Laboratory mouse fixing frame for acupuncture or moxibustion
By designing a laboratory mouse fixing frame for acupuncture or moxibustion, the problem of double-sided acupuncture and moxibustion in the existing technology is solved, and the rapid turning over of the laboratory mouse and double-sided moxibustion operation are realized, thereby improving work efficiency and the scope of use of the equipment.
Patent Information
- Application Number
- CN202511000028.X
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-07-21
- Publication Date
- 2025-09-16
AI Technical Summary
The existing laboratory mouse fixing frame cannot achieve double-sided acupuncture, has low work efficiency and is cumbersome to operate.
A laboratory mouse fixing rack consisting of a fixing component, a flipping component and a moxa clamp component was designed. The flipping component can be used to quickly flip the laboratory mouse, and the moxa clamp component can be used to achieve double-sided moxibustion operation. The fixing component is combined to bind and restrain the laboratory mouse, reducing manual operation.
It realizes double-sided acupuncture of experimental mice, improves work efficiency, reduces operation steps, and expands the scope of use and convenience of operation of the equipment.
Smart Images

Figure CN120643335A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of medical experimental instruments, and in particular to a fixing frame for experimental mice used for acupuncture or moxibustion. Background Art
[0002] Since mice and humans have similar structures, medical research is enhanced by using mice in medical experiments.
[0003] During acupuncture or moxibustion experiments on mice, specialized fixation racks are used. However, most existing fixation racks cannot change the orientation of the mouse, requiring only single-sided manipulation (e.g., the back or abdomen) during acupuncture or moxibustion. To flip the mouse to the other side, the mouse must be removed and re-fixed, resulting in a cumbersome operation and significantly reduced work efficiency.
[0004] To this end, we proposed a laboratory mouse fixing frame for acupuncture or moxibustion to solve the problem that the existing laboratory mouse fixing frame cannot achieve double-sided acupuncture and moxibustion and has low work efficiency. Summary of the Invention
[0005] In view of the above-mentioned shortcomings of the prior art, an object of the present invention is to provide a fixation frame for experimental mice for acupuncture or moxibustion, so as to solve the problems in the prior art.
[0006] To achieve the above-mentioned and other related purposes, the present invention provides a fixing frame for experimental mice for acupuncture or moxibustion, characterized in that it comprises: a fixing component, a flipping component and a moxa stick clamp component;
[0007] The fixing assembly is used to bind and restrain the experimental mouse;
[0008] The flip assembly includes a base, both sides of the upper end of the base are connected to a U-shaped frame, the facing sides of the two U-shaped frames are connected to a rotating plate, the facing sides of the two rotating plates are connected to a connecting rod, each of the connecting rods is connected to the fixed assembly, and the upper end of each U-shaped frame is connected to a plurality of locking blocks, and the locking blocks are used to lock the rotating plate;
[0009] The moxa stick clamp assembly is used for clamping multiple moxa sticks to perform double-sided moxibustion operations.
[0010] Preferably, circular protrusions extending outward are provided in the middle of the opposite sides of the two rotating plates, and grooves matching the protrusions are provided in the middle of the two U-shaped frames. Each of the rotating plates and the corresponding U-shaped frame are provided with corresponding magnetic blocks at both ends of the opposite sides. There are at least two locking blocks on each U-shaped frame, and adjacent locking blocks on the same U-shaped frame are connected with synchronous belts.
[0011] Preferably, all the connecting rods include a straight rod, a side rod, a rotating seat, a block and two plug-in blocks. The rotating seat is arranged on the straight rod, one end of the side rod passes through the middle part of the rotating seat and the upper end is connected to knob 1. The block is arranged on the rotating seat, and the block is used to limit the rotation range of knob 1. One end of the straight rod and the side rod are each connected to an plug-in block, and the plug-in block is used to connect the straight rod or the side rod to the fixed component.
[0012] Preferably, all the plug blocks include a sleeve, a ejector pin is provided inside the sleeve, the ejector pin can slide inside the sleeve and the end of the ejector pin passes through the sleeve, a spring is connected between the side wall of the ejector pin and the inner wall of the sleeve, and the opposite sides of the ejector pin extend outward to form a paddle.
[0013] Preferably, the fixing assembly includes an upper cover, a lower cover, two locking buckles, a head clamp and limb fixing clamps;
[0014] The two locks are used to connect the upper cover and the lower cover. Each lock includes a convex plate. The lower end of the convex plate is provided with a U-shaped baffle that matches the convex plate. A gear is provided in the middle of the lower side of the convex plate. Racks are provided on both sides of the gear. The two racks match the gear. The outer end of each rack is connected to a card block. The two card blocks respectively pass through the two side walls of the convex plate. Both ends of the baffle are provided with a card slot that matches the card block.
[0015] The middle parts of the upper cover and the lower cover are hollowed out and elastic bands are installed at the hollowed out parts. The head clamp is used to fix the head of the experimental mouse, and the limb fixing clamps are used to fix the limbs of the experimental mouse.
[0016] Preferably, the head clamp includes a bidirectional screw, a second knob, a slide groove, a slider and an arc clamp. The bidirectional screw is arranged at the bottom of the side wall of the lower cover, one end of the bidirectional screw passes through the side wall of the lower cover and is connected to the second knob, and the side wall of the lower cover is provided with several symmetrical slide grooves, each of the slide grooves is provided with a slider, and each slider can slide in the corresponding slide groove, the bidirectional screw passes through the two sliders in the same row and is threadedly connected to the corresponding sliders, and the two arc clamps are connected to all the sliders on the same side.
[0017] Preferably, the limb fixing clamp includes four support rods respectively connected to the four corners of the lower cover, and each end of the support rod is connected to a ring. The middle part of the ring is provided with a second screw rod, and the second screw rod passes through the top of the ring and the lower end is connected to a pressure plate. The upper end of the pressure plate is connected to a positioning rod, and the positioning rod passes through the ring and can slide up and down along the ring.
[0018] Preferably, the moxa stick clamp assembly includes two columns respectively arranged on both sides of the upper end of the base, the upper and lower sides of each column are connected to an angle adjustment bracket, the end of each angle adjustment bracket is connected to a lifter, and each lifter is connected to a moxa stick fixing clamp.
[0019] Preferably, the lifter includes a frame, a conveyor belt is provided in the frame, and a sliding frame is provided on the side of the frame. The sliding frame can slide up and down along the frame and the side wall of the sliding frame is connected to the outer surface of the conveyor belt.
[0020] Preferably, the moxa stick fixing clamp includes two movable grooves provided on the outer wall of the sliding frame, each of the movable grooves is provided with an L-shaped connecting rod, each of the L-shaped connecting rods can slide in the corresponding movable groove, one end of each of the L-shaped connecting rods is connected to a pull ring, and the other end of each of the L-shaped connecting rods is connected to a clamping block, and the outer surfaces of the two L-shaped connecting rods are sleeved with spring 2.
[0021] As described above, the present invention discloses a fixation frame for experimental mice for acupuncture or moxibustion, which has the following beneficial effects:
[0022] 1. The present invention restrains the body of the experimental mouse through the upper cover and the lower cover. The hollow parts provided on the upper cover and the lower cover facilitate the operator to perform acupuncture or moxibustion on the experimental mouse. The elastic band is provided in the hollow part to support the body of the experimental mouse, and the head clamp is used to restrain the head of the experimental mouse, and the limb fixing clamps are used to fix the limbs of the experimental mouse, thereby reducing the contact area between the equipment and the experimental mouse and increasing the range of acupuncture or moxibustion.
[0023] Second, the present invention incorporates a flip assembly that allows the fixed assembly that restrains the experimental mouse to be suspended in the air. The fixed assembly and the experimental mouse can be flipped by rotating two rotating plates, and the rotating plates can be locked with a locking block to prevent the experimental mouse from shaking during acupuncture or moxibustion, achieving a double-sided acupuncture effect on the experimental mouse. Furthermore, the fixed assembly and connecting rod are detachable, allowing for the selection of different fixed assembly models based on the type (size) of the experimental mouse, thus expanding the device's range of use.
[0024] 2. The present invention is equipped with a moxa stick clamp assembly, which can clamp moxa sticks of various specifications, and realize double-sided moxibustion operation through the angle adjustment brackets on the upper and lower sides. In conjunction with the lifter, the moxa stick automatic lifting function is realized, so that the distance between the burning point of the moxa stick and the experimental mouse remains unchanged, reducing manual operation and improving work efficiency.
[0025] Therefore, the present invention effectively overcomes various shortcomings of the prior art and has high industrial utilization value. BRIEF DESCRIPTION OF THE DRAWINGS
[0026] Figure 1Shown is a three-dimensional view of a fixation frame for experimental mice used for acupuncture or moxibustion according to the present invention.
[0027] Figure 2 Shown is a three-dimensional view of the flip assembly of a fixation frame for experimental mice used for acupuncture or moxibustion according to the present invention.
[0028] Figure 3 Shown is an exploded view of the flip assembly of a laboratory mouse fixing frame for acupuncture or moxibustion according to the present invention.
[0029] Figure 4 Shown is a three-dimensional diagram of a connecting rod of a fixing frame for experimental mice for acupuncture or moxibustion according to the present invention.
[0030] Figure 5 The present invention shows a fixation frame for experimental mice used for acupuncture or moxibustion. Figure 4 Enlarged view of part A.
[0031] Figure 6 Shown is a three-dimensional view of an insert block of a fixation frame for experimental mice used for acupuncture or moxibustion according to the present invention.
[0032] Figure 7 Shown is a three-dimensional view of the fixing components of a fixing frame for experimental mice used for acupuncture or moxibustion according to the present invention.
[0033] Figure 8 Shown is a locking structure diagram of a fixation frame for experimental mice used for acupuncture or moxibustion according to the present invention.
[0034] Figure 9 Shown is a cross-sectional view of the lock of a fixation frame for experimental mice used for acupuncture or moxibustion according to the present invention.
[0035] Figure 10 Shown is an exploded view of a head clamp of a fixation frame for experimental mice used for acupuncture or moxibustion according to the present invention.
[0036] Figure 11 Shown is a three-dimensional view of the limb fixing clamps of a fixation frame for experimental mice used for acupuncture or moxibustion according to the present invention.
[0037] Figure 12 Shown is a three-dimensional view of the moxa stick clamp assembly of a laboratory mouse fixing frame for acupuncture or moxibustion according to the present invention.
[0038] Figure 13 Shown is an exploded view of a lifter of a laboratory mouse fixing frame for acupuncture or moxibustion according to the present invention.
[0039] Figure 14 Shown is an exploded view of a moxa stick fixing clamp of a laboratory mouse fixing frame for acupuncture or moxibustion according to the present invention.
[0040] Component number description
[0041] 1. Fixed assembly; 2. Flip assembly; 3. Moxa stick clamp assembly;
[0042] 20. Base; 21. U-shaped frame; 22. Turn plate; 23. Connecting rod; 24. Locking block; 25. Magnetic block; 26. Synchronous belt;
[0043] 210, groove; 220, bump;
[0044] 230, straight rod; 231, side rod; 232, rotating seat; 233, stopper; 234, insert; 235, knob 1;
[0045] 2340, sleeve; 2341, ejector pin; 2342, spring 1; 2343, pick;
[0046] 10. Upper cover; 11. Lower cover; 12. Locking buckle; 13. Head clip; 14. Limb fixing clip; 15. Elastic band;
[0047] 120, convex plate; 121, baffle; 122, gear; 123, rack; 124, clamping block; 125, clamping slot;
[0048] 130, bidirectional screw; 131, knob 2; 132, slide; 133, slider; 134, arc clamp;
[0049] 140, support rod; 141, collar; 142, screw rod 2; 143, pressure plate; 144, positioning rod;
[0050] 30. Column; 31. Angle adjustment bracket; 32. Lifter; 33. Moxa stick fixing clamp;
[0051] 320, frame; 321, conveyor belt; 322, sliding frame;
[0052] 330. Movable slot; 331. Connecting rod; 332. Pull ring; 333. Clamping block; 334. Spring 2. DETAILED DESCRIPTION
[0053] The following describes the implementation of the present invention through specific embodiments. People skilled in the art can easily understand other advantages and effects of the present invention from the contents disclosed in this specification.
[0054] See also Figures 1 to 14. It should be noted that the structures, proportions, sizes, etc. illustrated in the drawings of this specification are only used to match the contents disclosed in the specification for people familiar with this technology to understand and read, and are not used to limit the limiting conditions for the implementation of the present invention. Therefore, they have no substantive technical significance. Any modification of the structure, change in the proportional relationship or adjustment of the size should still fall within the scope of the technical content disclosed by the present invention without affecting the efficacy and purpose that can be achieved by the present invention. At the same time, the terms such as "upper", "lower", "left", "right", "middle" and "one" quoted in this specification are only for the convenience of description, and are not used to limit the scope of the implementation of the present invention. Changes or adjustments in their relative relationships should also be regarded as the scope of the implementation of the present invention without substantially changing the technical content.
[0055] like Figure 1-14 As shown, the present invention provides a laboratory mouse fixing frame for acupuncture or moxibustion, comprising: a fixing component 1, a flip component 2, and a moxa stick clamp component 3. The fixing component 1 is used to bind and restrain the laboratory mouse.
[0056] The flip assembly 2 includes a base 20, with U-shaped frames 21 connected to both sides of the upper end of the base 20. The facing sides of the two U-shaped frames 21 are connected to a rotating plate 22, which is rotatably connected to the U-shaped frames 21. The facing sides of the two rotating plates 22 are connected to connecting rods 23, each of which is connected to the fixed assembly 1. The upper end of each U-shaped frame 21 is connected to a number of locking blocks 24, which are used to lock the rotating plates 22. The locking blocks 24 are rotatably connected to the U-shaped frames 21, and the ends of the locking blocks 24 extend slightly beyond the sides of the U-shaped frames 21 to lock the rotating plates 22. During use, the laboratory mouse is bound by the fixed assembly 1, and the two rotating plates 22 are rotated. The rotating plates 22 cooperate with the connecting rods 23 to flip the fixed assembly 1 and the laboratory mouse. The locking blocks 24 are then rotated so that the ends of the locking blocks 24 cover the upper ends of the rotating plates 22, locking the rotating plates 22 and completing the locking operation after flipping. This structure enables the laboratory mouse to be turned over quickly, improves the efficiency of acupuncture or moxibustion, and avoids the problem of having to rebind the laboratory mouse every time it is turned over.
[0057] The moxa stick clamp assembly 3 is used to clamp multiple moxa sticks for double-sided moxibustion operation.
[0058] In one embodiment, see Figure 2-3The two rotating plates 22 are each provided with an outwardly extending circular protrusion 220 in the middle of the opposing sides, and the two U-shaped frames 21 are each provided with a groove 210 in the middle that matches the protrusion 220. By aligning the protrusion 220 with the groove 210, the rotating plates 22 can be flipped around the U-shaped frame 21. Each rotating plate 22 and the corresponding U-shaped frame 21 are provided with corresponding magnetic blocks 25 at both ends of the facing side. The arrangement of the magnetic blocks 25 enhances the horizontal stability of the rotating plates 22 through mutual attraction when the long sides of the rotating plates 22 and the U-shaped frame 21 are aligned. Each U-shaped frame 21 has at least two locking blocks 24, symmetrically distributed on both sides of the groove 210, which lock the rotating plates 22 in position. A synchronous belt 26 connects adjacent locking blocks 24 on the same U-shaped frame 21, which synchronizes the rotation of the locking blocks 24 on the same U-shaped frame 21, improving operational convenience.
[0059] In one embodiment, see Figure 4-5 In medical experiments, laboratory mice can be divided into rats and mice based on their body size. Therefore, the fixing assembly 1 is divided into two categories based on the body size of the laboratory mice. For convenience during the experiment, the fixing assembly 1 and the connecting rod 23 are set to be detachable, so that the fixing assembly 1 can be easily replaced according to the type of laboratory mouse. All connecting rods 23 include a straight rod 230, a side rod 231, a rotating seat 232, a stopper 233, and two inserts 234. The rotating seat 232 is provided on the straight rod 230. One end of the side rod 231 passes through the middle of the rotating seat 232 and is connected to a knob 1 235 at the upper end. The stopper 233 is provided on the rotating seat 232 and is used to limit the rotation range of the knob 1 235. One end of each of the straight rod 230 and the side rod 231 is connected to an insert 234. The insert 234 is used to connect the straight rod 230 or the side rod 231 to the fixing assembly 1. Four straight rods 230, coupled with inserts 234, secure the rat fixation assembly 1. To install the mouse fixation assembly 1, turn knob 1 235 until it contacts stop 233. This rotation drives the side rods 231 between the two U-shaped frames 21, and the mouse fixation assembly 1 is then installed using inserts 234. This structure allows for the assembly and disassembly of two fixation assemblies 1 of varying sizes (body shapes) to be adapted to the specific laboratory mouse, broadening its scope of use.
[0060] In one embodiment, see Figure 6All inserts 234 include a sleeve 2340, which has an ejector pin 2341 disposed therein. The ejector pin 2341 can slide within the sleeve 2340, with the end of the ejector pin 2341 extending through the sleeve 2340. A spring 1 2342 is connected between the sidewall of the ejector pin 2341 and the inner sidewall of the sleeve 2340. The opposing sides of the ejector pin 2341 extend outward to form a paddle 2343. During use, the ejector pin 2341 can be slid through the paddle 2343, causing it to retract into the sleeve 2340 and compress the spring 1 2342. After the four corners of the fixing assembly 1 are aligned with the ejector pin 2341, the paddle 2343 is released, causing the ejector pin 2341 to pop out under the action of the spring 1 2342 and be inserted into the fixing assembly 1, thereby completing the fixing of the fixing assembly 1.
[0061] In one embodiment, see Figure 7-9 The fixing assembly 1 includes an upper cover 10, a lower cover 11, two lock buckles 12, a head clamp 13 and limb fixing clamps 14. The upper cover 10 and the lower cover 11 cooperate with each other to restrain and bind the body of the experimental mouse.
[0062] The two locks 12 are used to connect the upper cover 10 to the lower cover 11. Each lock 12 includes a protruding plate 120, and the two protruding plates 120 are placed on either side of the upper cover 10. The lower end of the protruding plate 120 is provided with a U-shaped baffle 121 that matches the protruding plate 120. The two baffles 121 are placed on either side of the lower cover 11. A gear 122 is provided in the middle of the lower side of the protruding plate 120. The gear 122 is rotatably connected to the protruding plate 120. The front end of the gear 122 passes through the protruding plate 120 and is connected to knob 3. Racks 123 are provided on both sides of the gear 122. Both racks 123 mesh with the gear 122 and can slide left and right inside the protruding plate 120. The outer end of each rack 123 is connected to a block 124, and the outer wall of the block 124 is configured as an inclined surface. Two latches 124 extend through the two side walls of the protruding plate 120, and slots 125 matching the latches 124 are provided at both ends of the baffle 121. The inner side walls of the latches 124 are elastically connected to the protruding plate 120, and the elastic connection method is preferably spring three. During use, the protruding plate 120 is connected to the baffle 121 by pressing the upper cover 10 onto the lower cover 11. As the protruding plate 120 descends, the latches 124 contact and are squeezed by the baffle 121, shrinking toward the inside of the protruding plate 120. The latches 124 press the spring three. After the latches 124 are aligned with the slots 125, the spring three causes the latches 124 to pop out of the protruding plate 120 and snap into the slots 125, thereby completing the mutual fixation between the protruding plate 120 and the baffle 121, and locking the upper cover 10 and the lower cover 11. During separation, the two knobs 3 are turned to drive the gear 122 to rotate, the gear 122 drives the rack 123 to move, and the rack 123 drives the block 124 to retract into the inside of the convex plate 120, completing the separation operation of the convex plate 120 and the baffle 121, and realizing the separation of the upper cover 10 and the lower cover 11.
[0063] The middle sections of the upper and lower covers 10 and 11 are hollowed out to facilitate acupuncture or moxibustion treatments on the rat's body. Elastic bands 15 are installed in these hollow sections to support the rat's body. A head clamp 13 secures the rat's head, and limb clamps 14 secure the rat's limbs.
[0064] In one embodiment, see Figure 10The head clamp 13 includes a bidirectional screw 130, a second knob 131, a slide 132, a slider 133 and an arc clamp 134. The bidirectional screw 130 is arranged at the bottom of the side wall of the lower cover 11. One end of the bidirectional screw 130 passes through the side wall of the lower cover 11 and is connected to the second knob 131. A plurality of symmetrical slide grooves 132 are provided on the side wall of the lower cover 11. Each slide groove 132 is provided with a slider 133. Each slider 133 can slide in the corresponding slide groove 132. The bidirectional screw 130 passes through the two sliders 133 in the same row and is threadedly connected to the corresponding sliders 133. The two arc clamps 134 are connected to all the sliders 133 on the same side. During use, the mouse's head is placed between the two curved clamps 134. By turning knob 2 131, it drives bidirectional screw 130, which in turn moves sliders 133 on either side toward each other. Sliders 133 then move the two curved clamps 134 toward each other, clamping the mouse's head. The curved clamps 134 are coated with a rubber membrane to minimize damage to the mouse's head.
[0065] In one embodiment, see Figure 11 The limb fixing clamp 14 includes four support rods 140 connected to the four corners of the lower cover 11 respectively, and the end of each support rod 140 is connected to a collar 141, and a screw 2 142 is provided in the middle of the collar 141, and the screw 2 142 passes through the top of the collar 141 and is threadedly connected to the collar 141, and the lower end of the screw 2 142 is connected to a pressure plate 143 and is rotatably connected to the pressure plate 143, and the upper end of the pressure plate 143 is connected to a positioning rod 144, which passes through the collar 141 and can slide up and down along the collar 141, and the upper end of the positioning rod 144 is rotatably connected to the screw 2 142, and the pressure plate 143 drives the positioning rod 144 to descend, and the positioning rod 144 is used to limit the orientation of the pressure plate 143 to prevent the pressure plate 143 from rotating with the screw 2 142. During use, one of the mouse's limbs is passed through the corresponding collar 141, and screw 142 is rotated. This drives the pressing plate 143 downward, squeezing and securing the limb. This structure secures the mouse's limbs and reduces the contact area, making it easier for the operator to perform acupuncture or moxibustion on the limbs.
[0066] In one embodiment, see Figure 12 The moxa stick clamp assembly 3 includes two upright posts 30, one on each side of the upper end of the base 20. Each upright post 30 is connected to an angle adjustment bracket 31 on its upper and lower sides. The angle adjustment bracket 31 is rotatably connected to the upright post 30 and can be adjusted horizontally. Each angle adjustment bracket 31 is connected to a lifter 32 at its end, which is used to control the raising and lowering of a moxa stick fixing clamp 33. Each lifter 32 is connected to a moxa stick fixing clamp 33, which is used to clamp and position the moxa stick.
[0067] In one embodiment, see Figure 13 The elevator 32 includes a frame 320, within which is a conveyor belt 321 disposed vertically and driven by a motor. A sliding frame 322 is provided on the side of the frame 320. The sliding frame 322 can slide up and down along the frame 320, and the sidewalls of the sliding frame 322 are connected to the outer surface of the conveyor belt 321. During use, the conveyor belt 321 is controlled by the motor to rotate forward and backward, driving the sliding frame 322 to slide up and down, achieving the automatic lifting and lowering operation of the moxa stick.
[0068] In one embodiment, see Figure 14 The moxa stick clamp 33 includes two movable slots 330 on the outer wall of the sliding frame 322. Each movable slot 330 is equipped with an L-shaped connecting rod 331. Each L-shaped connecting rod 331 can slide within the corresponding movable slot 330. One end of each L-shaped connecting rod 331 is connected to a pull ring 332, and the other end of each L-shaped connecting rod 331 is connected to a clamping block 333. The outer surfaces of the two L-shaped connecting rods 331 are sleeved with a second spring 334. During use, the two pull rings 332 are pulled toward each other. The pull rings 332 drive the two clamping blocks 333 away from each other through the L-shaped connecting rods 331, and the second spring 334 is stretched, placing the moxa stick between the two clamping blocks 333. The pull rings 332 are released. Under the action of the second spring 334, the two clamping blocks 333 are driven toward each other through the connecting rod 331, thereby clamping the moxa stick. This structure can effectively clamp moxa sticks of various sizes.
[0069] The specific usage process of the present invention is as follows: a laboratory mouse is placed in the lower cover 11, and the upper cover 10 is closed to restrain the body of the laboratory mouse. The second knob 131 is rotated, which drives the bidirectional screw 130 to rotate. The bidirectional screw 130 controls the two arc-shaped clamps 134 to move closer to each other through the slider 133 to clamp the head of the laboratory mouse. The limbs of the laboratory mouse are passed through the corresponding rings 141. The second screw 142 is rotated, which drives the pressing plate 143 to descend. The pressing plate 143 presses and fixes the limbs of the laboratory mouse. After the fixation operation of the laboratory mouse is completed, acupuncture is performed;
[0070] By rotating the locking block 24, the end of the locking block 24 is moved out of the rotating plate 22, and the experimental mouse is turned over by rotating the two rotating plates 22. The locking block 24 is rotated again to lock the rotating plates 22, completing the rapid turning operation of the experimental mouse, which is convenient for double-sided acupuncture on the experimental mouse.
[0071] When performing moxibustion, the two pull rings 332 are pulled on both sides, and the pull rings 332 drive the two clamping blocks 333 to move away from each other through the L-shaped connecting rod 331, and the spring 2 334 is stretched, and the moxa stick is placed between the two clamping blocks 333, and the pull ring 332 is released. Under the action of the spring 2 334, the two clamping blocks 333 are driven closer to each other through the connecting rod 331 to clamp the moxa stick, and the moxa stick is moved to the moxibustion point through the angle adjustment bracket 31, the moxa stick is ignited, and the conveyor belt 321 is started. The conveyor belt 321 cooperates with the sliding rack 322 to keep the burning point of the moxa stick unchanged, thereby realizing the moxibustion function.
[0072] Therefore, the present invention effectively overcomes various shortcomings of the prior art and has high industrial utilization value.
[0073] The above embodiments are merely illustrative of the principles and effects of the present invention and are not intended to limit the present invention. Anyone skilled in the art may modify or alter the above embodiments without departing from the spirit and scope of the present invention. Therefore, all equivalent modifications or alterations made by one of ordinary skill in the art without departing from the spirit and technical principles disclosed herein are intended to be covered by the claims of the present invention.
Claims
1. A laboratory mouse holder for acupuncture or moxibustion, characterized in that: It comprises: a fixing component (1), a flipping component (2) and a moxa stick clamp component (3); The fixing component (1) is used to bind and restrain the experimental mouse; The flip assembly (2) comprises a base (20), both sides of the upper end of the base (20) are connected to U-shaped frames (21), the facing sides of the two U-shaped frames (21) are connected to rotating plates (22), the facing sides of the two rotating plates (22) are connected to connecting rods (23), each of the connecting rods (23) is connected to the fixed assembly (1), and the upper end of each U-shaped frame (21) is connected to a plurality of locking blocks (24), and the locking blocks (24) are used to lock the rotating plates (22); The moxa stick clamp assembly (3) is used for clamping a plurality of moxa sticks to perform double-sided moxibustion operations.
2. The fixing frame for experimental mice for acupuncture or moxibustion according to claim 1, characterized in that: The middle parts of the opposite sides of the two rotating plates (22) are each provided with a circular protrusion (220) extending outward, the middle parts of the two U-shaped frames (21) are each provided with a groove (210) matching the protrusion (220), and both ends of the facing sides of each rotating plate (22) and the corresponding U-shaped frame (21) are provided with mutually corresponding magnetic blocks (25), each U-shaped frame (21) has at least two locking blocks (24), and adjacent locking blocks (24) on the same U-shaped frame (21) are connected with a synchronous belt (26).
3. The fixing frame for experimental mice for acupuncture or moxibustion according to claim 1, characterized in that: All the connecting rods (23) include a straight rod (230), a side rod (231), a rotating seat (232), a stopper (233) and two inserting blocks (234). The rotating seat (232) is arranged on the straight rod (230). One end of the side rod (231) passes through the middle of the rotating seat (232) and the upper end is connected to a knob (235). The stopper (233) is arranged on the rotating seat (232). The stopper (233) is used to limit the rotation range of the knob (235). One end of each of the straight rod (230) and the side rod (231) is connected to an inserting block (234). The inserting block (234) is used to connect the straight rod (230) or the side rod (231) to the fixed component (1).
4. The fixing frame for experimental mice for acupuncture or moxibustion according to claim 3, characterized in that: All of the plug blocks (234) include a sleeve (2340), a ejector pin (2341) is provided inside the sleeve (2340), the ejector pin (2341) can slide inside the sleeve (2340) and the end of the ejector pin (2341) passes through the sleeve (2340), a spring (2342) is connected between the side wall of the ejector pin (2341) and the inner wall of the sleeve (2340), and the opposite sides of the ejector pin (2341) extend outward to form a pick (2343).
5. The fixing frame for experimental mice for acupuncture or moxibustion according to claim 1, characterized in that: The fixing assembly (1) comprises an upper cover (10), a lower cover (11), two locking buckles (12), a head clamp (13) and limb fixing clamps (14); The two lock buckles (12) are used to connect the upper cover (10) and the lower cover (11), and each lock buckle (12) includes a convex plate (120), and the lower end of the convex plate (120) is provided with a U-shaped baffle (121) that matches the convex plate (120), and the middle part of the lower side of the convex plate (120) is provided with a gear (122), and racks (123) are provided on both sides of the gear (122), and the two racks (123) are matched with the gear (122), and the outer end of each rack (123) is connected to a clamping block (124), and the two clamping blocks (124) respectively penetrate the two side walls of the convex plate (120), and the two ends of the baffle (121) are provided with a clamping groove (125) that matches the clamping block (124); The middle parts of the upper cover (10) and the lower cover (11) are hollowed out and an elastic band (15) is installed in the hollowed out part. The head clamp (13) is used to fix the head of the experimental mouse, and the limb fixing clamps (14) are used to fix the limbs of the experimental mouse.
6. The fixing frame for experimental mice for acupuncture or moxibustion according to claim 5, characterized in that: The head clamp (13) includes a bidirectional screw (130), a second knob (131), a slide groove (132), a slider (133) and an arc clamp (134). The bidirectional screw (130) is arranged at the bottom of the side wall of the lower cover (11). One end of the bidirectional screw (130) passes through the side wall of the lower cover (11) and is connected to the second knob (131). A plurality of symmetrical slide grooves (132) are provided on the side wall of the lower cover (11). Each of the slide grooves (132) is provided with a slider (133). Each of the sliders (133) can slide in the corresponding slide groove (132). The bidirectional screw (130) passes through two sliders (133) in the same row and is threadedly connected to the corresponding sliders (133). The two arc clamps (134) are connected to all the sliders (133) on the same side.
7. The fixation frame for experimental mice for acupuncture or moxibustion according to claim 5, characterized in that: The limb fixing clamp (14) comprises four supporting rods (140) respectively connected to the four corners of the lower cover (11), the end of each supporting rod (140) is connected to a collar (141), a second screw rod (142) is provided in the middle of the collar (141), the second screw rod (142) passes through the top of the collar (141) and the lower end is connected to a pressing plate (143), the upper end of the pressing plate (143) is connected to a positioning rod (144), the positioning rod (144) passes through the collar (141) and can slide up and down along the collar (141).
8. The fixation frame for experimental mice for acupuncture or moxibustion according to claim 1, characterized in that: The moxa stick clamp assembly (3) comprises two columns (30) respectively arranged on both sides of the upper end of the base (20); the upper and lower sides of each column (30) are connected to an angle adjustment bracket (31); the end of each angle adjustment bracket (31) is connected to a lifter (32); and each lifter (32) is connected to a moxa stick fixing clamp (33).
9. The fixation frame for experimental mice for acupuncture or moxibustion according to claim 8, characterized in that: The lifter (32) includes a frame (320), a conveyor belt (321) is provided in the frame (320), and a sliding frame (322) is provided on the side of the frame (320). The sliding frame (322) can slide up and down along the frame (320), and the side wall of the sliding frame (322) is connected to the outer surface of the conveyor belt (321).
10. The fixing frame for experimental mice for acupuncture or moxibustion according to claim 8, characterized in that: The moxa stick fixing clamp (33) comprises two movable grooves (330) provided on the outer wall of the sliding frame (322), each of the movable grooves (330) is provided with an L-shaped connecting rod (331), each of the L-shaped connecting rods (331) can slide in the corresponding movable groove (330), one end of each of the L-shaped connecting rods (331) is connected to a pull ring (332), the other end of each of the L-shaped connecting rods (331) is connected to a clamping block (333), and the outer surfaces of the two L-shaped connecting rods (331) are sleeved with spring 2 (334).