Tea oil finished product filling equipment

By designing an automated filling machine and utilizing the coordinated movement of piston blocks and scrapers, the problem of tea oil adhesion is solved, automatic cleaning of the filling cylinders is achieved, cleanliness and work efficiency are improved, and filling quality is ensured.

CN121894589APending Publication Date: 2026-04-21ANHUI KANGSHENGYUAN ECOLOGICAL AGRI CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
ANHUI KANGSHENGYUAN ECOLOGICAL AGRI CO LTD
Filing Date
2023-05-26
Publication Date
2026-04-21

AI Technical Summary

Technical Problem

After prolonged use, tea oil tends to adhere to the inside of the filling cylinders of existing tea oil filling equipment, making cleaning difficult, increasing the labor intensity of workers, and affecting the next use of the equipment.

Method used

An automated filling machine was designed, comprising components such as a lifting plate, a filling cylinder, a limit rod, an oil storage tank, a conveyor belt, and an electric push rod. Through the coordinated movement of the piston block and the scraper, the inner wall of the filling cylinder is automatically cleaned, reducing the need for manual cleaning.

Benefits of technology

It improved the cleanliness of the filling cylinders, reduced the amount of manual cleaning work, increased work efficiency, prevented tea oil from deteriorating, and ensured filling quality.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention relates to the technical field of tea oil production, in particular to tea oil finished product filling equipment which is characterized in that after a piston block makes contact with a scraping plate, the piston block moves downwards along with the piston block, the piston block extrudes the scraping plate, when the scraping plate is extruded, a connecting rod is pushed, and the connecting rod is driven to slide in an arc-shaped groove; due to the fact that an arc-shaped groove is arranged in an arc shape, a connecting rod is guided by the arc-shaped groove, the connecting rod and a scraping plate rotate clockwise, when the scraping plate rotates, the scraping plate scrapes the lower end of a piston block, oil tea is prevented from being attached to the piston block, when a second electric push rod contracts, the piston block resets, and at the moment, a valve is closed; and through vertical movement of the piston block, the cleaning degree of the interior of the canning barrel is improved to a certain degree, the situation that the canning barrel needs to be manually cleaned during working is avoided, and then the working efficiency is improved.
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Description

Technical Field

[0001] This invention relates to the field of tea oil production technology, specifically to a tea oil product bottling equipment. Background Technology

[0002] Camellia oil is a traditional edible oil for residents in the hilly areas of southern my country. It has a low freezing point (around -15°C, about 10°C lower than olive oil), so it has good low-temperature stability. At the same time, because camellia oil has a low content of polyunsaturated fatty acids that are easy to auto-oxidize (lower iodine value), it is more stable than other liquid oils. When used in the food industry, it can improve the nutritional value and flavor of food.

[0003] Based on the aforementioned characteristics of tea oil, compared with general high-grade edible oils, tea oil has higher requirements for color, acid value, peroxides, heavy metals, and hygiene indicators, especially color and peroxides.

[0004] Therefore, the production process and equipment requirements for tea oil are quite strict. The main processes of tea oil production include freezing, filtration, storage, bottling, and injection.

[0005] In the above process, the bottling methods for tea oil are different. For example, small vendors will bottle tea oil manually, while factories will use automated machinery for bottling.

[0006] However, when the aforementioned factories use mechanical automation for canning, the equipment has the following shortcomings.

[0007] When existing bottling equipment is in operation, after prolonged use, when staff leave work, or when the equipment is shut down, tea oil, due to its viscosity, tends to adhere to the inside of the bottling cylinders. To remove this adhered tea oil, staff usually manually clean the bottling cylinders to prevent it from spoiling and affecting future use. However, manual cleaning increases the workload for staff, and cleaning a large number of tea oil bottling cylinders manually can be quite troublesome.

[0008] In summary, to solve the technical problems raised in this paper, this invention proposes a tea oil finished product filling equipment. Summary of the Invention

[0009] To overcome the shortcomings of existing technologies, this invention proposes a tea oil product bottling equipment; wherein the bottling equipment includes an automated bottling machine, comprising a machine body, an oil storage tank, a conveyor belt, and limiting rods; the oil storage tank is disposed on the side of the machine body, the conveyor belt passes through the interior of the machine body, and the conveyor belt is used to transport the bottling bottles; the limiting rods are disposed within the machine body, and the limiting rods are located on both sides of the conveyor belt, the limiting rods being used to limit the bottling bottles on the conveyor belt; and further includes... The lifting plate is located inside the machine body and is raised and lowered by electric push rods on both sides. The mounting ring is disposed on the lifting plate and is located directly above the conveyor belt; A filling cylinder is provided on the mounting ring, and a valve is provided at the lower end of the filling cylinder to seal the lower end of the filling cylinder. A feed pipe is provided on the side of the filling cylinder and the feed pipe is connected to the oil storage tank. The second electric push rod is mounted on the lifting plate, and a piston block is provided at the output end of the second electric push rod. An arc-shaped groove is formed on the lower side of the filling cylinder. There are two arc-shaped grooves, and a slider is slidably connected inside the arc-shaped groove. The slider is connected to the inner wall of the arc-shaped groove by a spring rope, and a connecting rod is provided on the slider. A scraper is provided at the lower end of the connecting rod.

[0010] As a preferred embodiment of the present invention, the connecting rod is hinged to the slider, and a micro motor is provided inside the slider, and the output shaft of the micro motor is connected to the connecting rod.

[0011] As a preferred embodiment of the present invention, a high-pressure water tank is provided on the side of the machine body; the upper end of the filling cylinder is hollow, and a press-to-discharge water component is provided on the inner wall of the filling cylinder, and the hollow part of the filling cylinder is connected to the high-pressure water tank through a water pipe; the middle part of the piston block is hollow, and a water inlet is provided at the upper end of the piston block, and the water inlet corresponds to the press-to-discharge water component; a water outlet is provided at the lower end of the piston block, and a one-way valve is provided inside the water outlet.

[0012] As a preferred embodiment of the present invention, the press-to-dispense water component includes: A water outlet channel is provided on the inner wall of the filling cylinder; A bracket is provided on the inner wall of the water outlet channel, and the number of brackets is at least two, with one end of the bracket located in the middle of the water outlet channel being arc-shaped. A sliding rod is slidably connected to one end of the bracket located in the middle of the water outlet channel. A sealing plate is provided at the upper end of the sliding rod, and the diameter of the sealing plate is larger than the diameter of the water outlet channel. The sealing plate is located above the water outlet channel, and the piston block seals the water outlet channel. The lower end of the sliding rod extends out of the water outlet channel.

[0013] As a preferred embodiment of the present invention, the upper end of the sealing sheet is arc-shaped, and a spring is fixedly connected between the sealing sheet and the bracket.

[0014] As a preferred embodiment of the present invention, the water outlet is inclined and the water outlet is inclined toward the inner wall of the can.

[0015] In a preferred embodiment of the present invention, the connecting rod is connected to the scraper and has a water delivery channel, and the connecting rod is connected to the high-pressure water tank through a water pipe. The scraper has a cylindrical groove, and the cylindrical groove is connected to the water delivery channel. A first groove is provided in the middle of the scraper and is connected to the water delivery channel. A sliding column is slidably connected inside the first groove, and an elastic plate is provided at one end of the sliding column inside the water delivery channel. The elastic plate is slidably connected to the inner wall of the water delivery channel, and a through hole is provided on the elastic plate. In the initial state, the through hole and the cylindrical groove are staggered.

[0016] As a preferred embodiment of the present invention, rubber sheets are provided on both sides of the scraper, and the rubber sheets are detachably connected to the scraper. The rubber sheets are provided with strip grooves, and the strip grooves are parallel to the scraper.

[0017] As a preferred embodiment of the present invention, the limiting rod is slidably connected to the inner wall of the machine body, and scale lines are printed between the two limiting rods.

[0018] The beneficial effects of this invention are as follows: 1. The tea oil filling equipment of the present invention, when the piston block contacts the scraper, as the piston block moves downward, the piston block squeezes the scraper. When the scraper is squeezed, it pushes the connecting rod, which slides in the arc-shaped groove. Since the arc-shaped groove is arc-shaped, the connecting rod is guided by the arc-shaped groove. The connecting rod and the scraper rotate clockwise. When the scraper rotates, it scrapes the lower end of the piston block, thereby preventing tea oil from adhering to the piston block. When the second electric push rod retracts, the piston block resets, and the valve closes, thereby sealing the filling cylinder. The up-and-down movement of the piston block improves the cleanliness of the inside of the filling cylinder to a certain extent, avoiding the need for manual cleaning of the filling cylinder and thus improving work efficiency.

[0019] 2. In the tea oil bottling equipment of the present invention, when the second electric push rod moves upward, the piston block squeezes the water outlet component, and the slide rod drives the sealing plate to move upward. Since the upper end of the sealing plate is arc-shaped, when the sealing plate moves upward in the water, the arc-shaped surface of the upper end of the seal has a guiding effect, reducing the pressure when the sealing plate moves upward, thereby improving the efficiency of the sealing plate. Furthermore, a spring is set between the sealing plate and the bracket. Since the bracket is fixed to the inner wall of the water outlet channel, when the sealing plate moves downward, the spring will pull the sealing plate, increasing the rebound force of the sealing plate when sealing the water outlet channel, thereby improving the reset efficiency of the sealing plate. Moreover, since the water outlet is inclined towards the inner wall of the filling cylinder, the rinsing force of the inner wall of the filling cylinder at the water outlet is increased when water is discharged from the outlet, thereby improving the cleaning efficiency of the inner wall of the filling cylinder to a certain extent. Attached Figure Description

[0020] The present invention will be further described below with reference to the accompanying drawings and embodiments.

[0021] Figure 1 This is a perspective view of the present invention; Figure 2 yes Figure 1 The front view in the middle; Figure 3 yes Figure 2 Structural view of the intermediate tank after installation; Figure 4 yes Figure 3 Structural view of the middle lifting plate; Figure 5 yes Figure 3 A three-dimensional view of the filling cylinder in the middle tank; Figure 6 yes Figure 5 A magnified view of a portion of point A in the middle; Figure 7 yes Figure 5 Internal cross-sectional view of the filling cylinder; Figure 8 yes Figure 7 A magnified view of a portion of point B in the middle; Figure 9 This is an internal sectional view of the connecting rod and scraper in this invention; Figure 10 This is a structural view of the mounting ring in this invention; Figure 11 This is a structural view of the valve in this invention; In the diagram: 1. Body, 11. Lifting plate, 12. Electric push rod 13. Mounting ring, 14. Filling cylinder, 141. Valve, 142. Feed pipe, 143. Arc groove, 144. Slider, 145. Connecting rod, 146. Scraper, 147. Water trough, 148. Trough 149. Electric push rod 15. Piston block, 151. Water inlet, 153. Water outlet, 154. Micro motor, 16. Oil storage tank, 2. Conveyor belt, 3. Limiting rod, 4. High-pressure water tank, 5. Press-to-discharge water component, 61. Water outlet channel, 62. Bracket, 63. Sliding rod, 64. Sealing plate, 65. Spring, 7. Sliding column, 8. Elastic plate, 9. Rubber sheet, 91. Strip groove. Detailed Implementation

[0022] To make the technical means, creative features, objectives and effects of this invention easier to understand, the invention will be further described below in conjunction with specific embodiments.

[0023] like Figure 1-11 As shown.

[0024] Example 1: A tea oil product bottling equipment; wherein the bottling equipment includes an automated bottling machine, the bottling machine comprising a machine body 1, an oil storage tank 2, a conveyor belt 3, and limiting rods 4; the oil storage tank 2 is disposed on the side of the machine body 1, the conveyor belt 3 passes through the inside of the machine body 1, and the conveyor belt 3 is used to convey the bottling bottles; the limiting rods 4 are disposed inside the machine body 1, and the limiting rods 4 are located on both sides of the conveyor belt 3, the limiting rods 4 being used to limit the bottling bottles on the conveyor belt 3; and also includes Lifting plate 11 is installed inside the machine body 1, and the lifting plate 11 is lifted and lowered by electric push rods 12 on both sides. Mounting ring 13 is mounted on lifting plate 11 and is located directly above conveyor belt 3; A filling cylinder 14 is mounted on an mounting ring 13, and a valve 141 is provided at the lower end of the filling cylinder 14 to seal the lower end of the filling cylinder 14. A feed pipe 142 is provided on the side of the filling cylinder 14 and is connected to the oil storage tank 2. The second electric push rod 15 is mounted on the lifting plate 11, and the output end of the second electric push rod 15 is provided with a piston block 151. An arc-shaped groove 143 is formed on the lower side of the filling cylinder 14. There are two arc-shaped grooves 143. A slider 144 is slidably connected inside the arc-shaped groove 143. The slider 144 is connected to the inner wall of the arc-shaped groove 143 by a spring rope. A connecting rod 145 is provided on the slider 144. A scraper 146 is provided at the lower end of the connecting rod 145. The connecting rod 145 is hinged to the slider 144, and a micro motor 16 is installed inside the slider 144, and the output shaft of the micro motor 16 is connected to the connecting rod 145. When staff use the bottling equipment, they first need to test the internal components, including conveyor belt 3, electric push rod 12, and electric push rod 15, to ensure that the equipment operates normally. After testing the motor, staff can then begin bottling the tea oil. Before filling, workers need to operate the production line or manually place the bottles onto the conveyor belt 3. As the conveyor belt 3 rotates, the bottles move along with it. When the bottles move on the conveyor belt 3, the limiting rods 4 inside the machine body 1 are located on both sides of the bottles, thus limiting the bottles' movement and ensuring stability. When the bottles reach below the filling cylinder 14, they stop moving. At this point, the No. 1 electric... When the push rod 12 is activated, it pushes the lifting plate 11 downward. As the lifting plate 11 moves downward, it drives the mounting ring 13 downward. As the mounting ring 13 moves downward, it drives the filling cylinder 14 downward until the lower end of the filling cylinder 14 moves into the filling bottle. At this point, the oil storage tank 2 is activated, and the oil inside the oil storage tank 2 is pumped by the pump inside the oil storage tank 2. There are two specific scenarios when the oil storage tank 2 is activated. Firstly, when using smaller bottling bottles, and when the capacity of the bottling bottle is not significantly different from the capacity of the filling cylinder 14, the operator can then operate the filling equipment. During operation, the oil storage tank 2 pumps the camellia oil from its interior into the filling cylinder 14 until it is full. At this point, the operator can operate the second electric push rod 15 on the filling equipment. When the second electric push rod 15 is pushed, it causes the piston block 151 to slide inside the filling cylinder 14. As the piston block 151 slides, it compresses the camellia oil inside the filling cylinder 14. When the camellia oil is subjected to pressure, it squeezes the valve 141 below the filling cylinder 14, causing the valve 141 to open (the structure of the valve 141 is similar to the opening of a bottle cap on a soda bottle). Then, the camellia oil inside the filling cylinder 14 is squeezed by the piston block 151, allowing the oil to enter the bottle. When the second electric push rod 15 moves to the bottom of the filling cylinder 14, the piston block 151 on the second electric push rod 15 squeezes the valve 141, causing it to open (the valve 141 is made of elastic material). The piston block 151 passes between the valves 141, and as the piston block 151 moves from top to bottom, it presses against the inner wall of the filling cylinder 14. The piston block 151 scrapes the valves 141 as it passes between them, reducing the adhesion of camellia oil to the canning cylinder 14 and the valves 141. This prevents long-term accumulation of camellia oil on the canning cylinder 14, which could lead to spoilage and affect the quality of the canned product. Furthermore, as the piston block 151 moves downwards, it contacts the scraper 146. Upon contact, the piston block 151 presses against the scraper 146, which in turn pushes the connecting rod 145, causing it to slide within the arc-shaped groove 143. Because the arc groove 143 is arc-shaped, the connecting rod 145 is guided by the arc groove 143. The connecting rod 145 and the scraper 146 rotate clockwise. When the scraper 146 rotates, it scrapes the lower end of the piston block 151, thereby preventing tea oil from sticking to the piston block 151. When the second electric push rod 15 retracts, the piston block 151 resets. At this time, the valve 141 closes, thereby sealing the filling cylinder 14. The up-and-down movement of the piston block 151 improves the cleanliness of the inside of the filling cylinder 14 to a certain extent, avoiding the need for manual cleaning of the filling cylinder 14 and thus improving work efficiency. Secondly, when using larger bottling bottles, the oil storage tank 2 operates by manipulating the bottling equipment. When the oil storage tank 2 operates, it pumps the tea oil inside into the filling cylinder 14. Before this, the first electric push rod 12 extends, causing the filling cylinder 14 to extend into the bottling bottle or be positioned directly above the bottling bottle. After the tea oil from the oil storage tank 2 is pumped into the filling cylinder 14 until the cylinder is full, the pumping continues, compressing the tea oil inside the cylinder 14 and causing it to flow out through the valve 14. The oil flows out between 1 and 2 until the bottling bottle is full. At this time, the flow-limiting valve on the oil storage tank 2 is closed, and no more tea oil is pumped into the bottling cylinder 14. The above operation is repeated when the next bottling is to be carried out. When the bottling equipment or the staff goes off duty, the staff operates the second electric push rod 15 on the bottling equipment. The second electric push rod 15 cleans the bottling cylinder 14 and the piston block 151, thereby avoiding the tea oil adhering to the bottling cylinder 14 and the piston block 151 when the bottling equipment is used the next day. This reduces the need for manual cleaning by the staff and improves work efficiency. Furthermore, the piston block 151 is hinged to the slider 144 via a connecting rod 145, and a micro motor 16 is installed inside the slider 144. The output shaft of the micro motor 16 is connected to the connecting rod 145. The angle of the connecting rod 145 is controlled by the micro motor 16. When the piston block 151 moves downward, the micro motor 16 works and rotates, causing the connecting rod 145 and the scraper 146 to be located directly below the filling cylinder 14, so that the piston block 151 can contact the scraper 146. When the piston block 151 moves upward or is in the initial position, the micro motor 16 rotates, so that the scraper 146 is located on the side of the filling cylinder 14, so that the scraper 146 does not obstruct the tea oil flowing out of the filling cylinder 14, thereby increasing the efficiency of the scraper 146.

[0025] Example 2: A high-pressure water tank 5 is provided on the side of the machine body 1; the upper end of the filling cylinder 14 is hollow, and a press-to-discharge water component 6 is provided on the inner wall of the filling cylinder 14. The hollow part of the filling cylinder 14 is connected to the high-pressure water tank 5 through a water pipe; the middle part of the piston block 151 is hollow, and a water inlet 153 is provided at the upper end of the piston block 151. The water inlet 153 corresponds to the press-to-discharge water component 6. A water outlet 154 is provided at the lower end of the piston block 151. A one-way valve is provided inside the water outlet 154. The press-type water outlet component 6 includes: Water outlet channel 61 is located on the inner wall of the filling cylinder 14; The bracket 62 is installed on the inner wall of the water outlet channel 61, and there are at least two brackets 62. The end of the bracket 62 located in the middle of the water outlet channel 61 is arc-shaped. The slide rod 63 is slidably connected to one end of the bracket 62 located in the middle of the water outlet channel 61. A sealing plate 64 is provided at the upper end of the slide rod 63. The diameter of the sealing plate 64 is larger than the diameter of the water outlet channel 61. The sealing plate 64 is located above the water outlet channel 61. The piston block 151 seals the water outlet channel 61. The lower end of the slide rod 63 extends out of the water outlet channel 61.

[0026] The upper end of the sealing sheet 64 is arc-shaped, and a spring 65 is fixedly connected between the sealing sheet 64 and the bracket 62; The outlet 154 is inclined and tilted towards the inner wall of the filling cylinder 14; A high-pressure water tank 5 is provided on the side of the machine body 1, and the inside of the filling cylinder 14 is hollow. The inside of the filling cylinder 14 is connected to the high-pressure water tank 5 through a water tank, so that the water inside the high-pressure water tank 5 can enter the inside of the filling cylinder 14. After water enters the inside of the filling cylinder 14, a water outlet 6 is provided on the inner wall of the filling cylinder 14. The middle part of the piston block 151 is hollow, and a water outlet 154 is provided at the lower end of the piston block 151. A one-way valve is provided on the water outlet 154. When cleaning of the inside of the filling cylinder 14 is required, the operator can operate the filling equipment. The second electric push rod 15 on the filling equipment moves upward. When the second electric push rod 15 moves upward, it drives the piston block 151 to move upward. As the piston block 151 moves upward, the water inlet 153 on the piston block 151 squeezes the pressing water outlet 6. When the pressing water outlet 6 is squeezed, the water inside the pressing water outlet 6 is pumped by a high-pressure water pump and flows into the piston block 151. The water then flows out from the water outlet 154 at the lower end of the piston block 151 and enters the filling cylinder 14, rinsing the inner wall of the filling cylinder 14. After rinsing, the piston block 151 moves downward, and the side edges of the piston block 151 scrape the camellia oil on the inner wall of the filling cylinder 14, working with the water flow to clean the inner wall of the filling cylinder 14. Furthermore, when the piston block 151 presses the water outlet... When the water component 6 is squeezed, the piston block 151 first squeezes the slide rod 63. When the slide rod 63 is squeezed, it slides upward on the bracket 62. When the slide rod 63 slides upward on the bracket 62, it drives the sealing plate 64 to move upward. When the sealing plate 64 moves upward, a gap is formed between the sealing plate 64 and the hollow inner wall of the can 14. The impact force generated by the high-pressure water tank 5 causes water to flow into the piston block 151, thereby realizing the water flow from the outlet 154. When the second electric push rod 15 moves downward, it drives the piston block 151 to move downward. When the piston block 151 moves downward, it no longer squeezes the water component 6. The sealing plate 64 slides downward on the bracket 62 under the pressure of the water inside the can 14. Then the sealing plate 64 seals the water outlet channel 61, thereby preventing water from flowing out of the can 14. Furthermore, by making the upper end of the sealing plate 64 arc-shaped, when the second electric push rod 15 moves upward, the piston block 151 squeezes the water outlet component 6, and the slide rod 63 drives the sealing plate 64 to move upward. Because the upper end of the sealing plate 64 is arc-shaped, when the sealing plate 64 moves upward in the water, the arc-shaped surface at the upper end of the seal has a guiding effect, reducing the pressure when the sealing plate 64 moves upward, thereby improving the efficiency of the sealing plate 64. Additionally, a spring 65 is installed between the sealing plate 64 and the bracket 62. The bracket 62 is fixed to the inner wall of the water outlet channel 61. Therefore, when the sealing plate 64 moves downward, the spring 65 will pull the sealing plate 64, increasing the rebound force of the sealing plate 64 when sealing the water outlet channel 61, thereby improving the reset efficiency of the sealing plate 64. Furthermore, since the water outlet 154 is inclined towards the inner wall of the filling cylinder 14, the rinsing force of the inner wall of the filling cylinder 14 is increased when water is discharged from the water outlet 154, thereby improving the cleaning efficiency of the inner wall of the filling cylinder 14 to a certain extent.

[0027] Example 3: A water delivery trough 147 is provided inside the connecting rod 145 and the scraper 146, and the connecting rod 145 is connected to the high-pressure water tank 5 through a water pipe. A cylindrical groove 148 is provided on the scraper 146, and the cylindrical groove 148 is connected to the water delivery trough 147. A first groove 149 is provided in the middle of the scraper 146, and the first groove 149 is connected to the water delivery trough 147. A sliding column 7 is slidably connected inside the first groove 149, and an elastic plate 8 is provided at one end of the sliding column 7 inside the water delivery trough 147. The elastic plate 8 is slidably connected to the inner wall of the water delivery trough 147, and a through hole is provided on the elastic plate 8. In the initial state, the through hole and the cylindrical groove 148 are staggered. By creating a water delivery channel 147 inside the connecting rod 145 and scraper 146, and connecting the water delivery channel 147 to the high-pressure water tank 5 via a water pipe, some water from the high-pressure water tank 5 will enter the water delivery channel 147 when the bottling equipment is in use. When the second electric push rod 15 moves downward, it drives the piston block 151 to move downward and contact the sliding column 7. As the piston block 151 moves downward, it squeezes the sliding column 7, causing the sliding column 7 to slide inside the first groove 149. Once inside the first groove 149, the sliding column 7 extends into the water delivery channel 147, and then squeezes the elastic plate 8 inside the water delivery channel 147 (the elastic plate 8 is made of elastic steel or elastic iron). The middle of the elastic plate 8 is squeezed by the sliding column 7, and both ends of the elastic plate 8 move towards the middle of the scraper 146. When the elastic plate 8 can no longer slide, the through hole on the elastic plate 8 connects with the first groove 149. At this time, water inside the water tank 147 sprays out from the first groove 149. When the water sprays out from the first groove 149, the water washes the lower end face of the piston block 151. At the same time as the water washes the lower end of the piston block 151, the scraper 146 scrapes the surface of the piston block 151, thereby washing the lower end face of the piston block 151. And when the second electric push... When rod 15 moves upward, the second electric push rod 15 drives piston block 151 to move upward until piston block 151 stops squeezing scraper 146. At this time, elastic plate 8 inside water tank 147 resets, and the through hole on elastic plate 8 intersects with groove 149. The through hole and groove 149 no longer coincide, thus achieving the sealing of the through hole by elastic plate 8. When the middle part of elastic plate 8 resets, it squeezes sliding column 7, and sliding column 7 resets.

[0028] Example 4: Rubber sheets 9 are provided on both sides of the scraper 146, and the rubber sheets 9 are detachably connected to the scraper 146. The rubber sheets 9 are provided with strip grooves 91, and the strip grooves 91 are parallel to the scraper 146. The limiting rod 4 is slidably connected to the inner wall of the body 1, and scale lines are printed between the two limiting rods 4; By evenly arranging rubber sheets 9 on both sides of the scraper 146, when the piston block 151 presses against the scraper 146, the scraper 146 rotates on the surface of the piston block 151. As the scraper 146 rotates, the rubber sheets 9 on both sides of the scraper 146 scrape the lower end of the piston block 151, thus scraping the lower end of the scraper 146 on the piston block 151. Furthermore, by detaching and reconnecting the rubber sheets 9 to the scraper 146, the scraper 146 can be effectively moved. The rubber sheet 9 can be replaced, and by opening a strip groove 91 on the rubber sheet 9, the surface roughness of the rubber sheet 9 when it contacts the lower end face of the piston block 151 is increased, thereby improving the cleaning efficiency of the rubber sheet 9 on the lower end of the piston block 151; and by making the limiting rod 4 slidably connected to the inner wall of the machine body 1, it is convenient for the limiting rod 4 to slide on the inner wall of the machine body 1, and by marking the scale lines between the limiting rods 4, it is convenient to control the size adjustment of the limiting rods 4.

[0029] The foregoing has shown and described the basic principles, main features, and advantages of the present invention. Those skilled in the art should understand that the present invention is not limited to the above embodiments. The embodiments and descriptions in the specification are merely illustrative of the principles of the invention. Various changes and modifications can be made to the invention without departing from its spirit and scope, and all such changes and modifications fall within the scope of the present invention as claimed. The scope of protection of the present invention is defined by the appended claims and their equivalents.

Claims

1. A tea oil finished product filling equipment; wherein the filling equipment includes an automated filling machine, the filling machine including a machine body (1), an oil storage tank (2), a conveyor belt (3), and a limiting rod (4); the oil storage tank (2) is disposed on the side of the machine body (1), the conveyor belt (3) passes through the inside of the machine body (1), and the conveyor belt (3) is used to convey the canned bottles; the limiting rod (4) is disposed inside the machine body (1), and the limiting rod (4) is located on both sides of the conveyor belt (3), the limiting rod (4) is used to limit the canned bottles on the conveyor belt (3); characterized in that: Also includes Lifting plate (11), the lifting plate (11) is disposed inside the machine body (1), and the lifting plate (11) is lifted and lowered by electric push rods (12) provided on both sides; Mounting ring (13), which is disposed on the lifting plate (11) and is located directly above the conveyor belt (3); A filling cylinder (14) is provided on the mounting ring (13), and a valve (141) is provided at the lower end of the filling cylinder (14), and the valve (141) seals the lower end of the filling cylinder (14). A feed pipe (142) is provided on the side of the filling cylinder (14), and the feed pipe (142) is connected to the oil storage tank (2). The second electric push rod (15) is mounted on the lifting plate (11), and the output end of the second electric push rod (15) is provided with a piston block (151). An arc-shaped groove (143) is formed on the lower side of the filling cylinder (14). There are two arc-shaped grooves (143). A slider (144) is slidably connected inside the arc-shaped groove (143). The slider (144) is connected to the inner wall of the arc-shaped groove (143) by a spring rope. A connecting rod (145) is provided on the slider (144). A scraper (146) is provided at the lower end of the connecting rod (145).

2. The tea oil finished product filling equipment according to claim 1, characterized in that: The connecting rod (145) is hinged to the slider (144), and a micro motor (16) is provided inside the slider (144), and the output shaft of the micro motor (16) is connected to the connecting rod (145).

3. The tea oil finished product bottling equipment according to claim 2, characterized in that: The machine body (1) is provided with a high-pressure water tank (5) on its side; the upper end of the filling cylinder (14) is hollow, and the inner wall of the filling cylinder (14) is provided with a press-to-discharge water component (6), and the hollow part of the filling cylinder (14) is connected to the high-pressure water tank (5) through a water pipe; the middle part of the piston block (151) is hollow, and the upper end of the piston block (151) is provided with a water inlet (153), and the water inlet (153) corresponds to the press-to-discharge water component (6), and the lower end of the piston block (151) is provided with a water outlet (154), and the water outlet (154) is provided with a one-way valve.

4. The tea oil finished product filling equipment according to claim 3, characterized in that: The press-to-discharge water component (6) includes: Water outlet channel (61), the water outlet channel (61) is formed on the inner wall of the filling cylinder (14); A bracket (62) is provided on the inner wall of the water outlet channel (61), and the number of brackets (62) is at least two, and one end of the bracket (62) located in the middle of the water outlet channel (61) is arc-shaped; A slide rod (63) is slidably connected to one end of the bracket (62) located in the middle of the water outlet channel (61). A sealing plate (64) is provided at the upper end of the slide rod (63). The diameter of the sealing plate (64) is larger than the diameter of the water outlet channel (61). The sealing plate (64) is located above the water outlet channel (61). The piston block (151) seals the water outlet channel (61). The lower end of the slide rod (63) extends out of the water outlet channel (61).

5. The tea oil finished product bottling equipment according to claim 4, characterized in that: The upper end of the sealing sheet (64) is arc-shaped, and a spring (65) is fixedly connected between the sealing sheet (64) and the bracket (62).

6. The tea oil finished product bottling equipment according to claim 5, characterized in that: The outlet (154) is inclined and the outlet (154) is inclined toward the inner wall of the filling cylinder (14).

7. The tea oil finished product filling equipment according to claim 1, characterized in that: The connecting rod (145) is connected to the scraper (146) and has a water delivery channel (147). The connecting rod (145) is connected to the high-pressure water tank (5) through a water pipe. The scraper (146) has a cylindrical groove (148) and is connected to the water delivery channel (147). The scraper (146) has a first groove (149) in the middle and is connected to the water delivery channel (147). The first groove (149) is slidably connected to the first groove (149). An elastic plate (8) is provided at one end of the sliding column (7) inside the water delivery channel (147). The elastic plate (8) is slidably connected to the inner wall of the water delivery channel (147). The elastic plate (8) has a through hole. In the initial state, the through hole and the cylindrical groove (148) are staggered.

8. A tea oil product bottling equipment according to claim 7, characterized in that: Rubber sheets (9) are provided on both sides of the scraper (146), and the rubber sheets (9) are detachably connected to the scraper (146). A strip groove (91) is provided on the rubber sheet (9), and the strip groove (91) is parallel to the scraper (146).

9. A tea oil product bottling equipment according to claim 1, characterized in that: The limiting rod (4) is slidably connected to the inner wall of the body (1), and scale lines are engraved between the two limiting rods (4).