Laboratory waste treatment device for microbiological research

By designing the flip-up components and kit structure, the problems of difficult sealing of laboratory waste treatment devices and smoke leakage were solved, achieving a highly efficient sealing effect and improving the ease of use and sealing performance of the device.

CN223649318UActive Publication Date: 2025-12-09GUIZHOU UNIV
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Patent Information

Application Number
CN202423268229.1
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-12-30
Publication Date
2025-12-09
Estimated Expiration
2034-12-30

AI Technical Summary

Technical Problem

The existing laboratory waste treatment devices for microbiology research have doors that are difficult to rotate and not tight enough. During incineration, smoke can easily escape through pipe connections, affecting the sealing effect.

Method used

The device employs a flip-up component and a kit structure. By pulling the pull component, the spring of the T-shaped shaft is compressed, and the L-shaped rod is pulled out within the fixed rod. Combined with the inclined contact surface and the flexible rubber stop, the flip-up component automatically closes and the pipeline is sealed, enhancing the sealing effect.

Benefits of technology

It improves the closing efficiency and sealing effect of the sealed door, prevents smoke from escaping through the connection, and reduces the difficulty of operation and the problem of poor sealing.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model provides a laboratory waste treatment device for microbiological research, and relates to the field of waste treatment. The top piece structure is installed at the top end of the device body, the top end of the top piece structure and the outer portion of the pipeline connecting position are sleeved with a sleeve piece, the sleeve piece made of rubber is of an annular structure, the upper side and the lower side of the interior of the sleeve piece are each provided with a blocking piece structure, and the blocking piece structures of the annular structures are made of flexible rubber. The supporting block structure supports the auxiliary block, the positioning rod structure and the sleeve part to be positioned, installed and fixed, then the control pipeline is connected with the top end of the top part structure, then fastening connection is conducted through a bolt, the sleeve part is located at the connecting position to be closed, meanwhile, the blocking part structure assists stress contact sealing, the sealing effect is improved, and when smoke or gas is exhausted, the smoke or gas is exhausted. According to the laboratory waste treatment device for the microorganism research, smoke cannot overflow through the connecting position, and the problem that in the incineration process of a common laboratory waste treatment device for the microorganism research, smoke easily overflows through the pipeline connecting position, and the sealing effect is affected is solved.
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Description

TECHNICAL FIELD

[0001] The utility model relates to waste treatment technical field especially, relates to a laboratory waste treatment device for microorganism research. BACKGROUND

[0002] In the laboratory, in the process of microorganism research, a lot of laboratory waste will be produced, these waste need to use waste treatment device to burn waste, and the waste treatment device that can burn is applicable to handle some solid waste with infectiousness or dangerousness, such as experimental animal carcass, tissue etc. contaminated by pathogenic microorganism, waste treatment device can greatly reduce the volume of these waste through high-temperature combustion, taking experimental animal carcass as an example, through burning, its organic component is decomposed by combustion, only a small amount of ash is left, and the volume of waste can be reduced by more than 90% generally, which is very important for the limited waste storage space of laboratory, and also reduces the cost of subsequent waste transportation and final disposal, and the laboratory waste treatment device for microorganism research commonly seen in market, the sealing door is usually fixed by rotating hand wheel with screw thread, but it is more laborious to rotate, and the sealing efficiency is influenced, and in the process of burning, smoke is easy to overflow through pipeline connection, and the sealing effect is influenced. SUMMARY

[0003] The laboratory waste treatment device for microorganism research of the embodiment of the disclosure, when the turnover piece is used, is closed, the puller is pulled to displace first, the spring outside the T-shaped shaft rod is compressed, the L-shaped rod is pulled in the inside of the fixed rod, then the turnover piece is controlled to turn over and close, the fixed rod and the L-shaped rod are in the inside of the stress assembly, then the puller is stopped to pull, the spring continuously pushes the T-shaped shaft rod to displace, after the puller and the stress assembly displace, the two ends of the inside of the puller and the stress assembly slide in contact, because the contact surface is inclined structure, the stress assembly and the turnover piece are continuously stressed and pressed to turn over and close, the closing efficiency and the close effect are improved.

[0004] In the first aspect, the present disclosure provides a laboratory waste treatment device for microbial research, which specifically comprises: a device body; a cremation controller arranged above the front end of the device body; a guide assembly slidably arranged on the side of the device body through a guide plate assembly; two stress assemblies fixed to the inner side of the guide assembly, which are L-shaped structures; a T-shaped shaft rod arranged at the outer end of the stress assembly; a spring sleeved on the outer part of the T-shaped shaft rod; a U-shaped structure of a pulling piece welded and fixed to the outer part of the guide assembly; a wedge-shaped structure arranged at the inner side of both ends of the pulling piece; and an L-shaped rod arranged at the outer end of the pulling piece; a top piece structure; the top piece structure is arranged at the top end of the device body and communicates with the inside of the device body; the top end of the top piece structure is connected with a pipeline through bolts; a sleeve piece is sleeved on the outside of the top end of the top piece structure and the connection position of the pipeline; the sleeve piece is a circular ring structure made of rubber material; a stop piece structure is arranged at the upper and lower sides of the inside of the sleeve piece; the stop piece structure of the circular ring structure is made of flexible rubber material; and the cross section of the stop piece structure is a triangular structure.

[0005] In at least some embodiments, a turnover piece is arranged at the front end of the device body through a rotating shaft, the turnover piece seals the front end of the device body, a U-shaped piece and a pressure receiving assembly are arranged at the outer end of the turnover piece, the outer end of the pressure receiving assembly is a wedge-shaped structure, the outer end of the pressure receiving assembly is in sliding contact with the inner end of the pulling piece, and the contact surface is an inclined structure; two fixed rods are welded and fixed to the front end of the device body, the L-shaped rod is freely pulled in the inside of the fixed rod, the fixed rod is inserted into the inside of the pressure receiving assembly, and a guide plate assembly of a rectangular frame structure is welded to the side of the front end of the device body; two control pieces are welded to the side of the front end of the device body, the stress assembly and the T-shaped shaft rod are pulled in the inside of the control piece in a guided manner, and the guide assembly with a T-shaped structure is freely pulled in the inside of the guide plate assembly.

[0006] In at least some embodiments, a suction pump is arranged at the side of the top piece structure, a plurality of positioning holes in a ring shape and uniformly arranged are formed in the top end of the top piece structure, and the positioning holes are long strip structures; a support block structure is fixed to the top end of the top piece structure through bolts, and the support block structure is a U-shaped structure; a plurality of auxiliary blocks in a ring shape and uniformly arranged are fixed to the inside bottom end of the sleeve piece, the support block structure is supported at the bottom of the auxiliary blocks, a positioning rod structure is arranged at the top end of the auxiliary blocks, and the positioning rod structure is embedded in the inside of the positioning hole.

[0007] The present application provides a laboratory waste treatment device for microbial research, which has the following advantages:

[0008] When using the flip-up component, to close it, first pull the puller to displace it, compressing the spring outside the T-shaped shaft and pulling the L-shaped rod inside the fixed rod. Then, control the flip-up component to flip and close, placing the fixed rod and L-shaped rod inside the pressure-bearing component. Then stop pulling the puller, allowing the spring to continue pushing the T-shaped shaft to displace. After the puller and the pressure-bearing component have displaced, the inner ends of the puller slide into contact with the pressure-bearing component. Because the contact surface is inclined, it continuously applies force to press the pressure-bearing component and the flip-up component to flip and close, improving closing efficiency and sealing effect.

[0009] Before connecting the top component structure to the pipeline, the control kit is pre-installed on the top of the top component structure, and then the control support block structure is installed and fixed with bolts. The support block structure supports the auxiliary block, positioning rod structure and the kit for positioning and installation. Then, the control pipeline is connected to the top of the top component structure and then the connection is tightened with bolts to make the kit seal at the connection. At the same time, the baffle structure assists in the force contact seal, improving the sealing effect and preventing smoke or gas from overflowing through the connection when it is discharged. Attached Figure Description

[0010] To more clearly illustrate the technical solutions of the embodiments of this utility model, the accompanying drawings of the embodiments will be briefly described below.

[0011] The accompanying drawings described below are only related to some embodiments of the present invention and are not intended to limit the scope of the present invention.

[0012] In the attached diagram:

[0013] Figure 1 A three-dimensional structural schematic diagram of this application is shown;

[0014] Figure 2 An exploded three-dimensional structural diagram of this application is shown;

[0015] Figure 3 This is a schematic diagram of the exploded bottom view of the structure of this application;

[0016] Figure 4 An exploded three-dimensional structural diagram of the device body of this application is shown;

[0017] Figure 5 This paper shows an exploded three-dimensional structural diagram of the top component structure of this application;

[0018] Figure 6 This paper shows an exploded bottom view of the top component structure of this application;

[0019] List of reference numerals

[0020] 1. Device body; 101. Tilting component; 102. Pressure-bearing component; 103. Fixing rod; 104. Guide plate assembly; 105. Control component; 106. Guiding component; 107. Force-bearing component; 108. Pulling component;

[0021] 2. Top component structure; 201. Suction pump; 202. Positioning hole; 203. Support block structure; 204. Kit; 205. Stop component structure; 206. Auxiliary block; 207. Positioning rod structure. Detailed Implementation

[0022] To make the objectives, technical solutions, and advantages of the embodiments of this utility model clearer, the technical solutions of the embodiments of this utility model will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some, not all, of the embodiments of this utility model. Based on the described embodiments of this utility model, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of this utility model.

[0023] Example 1: Please refer to Figures 1 to 6 :

[0024] This utility model proposes a laboratory waste treatment device for microbiological research, comprising: a device body 1; an incineration controller is provided above the front end of the device body 1; a guide assembly 106 is slidably installed on the side of the device body 1 via a guide plate assembly 104; two force-bearing components 107 are fixed inside the guide assembly 106; the force-bearing components 107 are L-shaped; a T-shaped shaft is provided at the outer end of the force-bearing components 107; a spring is fitted on the outside of the T-shaped shaft; the outside of the guide assembly 106 is welded and fixed to a U-shaped pull member 108; the inner two ends of the pull member 108 are wedge-shaped; an L-shaped rod is provided at the outer end of the pull member 108; the pull member 108 can be freely pulled and displaced, so that the two sides of the inner end of the pull member 108 slide in contact with the pressure-bearing component 102; due to the inclined structure of the contact surface, the pull member 108 is able to slide with the help of the spring. After the spring continues to shift, it can continuously press the pressure-bearing component 102 and the flipping component 101, improving the sealing and pressing effect and convenience; Top component structure 2; Top component structure 2 is installed on the top of the device body 1 and communicates with the interior of the device body 1. The top of the top component structure 2 is connected to the pipe by bolts. The top of the top component structure 2 and the pipe connection position are fitted with a kit 204. The rubber kit 204 has a ring-shaped structure. The upper and lower sides of the inside of the kit 204 are respectively provided with a baffle structure 205. The ring-shaped baffle structure 205 is made of flexible rubber and has a triangular cross-section. This allows the kit 204 and the baffle structure 205 to be installed at the pipe connection position, improving the sealing effect of the connection position and preventing smoke or gas from overflowing through the connection position when it flows.

[0025] In this embodiment of the disclosure, such as Figure 3 and Figure 4 As shown, a flipping component 101 is mounted on the front end of the device body 1 via a rotating shaft. The flipping component 101 seals the front end of the device body 1, improving the sealing effect. The outer end of the flipping component 101 is provided with a U-shaped component and a pressure-bearing component 102. The outer end of the pressure-bearing component 102 has a wedge-shaped structure. The outer end of the pressure-bearing component 102 slides in contact with the inner end of the pull component 108. The contact surface has an inclined structure, so that after the pull component 108 is continuously subjected to force and moves, it can continuously press the pressure-bearing component 102 and the flipping component 101 to seal. Two fixing rods 103 are welded and fixed to the front end of the device body 1. The L-shaped rod is inserted inside the fixed rod 103 and can be freely pulled out. It can contact the outside of the flipping component 101 to improve the pressing effect. The fixed rod 103 is inserted inside the pressure component 102. A rectangular frame structure guide plate assembly 104 is welded to the front side of the device body 1 so that the guide component 106 can be guided to move and pull out. Two control components 105 are welded to the front side of the device body 1. The force-bearing component 107 and the T-shaped shaft are inserted inside the control components 105 and guided to pull out. The guide component 106, which has a T-shaped structure on the inside, is inserted inside the guide plate assembly 104 and can be freely pulled out.

[0026] In this embodiment of the disclosure, such as Figure 5 and Figure 6 As shown, the top component structure 2 has a suction pump 201 on its side for pumping oil. The top of the top component structure 2 has a ring of uniformly arranged positioning holes 202, which are elongated structures for embedding positioning rod structures 207. The top of the top component structure 2 is fixed with a support block structure 203 by bolts. The support block structure 203 is a U-shaped structure and is fixed with an auxiliary support kit 204. The bottom of the kit 204 is fixed with an auxiliary block 206 arranged in a ring. The support block structure 203 is located at the bottom of the auxiliary block 206 for support. The top of the auxiliary block 206 has a positioning rod structure 207, which is embedded in the positioning hole 202 to drive the kit 204 and the stop structure 205 to be positioned and installed.

[0027] The working principle of this embodiment is as follows: When laboratory waste needs to be incinerated, the main body 1 of the control device is placed in advance, and then the control kit 204 is fitted on top of the top structure 2. Then, the control support block structure 203 is moved and installed to contact and support the bottom of the auxiliary block 206. Then, the control pipe is connected to the top of the top structure 2 and then fixed with bolts, so that the kit 204 and the baffle structure 205 are outside the connection position to prevent smoke or gas from overflowing later. Then, the pull member 108 is pulled to move, compressing the spring outside the T-shaped shaft. Then, the laboratory waste is added into the interior of the main body 1 of the control device, and the control flip member 101 is flipped and closed. The pull member 108 is stopped, so that the spring drives the force-bearing component 107 and the pull member 108 to continue to move. The inner two ends of the pull member 108 slide in contact with the pressure-bearing component 102. Since the contact surface is an inclined structure, it continuously presses the flip member 101 to close, improving the convenience of fixing and the sealing effect.

[0028] The following points should be noted in this article:

[0029] 1. The accompanying drawings of the embodiments disclosed herein only relate to the structures involved in the embodiments disclosed herein; other structures can be referred to in general design.

[0030] 2. Where there is no conflict, the embodiments of this disclosure and the features in the embodiments can be combined with each other to obtain new embodiments.

[0031] The above are merely specific embodiments of this disclosure, but the scope of protection of this disclosure is not limited thereto. Any variations or substitutions that can be easily conceived by those skilled in the art within the scope of the technology disclosed in this disclosure should be included within the scope of protection of this disclosure. Therefore, the scope of protection of this disclosure should be determined by the scope of the claims.

Claims

1. A laboratory waste treatment device for microbiological research, characterized in that, include: Device body (1); an incineration controller is provided above the front end of the device body (1), and a guide assembly (106) is slidably installed on the side of the device body (1) through a guide plate assembly (104). Two force-bearing components (107) are fixed inside the guide assembly (106). The force-bearing components (107) are L-shaped, and a T-shaped shaft is provided at the outer end of the force-bearing components (107). A spring is fitted on the outside of the T-shaped shaft. The outside of the guide assembly (106) is welded and fixed to a U-shaped pull member (108). The two ends of the inner side of the pull member (108) are wedge-shaped structures. The outer end is provided with an L-shaped rod; top component structure (2); the top component structure (2) is installed on the top of the device body (1) and communicates with the interior of the device body (1). The top of the top component structure (2) is connected to the pipe by bolts. The top of the top component structure (2) and the pipe connection position are fitted with a kit (204). The rubber kit (204) is a ring-shaped structure. The upper and lower sides of the kit (204) are respectively provided with a stop structure (205). The ring-shaped stop structure (205) is made of flexible rubber material. The cross section of the stop structure (205) is a triangular structure.

2. The laboratory waste treatment device for microbiological research according to claim 1, characterized in that, The front end of the device body (1) is equipped with a flipping component (101) via a rotating shaft. The flipping component (101) seals the front end of the device body (1). The outer end of the flipping component (101) is provided with a U-shaped component and a pressure-bearing component (102). The outer end of the pressure-bearing component (102) is a wedge-shaped structure. The outer end of the pressure-bearing component (102) slides in contact with the inner end of the puller (108), and the contact surface is an inclined structure.

3. The laboratory waste treatment device for microbiological research according to claim 2, characterized in that, Two fixing rods (103) are welded and fixed at the front end of the device body (1). The L-shaped rod is inserted into the fixing rod (103) and can be pulled freely. The fixing rod (103) is inserted into the pressure-bearing component (102). A rectangular frame structure guide plate component (104) is welded to the front side of the device body (1).

4. The laboratory waste treatment device for microbiological research according to claim 3, characterized in that, Two control components (105) are welded to the front side of the device body (1). The force-bearing component (107) and the T-shaped shaft are inserted into the control component (105) for guidance and pull-out. The guide component (106) with a T-shaped structure on the inner side is inserted into the guide plate component (104) for free pull-out.

5. A laboratory waste treatment device for microbiological research according to claim 4, characterized in that, The top component structure (2) is provided with a suction pump (201) on its side, and the top of the top component structure (2) is provided with a ring of uniformly arranged positioning holes (202), which are elongated structures.

6. A laboratory waste treatment device for microbiological research according to claim 5, characterized in that, The top of the top component structure (2) is fixed with a support block structure (203) by bolts. The support block structure (203) is a U-shaped structure.

7. A laboratory waste treatment device for microbiological research according to claim 6, characterized in that, The inner bottom of the kit (204) is fixed with an auxiliary block (206) arranged in a ring. The support block structure (203) is located at the bottom of the auxiliary block (206) for support. The top of the auxiliary block (206) is provided with a positioning rod structure (207), which is embedded in the positioning hole (202).