A medical clinical test vibration reaction device

By designing a medical clinical test oscillation reaction device with multiple oscillation methods and inflatable fixation mechanisms, the problem of inconvenience of single oscillation methods and test tube fixation in existing devices is solved, and flexible drug testing and stable test tube fixation are achieved.

CN119793385BActive Publication Date: 2025-06-06SICHUAN FRIENDSHIP HOSPITAL CO LTD
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Patent Information

Application Number
CN202510305638.4
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2025-03-14
Publication Date
2025-06-06
Estimated Expiration
2045-03-14

AI Technical Summary

Technical Problem

The existing oscillation reaction devices only have one oscillation method. A single oscillation method cannot meet the needs of different drug testing and is inconvenient to fix the inspection oscillation test tubes of different sizes.

Method used

A medical clinical test oscillation reaction device is designed, which adopts a variety of oscillation methods, including rotating oscillation and left and right oscillation, and the oscillation test tube is fixedly tested through inflation to adapt to test tubes of different sizes.

Benefits of technology

It has achieved a variety of oscillation methods for different drugs, meeting the clinical testing needs of different drugs, and improving the fixing stability and use flexibility of the test vibrator test tube.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention belongs to the field of clinical testing technology, and in particular to a medical clinical testing oscillation reaction device. In view of the problem that the existing oscillation reaction device has only one oscillation mode, the single oscillation mode cannot meet the use requirements of different drug tests, and it is inconvenient to fix test oscillation test tubes of different sizes, the following scheme is proposed, which includes: a power distribution base, the bottom of the power distribution base is provided with four feet, the outer side of the power distribution base is provided with heat dissipation holes, and the top of the power distribution base is provided with an oscillation bin. The present invention adopts an inflatable method to fix the test oscillation test tube, which can adapt to test oscillation test tubes of different sizes. Not only can the test oscillation test tube be oscillated left and right, but also rotationally oscillated, or both can be oscillated at the same time. Different drug oscillation modes can meet the use requirements of clinical tests of different drugs, and the test oscillation test tube fixing plate can be easily disassembled and cleaned.
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Description

Technical Field

[0001] The present invention relates to the technical field of clinical testing, and in particular to a medical clinical testing oscillation reaction device. Background Art

[0002] The laboratory is a bridge between clinical medicine and basic medicine, including branch disciplines such as clinical chemistry, clinical microbiology, clinical immunology, hematology, humorology, and transfusion medicine. Many liquid test specimens require the addition of reaction reagents for shock reaction during testing. Currently, there is no testing device that can perform shock reaction on a large scale or in multiple types. This is a shortcoming of the existing technology.

[0003] The patent document with announcement number: CN208109552U discloses a medical clinical test oscillation reaction device, including a support base, a support platform, a guide base, a guide slider, a support rod, a support plate, a support spring, a drive motor and a cam. The cam is driven to rotate by an energized drive motor. During the rotation of the cam, the support cylinder can be alternately pushed to slide in the first guide groove. Under the cooperation of the guide base and , the moving support cylinder can lift one end of the support platform and reset the support platform under the action of the support spring, so that the support platform is constantly shaking, which is conducive to the shaking and oscillation of the test liquid and reagent in the test tube placed in the slot in the support platform, which is conducive to the reaction of the test liquid.

[0004] The existing oscillation reaction device has only one oscillation mode, and the single oscillation mode cannot meet the use requirements of different drug tests, and is not convenient for fixing test oscillation test tubes of different sizes. Summary of the invention

[0005] The purpose of the present invention is to solve the shortcomings that the existing oscillation reaction device has only one oscillation mode, the single oscillation mode cannot meet the needs of different drug testing, and it is not convenient to fix test oscillation test tubes of different sizes, and to propose a medical clinical test oscillation reaction device.

[0006] In order to achieve the above object, the present invention adopts the following technical solutions:

[0007] A medical clinical test vibration reaction device, comprising:

[0008] A power distribution base, wherein four feet are arranged at the bottom of the power distribution base, heat dissipation holes are opened on the outside of the power distribution base, a shock bin is arranged at the top of the power distribution base, a control box is arranged at the top of the shock bin, the control box is used for shock control, an operation panel is arranged at the outside of the control box, and a reflective wall is arranged on the inner wall of the shock bin;

[0009] The left and right vibration plates are slidably installed on the inner wall of the vibration bin;

[0010] Three test shaking test tube fixing plates are located inside the shaking chamber and are used to fix the test shaking test tubes;

[0011] Three rotating oscillation mechanisms are installed on the left and right oscillation plates, and are connected with the corresponding test oscillation test tube fixing plates to control the rotation and oscillation of the test oscillation test tube fixing plates;

[0012] The two left and right driving mechanisms are both installed on the rear inner wall of the shock bin and connected to the left and right shock plates to control the left and right shock plates to oscillate left and right.

[0013] Preferably, a glass cover and a metal cover are rotatably mounted on the front of the shock bin, the glass cover is located on the inner side of the metal cover, and an observation window is provided on the metal cover.

[0014] Preferably, the rotating oscillation mechanism includes a hollow rotating plate, a rotating rod is fixedly installed on the rear side of the hollow rotating plate, and the rotating rod is rotatably installed on the left and right oscillation plates through bearings, and two T-bars are fixedly installed on the outer side of the hollow rotating plate, and two T-notches are provided at the bottom of the inspection oscillation test tube fixing plate, and the two T-bars are slidably connected to the inner walls of the two T-notches, and positioning holes are provided on the outer sides of the two T-bars, and magnet rods are fixedly installed on the inner walls of the two T-notches, and magnet blocks are provided in the two positioning holes. The magnet rods are inserted into the positioning holes and attracted by the magnet blocks, which can improve the stability of the inspection oscillation test tube fixing plate installed on the two T-bars, and the magnet rods are inserted into the positioning holes, and the inspection oscillation test tube fixing plate is fixed on the hollow rotating plate by the attraction of the magnet blocks.

[0015] Preferably, the inspection oscillating test tube fixing plate is a hollow structure, the outer side of the inspection oscillating test tube fixing plate is connected with a metal tube, the outer side of the metal tube is sleeved with a sealing ring, a connecting hole is opened at the center position of the hollow rotating plate, the metal tube is connected with the connecting hole through the sealing ring; the metal tube is inserted into the connecting hole through the sealing ring to connect the hollow rotating plate with the inspection oscillating test tube fixing plate.

[0016] Preferably, an air pump is provided on the hollow rotating plate, and a curved pipe is connected between the inlet of the air pump and the hollow rotating plate, an electromagnetic valve is provided on the curved pipe, and a plurality of mounting holes are provided on the inspection oscillation test tube fixing plate, and air bag rings are embedded in a plurality of the mounting holes, and a plurality of the air bag rings are connected to the inspection oscillation test tube fixing plate; when the air pump works, it inflates the interior of the hollow rotating plate through the curved pipe, and then inflates the interior of the inspection oscillation test tube fixing plate through the cooperation of the connecting hole and the metal tube, and the air bag ring expands to squeeze and fix the inspection oscillation test tube.

[0017] Preferably, a plurality of arc grooves are provided on the left and right oscillation plates, and two arc blocks are fixedly installed on the inner side of the hollow rotating plate, both of which are embedded with ball bearings, and the two arc blocks are slidably connected to the inner walls of the two arc grooves, and the friction between the arc blocks and the inner walls of the arc grooves is reduced by the ball bearings.

[0018] Preferably, three forward and reverse motors are fixedly installed on the rear side of the left and right oscillation plates, and driving gears are installed on the output shafts of the three forward and reverse motors. Passive gears are fixedly installed on the outer sides of the three rotating rods, and the driving gears are meshed with the corresponding passive gears; the forward and reverse motors drive the corresponding driving gears to rotate forward and reverse, and the driving gears drive the corresponding passive gears to rotate forward and reverse, and the passive gears drive the hollow rotating plate to rotate forward and reverse through the rotating rod, and the hollow rotating plate drives the inspection oscillation test tube fixed plate to rotate forward and reverse through two T-bars, thereby realizing the rotational oscillation of the inspection oscillation test tube.

[0019] Preferably, the left and right driving mechanism includes a servo motor, which is installed on the rear inner wall of the shock bin, and a notched gear is installed on the output shaft of the servo motor. Two rectangular frames are fixedly installed on the rear sides of the left and right shock plates, and teeth are provided on the inner walls of the two rectangular frames, and the notched gears are alternately meshed with the corresponding teeth; the two servo motors drive the two notched gears to work, and when the notched gears are meshed with the teeth of the upper inner wall of the rectangular frame, the rectangular frame is driven to move to the left, and when the notched gears are meshed with the teeth of the lower inner wall of the rectangular frame, the rectangular frame is driven to move to the right, thereby driving the rectangular frame to oscillate left and right, and the rectangular frame drives the inspection shock test tube to oscillate left and right through structures such as left and right shock plates, thereby achieving the purpose of inspecting the shock test tube to oscillate left and right.

[0020] Preferably, support bars are fixedly installed on the top inner wall and the bottom inner wall of the shock bin, and support grooves are opened on the top and bottom of the left and right shock plates. The two support bars are slidably connected to the inner walls of the two support grooves, and sliding balls are embedded in the two support bars to reduce the friction between the support bars and the support grooves.

[0021] In the present invention, the beneficial effects of the medical clinical test oscillation reaction device are:

[0022] In this solution, the test oscillation test tube is added with the medicine that needs to be oscillated and sealed, and then inserted into the installation hole. The airbag ring can initially squeeze the test oscillation test tube. After all the test oscillation test tubes are installed in the installation hole, the electromagnetic valve is opened, and the air pump works to inflate the inside of the hollow rotating plate through the curved pipe, and then the inside of the test oscillation test tube fixing plate is inflated through the connecting hole and the metal tube. The airbag ring expands to squeeze and fix the test oscillation test tube, thereby improving the stability of the test oscillation test tube during use, and can fix test oscillation test tubes of different sizes;

[0023] When rotational oscillation is required in this scheme, the forward and reverse motors drive the corresponding driving gears to rotate forward and reverse, the driving gears drive the corresponding passive gears to rotate forward and reverse, the passive gears drive the hollow rotating plate to rotate forward and reverse through the rotating rod, and the hollow rotating plate drives the inspection oscillation test tube fixing plate to rotate forward and reverse through two T-shaped bars, so as to realize the rotational oscillation of the inspection oscillation test tube;

[0024] This scheme requires that when the inspection oscillation test tube oscillates left and right, two servo motors are controlled to work at the same time, and the two servo motors drive the two notched gears to work. When the notched gears are engaged with the teeth on the upper inner wall of the rectangular frame, the rectangular frame is driven to move to the left, and when the notched gears are engaged with the teeth on the lower inner wall of the rectangular frame, the rectangular frame is driven to move to the right, thus driving the rectangular frame to oscillate left and right. The rectangular frame drives the inspection oscillation test tube to oscillate left and right through structures such as left and right oscillation plates, so as to achieve the purpose of left and right oscillation of the inspection oscillation test tube;

[0025] In this scheme, the inspection and oscillation test tube fixing plate is supported by two T-shaped bars and two T-shaped notches. The metal tube is inserted into the connecting hole through the sealing ring, and the magnet rod is inserted into the positioning hole. The inspection and oscillation test tube fixing plate is fixed on the hollow rotating plate by the attraction of the magnet block. The inspection and oscillation test tube fixing plate is pulled outward with force to separate the metal tube from the connecting hole, and the magnet rod from the positioning hole. The inspection and oscillation test tube fixing plate can be removed and cleaned without affecting the later use.

[0026] The present invention adopts an inflation method to fix the test oscillation test tube, which can adapt to test oscillation test tubes of different sizes. The test oscillation test tube can not only be oscillated left and right, but also rotationally oscillated, or both oscillated at the same time. Different drug oscillation methods can meet the clinical test and use requirements of different drugs. The test oscillation test tube fixing plate can be easily disassembled and cleaned. BRIEF DESCRIPTION OF THE DRAWINGS

[0027] Figure 1 This is a schematic diagram of the structure of a medical clinical test oscillation reaction device proposed by the present invention;

[0028] Figure 2 This is a schematic diagram of the structure of a medical clinical test vibration reaction device proposed by the present invention with the metal cover and the glass cover opened;

[0029] Figure 3 This is a partial bottom-up structural schematic diagram of a medical clinical test vibration reaction device proposed by the present invention;

[0030] Figure 4 This is a schematic diagram of the explosion structure of the inspection oscillation test tube fixing plate, the rotating oscillation mechanism, and the left and right oscillation plates proposed by the present invention;

[0031] Figure 5It is a rear exploded structural schematic diagram of the inspection oscillation test tube fixing plate, the rotating oscillation mechanism, and the left and right oscillation plates proposed by the present invention;

[0032] Figure 6 This is a rear structural schematic diagram of the inspection oscillation test tube fixing plate, the rotating oscillation mechanism, and the left and right oscillation plates proposed by the present invention;

[0033] Figure 7 This is a schematic diagram of the structure of the inspection oscillation test tube fixing plate and its related parts proposed by the present invention;

[0034] Figure 8 The present invention proposes Figure 7 Schematic diagram of the structure viewed from above;

[0035] Fig. 9 A partial structural schematic diagram of the rotary oscillation mechanism proposed in the present invention;

[0036] Fig.10 The present invention proposes Fig. 9 A rear view structural diagram of ;

[0037] Fig.11 The present invention proposes Fig. 9 Schematic diagram of the structure viewed from above;

[0038] Fig.12 The present invention proposes Figure 4 Schematic diagram of the structure of part A;

[0039] Fig.13 This is a schematic diagram of the structure of the power distribution base, shock chamber, control box and related parts proposed by the present invention;

[0040] Fig.14 The present invention proposes Fig.13 Schematic diagram of the structure of part B;

[0041] Fig.15 This is a schematic diagram of the structure of the servo motor and the notched gear proposed by the present invention;

[0042] Fig.16 This is a schematic structural diagram of the bottom support plate and two connecting rods proposed in the present invention.

[0043] In the figure: 1. power distribution base; 11. heat dissipation hole; 12. foot; 2. shock chamber; 21. reflective wall; 22. glass cover; 23. metal cover; 231. observation window; 3. control box; 31. operation panel; 4. inspection shock test tube fixing plate; 41. mounting hole; 42. air bag ring; 43. T-shaped notch; 431. magnet rod; 44. metal tube; 441. sealing ring; 5. rotating shock mechanism; 51. hollow rotating plate; 511. connecting hole; 52. T-shaped bar; 521. Positioning hole; 53, rotating rod; 54, air pump; 541, bent pipe; 542, electromagnetic valve; 55, arc block; 551, ball; 56, forward and reverse motor; 57, driving gear; 58, passive gear; 6, left and right oscillation plates; 61, arc groove; 62, supporting groove; 7, left and right driving mechanism; 71, servo motor; 72, notched gear; 73, rectangular frame; 74, teeth; 8, support bar; 81, sliding ball; 9, bottom support plate; 91, connecting rod; 92, semicircular groove. DETAILED DESCRIPTION

[0044] The technical solution of this embodiment will be clearly and completely described below in conjunction with the drawings in this embodiment. Obviously, the described embodiment is only a part of this embodiment, rather than all of the embodiments. Embodiment 1

[0045] Reference Figure 1-Figure 15 , a medical clinical test shock reaction device, comprising:

[0046] A power distribution base 1, wherein four feet 12 are arranged at the bottom of the power distribution base 1, a heat dissipation hole 11 is opened on the outside of the power distribution base 1, a shock chamber 2 is arranged on the top of the power distribution base 1, a control box 3 is arranged on the top of the shock chamber 2, the control box 3 is used for shock control, an operation panel 31 is arranged on the outside of the control box 3, a reflective wall 21 is arranged on the inner wall of the shock chamber 2, a glass cover 22 and a metal cover 23 are rotatably installed on the front of the shock chamber 2, the glass cover 22 is located on the inner side of the metal cover 23, and an observation window 231 is arranged on the metal cover 23;

[0047] The left and right vibration plates 6 are slidably mounted on the inner wall of the vibration chamber 2;

[0048] Three test shaking test tube fixing plates 4 are located inside the shaking chamber 2 and are used to fix the test shaking test tubes;

[0049] Three rotating oscillating mechanisms 5 are installed on the left and right oscillating plates 6, and are connected with the corresponding test oscillating test tube fixing plates 4 to control the rotation and oscillation of the test oscillating test tube fixing plates 4;

[0050] The two left and right driving mechanisms 7 are both installed on the rear inner wall of the shock bin 2 and connected to the left and right shock plates 6 to control the left and right shock plates 6 to shock left and right.

[0051] Reference Fig. 9 , Fig.10 , Fig.11 , Fig.12 , In this embodiment, the rotating oscillation mechanism 5 includes a hollow rotating plate 51, a rotating rod 53 is fixedly installed on the rear side of the hollow rotating plate 51, and the rotating rod 53 is rotatably installed on the left and right oscillation plates 6 through a bearing. Two T-shaped bars 52 are fixedly installed on the outer side of the hollow rotating plate 51, and two T-shaped notches 43 are provided at the bottom of the inspection oscillation test tube fixing plate 4. The two T-shaped bars 52 are slidably connected with the inner walls of the two T-shaped notches 43, and the outer sides of the two T-shaped bars 52 are provided with positioning holes 521. Magnet rods 431 are fixedly installed on the inner walls of the two T-shaped notches 43, and magnet blocks are provided in the two positioning holes 521. The magnet rods 431 are inserted into the positioning holes 521 and attracted by the magnet blocks, which can improve the stability of the inspection oscillation test tube fixing plate 4 installed on the two T-shaped bars 52. The magnet rods 431 are inserted into the positioning holes 521, and the inspection oscillation test tube fixing plate 4 is fixed on the hollow rotating plate 51 through the attraction of the magnet blocks.

[0052] Reference Figure 4 , Figure 5 , Figure 7 , Figure 8 , Fig.12 In this embodiment, the inspection oscillation test tube fixing plate 4 is a hollow structure, and the outer side of the inspection oscillation test tube fixing plate 4 is connected with a metal tube 44, and the outer side of the metal tube 44 is sleeved with a sealing ring 441. A connecting hole 511 is opened at the center position of the hollow rotating plate 51, and the metal tube 44 is connected to the connecting hole 511 through the sealing ring 441; the metal tube 44 is inserted into the connecting hole 511 through the sealing ring 441, so as to connect the hollow rotating plate 51 with the inspection oscillation test tube fixing plate 4.

[0053] Reference Figure 7 , Figure 8 , Fig. 9 In this embodiment, an air pump 54 is provided on the hollow rotating plate 51, and a curved pipe 541 is connected between the inlet of the air pump 54 and the hollow rotating plate 51, and an electromagnetic valve 542 is provided on the curved pipe 541. A plurality of mounting holes 41 are provided on the inspection oscillation test tube fixing plate 4, and air bag rings 42 are embedded in the plurality of mounting holes 41, and the plurality of air bag rings 42 are connected to the inspection oscillation test tube fixing plate 4; the air pump 54 works to inflate the interior of the hollow rotating plate 51 through the curved pipe 541, and then inflate the interior of the inspection oscillation test tube fixing plate 4 through the cooperation of the connecting hole 511 and the metal tube 44, and the air bag ring 42 expands to squeeze and fix the inspection oscillation test tube.

[0054] Reference Figure 4 , Fig.10 In this embodiment, a plurality of arc grooves 61 are provided on the left and right oscillation plates 6, and two arc blocks 55 are fixedly installed on the inner side of the hollow rotating plate 51. Both of the arc blocks 55 are embedded with balls 551. The two arc blocks 55 are slidably connected to the inner walls of the two arc grooves 61, and the friction between the arc blocks 55 and the inner walls of the arc grooves 61 is reduced by the balls 551.

[0055] Reference Figure 6 In this embodiment, three forward and reverse motors 56 are fixedly installed on the rear side of the left and right oscillation plates 6, and driving gears 57 are installed on the output shafts of the three forward and reverse motors 56. Passive gears 58 are fixedly installed on the outer sides of the three rotating rods 53, and the driving gears 57 are meshed with the corresponding passive gears 58; the forward and reverse motors 56 drive the corresponding driving gears 57 to rotate forward and reverse, and the driving gears 57 drive the corresponding passive gears 58 to rotate forward and reverse, and the passive gears 58 drive the hollow rotating plate 51 to rotate forward and reverse through the rotating rod 53, and the hollow rotating plate 51 drives the inspection oscillation test tube fixing plate 4 to rotate forward and reverse through two T-shaped bars 52, so as to realize the rotational oscillation of the inspection oscillation test tube.

[0056] It is well known that the forward and reverse motor represents the clockwise and counterclockwise rotation of the motor. The clockwise rotation of the motor is the forward rotation of the motor, and the counterclockwise rotation of the motor is the reverse rotation of the motor. The forward and reverse control circuit diagram and its principle analysis show that to achieve the forward and reverse rotation of the motor, just swap the wiring of any two phases of the three-phase power supply line connected to the motor to achieve the purpose of reversal. The forward and reverse motor is a device known in the prior art.

[0057] Reference Fig.15 In this embodiment, the left and right driving mechanism 7 includes a servo motor 71, which is installed on the inner wall of the rear side of the shock bin 2, and a notched gear 72 is installed on the output shaft of the servo motor 71. Two rectangular frames 73 are fixedly installed on the rear side of the left and right shock plates 6, and teeth 74 are provided on the inner walls of the two rectangular frames 73. The notched gears 72 are alternately meshed with the corresponding teeth 74; the two servo motors 71 drive the two notched gears 72 to work, and when the notched gear 72 is meshed with the teeth 74 on the inner wall of the rectangular frame 73, the rectangular frame 73 is driven to move to the left, and when the notched gear 72 is meshed with the teeth 74 on the lower inner wall of the rectangular frame 73, the rectangular frame 73 is driven to move to the right, so that the rectangular frame 73 is driven to oscillate left and right. The rectangular frame 73 drives the left and right oscillation of the inspection shock test tube through the left and right shock plates 6 and other structures, so as to achieve the purpose of left and right oscillation of the inspection shock test tube.

[0058] Reference Fig.13 , Fig.14In this embodiment, support bars 8 are fixedly installed on the top inner wall and the bottom inner wall of the shock bin 2, and support grooves 62 are opened on the top and bottom of the left and right shock plates 6. The two support bars 8 are slidably connected to the inner walls of the two support grooves 62, and sliding balls 81 are embedded in the two support bars 8 to reduce the friction between the support bars 8 and the support grooves 62.

[0059] Working mode: When in use, turn on the power supply and the operation panel 31 to perform operation control, open the metal cover 23 and the glass cover 22, add the medicine that needs to be shaken into the test oscillation test tube and seal it, then insert it into the installation hole 41, the air bag ring 42 can initially squeeze the test oscillation test tube, after all the test oscillation test tubes are installed in the installation hole 41, the electromagnetic valve 542 is opened, the air pump 54 works to inflate the inside of the hollow rotating plate 51 through the curved pipe 541, and then inflate the inside of the test oscillation test tube fixing plate 4 through the connecting hole 511 and the cooperation of the metal tube 44, the air bag ring 42 expands to squeeze and fix the test oscillation test tube, improve the stability of the test oscillation test tube, and can fix test oscillation test tubes of different sizes, the electromagnetic valve 542 is closed to prevent leakage, and the air pump 54 stops working. After the electromagnetic valve 542 is opened again, the expanded gas in the air bag ring 42 is discharged, reducing the squeezing of the test oscillation test tube, and the test oscillation test tube can be removed;

[0060] When rotational oscillation is required, the forward and reverse motor 56 drives the corresponding driving gear 57 to rotate forward and reverse, the driving gear 57 drives the corresponding passive gear 58 to rotate forward and reverse, the passive gear 58 drives the hollow rotating plate 51 to rotate forward and reverse through the rotating rod 53, and the hollow rotating plate 51 drives the test oscillation test tube fixing plate 4 to rotate forward and reverse through the two T-shaped bars 52, so as to realize the rotational oscillation of the test oscillation test tube;

[0061] When the inspection oscillation test tube needs to be oscillated left and right, the two servo motors 71 are controlled to work at the same time, and the two servo motors 71 drive the two notched gears 72 to work. When the notched gear 72 is engaged with the teeth 74 on the inner wall of the rectangular frame 73, the rectangular frame 73 is driven to move leftward. When the notched gear 72 is engaged with the teeth 74 on the lower inner wall of the rectangular frame 73, the rectangular frame 73 is driven to move rightward, so that the rectangular frame 73 is driven to oscillate left and right. The rectangular frame 73 drives the inspection oscillation test tube to oscillate left and right through the left and right oscillation plates 6 and other structures, so as to achieve the purpose of left and right oscillation of the inspection oscillation test tube.

[0062] The inspection and oscillating test tube fixing plate 4 is supported by two T-shaped bars 52 and two T-shaped notches 43. The metal tube 44 is inserted into the connecting hole 511 through the sealing ring 441, and the magnet rod 431 is inserted into the positioning hole 521. The inspection and oscillating test tube fixing plate 4 is fixed on the hollow rotating plate 51 by the attraction of the magnet block. The inspection and oscillating test tube fixing plate 4 is pulled outward with force to separate the metal tube 44 from the connecting hole 511, and the magnet rod 431 from the positioning hole 521. The inspection and oscillating test tube fixing plate 4 can be removed and cleaned without affecting later use. Embodiment 2

[0063] Reference Fig.16 The rest of the embodiment 2 is the same as the embodiment 1, except that: a plurality of bottom support plates 9 are arranged at the bottom of the inspection oscillation test tube fixing plate 4, and the plurality of bottom support plates 9 are arranged one by one with the corresponding plurality of mounting holes 41, and two connecting rods 91 are fixedly installed on the top of the bottom support plate 9, and the two connecting rods 91 are welded to the bottom of the inspection oscillation test tube fixing plate 4, and a semicircular groove 92 is opened on the top of the bottom support plate 9 for supporting the inspection oscillation test tube. Embodiment 3

[0064] The rest of the third embodiment is the same as the first embodiment, except that two circular holes are provided on the outer side of the test oscillation test tube fixing plate 4, the two circular holes are connected with the corresponding two T-shaped notches 43, the positioning hole 521 on the T-shaped bar 52 is replaced with a screw hole, and the T-shaped bar 52 is connected to the test oscillation test tube fixing plate 4 by screws, thereby improving the installation stability of the test oscillation test tube fixing plate 4.

[0065] The above description is only a preferred specific implementation manner of this embodiment, but the protection scope of this embodiment is not limited thereto. Any technician familiar with the technical field can make equivalent replacements or changes according to the technical scheme and inventive concept of this embodiment within the technical scope disclosed in this embodiment, and they should be covered by the protection scope of this embodiment.

Claims

1. A medical clinical test oscillation reaction device, characterized in that: include: A power distribution base (1), wherein four feet (12) are arranged at the bottom of the power distribution base (1), a heat dissipation hole (11) is opened on the outer side of the power distribution base (1), a vibration chamber (2) is arranged at the top of the power distribution base (1), a control box (3) is arranged at the top of the vibration chamber (2), an operation panel (31) is arranged on the outer side of the control box (3), and a reflective wall (21) is arranged on the inner wall of the vibration chamber (2); Left and right vibration plates (6) are slidably mounted on the inner wall of the vibration chamber (2); Three test shaking test tube fixing plates (4), located inside the shaking chamber (2), and used to fix the test shaking test tubes; Three rotating oscillating mechanisms (5) are mounted on the left and right oscillating plates (6) and are connected to the corresponding test oscillating test tube fixing plates (4) to control the rotation and oscillation of the test oscillating test tube fixing plates (4); Two left and right driving mechanisms (7) are both mounted on the rear inner wall of the oscillation chamber (2) and connected to the left and right oscillation plates (6) for controlling the left and right oscillation of the left and right oscillation plates (6). The front of the oscillation chamber (2) is rotatably mounted with a glass cover (22) and a metal cover (23). The glass cover (22) is located on the inner side of the metal cover (23). The metal cover (23) is provided with an observation window (231). The rotational oscillation mechanism (5) comprises a hollow rotating plate (51). The rear side of the hollow rotating plate (51) is fixedly mounted with a A rotating rod (53) is provided, and the rotating rod (53) is rotatably mounted on the left and right oscillation plates (6) through bearings. Two T-shaped bars (52) are fixedly mounted on the outer side of the hollow rotating plate (51). Two T-shaped notches (43) are provided at the bottom of the inspection oscillation test tube fixing plate (4). The two T-shaped bars (52) are slidably connected to the inner walls of the two T-shaped notches (43). Positioning holes (521) are provided on the outer sides of the two T-shaped bars (52). The inner walls of the two T-shaped notches (43) are fixedly mounted with The magnet rod (431) and the two positioning holes (521) are each provided with a magnet block. The magnet rod (431) is inserted into the positioning hole (521) and attracted to the magnet block. The inspection oscillating test tube fixing plate (4) is a hollow structure. The outer side of the inspection oscillating test tube fixing plate (4) is connected to a metal tube (44). The outer side of the metal tube (44) is sleeved with a sealing ring (441). A connecting hole (511) is opened at the center of the hollow rotating plate (51). The metal tube (44) is passed through the sealing ring (441). The hollow rotating plate (51) is connected to the connecting hole (511), an air pump (54) is arranged on the hollow rotating plate (51), a curved pipe (541) is connected between the inlet of the air pump (54) and the hollow rotating plate (51), an electromagnetic valve (542) is arranged on the curved pipe (541), a plurality of mounting holes (41) are opened on the inspection oscillation test tube fixing plate (4), air bag rings (42) are embedded in the plurality of mounting holes (41), and the plurality of air bag rings (42) are connected to the inspection oscillation test tube fixing plate (4).

2. A medical clinical test oscillation reaction device according to claim 1, characterized in that: The left and right oscillating plates (6) are provided with a plurality of arc-shaped grooves (61), and two arc-shaped blocks (55) are fixedly mounted on the inner side of the hollow rotating plate (51). Ball bearings (551) are embedded in the two arc-shaped blocks (55), and the two arc-shaped blocks (55) are slidably connected to the inner walls of the two arc-shaped grooves (61).

3. A medical clinical test oscillation reaction device according to claim 1, characterized in that: Three forward and reverse motors (56) are fixedly mounted on the rear side of the left and right oscillating plates (6), and driving gears (57) are mounted on the output shafts of the three forward and reverse motors (56). Passive gears (58) are fixedly mounted on the outer sides of the three rotating rods (53), and the driving gears (57) are meshed with the corresponding passive gears (58).

4. A medical clinical test oscillation reaction device according to claim 1, characterized in that: The left and right driving mechanism (7) comprises a servo motor (71), the servo motor (71) being mounted on the rear inner wall of the oscillation chamber (2), a notched gear (72) being mounted on the output shaft of the servo motor (71), two rectangular frames (73) being fixedly mounted on the rear sides of the left and right oscillation plates (6), teeth (74) being arranged on the inner walls of the two rectangular frames (73), and the notched gear (72) being alternately meshed with the corresponding teeth (74).

5. A medical clinical test oscillation reaction device according to claim 1, characterized in that: Support bars (8) are fixedly mounted on the top inner wall and the bottom inner wall of the shock bin (2), and support grooves (62) are provided on the top and the bottom of the left and right shock plates (6). The two support bars (8) are slidably connected to the inner walls of the two support grooves (62), and the two support bars (8) are embedded with sliding beads (81).

Citation Information

Patent Citations

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