A multi-station production device for plant powder tableware work package

By designing a motor-driven auger and stirring mechanism, combined with a negative pressure suction head, the problem of raw material conveying and mixing in the plant powder tableware production equipment was solved, realizing multi-station synchronous production and efficient molding.

CN224528114UActive Publication Date: 2026-07-21JINAN HARTMANN ENVIRONMENTAL TECH CO LTD

Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
JINAN HARTMANN ENVIRONMENTAL TECH CO LTD
Filing Date
2025-08-01
Publication Date
2026-07-21

AI Technical Summary

Technical Problem

Existing multi-station production equipment for plant powder tableware packaging is inconvenient to transport different raw materials together for mixing during feeding, and it is also inconvenient to add acrylic adhesive during the mixing process, making it impossible to transport raw materials to multiple stations simultaneously.

Method used

A production device including multiple motor-driven augers and stirring mechanisms was designed. It achieves synchronous conveying and mixing at multiple stations through a metering mechanism and a negative pressure suction head. It uses the upper and lower molds to form the product and uses the negative pressure suction head to adsorb and move the tableware.

Benefits of technology

This technology facilitates the mixing of different raw materials and the addition of acrylic adhesives during feeding, and enables simultaneous material delivery to multiple workstations during production, thereby improving production efficiency and mixing uniformity.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

The utility model relates to tableware production technical field especially a kind of plant powder tableware worker bag multi-station production equipment, including first feeding cylinder and first buffer cylinder, the lower end of first feeding cylinder is fixedly connected with first buffer cylinder, the lower of first buffer cylinder is fixedly connected with first ration mechanism, the lower end of first ration mechanism is fixedly connected with first cylinder, the outer wall of first cylinder is fixedly connected with first motor.Negative pressure suction head first movement to the upper of forming lower mould to the plant powder tableware worker after forming is adsorbed, then multiple plant powder tableware workers are sucked, and multiple plant powder tableware workers are moved to the upper of conveying belt, plant powder tableware worker is placed to conveying belt and is conveyed to specified position by conveying belt plant powder tableware worker, when feeding, different raw materials are conveniently conveyed together to mix, and in mixing process, acrylic adhesive is conveniently added, and in production, it is convenient to simultaneously transport raw materials to multiple stations.
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Description

Technical Field

[0001] This utility model relates to the field of tableware production technology, specifically to a multi-station production equipment for plant powder tableware packaging. Background Technology

[0002] Plant powder tableware typically refers to biodegradable tableware made from plant fibers such as rice husks, sugarcane bagasse, and wheat straw. It mainly uses agricultural waste such as rice husks (the waste part after removing the chaff), sugarcane bagasse, and wheat straw, and is made through processes such as crushing, high-temperature sterilization, and hot pressing. It can degrade naturally under natural conditions, avoiding white pollution. It uses biodegradable materials, does not contain chemical additives, and does not generate additional pollution in the production process.

[0003] Existing multi-station production equipment for plant powder tableware packaging is inconvenient to transport different raw materials together for mixing during feeding, and it is also inconvenient to add acrylic adhesive during the mixing process. Furthermore, it is not convenient to transport raw materials to multiple stations simultaneously during production. Utility Model Content

[0004] The purpose of this invention is to solve the problems of inconvenience in feeding different raw materials together for mixing, inconvenience in adding acrylic adhesive during mixing, and inconvenience in simultaneously feeding raw materials to multiple workstations during production. Therefore, this invention proposes a multi-station production equipment for plant powder tableware packaging.

[0005] To achieve the above objectives, this utility model provides the following technical solution: Design a multi-station production equipment for plant powder tableware packaging, including a first feeding cylinder and a first buffer cylinder. The lower end of the first feeding cylinder is fixedly connected to the first buffer cylinder. A first metering mechanism is fixedly connected to the lower part of the first buffer cylinder. The lower end of the first metering mechanism is fixedly connected to the first feeding cylinder. A first motor is fixedly connected to the outer wall of the first feeding cylinder. A first auger is fixedly connected to the output shaft of the first motor. The outer walls of both ends of the first auger are rotatably connected to the first feeding cylinder through bearings.

[0006] Preferably, the inlets of the first and third material cylinders and the outlet of the second material cylinder are fixedly connected. A second metering mechanism is fixedly connected above the second material cylinder. A second buffer cylinder is fixedly connected above the second metering mechanism. A second feeding cylinder is fixedly connected above the second buffer cylinder. A second motor is fixedly connected to the outer wall of the second material cylinder. A second auger is fixedly connected to the output shaft of the second motor. The outer walls of both ends of the second auger are rotatably connected to the second material cylinder through bearings.

[0007] Preferably, a third motor is fixedly connected to the outer wall of the third material cylinder, a third auger is fixedly connected to the output end of the third motor, the outer walls of both ends of the third auger are rotatably connected to the third material cylinder through bearings, the outer wall of the discharge port of the third material cylinder is fixedly connected to the fourth material cylinder, and a fourth motor is fixedly connected to the outer wall of the fourth material cylinder.

[0008] Preferably, the output end of the fourth motor is fixedly connected to a fourth auger via a coupling, and the outer walls of both ends of the fourth auger are rotatably connected to the fourth material cylinder via bearings. The outer wall of the discharge pipe of the fourth material cylinder is fixedly connected to the material tank. A fifth motor is fixedly connected to the bottom of the material tank, and the output end of the fifth motor is fixedly connected to a conical stirring mechanism via a coupling. The outer wall of the lower end of the conical stirring mechanism is rotatably connected to the material tank via bearings.

[0009] Preferably, the outer wall of the material tank discharge pipe is fixedly connected to the sixth material cylinder, the outer wall of the sixth material cylinder is fixedly connected to the sixth motor, the output end of the sixth motor is fixedly connected to the sixth auger through a coupling, the outer walls of both ends of the sixth auger are rotatably connected to the sixth material cylinder through bearings, and the end of the sixth material cylinder is provided with nine discharge pipes.

[0010] Preferably, the nine discharge pipes at the end of the sixth material cylinder are respectively fixedly connected to nine conical covers through pipes, and the conical covers are installed inside the first movable frame, which is installed inside the support.

[0011] Preferably, a lower forming mold is fixedly connected inside the bracket, a cylinder is fixedly connected inside the bracket, and an upper forming mold is fixedly connected to the output end of the cylinder. The outer wall of the upper forming mold is slidably connected to the bracket.

[0012] Preferably, a second movable frame is installed on the outside of the bracket, and a negative pressure suction head is installed inside the second movable frame.

[0013] This utility model proposes a multi-station production equipment for plant powder tableware, which has the following advantages: the upper and lower forming molds cooperate to form plant powder tableware; the cylinder drives the upper forming mold to move upward and separate from the lower forming mold; the second moving frame drives multiple negative pressure suction heads to move; the negative pressure suction heads first move to the upper forming mold to adsorb the formed plant powder tableware; then they pick up multiple plant powder tableware and move them to the upper part of the conveyor belt; the plant powder tableware is placed on the conveyor belt and transported to the designated position; during feeding, it is convenient to transport different raw materials together for mixing; during the mixing process, it is convenient to add acrylic adhesive; and during production, it is convenient to transport raw materials to multiple stations simultaneously. Attached Figure Description

[0014] Figure 1 This is a schematic diagram of the feeding system in this utility model; Figure 2 This is a side view of the feeding system in this utility model; Figure 3 This is a top view of the feeding system in this utility model; Figure 4 This is a schematic diagram of the molding station in this utility model; Figure 5 This is a schematic diagram of the connection between the bracket and the cylinder in this utility model; Figure 6 This is a schematic diagram of the structure at the connection between the upper forming mold, the second movable frame, and the negative pressure suction head in this utility model; Figure 7 This is a schematic diagram of the connection between the support and the lower forming mold in this utility model; Figure 8 This is a schematic diagram of the connection between the bracket, cylinder, and negative pressure suction head in this utility model; Figure 9 This is a schematic diagram of the structure of the connection between the first movable frame, the support, and the lower forming mold in this utility model; Figure 10 This is a schematic diagram of the connection between the lower forming mold, the cylinder, and the support in this utility model.

[0015] In the diagram: 1. First feeding cylinder, 2. First buffer cylinder, 3. First metering mechanism, 4. First feeding cylinder, 5. First motor, 6. First auger, 7. Second metering mechanism, 8. Second buffer cylinder, 9. Second feeding cylinder, 10. Second feeding cylinder, 11. Second motor, 12. Second auger, 13. Third feeding cylinder, 14. Fourth feeding cylinder, 15. Fourth motor, 16. Fourth auger, 17. Fifth motor, 18. Conical stirring mechanism, 19. Sixth feeding cylinder, 20. Sixth motor, 21. Sixth auger, 22. Discharge pipe, 23. Material tank, 24. Conical cover, 25. First moving frame, 26. Support, 27. Lower forming mold, 28. Cylinder, 29. Upper forming mold, 30. Second moving frame, 31. Negative pressure suction head, 32. Third motor, 33. Third auger. Detailed Implementation

[0016] The present invention will be further described below with reference to the accompanying drawings: See attached document Figure 1-10In this embodiment, a multi-station production equipment for plant powder tableware packaging includes a first feeding cylinder 1 and a first buffer cylinder 2. The lower end of the first feeding cylinder 1 is fixedly connected to the first buffer cylinder 2, and the first feeding cylinder 1 and the first buffer cylinder 2 are connected. A first quantitative mechanism 3 is fixedly connected to the lower part of the first buffer cylinder 2, and the first buffer cylinder 2 and the first quantitative mechanism 3 are connected. The first quantitative mechanism 3 enables the quantitative feeding of raw materials for plant powder tableware. The lower end of the first quantitative mechanism 3 is fixedly connected to the first material cylinder 4, and the first quantitative mechanism 3 and the first material cylinder 4 are connected. A first motor 5 is fixedly connected to the outer wall of the first material cylinder 4, and a first auger 6 is fixedly connected to the output shaft of the first motor 5. The first motor 5 drives the first auger 6 to rotate. The outer walls at both ends of the first auger 6 are rotatably connected to the first material cylinder 4 through bearings. The first material cylinder 4 provides support for the first auger 6.

[0017] The inlets of the first material cylinder 4 and the third material cylinder 13 are fixedly connected to the outlet of the second material cylinder 10. The first material cylinder 4 is connected to the third material cylinder 13 and the second material cylinder 10. The first material cylinder 4, the third material cylinder 13 and the second material cylinder 10 are connected through a four-way valve. The upper end of the four-way valve is open, which facilitates the addition of acrylic adhesive to the raw materials of the plant powder tableware. A second metering mechanism 7 is fixedly connected to the upper part of the second material cylinder 10. The second material cylinder 10 is connected to the second metering mechanism 7. A second buffer cylinder 8 is fixedly connected to the top of the second material cylinder 10. A second metering mechanism 7 is connected to the second buffer cylinder 8. A second feeding cylinder 9 is fixedly connected to the top of the second buffer cylinder 8. The second buffer cylinder 8 is connected to the second feeding cylinder 9. A second motor 11 is fixedly connected to the outer wall of the second material cylinder 10. A second auger 12 is fixedly connected to the output shaft of the second motor 11. The second motor 11 drives the second auger 12 to rotate. The outer walls at both ends of the second auger 12 are rotatably connected to the second material cylinder 10 through bearings. The second material cylinder 10 supports the second auger 12.

[0018] A third motor 32 is fixedly connected to the outer wall of the third material cylinder 13. A third auger 33 is fixedly connected to the output end of the third motor 32. The third motor 32 drives the third auger 33 to rotate. The outer walls of both ends of the third auger 33 are rotatably connected to the third material cylinder 13 through bearings. The third material cylinder 13 supports the third auger 33. The outer wall of the discharge port of the third material cylinder 13 is fixedly connected to the fourth material cylinder 14. The third material cylinder 13 and the fourth material cylinder 14 are connected. A fourth motor 15 is fixedly connected to the outer wall of the fourth material cylinder 14.

[0019] The output end of the fourth motor 15 is fixedly connected to the fourth auger 16 via a coupling. The fourth motor 15 drives the fourth auger 16 to rotate. The outer walls of both ends of the fourth auger 16 are rotatably connected to the fourth material cylinder 14 via bearings. The outer wall of the discharge pipe of the fourth material cylinder 14 is fixedly connected to the material tank 23. The fourth material cylinder 14 is connected to the material tank 23. The fifth motor 17 is fixedly connected to the bottom of the material tank 23. The output end of the fifth motor 17 is fixedly connected to the conical stirring mechanism 18 via a coupling. The fifth motor 17 drives the conical stirring mechanism 18 to rotate. The conical stirring mechanism 18 stirs the material inside the material tank 23. The outer wall of the lower end of the conical stirring mechanism 18 is rotatably connected to the material tank 23 via bearings. The material tank 23 provides support for the conical stirring mechanism 18.

[0020] When using a multi-station production line for plant powder tableware, the materials for producing plant powder tableware are fed into the first feeding cylinder 1 and the second feeding cylinder 9. The material in the first feeding cylinder 1 enters the first buffer cylinder 2, and then passes through the first metering mechanism 3 into the first feeding cylinder 4. The first metering mechanism 3 ensures that the material enters the first feeding cylinder 4 in a measured quantity. The first motor 5 drives the first auger 6 to rotate, and the first auger 6 transports the material in the first feeding cylinder 4 to the third feeding cylinder 13. The material in the second feeding cylinder 9 enters the second buffer cylinder 8, and then passes through the second metering mechanism 7 into the second feeding cylinder 10. The second metering mechanism 7 ensures that the material enters the second feeding cylinder 10 in a measured quantity. The second motor 11 drives the second auger 12 to rotate, and the second auger 12 also transports the material in the second feeding cylinder 10 to the third feeding cylinder 13. Inside the third material cylinder 13, acrylic adhesive can be added through the four-way valves located above the first material cylinder 4, the second material cylinder 10, and the third material cylinder 13, and mixed with the introduced material. The third motor 32 drives the third auger 33 to rotate, and the third auger 33 transports the material inside the third material cylinder 13 to the fourth material cylinder 14. The fourth motor 15 drives the fourth auger 16 to rotate, and the fourth auger 16 transports the material inside the fourth material cylinder 14 to the material tank 23. The fifth motor 17 drives the conical stirring mechanism 18 to rotate, and the conical stirring mechanism 18 stirs the material inside the material tank 23, so that the material and acrylic adhesive are evenly mixed. After mixing, the material enters the sixth material cylinder 19 through the discharge pipe. The sixth motor 20 drives the sixth auger 21 to rotate, and the sixth auger 21 transports the material inside the sixth material cylinder 19 to the discharge pipe 22.

[0021] The outer wall of the feed pipe of the material tank 23 is fixedly connected to the sixth material cylinder 19. The material tank 23 and the sixth material cylinder 19 are connected. The outer wall of the sixth material cylinder 19 is fixedly connected to the sixth motor 20. The output end of the sixth motor 20 is fixedly connected to the sixth auger 21 through a coupling. The sixth motor 20 drives the sixth auger 21 to rotate. The outer walls of both ends of the sixth auger 21 are rotatably connected to the sixth material cylinder 19 through bearings. The sixth material cylinder 19 provides support for the sixth auger 21. Nine discharge pipes 22 are provided at the end of the sixth material cylinder 19. The material inside the sixth material cylinder 19 enters the interior of the nine discharge pipes 22 evenly. The nine discharge pipes 22 at the end of the sixth material cylinder 19 are fixedly connected to nine conical covers 24 through pipes. The material inside the sixth material cylinder 19 enters the interior of the conical covers 24 through the discharge pipes 22. The conical covers 24 are installed... Inside the first movable frame 25, the first movable frame 25 drives the conical cover 24 to move in the X, Y, and Z directions. The first movable frame 25 is installed inside the support 26. The lower forming mold 27 is fixedly connected inside the support 26. The cylinder 28 is fixedly connected inside the support 26. The output end of the cylinder 28 is fixedly connected to the upper forming mold 29. The cylinder 28 drives the upper mold 29 to move. The outer wall of the upper forming mold 29 is slidably connected to the support 26. The upper forming mold 29 moves inside the support 26. The second movable frame 30 is installed on the outside of the support 26. The second movable frame 26 can move in the X, Y, and Z directions. The second movable frame 30 is installed inside the negative pressure suction head 31. The second movable frame 30 drives multiple negative pressure suction heads 31 to move. The negative pressure suction heads 31 can pick up the formed plant powder tableware.

[0022] The first moving frame 25 drives the conical cover 24 to move, positioning the conical cover 24 above the lower forming mold 27. Material delivered to the discharge pipe 22 is then transported through the pipes to the interiors of the nine conical covers 24. The material falls into the interior of the lower forming mold 27. The first moving frame 25 then drives the conical cover 24 back to its initial position. A heating mechanism is installed below the lower forming mold 27 to reduce rapid cooling of the material. The cylinder 28 drives the upper forming mold 29 to move downwards. The upper forming mold 29 cooperates with the lower forming mold 27 to form plant powder tableware. The cylinder 28 drives the upper forming mold 29 to move upwards to form... The lower mold 27 is separated, and the second moving frame 30 drives multiple negative pressure suction heads 31 to move. The negative pressure suction heads 31 first move to the top of the lower mold 27 to adsorb the molded plant powder tableware, then pick up multiple plant powder tableware and move them to the top of the conveyor belt. The plant powder tableware is placed on the conveyor belt and transported to the designated position. This facilitates the mixing of different raw materials during feeding, and also facilitates the addition of acrylic adhesive during mixing. Furthermore, it allows for the simultaneous transport of raw materials to multiple workstations during production.

[0023] Working principle: When using a multi-station production line for plant powder tableware, the materials for producing plant powder tableware are fed into the first feeding cylinder 1 and the second feeding cylinder 9. The material in the first feeding cylinder 1 enters the first buffer cylinder 2, and then passes through the first metering mechanism 3 into the first feeding cylinder 4. The first metering mechanism 3 ensures that the material enters the first feeding cylinder 4 in a measured quantity. The first motor 5 drives the first auger 6 to rotate, and the first auger 6 transports the material in the first feeding cylinder 4 to the third feeding cylinder 13. The material in the second feeding cylinder 9 enters the second buffer cylinder 8, and then passes through the second metering mechanism 7 into the second feeding cylinder 10. The second metering mechanism 7 ensures that the material enters the second feeding cylinder 10 in a measured quantity. The second motor 11 drives the second auger 12 to rotate, and the second auger 12 also transports the material in the second feeding cylinder 10 to the third feeding cylinder 13. Inside the third material cylinder 13, acrylic adhesive can be added through the four-way valves located above the first material cylinder 4, the second material cylinder 10, and the third material cylinder 13, and mixed with the introduced material. The third motor 32 drives the third auger 33 to rotate, and the third auger 33 transports the material inside the third material cylinder 13 to the inside of the fourth material cylinder 14. The fourth motor 15 drives the fourth auger 16 to rotate, and the fourth auger 16 transports the material inside the fourth material cylinder 14 to the inside of the material tank 23. The fifth motor 17 drives the conical stirring mechanism 18 to rotate, and the conical stirring mechanism 18 stirs the material inside the material tank 23, so that the material and acrylic adhesive are evenly mixed. After mixing, the material enters the inside of the sixth material cylinder 19 through the discharge pipe. The sixth motor 20 drives the sixth auger 21 to rotate, and the sixth auger 21 transports the material inside the sixth material cylinder 19 to the discharge pipe 22. The first moving frame 25 drives the conical cover 24 to move, positioning the conical cover 24 above the lower forming mold 27. Material delivered to the discharge pipe 22 is then transported through the pipes to the interiors of the nine conical covers 24. The material falls into the interior of the lower forming mold 27. The first moving frame 25 then drives the conical cover 24 back to its initial position. A heating mechanism is installed below the lower forming mold 27 to reduce rapid cooling of the material. The cylinder 28 drives the upper forming mold 29 to move downwards. The upper forming mold 29 cooperates with the lower forming mold 27 to form plant powder tableware. The cylinder 28 drives the upper forming mold 29 to move upwards to form... The lower mold 27 is separated, and the second moving frame 30 drives multiple negative pressure suction heads 31 to move. The negative pressure suction heads 31 first move to the top of the lower mold 27 to adsorb the molded plant powder tableware, then pick up multiple plant powder tableware and move them to the top of the conveyor belt. The plant powder tableware is placed on the conveyor belt and transported to the designated position. This facilitates the mixing of different raw materials during feeding, and also facilitates the addition of acrylic adhesive during mixing. Furthermore, it allows for the simultaneous transport of raw materials to multiple workstations during production.

[0024] Although the present invention has been illustrated and described with reference to preferred embodiments, those skilled in the art should understand that various changes in form and detail are possible within the scope of the claims.

Claims

1. A multi-station production equipment for plant powder tableware packaging, comprising a first feeding cylinder (1) and a first buffer cylinder (2), wherein the lower end of the first feeding cylinder (1) is fixedly connected to the first buffer cylinder (2), characterized in that: A first metering mechanism (3) is fixedly connected to the bottom of the first buffer cylinder (2). The lower end of the first metering mechanism (3) is fixedly connected to the first material cylinder (4). A first motor (5) is fixedly connected to the outer wall of the first material cylinder (4). A first auger (6) is fixedly connected to the output shaft of the first motor (5). The outer walls of both ends of the first auger (6) are rotatably connected to the first material cylinder (4) through bearings.

2. The multi-station production equipment for plant powder tableware packaging according to claim 1, characterized in that: The inlet of the first cylinder (4) is fixedly connected to the inlet of the third cylinder (13) and the outlet of the second cylinder (10). A second metering mechanism (7) is fixedly connected above the second cylinder (10). A second buffer cylinder (8) is fixedly connected above the second metering mechanism (7). A second feed cylinder (9) is fixedly connected above the second buffer cylinder (8). A second motor (11) is fixedly connected to the outer wall of the second cylinder (10). A second auger (12) is fixedly connected to the output shaft of the second motor (11). The outer walls at both ends of the second auger (12) are rotatably connected to the second cylinder (10) through bearings.

3. The multi-station production equipment for plant powder tableware packaging according to claim 2, characterized in that: The outer wall of the third material cylinder (13) is fixedly connected to a third motor (32), the output end of the third motor (32) is fixedly connected to a third auger (33), the outer walls of both ends of the third auger (33) are rotatably connected to the third material cylinder (13) through bearings, the outer wall of the discharge port of the third material cylinder (13) is fixedly connected to the fourth material cylinder (14), and the outer wall of the fourth material cylinder (14) is fixedly connected to a fourth motor (15).

4. The multi-station production equipment for plant powder tableware packaging according to claim 3, characterized in that: The output end of the fourth motor (15) is fixedly connected to the fourth auger (16) via a coupling. The outer walls of both ends of the fourth auger (16) are rotatably connected to the fourth material cylinder (14) via bearings. The outer wall of the discharge pipe of the fourth material cylinder (14) is fixedly connected to the material tank (23). The lower part of the material tank (23) is fixedly connected to the fifth motor (17). The output end of the fifth motor (17) is fixedly connected to the conical stirring mechanism (18) via a coupling. The lower outer wall of the conical stirring mechanism (18) is rotatably connected to the material tank (23) via bearings.

5. The multi-station production equipment for plant powder tableware packaging according to claim 4, characterized in that: The outer wall of the feed pipe of the feed tank (23) is fixedly connected to the sixth feed cylinder (19). The outer wall of the sixth feed cylinder (19) is fixedly connected to the sixth motor (20). The output end of the sixth motor (20) is fixedly connected to the sixth auger (21) through a coupling. The outer walls of both ends of the sixth auger (21) are rotatably connected to the sixth feed cylinder (19) through bearings. The end of the sixth feed cylinder (19) is provided with nine discharge pipes (22).

6. The multi-station production equipment for plant powder tableware packaging according to claim 5, characterized in that: The nine discharge pipes (22) at the end of the sixth material cylinder (19) are respectively fixedly connected to nine conical covers (24) through pipes. The conical covers (24) are installed inside the first movable frame (25), which is installed inside the support (26).

7. A multi-station production equipment for plant powder tableware packaging according to claim 6, characterized in that: The lower forming mold (27) is fixedly connected inside the bracket (26), and the cylinder (28) is fixedly connected inside the bracket (26). The upper forming mold (29) is fixedly connected to the output end of the cylinder (28). The outer wall of the upper forming mold (29) is slidably connected to the bracket (26).

8. A multi-station production equipment for plant powder tableware packaging according to claim 6, characterized in that: A second movable frame (30) is installed on the outside of the bracket (26), and a negative pressure suction head (31) is installed inside the second movable frame (30).