A stirring device capable of adding white sugar uniformly for controlling the particle size of nano calcium carbonate

CN224777894UActive Publication Date: 2026-09-22GUANGXI HUIBIN CALCIUM TECHNOLOGY CO LTD
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Patent Information

Application Number
CN202521241548.5
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-06-17
Publication Date
2026-09-22
Estimated Expiration
2035-06-17

AI Technical Summary

Technical Problem

[0002]纳米钙碳化是一种通过引入二氧化碳气体或其他碳源,将钙源与碳反应,形成纳米级碳化钙的过程,在纳米钙配方中添加白糖,改变碳化搅拌速度,降低粒径分散不均匀现象,调整粒径大小,以确保纳米钙产品的粒径在使用性能方面得到提升,需要使用搅拌设备进行搅拌混合,现有的搅拌设备在使用时还存在一定缺陷,就比如;

Benefits of technology

[0015]与现有技术相比,本实用新型的有益效果是:该纳米钙碳化粒径控制用可均匀添加白糖的搅拌设备,通过启动a电机和振动电机,让镂空环箱在旋转的同时不断振动,将白糖放入破壁机粉碎成粉末,然后打开破壁机底部的阀门,将粉末状白糖落入镂空环箱内,将白糖从镂空环箱的通孔内撒出,进而让该搅拌设备均匀添加白糖,具体内容如下:

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Abstract

The utility model relates to the technical field of stirring equipment, concretely to a kind of stirring equipment of even adding white sugar for nano calcium carbonization particle size control, it includes: mixing tank, controller, feeding hopper and T-shaped plate;The side of the mixing tank is connected with controller by bolt, and the inner wall of mixing tank is connected with feeding hopper and is penetrated in top, the upper surface of the mixing tank is connected with T-shaped plate by bolt, scattering mechanism and stirring mechanism are arranged in the mixing tank;The scattering mechanism includes the motor that is penetratedly connected in T-shaped plate a.The stirring equipment of even adding white sugar for nano calcium carbonization particle size control, by starting a motor and vibration motor, let hollow ring box vibrate constantly while rotating, white sugar is put into wall breaking machine and is crushed into powder, then the valve at the bottom of wall breaking machine is opened, powder-like white sugar falls into hollow ring box, white sugar is scattered from the through-hole of hollow ring box, and then the stirring equipment evenly adds white sugar.
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Description

Technical Field

[0001] This utility model relates to the field of stirring equipment technology, specifically to a stirring device for uniformly adding white sugar for controlling the particle size of nano-calcium carbonization. Background Technology

[0002] Nano-calcium carbonization is a process in which calcium source reacts with carbon by introducing carbon dioxide gas or other carbon sources to form nano-sized calcium carbide. Adding white sugar to the nano-calcium formula changes the carbonization stirring speed, reduces uneven particle size dispersion, and adjusts the particle size to ensure that the particle size of the nano-calcium product is improved in terms of performance. Stirring equipment is required for mixing, but existing stirring equipment still has certain defects in use, such as...

[0003] When adding sugar to existing mixing equipment, sugar is usually added directly from the feeding port. The added sugar piles up and is difficult to mix, resulting in uneven addition. In addition, the mixing rods of existing mixing equipment are mostly at a fixed height, which can easily create dead zones, resulting in long mixing time and poor mixing effect. Utility Model Content

[0004] The purpose of this invention is to provide a stirring device for controlling the particle size of nano-calcium carbonization and allowing for the uniform addition of white sugar, so as to solve the problems mentioned in the background art.

[0005] To achieve the above objectives, this utility model provides the following technical solution: a stirring device for uniformly adding white sugar for controlling the particle size of nano-calcium carbonization, comprising: a mixing tank, a controller, a feeding hopper, and a T-shaped plate;

[0006] A controller is bolted to one side of the mixing tank, and a feeding hopper is connected through the upper part of the inner wall of the mixing tank. A T-shaped plate is bolted to the upper surface of the mixing tank, and a feeding mechanism and a stirring mechanism are installed inside the mixing tank.

[0007] The material spreading mechanism includes a motor a that is connected through a T-shaped plate. The output end of the motor a is connected to a first bevel gear via a coupling. A second bevel gear is meshed with one side of the first bevel gear. A hollow shaft is connected to the bottom of the second bevel gear. The hollow shaft rotates through a bearing above the inner wall of the mixing tank.

[0008] Preferably, a support plate is connected to the bottom of the hollow shaft, and a T-shaped slide rod slides through the support plate. A hollow ring box is bolted to the upper surface of the T-shaped slide rod and is sleeved on the outside of the hollow shaft.

[0009] Preferably, the outer sleeve of the T-shaped slide bar has two sets of springs, which abut against the top and bottom of the support plate respectively, and the bottom of the hollow ring box is connected to a vibration motor through a motor base.

[0010] Preferably, a vertical cylinder is connected through the upper part of the inner wall of the mixing tank away from the feeding hopper, a wall-breaking machine is slidably connected inside the vertical cylinder, an outer ring is connected to the outside of the wall-breaking machine, a pressure sensor is connected to the bottom of the outer ring, and the pressure sensor is connected to the upper surface of the mixing tank.

[0011] Preferably, the stirring mechanism includes a motor b that is connected through the T-shaped plate near the lower part of motor a. The output end of motor b is connected to a third bevel gear via a coupling. A fourth bevel gear is meshed with one side of the third bevel gear. A hollow shaft is connected to the bottom of the fourth bevel gear. The hollow shaft is rotatably connected through the T-shaped plate and the hollow shaft.

[0012] Preferably, a stirring rod is slidably connected to the bottom of the hollow shaft via a groove.

[0013] Preferably, a limiting groove is formed on the inner wall of the sliding groove of the hollow shaft, and a limiting rod is slidably connected in the limiting groove, the limiting rod being fixed inside the stirring rod.

[0014] Preferably, an electric actuator is connected to the top of the stirring rod by screws, and the electric actuator is connected to the inner wall of the groove of the hollow shaft.

[0015] Compared with the prior art, the beneficial effects of this utility model are as follows: This nano-calcium carbonization particle size control device uses a stirring device that can uniformly add sugar. By starting the A motor and the vibration motor, the hollow ring box is continuously vibrated while rotating, putting the sugar into a blender to be crushed into powder. Then, the valve at the bottom of the blender is opened, and the powdered sugar falls into the hollow ring box. The sugar is then sprinkled out from the through holes of the hollow ring box, thus allowing the stirring device to uniformly add sugar. The specific details are as follows:

[0016] 1. By putting white sugar into the blender and weighing the required amount, the blender is started to crush the white sugar into powder. Then, motor A is started to drive the tray and the hollow ring box to rotate. At the same time, the vibration motor is started to drive the hollow ring box to vibrate up and down. Then, the valve at the bottom of the blender is opened to let the powdered white sugar fall into the hollow ring box. The hollow ring box vibrates continuously while rotating, and the white sugar is sprinkled out from the through hole of the hollow ring box, so that the blending equipment can add white sugar evenly.

[0017] 2. By starting motor b, the hollow shaft is driven to rotate. The hollow shaft drives the stirring rod to mix the sugar and nano-calcium. At the same time, the electric push rod is started to pull the stirring rod up and down to prevent the stirring rod from stirring at a fixed height, thereby improving the mixing efficiency of the mixing equipment. Attached Figure Description

[0018] Figure 1 This is a schematic diagram of the three-dimensional cross-sectional structure of the mixing tank of this utility model;

[0019] Figure 2 This is a three-dimensional structural diagram of the present invention;

[0020] Figure 3 This is a schematic diagram of the three-dimensional cross-sectional structure of the pallet of this utility model;

[0021] Figure 4 This is a schematic diagram of the three-dimensional cross-sectional structure of the blender of this utility model;

[0022] Figure 5 This is a schematic diagram of the three-dimensional cross-sectional structure of the hollow shaft of this utility model;

[0023] Figure 6 This is a schematic diagram of the three-dimensional cross-sectional structure of the hollow shaft of this utility model.

[0024] In the diagram: 1. Mixing tank; 2. Controller; 3. Feeding hopper; 4. T-shaped plate; 5. Spreading mechanism; 501. Motor a; 502. First bevel gear; 503. Second bevel gear; 504. Hollow shaft; 505. Support plate; 506. T-shaped slide bar; 507. Hollow ring box; 508. Spring; 509. Vibration motor; 510. Vertical cylinder; 511. Blender; 512. Outer ring; 513. Pressure sensor; 6. Stirring mechanism; 601. Motor b; 602. Third bevel gear; 603. Fourth bevel gear; 604. Hollow shaft; 605. Stirring rod; 606. Limiting groove; 607. Limiting rod; 608. Electric actuator. Detailed Implementation

[0025] 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.

[0026] Please see Figures 1-4This utility model provides a technical solution: a stirring device for uniformly adding white sugar to control the particle size of nano-calcium carbonization, comprising: a mixing tank 1, a controller 2, a feeding hopper 3, and a T-shaped plate 4; the controller 2 is bolted to one side of the mixing tank 1, and the feeding hopper 3 is threaded through the upper part of the inner wall of the mixing tank 1; the T-shaped plate 4 is bolted to the upper surface of the mixing tank 1; a feeding mechanism 5 and a stirring mechanism 6 are provided inside the mixing tank 1; the feeding mechanism 5 includes a motor 501 threaded through the T-shaped plate 4; the output end of the motor 501 is connected to a first bevel gear 502 via a coupling; a second bevel gear 503 is meshed with one side of the first bevel gear 502; a hollow shaft 504 is connected to the bottom of the second bevel gear 503; the hollow shaft 504 rotates through the mixing tank 1 via a bearing. Above the wall, a support plate 505 is connected to the bottom of the hollow shaft 504. A T-shaped slide rod 506 slides through the support plate 505. A hollow ring box 507 is bolted to the upper surface of the T-shaped slide rod 506. The hollow ring box 507 is sleeved on the outside of the hollow shaft 504. Two sets of springs 508 are sleeved on the outside of the T-shaped slide rod 506. The two sets of springs 508 abut against the top and bottom of the support plate 505 respectively. A vibrating motor 509 is connected to the bottom of the hollow ring box 507 through a motor base. A vertical cylinder 510 is connected to the upper part of the inner wall of the mixing tank 1 away from the feeding hopper 3. A wall-breaking machine 511 is slidably connected inside the vertical cylinder 510. An outer ring 512 is connected to the outside of the wall-breaking machine 511. A pressure sensor 513 is connected to the bottom of the outer ring 512. The pressure sensor 513 is connected to the upper surface of the mixing tank 1.

[0027] In practice, sugar is placed into the blender 511. The weight of the sugar causes the outer ring 512 to squeeze the pressure sensor 513 to weigh the required amount. Then, the blender 511 is started to crush the sugar into powder. Then, motor 501 is started to drive the first bevel gear 502 to drive the second bevel gear 503 and the hollow shaft 504 to rotate. The hollow shaft 504 drives the tray 505 and the hollow ring box 507 to rotate. At the same time, the vibration motor 509 drives the hollow ring box 507 to vibrate up and down, squeezing the spring 508. Then, the valve at the bottom of the blender 511 is opened, and the powdered sugar falls into the rotating hollow ring box 507. The hollow ring box 507 vibrates continuously while rotating, and the sugar is sprinkled out from the through hole of the hollow ring box 507, so that the blending equipment adds sugar evenly.

[0028] See Figures 1-6It is known that the stirring mechanism 6 includes a motor 601 connected through a T-shaped plate 4 near the lower part of motor a 501. The output end of motor b 601 is connected to a third bevel gear 602 via a coupling. A fourth bevel gear 603 is meshed with one side of the third bevel gear 602. A hollow shaft 604 is connected to the bottom of the fourth bevel gear 603. The hollow shaft 604 is rotatably connected through the T-shaped plate 4 and the hollow shaft 504. A stirring rod 605 is slidably connected to the bottom of the hollow shaft 604 via a slide groove. A limiting groove 606 is opened on the inner wall of the slide groove of the hollow shaft 604. A limiting rod 607 is slidably connected in the limiting groove 606. The limiting rod 607 is fixed through the stirring rod 605. An electric push rod 608 is connected to the top of the stirring rod 605 via screws. The electric push rod 608 is connected to the inner wall of the slide groove of the hollow shaft 604.

[0029] In practice, motor 601 is started to drive the third bevel gear 602 to rotate the fourth bevel gear 603. The fourth bevel gear 603 drives the hollow shaft 604 to rotate within the T-shaped plate 4. The hollow shaft 604 drives the stirring rod 605 to mix the sugar and nano-calcium. At the same time, the electric push rod 608 is started to pull the stirring rod 605 up and down, causing the limiting rod 607 to slide within the limiting groove 606, preventing the stirring rod 605 from stirring only at a fixed height, thus improving the mixing efficiency of the stirring equipment.

[0030] In summary: When using this nano-calcium carbonization particle size control mixing device for uniformly adding sugar, firstly, the nano-calcium ingredient is added from the feeding hopper 3 into the mixing tank 1. The controller 2 is operated to zero the weight of the blender 511. Based on the amount of nano-calcium ingredient added, the required amount of sugar is calculated, and the sugar is added into the blender 511. The pressure sensor 513 transmits the weight of the sugar to the controller 2. When the sugar weight reaches the required amount, the addition of sugar is stopped, the blender 511 is closed and started to break the sugar into powder. Then… Start motor a 501 and vibration motor 509 to rotate and vibrate the hollow ring box 507. At the same time, start motor b 601 and electric push rod 608 to move the stirring rod 605 up and down while stirring. Then open the valve of the blender 511 to drop the powdered white sugar into the hollow ring box 507 and sprinkle it into the mixing tank 1 for stirring and mixing. After the required stirring time, open the valve at the bottom of the mixing tank 1 to take out the mixed nano-calcium ingredients. The contents not described in detail in this instruction are existing technologies known to those skilled in the art.

[0031] Although the present invention has been described in detail with reference to the foregoing embodiments, those skilled in the art can still modify the technical solutions described in the foregoing embodiments or make equivalent substitutions for some technical features. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of the present invention should be included within the protection scope of the present invention.

Claims

1. A stirring device for uniformly adding white sugar to control the particle size of nano-calcium carbonization, comprising: The mixing tank (1), controller (2), feeding hopper (3), and T-shaped plate (4) are characterized in that; A controller (2) is bolted to one side of the mixing tank (1), and a feeding hopper (3) is connected through the upper part of the inner wall of the mixing tank (1). A T-shaped plate (4) is bolted to the upper surface of the mixing tank (1). A feeding mechanism (5) and a stirring mechanism (6) are provided inside the mixing tank (1). The spreading mechanism (5) includes an a motor (501) that is connected through a T-shaped plate (4). The output end of the a motor (501) is connected to a first bevel gear (502) via a coupling. A second bevel gear (503) is meshed with one side of the first bevel gear (502). A hollow shaft (504) is connected to the bottom of the second bevel gear (503). The hollow shaft (504) rotates through a bearing above the inner wall of the mixing tank (1).

2. The stirring device for uniformly adding white sugar for controlling the particle size of nano-calcium carbonization according to claim 1, characterized in that: The bottom of the hollow shaft (504) is connected to a support plate (505), and a T-shaped slide rod (506) slides through the support plate (505). A hollow ring box (507) is bolted to the upper surface of the T-shaped slide rod (506), and the hollow ring box (507) is sleeved on the outside of the hollow shaft (504).

3. The stirring device for uniformly adding white sugar for controlling the particle size of nano-calcium carbonization according to claim 2, characterized in that: The outer side of the T-shaped slide bar (506) is fitted with two sets of springs (508), which abut against the top and bottom of the support plate (505) respectively. The bottom of the hollow ring box (507) is connected to a vibration motor (509) via a motor base.

4. The stirring device for uniformly adding white sugar for controlling the particle size of nano-calcium carbonization according to claim 1, characterized in that: A vertical cylinder (510) is connected through the upper part of the inner wall of the mixing tank (1) away from the feeding hopper (3). A wall-breaking machine (511) is slidably connected inside the vertical cylinder (510). An outer ring (512) is connected to the outside of the wall-breaking machine (511). A pressure sensor (513) is connected to the bottom of the outer ring (512). The pressure sensor (513) is connected to the upper surface of the mixing tank (1).

5. The stirring device for uniformly adding white sugar for controlling the particle size of nano-calcium carbonization according to claim 1, characterized in that: The stirring mechanism (6) includes a motor (601) connected through the T-shaped plate (4) below the motor (501). The output end of the motor (601) is connected to a third bevel gear (602) via a coupling. A fourth bevel gear (603) is meshed with one side of the third bevel gear (602). A hollow shaft (604) is connected to the bottom of the fourth bevel gear (603). The hollow shaft (604) is rotatably connected through the T-shaped plate (4) and the hollow shaft (504).

6. The stirring device for uniformly adding white sugar for controlling the particle size of nano-calcium carbonization according to claim 5, characterized in that: The bottom of the hollow shaft (604) is slidably connected to a stirring rod (605) via a groove.

7. A stirring device for uniformly adding white sugar for controlling the particle size of nano-calcium carbonization according to claim 6, characterized in that: A limiting groove (606) is provided on the inner wall of the sliding groove of the hollow shaft (604), and a limiting rod (607) is slidably connected in the limiting groove (606). The limiting rod (607) is fixed inside the stirring rod (605).

8. A stirring device for uniformly adding white sugar for controlling the particle size of nano-calcium carbonization according to claim 6, characterized in that: An electric actuator (608) is connected to the top of the stirring rod (605) by screws, and the electric actuator (608) is connected to the inner wall of the groove of the hollow shaft (604).