Odor removing agent producing, processing and mixing equipment

By designing multi-stage operating transmission elements and components, the efficient vibration and mixing of odor remover production and processing mixing equipment has been achieved, solving the problem of insufficient vibration and mixing rate in existing equipment and improving the mixing efficiency of odor remover raw materials.

CN223788398UActive Publication Date: 2026-01-13ZHENGZHOU JUHUI IND CO LTD
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Patent Information

Application Number
CN202423182109.X
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-12-23
Publication Date
2026-01-13
Estimated Expiration
2034-12-23

AI Technical Summary

Technical Problem

Existing odor removal agent production and processing mixing equipment has insufficient vibration and mixing speed of the stirring shaft and stirring paddle, making it difficult to meet the production needs of odor removal agents.

Method used

An odor removal agent production and processing mixing equipment was designed. The equipment uses a transmission element to make the oscillating and mixing part swing back and forth while simultaneously swaying horizontally left and right, thus increasing the oscillating and mixing operation mode. The equipment includes a rotating shaft, a stud, a threaded cylinder, and a transmission assembly. A drive motor drives a reciprocating screw and gear meshing connection to achieve multi-stage operation.

Benefits of technology

The increased shaking rate of raw materials during the odor remover production process ensures thorough mixing of the raw materials, avoids relative sliding between the test tube and the storage tank and movement of the device, and improves processing efficiency.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a peculiar smell removing agent production and processing mixing device which comprises an oscillation shell, a hollow cylinder is arranged on the left wall of the oscillation shell, a sliding rod is connected in the hollow cylinder in a sliding mode, a shaking-up base is arranged at the right end of the sliding rod, and the peculiar smell removing agent production and processing mixing device further comprises an efficient oscillation mechanism. The efficient oscillation mechanism comprises a first rotating shaft, a stud, a threaded cylinder and a transmission assembly, the first rotating shaft is rotationally connected to the right wall of the oscillation shell through a first bearing, the stud is arranged at the left end of the first rotating shaft, the threaded cylinder is in threaded connection with the left end of the outer side of the stud, and the left end of the threaded cylinder is fixedly connected with the right side of the shaking-up base; according to the mixing equipment for producing, processing and mixing the peculiar smell removing agent, one stage drives multiple stages to operate, the oscillating and shaking part swings back and forth in a reciprocating mode and swings left and right horizontally in a reciprocating mode at the same time through the transmission element, and the oscillating operation mode of the oscillating and shaking part is increased; therefore, the shaking and shaking rate of each raw material for producing and processing the peculiar smell removing agent in the test tube is improved.
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Description

Technical Field

[0001] This utility model relates to the field of odor removal agent production technology, specifically to an odor removal agent production, processing and mixing equipment. Background Technology

[0002] This liquid odor-removing product can eliminate foot odor and body odor. It is safe, ingestible, and has a significant effect on removing bathroom odors and smoke. It can also be added to various filter cottons. In the production process of odor removers, it is necessary to thoroughly mix all raw materials. This process requires mixing equipment for odor remover production. Existing technology: Patent CN211636346 U discloses a mixing device for carbon adsorbent production, including support legs, a mixing platform, a mixing tank, and a stirring assembly. The support legs are fixed to the four corners of the bottom surface of the mixing platform. The mixing tank and the stirring assembly are both installed on the mixing platform. The top of the mixing tank is an inlet, and the bottom is a outlet. It also includes a feeding tank, which is installed on the mixing platform and located directly above the mixing tank. A first feeding hopper and a second feeding hopper are respectively installed at both ends of the upper part of the feeding tank. The feeding hopper is also equipped with a conveying structure; the conveying structure includes a conveying motor and a double spiral conveying shaft, which can premix and polymerize through the double spiral conveying shaft, and introduce the material into the mixing hopper for stirring and mixing, which greatly improves the mixing efficiency, avoids the problem of secondary mixing, and improves the processing efficiency. However, this device also has the following problems: the shaking method of the stirring shaft and stirring paddle is relatively simple, and there is room for improvement in the shaking rate of the raw materials used in the production and processing of odor removal agents. Therefore, we propose a mixing equipment for the production and processing of odor removal agents. Utility Model Content

[0003] The technical problem to be solved by this utility model is to overcome the existing defects and provide a mixing device for the production and processing of odor removers. This device drives multiple stages of operation through a single stage. Through the transmission element, the oscillating and shaking part swings back and forth while swaying horizontally left and right, increasing the oscillation and shaking operation mode of the oscillating and shaking part itself, thereby increasing the oscillation and shaking rate of each raw material used in the production and processing of odor removers in the test tube, which can effectively solve the problems in the background technology.

[0004] To achieve the above objectives, this utility model provides the following technical solution: an odor removal agent production and processing mixing equipment, including a vibrating shell, a hollow cylinder on the left wall of the vibrating shell, a sliding rod slidably connected inside the hollow cylinder, a shaking seat on the right end of the sliding rod, and a high-efficiency vibration mechanism;

[0005] High-efficiency oscillation mechanism: It includes a rotating shaft, a stud, a threaded cylinder, and a transmission assembly. The rotating shaft is rotatably connected to the right wall of the oscillation shell through a bearing. The left end of the rotating shaft is provided with a stud, and the outer left end of the stud is threadedly connected to a threaded cylinder. The left end of the threaded cylinder is fixedly connected to the right side of the shaking seat. A transmission assembly is provided between the rotating shaft, the shaking seat, and the oscillation shell. This device drives multiple stages of operation. Through the transmission element, the oscillating and shaking parts swing back and forth while simultaneously swaying horizontally left and right, increasing the oscillation operation mode of the oscillating and shaking parts themselves, thereby improving the oscillation and shaking rate of each raw material used in the production and processing of odor removers in test tubes.

[0006] Furthermore, a control switch is provided on the inclined surface at the front end of the oscillating shell. The input end of the control switch is electrically connected to an external power supply, making it convenient to control electrical components.

[0007] Furthermore, the shaker seat has five evenly distributed storage slots inside, and the inner wall of each storage slot is equipped with a rubber ring to prevent the test tube from sliding relative to the storage slot during the mixing process of the odor remover.

[0008] Furthermore, the transmission assembly includes a reciprocating screw, a rack and pinion, and a gear. The gear is located at the right end of the rotating shaft. The rack and pinion are slidably connected in a groove on the right wall of the vibrating shell. The rack and pinion are meshed with the gear. The reciprocating screw is rotatably connected inside the groove through a bearing. The reciprocating screw is threadedly connected to the rack and pinion, so that the rotating shaft inside the odor removal agent production and processing mixing equipment rotates alternately in both directions.

[0009] Furthermore, the transmission assembly also includes a connecting rod, bevel gear one, bevel gear two, a hollow shaft, an annular seat, and a telescopic rod. The hollow shaft is rotatably connected to the outer left end of the rotating shaft one via bearing three. Both the hollow shaft and the outer right end of the rotating shaft one are provided with bevel gear one. The right wall of the vibrating shell is provided with bevel gear two via the connecting rod. Bevel gear one is meshed with bevel gear two. The outer right end of the hollow shaft is provided with an annular seat. The right side of the annular seat is fixedly connected to the right side of the shaking seat via the telescopic ends of four evenly distributed telescopic rods, so that the rotating shaft one and the shaking seat rotate in opposite directions relative to each other in the odor removal agent production and processing mixing equipment.

[0010] Furthermore, the high-efficiency oscillation mechanism also includes a drive motor, which is located at the upper right front end of the oscillation shell. The input end of the drive motor is electrically connected to the output end of the control switch, and the output shaft of the drive motor is fixedly connected to the front end of the reciprocating lead screw, providing power for the odor removal agent production and processing mixing equipment to oscillate and mix the odor removal agent.

[0011] Furthermore, the lower side of the oscillating shell is provided with four evenly distributed rubber support legs to prevent relative movement between the odor removal agent production and processing mixing equipment and its placement position during operation.

[0012] Compared with the prior art, the beneficial effects of this utility model are as follows: This odor removal agent production and processing mixing equipment has the following advantages:

[0013] During the mixing process of odor remover production, the shaking and oscillating parts are oscillated back and forth and horizontally back and forth simultaneously through the rotating shaft, drive motor, stud, threaded cylinder and transmission components. This increases the shaking and oscillating speed of the raw materials used in the production of odor remover in the test tube. Attached Figure Description

[0014] Figure 1 This is a schematic diagram of the structure of this utility model;

[0015] Figure 2 This is an enlarged structural diagram of point A in this utility model.

[0016] In the diagram: 1. Vibrating shell, 2. Control switch, 3. Hollow cylinder, 4. Slide rod, 5. Shaking seat, 6. Rubber ring, 7. High-efficiency vibration mechanism, 71. Rotating shaft one, 72. Drive motor, 73. Stud, 74. Threaded cylinder, 75. Transmission assembly, 751. Reciprocating screw, 752. Rack plate, 753. Gear, 754. Connecting rod, 755. Bevel gear one, 756. Bevel gear two, 757. Hollow shaft, 758. Ring seat, 759. Telescopic rod, 8. Rubber support leg. Detailed Implementation

[0017] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.

[0018] Please see Figure 1-2This embodiment provides a technical solution: an odor removal agent production and processing mixing device, including a vibrating shell 1, a hollow cylinder 3 on the left wall of the vibrating shell 1, a sliding rod 4 slidably connected inside the hollow cylinder 3, a shaking seat 5 at the right end of the sliding rod 4, a control switch 2 on the front inclined surface of the vibrating shell 1, the input end of the control switch 2 being electrically connected to an external power source, five evenly distributed storage slots inside the shaking seat 5, each storage slot having a rubber ring 6 on its inner wall, and four evenly distributed rubber support legs 8 on the lower side of the vibrating shell 1. When vibrating and shaking during the odor removal agent production and processing mixing process, firstly, the test tubes containing the raw materials for odor removal agent production and processing are capped and inserted into the storage slots on the shaking seat 5. Through the contact friction between the rubber ring 6 and the outside of the test tube, the relative sliding phenomenon between the test tube and the storage slot during the odor removal agent production and processing mixing process is avoided. Through the rubber support legs 8, the contact friction between the bottom of the device and the surface of the placement position is increased, preventing relative movement between the device and the placement position during operation. It also includes a high-efficiency vibration mechanism 7.

[0019] The high-efficiency oscillation mechanism 7 includes a rotating shaft 71, a stud 73, a threaded cylinder 74, and a transmission assembly 75. The rotating shaft 71 is rotatably connected to the right wall of the oscillating shell 1 via a bearing 1. The left end of the rotating shaft 71 is provided with a stud 73, and the outer left end of the stud 73 is threadedly connected to the threaded cylinder 74. The left end of the threaded cylinder 74 is fixedly connected to the right side of the shaking seat 5. The transmission assembly 75 is provided between the rotating shaft 71, the shaking seat 5, and the oscillating shell 1. The transmission assembly 75 includes a reciprocating screw 751, a rack 752, and a gear 753. The gear 753 is located at the right end of the rotating shaft 71. The rack 752 is slidably connected in a groove opened on the right wall of the oscillating shell 1. The rack 752 meshes with the gear 753. The reciprocating screw 751 is rotatably connected inside the groove via a bearing 2. The reciprocating screw 751 is threadedly connected to the rack plate 752. The transmission assembly 75 also includes a connecting rod 754, a first bevel gear 755, a second bevel gear 756, a hollow shaft 757, an annular seat 758, and a telescopic rod 759. The hollow shaft 757 is rotatably connected to the outer left end of the first rotating shaft 71 via a bearing 3. Both the hollow shaft 757 and the outer right end of the first rotating shaft 71 are provided with a first bevel gear 755. The right wall of the oscillating shell 1 is provided with a second bevel gear 756 via the connecting rod 754. The first bevel gear 755 is meshed with the second bevel gear 756. The outer right end of the hollow shaft 757 is provided with an annular seat 758. The right side of the annular seat 758 is fixedly connected to the right side of the shaking seat 5 via the telescopic ends of four evenly distributed telescopic rods 759. The high-efficiency oscillation mechanism 7 also includes a drive motor 72. The drive motor 72 is located at the upper right front end of the vibrating shell 1. The input end of the drive motor 72 is electrically connected to the output end of the control switch 2. The output shaft of the drive motor 72 is fixedly connected to the front end of the reciprocating screw 751. The center of the hollow cylinder 3 is horizontally aligned with the axis of the rotating shaft 71. The control switch 2 starts the drive motor 72, causing its output shaft to drive the reciprocating screw 751 to rotate. The reciprocating screw 751 is connected by a thread, causing the rack plate 752 to slide back and forth along the longitudinal direction of the slide groove. When the rack plate 752 slides forward along the longitudinal direction of the slide groove, the rack plate 752 is engaged with the gear 753, causing the rotating shaft 71 to rotate forward. The rotating shaft 71 is engaged with the bevel gear 755 and the bevel gear 756, causing the hollow shaft 757 to rotate in the reverse direction. 7. The swinging seat 5 swings counter-clockwise around the axis of the rotating shaft 71 via the telescopic ends of the annular seat 758 and the telescopic rod 759. During this process, the rotating shaft 71 drives the stud 73 to rotate clockwise, and the swinging seat 5 drives the threaded cylinder 74 to rotate counter-clockwise. Through the threaded connection between the stud 73 and the swinging seat 5, the swinging seat 5 moves horizontally to the right. The telescopic end of the telescopic rod 759 extends and retracts adaptively as the swinging seat 5 moves to the right. The slide rod 4 slides adaptively along the interior of the hollow cylinder 3. When the rack plate 752 slides backward along the longitudinal direction of the groove, the rotating shaft 71 rotates counter-clockwise through the same principle, and the hollow shaft 757 rotates clockwise through the same principle. Thus, the swinging seat 5 swings clockwise around the axis of the rotating shaft 71 while moving horizontally to the left. Therefore, the rack plate 752 slides back and forth along the longitudinal direction of the groove.The shaking seat 5 oscillates back and forth around the axis of rotation 71 while simultaneously swaying horizontally left and right. By increasing the oscillation mode of the shaking seat 5, the shaking rate of the raw materials used in the production and processing of the odor remover in the test tube is accelerated. This device operates in a multi-stage manner, with transmission elements causing the shaking and oscillating parts to oscillate back and forth while simultaneously swaying horizontally left and right, increasing the shaking and oscillation mode of the shaking and oscillating parts themselves, thereby improving the shaking rate of the raw materials used in the production and processing of the odor remover in the test tube.

[0020] The working principle of the odor removal agent production and processing mixing equipment provided by this utility model is as follows: The core of the hollow cylinder 3 is horizontally aligned with the axis of the rotating shaft 71. During the mixing process of the odor removal agent, when shaking and mixing, the test tubes containing the raw materials for each odor removal agent are first capped and inserted into the storage slot on the shaking seat 5. Through the contact friction between the rubber ring 6 and the outside of the test tube, the relative sliding phenomenon between the test tube and the storage slot during the mixing process of the odor removal agent is avoided. Then, the control switch 2 starts the drive motor. 72 causes its output shaft to drive the reciprocating screw 751 to rotate. The reciprocating screw 751 is connected by a thread, causing the rack plate 752 to slide back and forth along the longitudinal direction of the slide groove. When the rack plate 752 slides forward along the longitudinal direction of the slide groove, the rack plate 752 is connected by a meshing gear 753, causing the rotating shaft 71 to rotate forward. The rotating shaft 71 is connected by a meshing bevel gear 755 and a bevel gear 756, causing the hollow shaft 757 to rotate in the reverse direction. The hollow shaft 757, through the extension and retraction ends of the ring seat 758 and the telescopic rod 759, causes the rocker seat 5 to rotate around the rotating shaft 757. The axis of 71 swings in reverse. During this process, the rotating shaft 71 drives the stud 73 to rotate clockwise, and the shaking seat 5 drives the threaded cylinder 74 to rotate counterclockwise. Through the threaded connection between the stud 73 and the shaking seat 5, the shaking seat 5 moves horizontally to the right. The telescopic end of the telescopic rod 759 extends and retracts adaptively as the shaking seat 5 moves to the right. The slide rod 4 slides adaptively along the inside of the hollow cylinder 3. When the rack plate 752 slides backward along the longitudinal direction of the slide groove, the rotating shaft 71 rotates counterclockwise through the same principle, and the hollow shaft 757 rotates clockwise through the same principle. Thus, the shaking seat 5 rotates around the axis through the same principle. While the axis of shaft 71 swings forward, it moves horizontally to the left. Therefore, the rack plate 752 slides longitudinally along the slide groove, causing the shaking seat 5 to swing back and forth around the axis of shaft 71 while swaying horizontally left and right. By increasing the oscillation operation mode of the shaking seat 5, the shaking rate of each raw material used in the production and processing of odor remover in the test tube is accelerated. It is easy to use. The rubber support leg 8 increases the contact friction between the bottom of the device and the surface of the placement position, avoiding relative movement between the device and the placement position during operation.

[0021] It is worth noting that the drive motor 72 disclosed in the above embodiments can be 130SZ01, and the control switch 2 is provided with a control button corresponding to the drive motor 72 for controlling its switching.

[0022] The above description is merely an embodiment of this utility model and does not limit the patent scope of this utility model. Any equivalent structural or procedural transformations made based on the content of this utility model specification and drawings, or direct or indirect applications in other related technical fields, are similarly included within the patent protection scope of this utility model.

Claims

1. A mixing device for producing and processing odor removers, comprising a vibrating shell (1), wherein a hollow cylinder (3) is provided on the left wall of the vibrating shell (1), a sliding rod (4) is slidably connected inside the hollow cylinder (3), and a shaking seat (5) is provided at the right end of the sliding rod (4), characterized in that: It also includes high efficiency oscillation mechanism (7) ; High efficiency oscillation mechanism (7) : it includes the pivot one (71), the stud (73), the threaded cylinder (74) and the transmission assembly (75), the pivot one (71) is rotatably connected to the right wall of the oscillation shell (1) through bearing one, the left end of the pivot one (71) is provided with the stud (73), the outer side left end of the stud (73) is threadedly connected with the threaded cylinder (74), the left end of the threaded cylinder (74) is fixedly connected with the right side of the shaking seat (5), the transmission assembly (75) is arranged between the pivot one (71), the shaking seat (5) and the oscillation shell (1).

2. The processing mixing device for producing an odor removing agent according to claim 1, wherein: The control switch (2) is arranged on the front inclined surface of the oscillation shell (1), and the input end of the control switch (2) is electrically connected with an external power supply.

3. The processing mixing device for producing an odor removing agent according to claim 1, wherein: Five evenly distributed storage grooves are formed in the inside of the shaking seat (5), and the inner wall of each storage groove is provided with a rubber ring (6).

4. The processing mixing device for producing an odor removing agent according to claim 2, wherein: The transmission assembly (75) includes a reciprocating screw (751), a rack plate (752) and a gear (753), the gear (753) is arranged at the right end of the pivot one (71), the rack plate (752) is slidably connected in the sliding groove formed in the right wall of the oscillation shell (1), the rack plate (752) is in meshing connection with the gear (753), and the reciprocating screw (751) is rotatably connected in the inside of the sliding groove through bearing two, and the reciprocating screw (751) is in threaded connection with the rack plate (752).

5. The processing equipment for producing an odor removal agent according to claim 4, wherein: The transmission assembly (75) further includes a connecting rod (754), a bevel gear one (755), a bevel gear two (756), a hollow shaft (757), an annular seat (758) and an extension rod (759), the hollow shaft (757) is rotatably connected to the outer side left end of the pivot one (71) through bearing three, the hollow shaft (757) and the outer side right end of the pivot one (71) are both provided with the bevel gear one (755), the right wall of the oscillation shell (1) is provided with the bevel gear two (756) through the connecting rod (754), the bevel gear one (755) is in meshing connection with the bevel gear two (756), the outer side right end of the hollow shaft (757) is provided with the annular seat (758), and the right side of the annular seat (758) is fixedly connected with the right side of the shaking seat (5) through the extension ends of four evenly distributed extension rods (759).

6. The processing equipment for producing an odor removal agent according to claim 4, wherein: The high efficiency oscillation mechanism (7) further includes a driving motor (72), the driving motor (72) is arranged at the front right upper end of the oscillation shell (1), the input end of the driving motor (72) is electrically connected with the output end of the control switch (2), and the output shaft of the driving motor (72) is fixedly connected with the front end of the reciprocating screw (751).

7. The processing mixing device for producing an odor removing agent according to claim 1, wherein: Four evenly distributed rubber legs (8) are arranged on the lower side of the oscillation shell (1).

Citation Information

Patent Citations

  • Mixing device for carbon adsorbent production

    CN211636346U