An animal disease detection device

Through the design of the sliding table and positioning rod, the existing mixer has solved the problem of unstable fixation of orifice plates and limited application scope, and achieved rapid fixation and efficient mixing of multiple containers.

CN119971881BActive Publication Date: 2025-07-08SHANDONG WANHAI BIOTECHNOLOGY CO LTD
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Patent Information

Application Number
CN202510457340.5
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2025-04-14
Publication Date
2025-07-08
Estimated Expiration
2045-04-14

AI Technical Summary

Technical Problem

The existing mixer has poor fixing stability for orifice plates and cannot be used in other containers such as test tubes and conical flasks, and its application scope is limited.

Method used

An animal disease detection device is designed, adopting a sliding table structure, with orifice grooves, test tube grooves and conical bottle grooves on the sliding table. The rapid fixation of the container is achieved through the cooperation of the stop bar, trigger bar and locking head. Combined with the use of positioning rods and limit blocks, it is suitable for the fixation of a variety of containers.

Benefits of technology

It realizes rapid fixation of multiple containers, improves mixing efficiency, and does not need to replace or disassemble the fixtures, and has a wide range of applications.

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Abstract

The present invention relates to the technical field of mixing instruments, and particularly to an animal disease detection device, which includes sliding tables symmetrically and elastically connected to the placement table of the mixing instrument body. Orifice plate grooves for placing orifice plates are provided on the sliding tables. A retaining strip and a trigger strip that cooperate with each other are elastically connected in the orifice plate grooves. Trigger members connected to the trigger strips are slidably provided in the sliding tables. Locking heads that cooperate with the retaining strips are symmetrically and elastically connected in the sliding tables. A conical flask groove and a plurality of test tube grooves are provided on the placement table between the two sliding tables. Limiting blocks for fixing test tubes or conical flasks are elastically connected to one end of the sliding table close to the symmetry center. Positioning blocks for further fixing conical flasks are elastically connected to one end of the limiting blocks close to the symmetry center. Therefore, the present invention can quickly fix containers containing liquids, has a high mixing efficiency, and can fix a variety of containers without replacing or disassembling the fixing device, and has a wide range of applications.
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Description

Technical Field

[0001] The present invention relates to the technical field of mixers, and in particular to an animal disease detection device. Background Art

[0002] A mixer is a device used to mix liquids or suspensions, which evenly mixes the liquids in a container through mechanical vibration or rotational movement. It is widely used in the medical, laboratory, and industrial fields. During the detection of animal diseases, a mixer is usually required (for example, during the process of shaking the well plate after adding the liquid, a mixer is needed).

[0003] Currently, existing mixers, such as the Chinese patent with the publication number CN205760908U, disclose a new type of body fluid constant temperature mixer, including a constant temperature mixer main body, a well plate, a plate cover, and a display screen. In the middle of the upper surface of the constant temperature mixer main body, there is a well plate, on the side of the well plate, there is a plate cover. At the upper end of the front of the constant temperature mixer main body, there is a display screen. At the lower end of the front of the constant temperature mixer main body, there is a control panel. At the upper end edge of the front of the constant temperature mixer main body, there is a vibration intensity adjustment knob. At the middle edge of the front of the constant temperature mixer main body, there is a working indicator light. At the lower end edge of the front of the constant temperature mixer main body, there is a power switch. At the lower part of the front end of the back of the constant temperature mixer main body, there is a power indicator light. At the lower edge of the front end of the back of the constant temperature mixer main body, there is a power interface. At the lower part of the back end of the back of the constant temperature mixer main body, there is a controller, and on the front of the controller, there is an antenna. Around the lower surface of the constant temperature mixer main body, there are bases. It can remotely view the working conditions of the constant temperature mixer with a mobile phone and control the operation of the constant temperature mixer, with simpler operation and stronger practicability. However, the stability of fixing the well plate is poor, and it can only shake the well plate, and is not applicable to other containers such as test tubes and conical flasks, with limited application scope.

[0004] How to quickly fix the container containing the liquid, with high mixing efficiency, and without the need to replace or disassemble the fixing device, can fix multiple containers, and has a wide application scope has become a technical problem that needs to be broken through.

[0005] In summary, it is obvious that there are inconveniences and defects in the actual use of the existing technology, so it is necessary to improve it. Summary of the Invention

[0006] Aiming at the above-mentioned defects, the purpose of the present invention is to provide an animal disease detection device, which can quickly fix the container containing the liquid, has high mixing efficiency, and without the need to replace or disassemble the fixing device, can fix multiple containers, and has a wide application scope.

[0007] To achieve the above object, the present invention provides an animal disease detection device, including a sliding table symmetrically and elastically connected to the placement table of the mixer body. The sliding tables are each provided with a well plate groove for placing a well plate. Elastic connecting bars and trigger bars that cooperate with each other are elastically connected in the well plate grooves. Trigger members connected to the trigger bars are each slidably arranged in the sliding tables. The trigger members are each provided with a cooperation hole that cooperates with the bar. Locking heads that cooperate with the bars are symmetrically and elastically connected in the sliding tables.

[0008] A conical flask groove for placing a conical flask and a number of test tube grooves for placing test tubes are provided on the placement table between the two sliding tables. The ends of the sliding tables close to the symmetry center are each elastically connected with a limiting block for fixing a test tube or a conical flask. The ends of the limiting blocks close to the symmetry center are each elastically connected with a positioning block for further fixing the conical flask.

[0009] Press the bar, the locking head cooperates with the bar, place the well plate into the well plate groove, one end of the well plate pushes the trigger bar, and the bar disengages from the cooperation with the cooperation hole, so that the bar returns to the initial position.

[0010] According to the animal disease detection device of the present invention, positioning rods are symmetrically penetrated through the sliding tables. Sleeve rods are rotatably connected to the outside of the positioning rods. The sleeve rods inside the sliding tables are elastically connected to the sliding tables. A number of positioning holes that cooperate with the positioning rods are provided on the placement table.

[0011] According to the animal disease detection device of the present invention, fixing blocks are provided at the ends of the positioning rods away from the sliding tables.

[0012] According to the animal disease detection device of the present invention, arc surfaces are provided at the ends of the bars close to the cooperation holes.

[0013] According to the animal disease detection device of the present invention, sliders are provided at the ends of the sliding tables close to the placement table. The sliders are inserted into the placement table. The placement table is provided with a chute that cooperates with the slider. Insert blocks are symmetrically provided on the sliders in the chute. Slots that cooperate with the insert blocks are provided in the chute. Elastic members are provided between the sliders and the chutes.

[0014] According to the animal disease detection device of the present invention, the ends of the bars close to the sliding tables penetrate into the sliding tables. Convex blocks are symmetrically provided on the bars inside the sliding tables. Grooves that cooperate with the convex blocks are provided inside the sliding tables. The convex blocks are slidably arranged in the grooves, and elastic members are provided between the convex blocks and the grooves.

[0015] According to the animal disease detection device of the present invention, anti-slip pads are provided on the inner bottom surfaces of the conical flask groove and the test tube grooves.

[0016] In the animal disease detection device according to the present invention, one end of the trigger bar away from the stop bar passes through the sliding table.

[0017] In the animal disease detection device according to the present invention, a plurality of limiting grooves for clamping test tubes are provided at one end of the limiting block close to the symmetry center, and a plurality of avoidance grooves for clamping conical flasks are provided at one end of the positioning block close to the symmetry center.

[0018] The object of the present invention is to provide an animal disease detection device, including a sliding table. The sliding table can be used to quickly fix the container containing liquid, reduce the fixing time of the container, and thus improve the mixing efficiency. The positioning rods are symmetrically penetrated through the sliding table, and the positioning rods are screwed into the positioning holes, which can fix the position of the sliding table, improve the stability of the sliding table, and further prevent the sliding table from moving during the mixing process. Operators can, according to the actual situation, use the sliding table to fix the orifice plate while also using the sliding table to fix the conical flask or test tube, realizing the simultaneous fixation of multiple containers, with a wide range of applications. In summary, the beneficial effects of the present invention are: it can quickly fix the container containing liquid, with high mixing efficiency, and can fix multiple containers without replacing or disassembling the fixing device, with a wide range of applications. BRIEF DESCRIPTION OF THE DRAWINGS

[0019] Figure 1 The structural diagram of the present invention when fixing the orifice plate; Figure 2 The structural diagram of the present invention when unfolded; Figure 3 The structural diagram at the trigger bar; Figure 4 The sectional view at the trigger bar; Figure 5 The sectional view at the limiting block; Figure 6 The sectional view at the positioning rod; In the figure: 1 - mixing instrument body, 11 - placement table, 111 - placement groove, 112 - test tube groove, 113 - conical flask groove, 12 - positioning hole, 13 - sliding groove, 2 - sliding table, 21 - slider, 22 - orifice plate groove, 221 - stop bar, 222 - trigger bar, 223 - trigger member, 224 - locking head, 23 - limiting block, 231 - limiting groove, 24 - positioning block, 241 - avoidance groove, 3 - positioning rod, 31 - sleeve rod, 32 - fixing block, 4 - anti-slip pad, 5 - elastic member. DETAILED DESCRIPTION OF THE INVENTION

[0020] In order to make the object, technical solution and advantages of the present invention clearer, the following further describes the present invention in detail with reference to the accompanying drawings. It should be understood that the specific embodiments described herein are only used to explain the present invention and are not used to limit the present invention.

[0021] In the description of the present invention, it should be noted that the orientation or positional relationship indicated by terms such as "upper", "lower", "inner", "outer", "top / bottom end", etc. is based on the orientation or positional relationship shown in the drawings. It is only for the convenience of describing the present invention and simplifying the description, rather than indicating or implying that the device or element referred to must have a specific orientation, be constructed and operated in a specific orientation, and therefore should not be construed as a limitation to the present invention.

[0022] In the description of the present invention, it should be noted that unless otherwise clearly specified and defined, terms such as "installation", "provided with", "sheathed / connected", "connection", etc. should be understood in a broad sense. For example, "connection" can be a fixed connection, a detachable connection, or an integral connection. It can be a mechanical connection or an electrical connection. It can be directly connected or indirectly connected through an intermediate medium. It can be the communication inside two elements. For those of ordinary skill in the art, the specific meanings of the above terms in the present invention can be understood according to specific circumstances.

[0023] See Figures 1 to 5 , the present invention provides an animal disease detection device, including a mixer body 1 (the structure of the mixer body 1 is the same as that of the prior art. When it is turned on by intelligent electronic control, the placement table 11 vibrates or rotates regularly to mix the liquid in the container placed on the placement table 11. By adjusting the knob, the output power can be adjusted. It is a mature prior art in this field, and its specific structure and working principle will not be elaborated here). Symmetrically and elastically connected to the placement table 11 of the mixer body 1 are sliding tables 2. On the sliding tables 2 are provided orifice plate grooves 22 for placing orifice plates (the orifice plate is a mature prior art, such as a 96-well orifice plate, and its specific structure and working principle will not be elaborated here). Elastic connecting bars 221 are elastically connected to the orifice plate grooves 22 (one end of each elastic connecting bar 221 close to the sliding table 2 penetrates into the sliding table 2. On the elastic connecting bars 221 inside the sliding table 2 are symmetrically provided protrusions. Inside the sliding table 2 are provided grooves that cooperate with the protrusions. The protrusions are slidably arranged in the grooves, and elastic members 5 are provided between the protrusions and the grooves). Trigger bars 222 that cooperate with the elastic connecting bars 221 are elastically connected to the orifice plate grooves 22 on the side away from the elastic connecting bars 221. The trigger bars 222 can move toward the side away from the elastic connecting bars 221. One end of each trigger bar 222 away from the elastic connecting bar 221 penetrates out of the sliding table 2. Trigger members 223 are slidably arranged inside the sliding tables 2. One end of each trigger member 223 is connected to the trigger bar 222. The trigger members 223 can move with the trigger bars 222. On the trigger members 223 are provided cooperation holes that cooperate with the elastic connecting bars 221. Locking heads 224 that cooperate with the elastic connecting bars 221 are symmetrically and elastically connected inside the sliding tables 2. On the elastic connecting bars 221 are provided locking holes that cooperate with the locking heads 224.

[0024] See Figures 1 to 5, when the orifice plate needs to be placed into the orifice plate groove 22, first, press the retaining bar 221 towards the side close to the sliding table 2. When the retaining bar 221 is completely retracted into the sliding table 2 and the end of the retaining bar 221 close to the mating hole is inserted into the mating hole, the locking head 224 and the locking hole cooperate with each other to temporarily fix the position of the retaining bar 221. Then, place the orifice plate into the orifice plate groove 22. When one end of the orifice plate abuts against the trigger strip 222, the orifice plate pushes the trigger strip 222 to move away from the retaining bar 221. The trigger strip 222 drives the trigger member 223 to move at the same time. During the movement of the trigger member 223, the retaining bar 221 disengages from the mating hole. The trigger member 223 pushes the retaining bar 221 away from the sliding table 2, causing the locking head 224 to disengage from the locking hole. Under the action of the elastic member 5 at the retaining bar 221, the retaining bar 221 returns to its initial position. After the orifice plate is completely placed into the orifice plate groove 22, under the action of the elastic member 5 at the trigger strip 222, the trigger strip 222 rebounds and pushes the orifice plate, thereby fixing the orifice plate by using the trigger strip 222 and the retaining bar 221. When removing the orifice plate, continuously pull the trigger strip 222 to make the trigger strip 222 disengage from the orifice plate. Since the distance of pulling the trigger strip 222 is relatively long, there is no trigger strip 222 below the retaining bar 221 to limit its position. Press the retaining bar 221 towards the side close to the sliding table 2 again to make the locking head 224 and the locking hole cooperate with each other to temporarily fix the position of the retaining bar 221. After removing the orifice plate, push the trigger strip 222 towards the side close to the retaining bar 221 and push the retaining bar 221 away from the sliding table 2 to lift the retaining bar 221, and then release the trigger strip 222, so that the retaining bar 221 and the trigger strip 222 can return to their initial positions (at this time, the mating hole is located directly below the retaining bar 221).

[0025] See Figures 1 to 5 , specifically, sliders 21 are provided at one ends of the sliding table 2 close to the placing table 11. The sliders 21 are inserted into the placing table 11. Slide grooves 13 allowing the sliders 21 to slide are provided on the placing table 11. Insert blocks are symmetrically provided on the sliders 21 in the slide grooves 13. Slots cooperating with the insert blocks are provided in the slide grooves 13. The insert blocks and the slots cooperate with each other to prevent the sliding table 2 from detaching from the placing table 11. Elastic members 5 are provided between the sliders 21 and the slide grooves 13. Push the sliding table 2 towards the side away from the symmetry center. The sliders 21 of the sliding table 2 slide in the slide grooves 13, and at the same time, the sliders 21 squeeze the elastic members 5 at the sliders 21. After releasing the sliding table 2, under the action of the elastic members 5 at the sliders 21, the sliding table 2 returns to its initial position, facilitating the operator to move the sliding table 2.

[0026] See Figures 1 to 5 , preferably, arc surfaces are provided at the ends of the retaining bar 221 close to the mating holes to reduce the frictional force generated when the retaining bar 221 contacts the trigger member 223.

[0027] See Figure 1 、Figure 2 , Figure 3 and Figure 5 , on the placement table 11 between the two sliding tables 2, there is a placement groove 111. Inside the placement groove 111, there is a conical flask groove 113 for placing a conical flask. Inside the placement groove 111 below the conical flask groove 113, there are several test tube grooves 112 for placing test tubes. At one end of the sliding table 2 close to the symmetry center, there is an elastic connection with a limit block 23 (the connection method between the limit block 23 and the sliding table 2 is the same as the connection method between the stop strip 221 and the sliding table 2. For its specific structure and connection method, it will not be elaborated here). At one end of the limit block 23 close to the symmetry center, there is an elastic connection with a positioning block 24 for fixing the conical flask. When using the sliding table 2 to fix the test tubes, first push the two sliding tables 2 to the side away from the symmetry center, then place several test tubes in the test tube grooves 112, release the sliding tables 2, and use the limit blocks 23 of the two sliding tables 2 to clamp the test tubes (reasonably adjust the elastic coefficient of the elastic member 5 at the sliding table 2, the limit block 23, and the positioning block 24. For example, make the elastic force of the elastic member 5 at the positioning block 24 less than the elastic force of the elastic member 5 at the sliding table 2 and the limit block 23, so that the positioning block 24 can smoothly retract into the limit block 23). If the stability of clamping the test tubes at the positioning block 24 is poor, the number of test tubes can also be reduced. When the test tubes are distributed, stagger them from the positioning block 24 to ensure stable fixation of the test tubes. When using the sliding table 2 to fix the conical flask, first push the two sliding tables 2 to the side away from the symmetry center, then place the conical flask in the conical flask groove 113, release the sliding tables 2, and use the limit blocks 23 and the positioning blocks 24 of the two sliding tables 2 to clamp the conical flask.

[0028] See Figures 1 to 6 , preferably, at one end of the limit block 23 close to the symmetry center, there are several limit grooves 231 for clamping the test tubes, which improves the stability when the limit block 23 clamps the test tubes.

[0029] See Figures 1 to 6 , preferably, at one end of the positioning block 24 close to the symmetry center, there are several avoidance grooves 241 for clamping the conical flask, which improves the stability when the positioning block 24 clamps the conical flask.

[0030] See Figures 1 to 6 , preferably, anti-slip pads 4 are provided on the inner bottom surfaces of the conical flask groove 113 and the test tube grooves 112, which increases the friction between the conical flask groove 113, the test tube grooves 112 and the container.

[0031] See Figures 1 to 6, Further, positioning rods 3 are symmetrically inserted through the sliding table 2. Sleeve rods 31 are rotatably connected to the outside of the positioning rods 3. The sleeve rods 31 inside the sliding table 2 are elastically connected to the sliding table 2 (the connection manner between the sleeve rod 31 and the sliding table 2 is the same as that between the retaining strip 221 and the sliding table 2. The specific structure and connection manner are not elaborated here). A number of positioning holes 12 cooperating with the positioning rods 3 are provided on the placement table 11, and the positioning rods 3 are threadedly connected to the positioning holes 12. When using the sliding table 2 to clamp a conical flask or a test tube, or when not using the sliding table 2 to clamp a conical flask and a test tube (see Figure 1 ), it is possible to press the positioning rods 3 towards the side close to the sliding table 2, so that the positioning rods 3 are threadedly connected to the positioning holes 12, thereby fixing the position of the sliding table 2 and improving the stability of the sliding table 2, further preventing the sliding table 2 from moving during the mixing process.

[0032] See Figures 1 to 6 , Preferably, fixing blocks 32 are provided at one ends of the positioning rods 3 away from the sliding table 2. The fixing blocks 32 can facilitate the operator to rotate the positioning rods 3.

[0033] See Figures 1 to 6 , Preferably, the elastic member 5 is a spring, providing a return power.

[0034] See Figures 1 to 6 , During use, when it is necessary to fix the well plate by using the sliding table 2, press the retaining strip 221 towards the side close to the sliding table 2 to make the locking head 224 cooperate with the locking hole, and then place the well plate into the well plate groove 22. The well plate pushes the trigger strip 222 to move towards the side away from the retaining strip 221, so that the retaining strip 221 returns to the initial position. After the well plate is completely placed into the well plate groove 22, use the trigger strip 222 and the retaining strip 221 to fix the well plate; when it is necessary to fix the test tube by using the sliding table 2, first push the two sliding tables 2 towards the side away from the center of symmetry, then place a number of test tubes in the test tube groove 112, and release the sliding tables 2. Use the limit blocks 23 of the two sliding tables 2 to clamp the test tubes; when it is necessary to fix the conical flask by using the sliding table 2, first push the two sliding tables 2 towards the side away from the center of symmetry, then place the conical flask in the conical flask groove 113, and release the sliding tables 2. Use the limit blocks 23 and the positioning blocks 24 of the two sliding tables 2 to clamp the conical flask; during actual use, the operator can, according to the actual situation, when using the sliding table 2 to fix the well plate, can also use the sliding table 2 to fix the conical flask or the test tube at the same time, realizing the simultaneous fixation of multiple containers.

[0035] The present invention provides an animal disease detection device, which includes a sliding table. The sliding table can quickly fix the container containing liquid, reduce the fixing time of the container, and thus improve the mixing efficiency. The positioning rods are symmetrically arranged on the sliding table and are threadedly connected to the positioning holes, which can fix the position of the sliding table, improve the stability of the sliding table, and further prevent the sliding table from moving during the mixing process. According to the actual situation, when the operator uses the sliding table to fix the orifice plate, the conical flask or test tube can be fixed by the sliding table at the same time, realizing the simultaneous fixation of multiple containers, and having a wide range of applications. In summary, the beneficial effects of the present invention are: it can quickly fix the container containing liquid, has a high mixing efficiency, and can fix multiple containers without replacing or disassembling the fixing device, and has a wide range of applications.

[0036] Of course, the present invention can also have other various embodiments. Without departing from the spirit and essence of the present invention, those skilled in the art can make various corresponding changes and deformations according to the present invention. However, these corresponding changes and deformations should all fall within the protection scope of the appended claims of the present invention.

Claims

1. An animal disease detection device, characterized in that, It includes a sliding table symmetrically and elastically connected to the placement table of the mixer body. Orifice plate grooves for placing orifice plates are provided on the sliding tables. A retaining bar and a trigger bar that cooperate with each other are elastically connected in each orifice plate groove. A trigger member connected to the trigger bar is slidably provided in each sliding table. A mating hole that cooperates with the retaining bar is provided on each trigger member. Locking heads that cooperate with the retaining bar are symmetrically and elastically connected in the sliding tables; A conical flask groove for placing conical flasks and several test tube grooves for placing test tubes are provided on the placement table between the two sliding tables. Limiting blocks for fixing test tubes or conical flasks are elastically connected to one end of each sliding table close to the symmetry center. Positioning blocks for further fixing conical flasks are elastically connected to one end of each limiting block close to the symmetry center; Press the retaining bar, and the locking head cooperates with the retaining bar. Place the orifice plate into the orifice plate groove. One end of the orifice plate pushes the trigger bar, and the retaining bar is disengaged from the mating hole, causing the retaining bar to return to its initial position; When using the sliding table to fix the orifice plate, the conical flask or test tube is fixed by the sliding table at the same time, realizing the simultaneous fixation of multiple containers.

2. The animal disease detection device according to claim 1, wherein Positioning rods are symmetrically penetrated through each sliding table. Sleeve rods are rotatably connected to the outside of each positioning rod. The sleeve rods inside the sliding tables are elastically connected to the sliding tables. A number of positioning holes that cooperate with the positioning rods are provided on each placement table.

3. The animal disease detection device according to claim 2, wherein Fixing blocks are provided at one end of each positioning rod away from the sliding table.

4. The animal disease detection device according to claim 1, characterized in that, Arc surfaces are provided at one end of each retaining bar close to the mating hole.

5. The animal disease detection device according to claim 1, characterized in that, Sliders are provided at one end of each sliding table close to the placement table. The sliders are inserted into the placement table. Chute grooves that cooperate with the sliders are provided on the placement table. Insert blocks are symmetrically provided on the sliders in the chute grooves. Slot grooves that cooperate with the insert blocks are provided in each chute groove. Elastic members are provided between the sliders and the chute grooves.

6. The animal disease detection device according to claim 1, characterized in that One end of each retaining bar close to the sliding table penetrates into the sliding table. Protrusions are symmetrically provided on each retaining bar inside the sliding table. Groove grooves that cooperate with the protrusions are provided inside each sliding table. The protrusions are slidably arranged in the groove grooves, and elastic members are provided between the protrusions and the groove grooves.

7. The animal disease detection device according to claim 1, characterized in that, Anti-slip pads are provided on the inner bottom surfaces of the conical flask groove and the test tube grooves.

8. The animal disease detection device according to claim 1, wherein One end of each trigger bar away from the retaining bar penetrates out of the sliding table.

9. The animal disease detection device according to claim 1, characterized in that, A number of limiting grooves for clamping test tubes are provided at one end of each limiting block close to the symmetry center. A number of avoidance grooves for clamping conical flasks are provided at one end of each positioning block close to the symmetry center.

Citation Information

Patent Citations

  • Novel body fluid constant temperature blending machine

    CN205760908U

  • Blood mixing device for clinical laboratory

    CN209027894U

  • Oscillating device for sample pretreatment

    CN218121558U