Rotary filling machine
By improving the structural design of the rotary filling machine, uniform filling volume and stable conveying are achieved, solving the problems of uneven filling and unstable conveying in traditional rotary filling machines, and improving production efficiency and equipment adaptability.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- SHANGHAI YUEDA ENERGY SAVING TECH CO LTD
- Filing Date
- 2025-04-29
- Publication Date
- 2026-04-21
AI Technical Summary
Traditional rotary filling machines suffer from uneven filling volume, unstable conveying, and poor fixation during the filling process, resulting in low production efficiency and increased equipment costs.
The structure includes a first support plate, a second support plate, a transmission assembly, a sliding plate, and a conveyor belt. It achieves uniform material distribution and continuous conveying through motor drive. Combined with a worm gear transmission system and a telescopic clamping plate structure, it ensures stable container transportation and consistent filling volume.
It achieves uniform filling volume, stable conveying and fixing effect, improves production efficiency, prevents container displacement and damage during conveying, and optimizes the workflow.
Smart Images

Figure CN224147709U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of mechanical manufacturing, and in particular to a rotary filling machine. Background Technology
[0002] With the acceleration of industrialization, large-scale production has placed higher demands on the efficiency and precision of filling equipment. Rotary filling machines have emerged to meet this need. Their basic principle is to use a rotating worktable to drive multiple filling heads to work simultaneously, enabling the filling of multiple containers at the same time. For example, in the beverage industry, a single rotary filling machine production line can fill dozens of beverages simultaneously, greatly improving production efficiency.
[0003] Traditional rotary filling machines only have basic filling and production functions. Although they can maintain product quality stability to a certain extent, they also have many limitations. First, when filling containers, the filling machine cannot fill them continuously and evenly, resulting in large differences in the filling volume inside the containers. The inability to fill continuously also leads to low production efficiency.
[0004] Secondly, traditional filling machines lack good conveying performance. When the equipment is working, the containers cannot be transported quickly, which slows down the work efficiency and cannot ensure that each container can be filled accurately.
[0005] In addition, traditional filling machines lack good fixation. When containers are placed on the conveyor belt, they will shift and shake due to vibration during transportation, reducing production efficiency, and cannot accommodate containers of various sizes, thus increasing equipment costs.
[0006] In summary, existing filling machines have shortcomings in achieving uniform filling, stable transport, and proper fixation, failing to meet the demands of continuous filling operations. Therefore, developing a rotary filling machine is of significant practical importance for improving work efficiency, preventing container displacement on the conveyor belt, and preventing container breakage during transport. Utility Model Content
[0007] To overcome the above technical problems,
[0008] The technical solution of this utility model is as follows: a rotary filling machine, including a first support plate, a second support plate, and a dispensing component. Transmission components are provided on both sides of the first support plate, and a second support plate is provided on one side of the first support plate. A support frame is provided above the second support plate, and multiple support frames are provided. A feed inlet is provided above the support frame, and a dispensing component is provided outside the feed inlet. A discharge outlet is provided below the feed inlet, and a valve is provided above the discharge outlet. A mounting frame is provided outside the support frame, and a first motor is provided on one side of the mounting frame. A rotating plate is provided at the output end of the first motor, and a connecting rod is provided above the rotating plate. A sliding rod is provided inside the support frame, and a sliding block is provided above the sliding rod. A sliding plate is provided outside the sliding block, and the sliding plate is connected to the connecting rod via a rotating shaft. A first discharge cylinder is provided below the sliding plate. A fixing rod is provided inside the support frame, and a fixing block is provided outside the fixing rod. A fixing plate is provided outside the fixing block, and a second discharge cylinder is provided below the fixing plate.
[0009] Preferably, support legs are provided below the first support plate and the second support plate, and multiple sets of support legs are provided.
[0010] Preferably, a connecting plate is provided above the first support plate, a second motor is provided on one side of the connecting plate, a worm is provided at the output end of the second motor, a worm wheel is provided on one side of the worm, and a rotating disk is provided above the worm wheel. The rotating disk and the worm wheel are connected by a rotating shaft.
[0011] Preferably, multiple sets of circular holes are provided above the rotating disk, and the worm and worm wheel are meshed and connected.
[0012] Preferably, a connecting frame is provided above the first support plate, an arc plate is provided above the connecting frame, and a protective plate is provided above the arc plate.
[0013] Preferably, the transmission assembly includes a third motor, a bracket, a driving pulley, a driven pulley, a transmission belt, a rotating roller, and a conveyor belt. A bracket is provided on one side of the first support plate, and multiple brackets are provided. A third motor is provided above the bracket, and a driving pulley is provided at the output end of the third motor. Two rotating rollers are provided on the inner side of the bracket. The bracket and the rotating rollers are connected by a rotating shaft. A driven pulley is provided on the outer side of the rotating rollers, and the driven pulley is connected to the rotating rollers by a rotating shaft. The driven pulley and the driving pulley are connected by a transmission belt.
[0014] Preferably, a mounting plate is provided on one side of the bracket, and two sets of mounting plates are provided. A telescopic rod is provided on one side of the mounting plate, and a clamping plate is provided on one side of the telescopic rod.
[0015] The beneficial effects of this utility model: This utility model, through ingenious structural design, achieves a combination of uniform material distribution and continuous conveying functions. On one hand, during the filling machine's filling operation, the first motor drives the rotating plate to rotate. The rotation of the rotating plate causes the connecting rod to rotate above the rotating plate. The connecting rod is connected to the sliding plate via a rotating shaft. The rotation of the connecting rod causes the sliding plate and sliding block to reciprocate above the sliding rod. Opening the valve allows material to be conveyed from the inlet to the outlet. As the sliding plate reciprocates above the sliding rod, when the sliding plate moves the first discharge cylinder below the outlet, the material enters the first discharge cylinder. When the sliding plate moves the first discharge cylinder above the second discharge cylinder, the material in the first discharge cylinder falls into the can. This ensures consistent filling volume for each product and improves production efficiency.
[0016] On the other hand, by starting the third motor to drive the rotation of the active pulley, the rotation of the active pulley drives the rotation of the transmission belt, the rotation of the transmission belt drives the rotation of the driven pulley, the rotation of the driven pulley drives the rotation of the rotating roller, and the rotation of the rotating roller drives the rotation of the conveyor belt. Thus, when the equipment is working, the conveyor belt can stably transport empty cans to the filling area for filling, improving the conveying speed and increasing production efficiency. Attached Figure Description
[0017] Figure 1 The diagram shown is a first three-dimensional structural schematic of the rotary filling machine of this utility model;
[0018] Figure 2 The diagram shown is a three-dimensional structural schematic of the transmission component of the rotary filling machine of this utility model.
[0019] Figure 3 The diagram shown is a three-dimensional structural schematic of the first part of the rotary filling machine of this utility model;
[0020] Figure 4 The diagram shown is a three-dimensional structural schematic of the second part of the rotary filling machine of this utility model;
[0021] Explanation of reference numerals in the attached drawings: 1. First support plate; 2. Second support plate; 3. Support leg; 101. Support frame; 102. Feed inlet; 103. Discharge outlet; 104. Valve; 105. Mounting frame; 106. First motor; 107. Rotating plate; 108. First discharge cylinder; 109. Connecting rod; 110. Sliding rod; 111. Sliding block; 112. Sliding plate; 113. Fixed rod; 114. Fixed block; 115. Fixed plate; 116. 201. Second discharge cylinder; 202. Connecting plate; 203. Second motor; 204. Worm gear; 205. Worm wheel; 206. Rotating disc; 207. Connecting frame; 208. Arc plate; 209. Protective plate; 300. Third motor; 301. Support; 302. Drive pulley; 303. Driven pulley; 304. Driven belt; 305. Transmission belt; 306. Rotating roller; 307. Conveyor belt; 308. Mounting plate; 309. Telescopic rod; 310. Clamping plate. Detailed Implementation
[0022] The present invention will be further described below with reference to the accompanying drawings and embodiments.
[0023] Please see Figures 1-4This utility model provides an embodiment of a rotary filling machine, including a first support plate 1, a second support plate 2, and a material dispensing assembly. Transmission assemblies are arranged on both sides of the first support plate 1, and the second support plate 2 is arranged on one side of the first support plate 1. A support frame 101 is arranged above the second support plate 2, and multiple sets of support frames 101 are provided. A feed inlet 102 is arranged above the support frame 101, and a material dispensing assembly is arranged outside the feed inlet 102. A discharge outlet 103 is arranged below the feed inlet 102, and a valve is arranged above the discharge outlet 103. 104. A mounting frame 105 is provided on the outer side of the support frame 101. A first motor 106 is provided on one side of the mounting frame 105. A rotating plate 107 is provided at the output end of the first motor 106. A connecting rod 109 is provided above the rotating plate 107. A sliding rod 110 is provided on the inner side of the support frame 101. A sliding block 111 is provided above the sliding rod 110. A sliding plate 112 is provided on the outer side of the sliding block 111. The sliding plate 112 is connected to the connecting rod 109 through a rotating shaft. A first discharge cylinder 108 is provided below the sliding plate 112. A fixing rod 113 is provided on the inner side of the support frame 101, a fixing block 114 is provided on the outer side of the fixing rod 113, a fixing plate 115 is provided on the outer side of the fixing block 114, and a second discharge cylinder 116 is provided below the fixing plate 115. The first motor 106 is started to drive the rotating plate 107 to rotate, which in turn drives the connecting rod 109 to rotate above the rotating plate 107. The connecting rod 109 is connected to the sliding plate 112 via a rotating shaft, and the rotation of the connecting rod 109 causes the sliding plate 112 and the sliding block 111 to rotate... The sliding rod 110 reciprocates above the valve 104, allowing the material to be conveyed from the inlet 102 to the outlet 103. The sliding plate 112 reciprocates above the sliding rod 110. When the sliding plate 112 moves the first discharge cylinder 108 below the outlet 103, the material will enter the first discharge cylinder 108. When the sliding plate 112 moves the first discharge cylinder 108 above the second discharge cylinder 116, the material in the first discharge cylinder 108 will fall into the can, thus ensuring that the filling volume of each product is consistent and improving production efficiency.
[0024] Please see Figures 1-4In this embodiment, support legs 3 are provided below the first support plate 1 and the second support plate 2. Multiple sets of support legs 3 are provided. A connecting plate 201 is provided above the first support plate 1. A second motor 202 is provided on one side of the connecting plate 201. A worm gear 203 is provided at the output end of the second motor 202. A worm wheel 204 is provided on one side of the worm gear 203. A rotating disk 205 is provided above the worm wheel 204. The rotating disk 205 and the worm wheel 204 are connected by a rotating shaft. Multiple sets of circular holes are opened above the rotating disk 205, and the worm gear 203 and the worm wheel 204 are meshed together. A connecting frame 206 is provided above the support plate 1, an arc plate 207 is provided above the connecting frame 206, and a protective plate 208 is provided above the arc plate 207. By starting the second motor 202, the worm gear 203 is driven to rotate, which in turn drives the worm wheel 204 to rotate, which in turn drives the rotating disk 205 to rotate. Thus, when the transmission component transports the container to the top of the rotating disk 205, the rotating disk 205 can sequentially carry the container to the bottom of the filling area for filling, optimizing the workflow and improving work efficiency.
[0025] Please see Figures 1-4In this embodiment, the transmission assembly includes a third motor 301, a bracket 302, a drive pulley 303, a driven pulley 304, a transmission belt 305, a rotating roller 306, and a conveyor belt 307. A bracket 302 is provided on one side of the first support plate 1, and multiple sets of brackets 302 are provided. A third motor 301 is positioned above the bracket 302. A drive pulley 303 is located at the output end of the third motor 301. Two sets of rotating rollers 306 are located inside the bracket 302. The bracket 302 and the rotating rollers 306 are connected by a rotating shaft. A driven pulley 304 is located outside the rotating rollers 306, and the driven pulley 304 is connected to the rotating rollers 306 by a rotating shaft. The driven pulley 304 and the drive pulley 303 are connected by a transmission belt 305. Starting the third motor 301 drives the drive pulley 303 to rotate, and the rotation of the drive pulley 303 drives the transmission belt 305. The rotation of the 05 drive the driven pulley 304 via the transmission belt 305, which in turn drives the rotating roller 306, which in turn drives the conveyor belt 307. This allows the conveyor belt 307 to stably transport empty cans to the filling area during operation, increasing conveying speed and production efficiency. A mounting plate 308 is provided on one side of the support 302. Two sets of mounting plates 308 are provided, with a telescopic rod 309 on one side and a clamping plate 310 on the other. Adjusting the telescopic rod 309 allows for adjustment of the width between the two clamping plates 310, enabling adjustments based on different product sizes. This prevents displacement of containers above the conveyor belt 307 due to vibration, ensuring stable transport of containers to the filling area and preventing damage during transport.
[0026] During operation, the first motor 106 is started to drive the rotating plate 107 to rotate. The rotation of the rotating plate 107 drives the connecting rod 109 to rotate above the rotating plate 107. The connecting rod 109 is connected to the sliding plate 112 via a rotating shaft. The rotation of the connecting rod 109 drives the sliding plate 112 and the sliding block 111 to reciprocate above the sliding rod 110. The valve 104 is opened to allow the material to be conveyed from the feed port 102 to the discharge port 103. The sliding plate 112 reciprocates above the sliding rod 110. When the sliding plate... When the sliding plate 112 moves the first discharge cylinder 108 below the discharge port 103, the material will enter the first discharge cylinder 108. When the sliding plate 112 moves the first discharge cylinder 108 above the second discharge cylinder 116, the material in the first discharge cylinder 108 will fall into the can, thus ensuring consistent filling volume for each product and improving production efficiency. The second motor 202 is activated to rotate the worm gear 203, which in turn rotates the worm wheel 204, which in turn rotates the rotating disk 205. The system is designed to optimize workflow and improve efficiency. By starting the third motor 301, the drive pulley 303 rotates, which in turn rotates the transmission belt 305, which in turn rotates the driven pulley 304, which in turn rotates the rotating roller 306, which in turn rotates the conveyor belt 307. This allows the conveyor belt 307 to stably transport empty cans to the filling area during operation, increasing conveying speed and production efficiency. Adjusting the telescopic rod 309 allows for adjustment of the width between the two sets of clamping plates 310, enabling adjustments based on different product sizes. This prevents displacement of containers above the conveyor belt 307 due to vibration, ensuring stable transport to the filling area and preventing damage during transport.
[0027] Through the above steps, the first motor 106 is started to drive the rotating plate 107 to rotate. The rotation of the rotating plate 107 drives the connecting rod 109 to rotate above the rotating plate 107. The connecting rod 109 is connected to the sliding plate 112 through a rotating shaft. The rotation of the connecting rod 109 drives the sliding plate 112 and the sliding block 111 to reciprocate above the sliding rod 110. The valve 104 is opened to allow the material to be transported from the feed port 102 to the discharge port 103. The sliding plate 112 reciprocates above the sliding rod 110. When the sliding plate 112 drives the first discharge cylinder 108 to below the discharge port 103, the material will enter the first discharge cylinder 108. When the sliding plate 112 drives the first discharge cylinder 108 to above the second discharge cylinder 116, the material in the first discharge cylinder 108 will fall into the can. This ensures that the filling volume of each product is consistent and improves production efficiency.
Claims
1. Rotary filling machine comprising a first support plate (1), characterized in that: It also includes a second support plate (2) and a material distribution assembly. Transmission assemblies are provided on both sides of the first support plate (1). A second support plate (2) is provided on one side of the first support plate (1). A support frame (101) is provided above the second support plate (2). Multiple sets of support frames (101) are provided. A feed inlet (102) is provided above the support frame (101). A material distribution assembly is provided outside the feed inlet (102). A discharge outlet (103) is provided below the feed inlet (102). A valve (104) is provided above the discharge outlet (103). A mounting frame (105) is provided outside the support frame (101). A first motor (106) is provided on one side of the mounting frame (105). The output end of the first motor (106) is provided with... There is a rotating plate (107), a connecting rod (109) is provided above the rotating plate (107), a sliding rod (110) is provided on the inner side of the support frame (101), a sliding block (111) is provided above the sliding rod (110), a sliding plate (112) is provided on the outer side of the sliding block (111), the sliding plate (112) and the connecting rod (109) are connected by a rotating shaft, a first discharge cylinder (108) is provided below the sliding plate (112), a fixing rod (113) is provided on the inner side of the support frame (101), a fixing block (114) is provided on the outer side of the fixing rod (113), a fixing plate (115) is provided on the outer side of the fixing block (114), and a second discharge cylinder (116) is provided below the fixing plate (115).
2. The rotary filling machine according to claim 1, characterized in that: Support legs (3) are provided below the first support plate (1) and the second support plate (2), and multiple sets of support legs (3) are provided.
3. The rotary filler according to claim 1, characterized in that: A connecting plate (201) is provided above the first support plate (1). A second motor (202) is provided on one side of the connecting plate (201). A worm (203) is provided at the output end of the second motor (202). A worm wheel (204) is provided on one side of the worm (203). A rotating disk (205) is provided above the worm wheel (204). The rotating disk (205) and the worm wheel (204) are connected by a rotating shaft.
4. The rotary filler according to claim 3, characterized in that: Multiple sets of round holes are opened above the rotating disk (205), and the worm (203) and worm wheel (204) are meshed and connected.
5. The rotary filler according to claim 3, characterized in that: A connecting frame (206) is provided above the first support plate (1), an arc plate (207) is provided above the connecting frame (206), and a protective plate (208) is provided above the arc plate (207).
6. The rotary filler according to claim 1, characterized in that: The transmission assembly includes a third motor (301), a bracket (302), a drive pulley (303), a driven pulley (304), a transmission belt (305), a rotating roller (306), and a conveyor belt (307). A bracket (302) is provided on one side of the first support plate (1). Multiple sets of brackets (302) are provided. A third motor (301) is provided above the bracket (302). A drive pulley (303) is provided at the output end of the third motor (301). A rotating roller (306) is provided on the inner side of the bracket (302). Two sets of rotating rollers (306) are provided. The bracket (302) and the rotating roller (306) are connected by a rotating shaft. A driven pulley (304) is provided on the outer side of the rotating roller (306). The driven pulley (304) and the rotating roller (306) are connected by a rotating shaft. The driven pulley (304) and the drive pulley (303) are connected by a transmission belt (305).
7. The rotary filler according to claim 6, characterized in that: A mounting plate (308) is provided on one side of the bracket (302). Two sets of mounting plates (308) are provided. A telescopic rod (309) is provided on one side of the mounting plate (308). A clamping plate (310) is provided on one side of the telescopic rod (309).