Efficient medicine and matrix heat preservation mixing equipment
By employing multiple stirring forces and an internal heating element design in the drug and matrix mixing equipment, the problems of poor stirring effect and uneven heat preservation in existing equipment have been solved, achieving efficient drug and matrix mixing and heat preservation, and improving product quality.
Patent Information
- Application Number
- CN202520389377.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-03-07
- Publication Date
- 2026-01-16
- Estimated Expiration
- 2035-03-07
AI Technical Summary
Existing drug and matrix mixing equipment has poor mixing effect, low mixing efficiency, and uneven heat preservation effect, especially for drugs and matrices near the center.
Multiple opposing rotational and revolutional forces are used to create a multi-stage stirring force. Combined with the design of multiple internal heating tubes, the stirring shaft is driven by a drive mechanism to perform complex revolution and rotation within the mixing chamber, ensuring uniform mixing and temperature maintenance of the drug and matrix.
It improves stirring efficiency and heat preservation effect, making the drug and matrix mix more evenly, avoiding crystallization or precipitation, and improving the quality of the final product.
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Figure CN223800399U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to a medicine production technical field especially relates to a high -efficient medicine and matrix heat preservation mixing equipment. BACKGROUND
[0002] In the production process of medicine, the matrix often needs to be mixed with the medicine ingredients uniformly, to ensure that each part of the medicine can react according to the prescribed formula ratio. During the mixing of the medicine and the matrix, heat preservation measures are generally taken, which can ensure good mixing of the medicine and the matrix, accelerate the synthesis process of the medicine and improve production efficiency. Heat preservation mixing can also ensure that the medicine ingredients are completely dissolved and absorbed, avoiding crystallization or precipitation, thereby improving the quality of the final product.
[0003] However, the existing medicine and matrix mixing equipment only uses a single-direction stirring of a stirring paddle, which has poor stirring effect and low stirring efficiency. Moreover, the existing medicine and matrix mixing equipment only uses electric heating wires embedded in the inner wall of the mixing equipment for heat preservation, which can only provide heat preservation effect for the medicine and matrix on the periphery, and has poor heat preservation effect for the medicine and matrix near the center of the mixing equipment. SUMMARY
[0004] The utility model discloses a kind of high-efficiency medicine and matrix heat preservation mixing equipment to solve the shortcomings in prior art.
[0005] To achieve the above object, the utility model adopts the following technical scheme:
[0006] A kind of high-efficiency medicine and matrix heat preservation mixing equipment, comprising: mixing box, the upper portion of the inside of the mixing box is horizontally provided with small ring and large ring, the bottom of the small ring is vertically connected with a plurality of first stirring shafts along the circumference uniformly, the outer periphery of the first stirring shaft is uniformly fixed and installed with a plurality of first heating pipes, the bottom of the large ring is vertically connected with a plurality of second stirring shafts along the circumference uniformly, and the outer periphery of the second stirring shaft is uniformly fixed and installed with a plurality of second heating pipes.
[0007] Driving mechanism, the driving mechanism is used to drive small ring and large ring revolution, drive a plurality of first stirring shafts and second stirring shafts rotation.
[0008] As a further technical scheme of the utility model, the top of the mixing box is provided with a feeding port on one side, the top of the feeding port is covered with a top cover, the bottom of the mixing box is provided with a discharge port at the center, and the discharge port and the mixing box are connected. Position installation electric door.
[0009] As a further technical scheme of the utility model, the controller is fixedly installed on one side of the outside of the mixing box, and three supporting legs are vertically welded on the edge of the bottom of the mixing box.
[0010] As a further technical scheme of the utility model, the driving mechanism includes a rotary motor, a support frame is welded on one side of the top of the mixing box, the rotary motor is horizontally fixedly installed on the support frame, a driving bevel gear is fixedly installed on the output end of the rotary motor, a rotating shaft and a sleeve shaft are vertically penetrated and rotationally connected at the center of the top of the mixing box, the rotating shaft is rotationally connected to the inner bottom of the support frame at the top end, the sleeve shaft penetrates the middle of the support frame and is rotationally connected with the support frame, the sleeve shaft and the rotating shaft are rotationally connected, a first driven bevel gear is welded on the rotating shaft, a second driven bevel gear is welded on the sleeve shaft, the first driven bevel gear and the second driven bevel gear are symmetrically arranged, the first driven bevel gear and the second driven bevel gear are all in mesh with the driving bevel gear, first connecting rods are horizontally welded on both sides of the bottom of the rotating shaft, the other ends of the two first connecting rods are welded on both sides of the inner wall of the small ring, second connecting rods are horizontally welded on both sides of the bottom of the sleeve shaft, the other ends of the two second connecting rods are welded on both sides of the inner wall of the large ring.
[0011] The rotary motor drives the driving bevel gear to rotate, the driving bevel gear drives the rotating shaft to rotate forward and the sleeve shaft to rotate reversely through the first driven bevel gear and the second driven bevel gear, the rotating shaft drives the small ring to rotate forward through the two first connecting rods, and the sleeve shaft drives the large ring to rotate reversely through the two second connecting rods.
[0012] As a further technical scheme of the utility model, a plurality of first gears are welded on the first stirring shafts, a horizontal plate is horizontally welded below the inner wall of the mixing box, a vertical rod is vertically welded on the top of the horizontal plate, third connecting rods are horizontally welded on both sides of the top end of the vertical rod, and the other ends of the two third connecting rods are welded with the same outer gear ring, and the plurality of first gears are in mesh with the outer gear ring.
[0013] The small ring drives the plurality of first stirring shafts to rotate forward, the first gears on the first stirring shafts rotate reversely due to the meshing of the first gears and the outer gear ring, the first gears drive the first stirring shafts to rotate reversely, and the first stirring shafts drive the plurality of first heating pipes to continuously rotate reversely and rotate forward.
[0014] As a further technical scheme of the utility model, a plurality of second gears are welded on the second stirring shafts, support rods are horizontally welded on both sides of the top of the inner wall of the mixing box, and the other ends of the two support rods are welded with the same inner gear ring, and the plurality of second gears are in mesh with the inner gear ring.
[0015] The big circle ring drives multiple second stirring shafts to revolve reversely, and because the second gear on the second stirring shaft and the inner gear ring are engaged, the second gear revolves reversely and rotates forward, the second gear drives the second stirring shaft to rotate forward, and the multiple second stirring shafts rotate forward and revolve reversely continuously, multiple self-rotating forces and revolving forces in opposite directions form more diverse multiple stirring forces, turbulence is formed in the mixing process of the medicine and the matrix, and the stirring efficiency is improved, and the stirring effect is better, the multiple heating pipes are arranged in the mixing box and change positions continuously, can directly contact the medicine and the matrix at each position, and only the medicine and the matrix at the periphery are prevented from being kept warm, and the keeping warm effect on the whole medicine and matrix is better.
[0016] The beneficial effects of the utility model are that: multiple self-rotating forces and revolving forces in opposite directions form more diverse multiple stirring forces, turbulence is formed in the mixing process of the medicine and the matrix, and the stirring efficiency is improved, and the stirring effect is better, multiple heating pipes are arranged in the mixing box and change positions continuously, can directly contact the medicine and the matrix at each position, and only the medicine and the matrix at the periphery are prevented from being kept warm, and the keeping warm effect on the whole medicine and matrix is better. BRIEF DESCRIPTION OF DRAWINGS
[0017] Figure 1 A structural schematic view of the efficient medicine and matrix keeping warm mixing equipment is provided for the utility model;
[0018] Figure 2 A sectional structure schematic view of the efficient medicine and matrix keeping warm mixing equipment is provided for the utility model Figure 1 ;
[0019] Figure 3 A sectional structure schematic view of the efficient medicine and matrix keeping warm mixing equipment is provided for the utility model Figure 2 ;
[0020] Figure 4 A partial structure schematic view of the efficient medicine and matrix keeping warm mixing equipment is provided for the utility model.
[0021] In the drawing: 1, rotating shaft; 2, first driven bevel gear; 3, sleeve shaft; 4, second driven bevel gear; 5, feeding opening; 6, controller; 7, mixing box; 8, supporting leg; 9, discharge opening; 10, supporting frame; 11, rotating motor; 12, driving bevel gear; 13, small circle ring; 14, big circle ring; 15, inner gear ring; 16, second stirring shaft; 17, second heating pipe; 18, horizontal plate; 19, first stirring shaft; 20, first heating pipe; 21, outer gear ring; 22, third connecting rod; 23, vertical rod; 24, first connecting rod; 25, first gear; 26, second connecting rod; 27, second gear; 28, supporting rod. DETAILED DESCRIPTION
[0022] In order to make the technical means, creation features, purposes and effects of the utility model easy to understand, the utility model is further described below in combination with specific embodiments.
[0023] Please refer to the accompanying drawings Figure 1 - the accompanying drawings Figure 4 An efficient medicine and matrix heat preservation mixing device, comprising: a mixing box 7, a small ring 13 and a large ring 14 are horizontally arranged at the top inside the mixing box 7, a plurality of first stirring shafts 19 are uniformly and vertically connected to the bottom of the small ring 13 along the circumference, a plurality of first heating pipes 20 are uniformly and horizontally fixedly installed on the outer circumference of the first stirring shafts 19, a plurality of second stirring shafts 16 are uniformly and vertically connected to the bottom of the large ring 14 along the circumference, and a plurality of second heating pipes 17 are uniformly and horizontally fixedly installed on the outer circumference of the second stirring shafts 16.
[0024] A driving mechanism is used for driving the small ring 13 and the large ring 14 to revolve and driving the plurality of first stirring shafts 19 and the second stirring shafts 16 to rotate.
[0025] Please refer to the accompanying drawings Figures 1-2 In a preferred embodiment, a feeding port 5 is formed on one side of the top of the mixing box 7, the top of the feeding port 5 is covered with a top cover, a discharge port 9 is formed at the center of the bottom of the mixing box 7, and an electric door is installed at the connection position between the discharge port 9 and the mixing box 7.
[0026] The top cover is opened, the medicine and the matrix to be mixed are added into the mixing box 7 through the feeding port 5, and the top cover is covered again during the mixing process; after mixing, the electric door is opened, and the medicine is discharged through the discharge port 9.
[0027] Please refer to the accompanying drawings Figure 1 In a preferred embodiment, a controller 6 is fixedly installed on one side of the outside of the mixing box 7, and three supporting legs 8 are uniformly and vertically welded at the edge of the bottom of the mixing box 7.
[0028] The controller 6 controls the opening and closing and the rotating speed of the rotating motor 11, controls the opening and closing of the electric door, controls the opening and closing and the temperature of the first heating pipe 20 and the second heating pipe 20, and the supporting legs 8 support the mixing box 7.
[0029] Please refer to the accompanying drawings Figures 1-4 In a preferred embodiment, the driving mechanism comprises a rotating motor 11, a supporting frame 10 is welded on one side of the top of the mixing box 7, the rotating motor 11 is horizontally fixedly installed on the supporting frame 10, and a driving bevel gear 12 is fixedly installed at the output end of the rotating motor 11.
[0030] The supporting frame 10 provides support and fixation for the rotating motor 11.
[0031] Please refer to the accompanying drawings Figures 1-4In a preferred embodiment, a rotating shaft 1 and a sleeve shaft 3 are vertically penetrated and rotatably connected at the center of the top of the mixing box 7, the top end of the rotating shaft 1 is rotatably connected to the inner bottom of the support frame 10, the sleeve shaft 3 penetrates and is rotatably connected to the middle of the support frame 10, and the sleeve shaft 3 is rotatably connected to the rotating shaft 1.
[0032] The support frame 10 supports the sleeve shaft 3 and the rotating shaft 1.
[0033] Please refer to the accompanying drawings Figures 1-4 In a preferred embodiment, a first driven bevel gear 2 is welded on the rotating shaft 1, a second driven bevel gear 4 is welded on the sleeve shaft 3, the first driven bevel gear 2 and the second driven bevel gear 4 are symmetrically arranged, and the first driven bevel gear 2 and the second driven bevel gear 4 are engaged with a driving bevel gear 12.
[0034] Please refer to the accompanying drawings Figures 1-4 In a preferred embodiment, a first connecting rod 24 is horizontally welded on both sides of the bottom of the rotating shaft 1, the other ends of the two first connecting rods 24 are respectively welded on the inner wall of the small ring 13, a second connecting rod 26 is horizontally welded on both sides of the bottom of the sleeve shaft 3, and the other ends of the two second connecting rods 26 are respectively welded on the inner wall of the large ring 14.
[0035] Please refer to the accompanying drawings Figures 1-4 In a preferred embodiment, a first gear 25 is welded on each of the plurality of first stirring shafts 19, a horizontal plate 18 is horizontally welded below the inner wall of the mixing box 7, a vertical rod 23 is vertically welded on the top of the horizontal plate 18, a third connecting rod 22 is horizontally welded on both sides of the top end of the vertical rod 23, the other ends of the two third connecting rods 22 are welded with the same outer gear ring 21, and the plurality of first gears 25 are engaged with the outer gear ring 21.
[0036] The horizontal plate 18 supports and fixes the vertical rod 23, and the vertical rod 23 and the two third connecting rods 22 support and fix the outer gear ring 21.
[0037] Please refer to the accompanying drawings Figures 1-4 In a preferred embodiment, a second gear 27 is welded on each of the plurality of second stirring shafts 16, a support rod 28 is horizontally welded on both sides of the upper part of the inner wall of the mixing box 7, the other ends of the two support rods 28 are welded with the same inner gear ring 15, and the plurality of second gears 27 are engaged with the inner gear ring 15.
[0038] The two support rods 28 support and fix the inner gear ring 15.
[0039] From the above description, it can be seen that the above-mentioned embodiments of the utility model realize the following technical effects: the rotating motor 11 drives the driving bevel gear 12 to rotate, the driving bevel gear 12 drives the rotating shaft 1 to rotate forward and the sleeve shaft 3 to rotate reversely through the first driven bevel gear 2 and the second driven bevel gear 4 respectively, the rotating shaft 1 drives the small ring 13 to rotate forward through two first connecting rods 24, and the sleeve shaft 3 drives the large ring 14 to rotate reversely through two second connecting rods 26;
[0040] The small ring 13 drives the multiple first stirring shafts 19 to rotate forward, and since the first gear 25 on the first stirring shaft 19 is engaged with the outer gear ring 21, the first gear 25 rotates forward while rotating reversely, and the first gear 25 drives the first stirring shaft 19 to rotate reversely, that is, the first stirring shaft 19 drives the multiple first heating pipes 20 to rotate reversely and rotate forward continuously;
[0041] The large ring 14 drives the multiple second stirring shafts 16 to rotate reversely, and since the second gear 27 on the second stirring shaft 16 is engaged with the inner gear ring 15, the second gear 27 rotates reversely while rotating forward, and the second gear 27 drives the second stirring shaft 16 to rotate forward, that is, the second stirring shaft 16 drives the multiple second heating pipes 17 to rotate forward and rotate reversely continuously; the multiple self-rotation forces and revolution forces in opposite directions form more diverse multiple stirring forces, so that turbulent flow is formed in the mixing process of the medicine and the matrix, and the stirring efficiency is improved, and the stirring effect is better; the multiple heating pipes are arranged in the mixing box 7 and change positions continuously, can directly contact the medicine and the matrix at each position, avoid only the medicine and the matrix at the periphery being kept warm, and the keeping warm effect of the whole medicine and the matrix is better.
[0042] Those skilled in the art should understand that the discussion of the above any embodiment is only exemplary, and is not intended to imply that the scope (including claims) of the utility model is limited to these examples; under the idea of the utility model, the above embodiments or technical features in different embodiments can also be combined, steps can be implemented in any order, and there are many other changes of different aspects of the utility model as described above, and they are not provided in details for the sake of brevity.
[0043] The utility model aims at covering all such alternatives, modifications and variations falling within the broad scope of the claims. Therefore, any omission, modification, equivalent replacement, improvement, etc. made in the spirit and principle of the utility model should be included in the protection scope of the utility model.
Claims
1. A high efficiency drug and substrate warming mixing device, characterized by, Include: Mixing box (7), the upper horizontal inside of the mixing box (7) is provided with a small ring (13) and a large ring (14), the bottom of the small ring (13) is uniformly connected with a plurality of first stirring shafts (19) along the circumference, the outer periphery of the first stirring shaft (19) is uniformly fixedly installed with a plurality of first heating pipes (20), the bottom of the large ring (14) is uniformly connected with a plurality of second stirring shafts (16) along the circumference, and the outer periphery of the second stirring shaft (16) is uniformly fixedly installed with a plurality of second heating pipes (17); Driving mechanism for driving the small ring (13) and the large ring (14) to revolve and driving a plurality of first stirring shafts (19) and second stirring shafts (16) to rotate.
2. The efficient drug and substrate warming mixing device of claim 1, wherein, The top of the mixing box (7) is provided with a feeding port (5) on one side, the top of the feeding port (5) is covered with a top cover, the bottom of the mixing box (7) is provided with a discharging port (9) at the center, and the connecting position of the discharging port (9) and the mixing box (7) is provided with an electric door.
3. The efficient drug and substrate warming mixing device of claim 1, wherein, The controller (6) is fixedly installed on one side of the outside of the mixing box (7), and three supporting legs (8) are uniformly welded vertically at the bottom edge of the mixing box (7).
4. The efficient drug and substrate warming mixing device of claim 1, wherein, The driving mechanism comprises a rotary motor (11), a supporting frame (10) is welded on one side of the top of the mixing box (7), the rotary motor (11) is fixedly installed on the supporting frame (10), and the output end of the rotary motor (11) is fixedly installed with a driving bevel gear (12).
5. The efficient drug and substrate warming mixing device of claim 4, wherein, The top center of the mixing box (7) is vertically penetrated and rotationally connected with a rotating shaft (1) and a sleeve shaft (3), the top end of the rotating shaft (1) is rotationally connected to the inner bottom of the supporting frame (10), the sleeve shaft (3) penetrates the middle part of the supporting frame (10) and is rotationally connected with the supporting frame (10), and the sleeve shaft (3) and the rotating shaft (1) are rotationally connected.
6. The efficient drug and substrate warming mixing device of claim 5, wherein, The rotating shaft (1) is welded with a first driven bevel gear (2), the sleeve shaft (3) is welded with a second driven bevel gear (4), the first driven bevel gear (2) and the second driven bevel gear (4) are symmetrically arranged, and the first driven bevel gear (2) and the second driven bevel gear (4) are engaged with the driving bevel gear (12).
7. The efficient drug and substrate warming mixing device of claim 6, wherein, The bottom of the rotating shaft (1) is welded with a first connecting rod (24) on both sides, the other ends of the two first connecting rods (24) are welded to the inner walls of the small ring (13) on both sides, the bottom of the sleeve shaft (3) is welded with a second connecting rod (26) on both sides, and the other ends of the two second connecting rods (26) are welded to the inner walls of the large ring (14) on both sides.
8. The efficient drug and substrate warming mixing device of claim 7, wherein, A plurality of first stirring shafts (19) are welded with a first gear (25), a horizontal plate (18) is welded to the lower part of the inner wall of the mixing box (7), a vertical rod (23) is welded vertically to the top of the horizontal plate (18), third connecting rods (22) are welded horizontally to the top ends of the vertical rod (23) on both sides, the other ends of the two third connecting rods (22) are welded with the same outer gear ring (21), and a plurality of first gears (25) are engaged with the outer gear ring (21).
9. The efficient drug and substrate warming mixing device of claim 8, wherein, A plurality of second stirring shafts (16) are welded with second gears (27), the upper two sides of the inner wall of the mixing box (7) are welded with support rods (28), and the other ends of the two support rods (28) are welded with the same internal gear ring (15), and the plurality of second gears (27) are engaged with the internal gear ring (15).