door (2) for collection.

Citation Information

Patent Citations

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    CN210892650U

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