Fruit pulping machine

By designing an automated fruit pulping machine, the automatic feeding of fruit and automatic separation of fruit pomace are achieved through the transmission structure of drive motor and rotary motor, solving the problems of insufficient manual feeding and fruit pomace separation in the existing technology, and realizing high-efficiency pulp production.

CN223653179UActive Publication Date: 2025-12-12YONGSHAN LIXIANG AGRICULTURE CO LTD
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Patent Information

Application Number
CN202423176066.4
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-12-23
Publication Date
2025-12-12
Estimated Expiration
2034-12-23

AI Technical Summary

Technical Problem

Existing fruit pulping machines require manual feeding and do not adequately separate fruit pulp and pomace, resulting in labor consumption and pulp waste.

Method used

A fruit pulping machine was designed, comprising a pulping structure and a controllable residue removal structure. It utilizes a drive motor and a rotating motor to achieve automated feeding of fruit and automatic separation of fruit residue through a transmission structure. The machine includes a combination of blade connecting rollers, crushing rollers, and rotating augers, and incorporates a pressure sensor to control the discharge of fruit residue.

Benefits of technology

It enables automated pulping of fruits and efficient separation of fruit pomace from fruit pulp, reducing labor consumption and fruit pulp waste.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a fruit pulping machine which comprises a movable base, a connecting shell is connected to the end face of the movable base, a stacking hopper is connected to the end face of the connecting shell, and a pulping structure capable of achieving continuous feeding is connected to the position, located below the stacking hopper, in an inner cavity of the connecting shell. A pulping structure is arranged in the connecting shell, a controllable deslagging structure is connected to the tail end of the pulping structure, a material receiving groove is connected to the position, located below the controllable deslagging structure, of the side wall of the connecting shell, and a controller is connected to the side wall of the connecting shell. Therefore, a driving motor in the pulping structure is used for squeezing pulp from the fruits through the transmission structure, meanwhile, materials can be intermittently fed into the fixed shell, a blade connecting roller, a smashing roller and a rotating auger are prevented from being stuck when the fruits are pulped, the automation performance of the device is further improved, and output of labor force is reduced.
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Description

TECHNICAL FIELD

[0001] The utility model relates to the technical field of fruit production, specifically is fruit pulper. BACKGROUND

[0002] Fruit pulper is a kind of equipment to fruit pulping, i.e. for the process of fruit comminution pulping, to meet different needs, bring portable while also there is the need to improve place, as follows:

[0003] Because the existing fruit pulper is by stirring rod to fruit pulping, simultaneously sub pulping needs by artificial fruit a small amount of input to pulper, so device will consume certain labor force when using, and the fruit pulp squeezed out due to not being able to fully separate fruit dregs and fruit pulp, leads to a certain amount of fruit pulp waste. UTILITY MODEL CONTENT

[0004] The utility model provides fruit pulper to solve above -mentioned problem.

[0005] To realize above -mentioned purpose, the utility model provides the following technical scheme:

[0006] Fruit pulper, including mobile base, the end surface of mobile base is connected with connecting casing, the end surface of connecting casing is connected with stack hopper, the inner chamber of connecting casing is connected with the pulping structure of sustainable feeding and is located below stack hopper, the tail end of pulping structure is connected with controllable dreg removal structure, the sidewall of connecting casing is connected with the receiving groove and is located below controllable dreg removal structure, the sidewall of connecting casing is connected with controller;

[0007] The beating structure comprises a driving motor, the driving motor is connected on the end face of the moving base through a connecting seat, a driving rod is connected on the driving end of the driving motor through a shaft coupling, a driving pulley is connected on the side wall of the driving rod, a driven pulley is connected on the side wall of the driving pulley through a connecting belt, a rotating rod is connected at the center of the driven pulley, a driven bevel gear is connected on one end of the rotating rod through a driving bevel gear, an engaging rotating rod is connected at the center of the driven bevel gear, a transmission bevel gear is connected on the side wall of the engaging rotating rod through a rotating bevel gear, a transmission rod is connected at the center of the transmission bevel gear, a rotating cam is connected on the end face of the engaging rotating rod, an engaging push rod is connected on the bottom of the rotating cam, a moving connecting plate is connected on the bottom of the engaging push rod through a connecting plate, the moving connecting plate is arranged at the bottom of the material stacking hopper, a transmission gear is connected on one end of the transmission rod through a rotating gear, a blade engaging roller is connected at the center of the rotating gear and the transmission gear and located in the inner cavity of the connecting shell, a driven gear is connected on one end of the rotating rod through a driving gear, a crushing roller is connected at the center of the driving gear and the driven gear and located in the inner cavity of the connecting shell, a rotating auger is connected on one end of the driving rod and located in the inner cavity of the connecting shell, a fixed shell is connected outside the blade engaging roller, the crushing roller and the rotating auger and located in the inner cavity of the connecting shell, a fruit pulp discharge port is arranged on the outer wall of the fixed shell and below the rotating auger.

[0008] The controllable slag removing structure comprises a rotating motor, the rotating motor is connected on the side wall of the inner cavity of the connecting shell, a driving rotating rod is connected on the driving end of the rotating motor through a shaft coupling, a driving belt gear is connected on the side wall of the driving rotating rod, a driven belt gear is connected on the side wall of the driving belt gear through a connecting belt and is symmetrically engaged, an adjusting lead screw is connected at the center of the driven belt gear, a fixed disc is connected on the other end of the adjusting lead screw, the tail end of the rotating auger is rotationally connected on the side wall of the fixed shell, a moving disc is connected on the side wall of the adjusting lead screw, a pressure sensor is connected at the center of the moving disc, a moving plug plate is connected on the other end of the pressure sensor and located at the tail end of the rotating auger.

[0009] As the preferred scheme of the utility model, the driving motor is connected with the controller through wires and the connection mode is electrical connection, the engaging rotating rod is connected on the side wall of the connecting shell through a bearing seat, wherein the connection mode of the engaging rotating rod and the bearing seat is rotation connection.

[0010] As the preferred scheme of the utility model, the bottom of the rotating cam and corresponding to the connecting slide rod is provided with a connecting sliding groove, wherein the connecting mode of the connecting slide rod and the connecting sliding groove is sliding connection, and the bottom of the stacking funnel and corresponding to the moving connecting plate is provided with an engaging slide rail, wherein the connecting mode of the moving connecting plate and the engaging slide rail is sliding connection.

[0011] As the preferred scheme of the utility model, a plurality of cutting blades are connected to the side wall of the blade engaging roller, the blade engaging roller is connected to the side wall of the connecting shell through a bearing seat, wherein the connecting mode of the blade engaging roller and the bearing seat is rotary connection, and the crushing roller is connected to the side wall of the connecting shell through a bearing seat, wherein the connecting mode of the crushing roller and the bearing seat is rotary connection.

[0012] As the preferred scheme of the utility model, the rotating auger is connected to the side wall of the connecting shell through a bearing seat, wherein the connecting mode of the rotating auger and the bearing seat is rotary connection, and the outer wall of the fixed shell and corresponding to the fruit pulp discharge port is provided with a filter hole.

[0013] As the preferred scheme of the utility model, the rotating motor is connected to the controller through wires and the connecting mode is electrical connection, and the driving rotating rod is connected to the side wall of the connecting shell through a bearing seat, wherein the connecting mode of the driving rotating rod and the bearing seat is rotary connection.

[0014] As the preferred scheme of the utility model, the adjusting screw rod is connected to the side wall of the fixed disc through a bearing seat, wherein the connecting mode of the adjusting screw rod and the bearing seat is rotary connection, the connecting mode of the adjusting screw rod and the moving disc is screw connection, and the pressure sensor is connected to the controller through wires and the connecting mode is electrical connection.

[0015] The utility model discloses a pulping structure, which can intermittently feed the fixed shell while the driving motor in the pulping structure drives the fruit pulp mill through the transmission structure, prevents the fruit from being stuck in the blade engaging roller, the crushing roller and the rotating auger during pulping, further improves the automatic performance of the device, and reduces the output of labor.

[0016] The utility model discloses a controllable slag removal structure, which can discharge the fruit slag into the receiving groove under the continuous rotation of the rotating auger through the transmission structure of the rotating motor and the pressure sensor in the controllable slag removal structure, can more fully extract the fruit pulp from the fruit slag, and reduces the waste of fruit pulp. ACCURATE DRAWINGS

[0017] Figure 1 It is a structure schematic view of the utility model right side;

[0018] Figure 2 It is Figure 1 a sectional structure schematic view.

[0019] Figure 3 The structure schematic diagram of the beating structure of the utility model is shown in the figure;

[0020] Figure 4 The structure schematic diagram of the controlled slag removing structure of the utility model is shown in the figure; Figure 3 The structure schematic diagram of the controlled slag removing structure of the utility model is shown in the figure;

[0021] Figure 5 The structure schematic diagram of the controlled slag removing structure of the utility model is shown in the figure;

[0022] Figure 6 The structure schematic diagram of the controlled slag removing structure of the utility model is shown in the figure. Figure 5 The structure schematic diagram of the controlled slag removing structure of the utility model is shown in the figure.

[0023] In the figure: 1, mobile base; 2, connecting shell; 3, stacking hopper; 4, beating structure; 5, controlled slag removing structure; 6, receiving chute; 7, controller; 401, drive motor; 402, drive rod; 403, drive pulley; 404, driven pulley; 405, rotating rod; 406, drive bevel gear; 407, driven bevel gear; 408, connecting rotating rod; 409, rotating bevel gear; 410, transmission bevel gear; 411, transmission rod; 412, rotating cam; 413, connecting lever; 414, moving link plate; 415, rotating gear; 416, transmission gear; 417, blade connecting roller; 418, drive gear; 419, driven gear; 420, crushing roller; 421, rotating auger; 422, fixed shell; 423, fruit pulp discharge port; 501, rotating motor; 502, drive rotating rod; 503, drive belt gear; 504, connecting belt; 505, driven belt gear; 506, adjusting screw; 507, fixed disc; 508, moving disc; 509, pressure sensor; 510, moving plug plate. DETAILED DESCRIPTION

[0024] The technical scheme in the embodiments of the utility model will be described clearly and completely below in conjunction with the embodiments of the utility model. Obviously, the described embodiments are only part of the embodiments of the utility model, rather than all the embodiments. Based on the embodiments in the utility model, all other embodiments obtained by those skilled in the art without creative labor fall within the protection scope of the utility model.

[0025] Embodiment, please refer to Figures 1-6 The utility model provides a technical scheme:

[0026] A fruit pulping machine includes a movable base 1, a connecting housing 2 connected to the end face of the movable base 1, a material stacking funnel 3 connected to the end face of the connecting housing 2, a continuously feeding pulping structure 4 connected to the inner cavity of the connecting housing 2 and below the material stacking funnel 3, a controllable slag removal structure 5 connected to the tail end of the pulping structure 4, a receiving trough 6 connected to the side wall of the connecting housing 2 and below the controllable slag removal structure 5, and a controller 7 connected to the side wall of the connecting housing 2.

[0027] In this embodiment, reference Figure 1 , Figure 2 , Figure 3 and Figure 4 The pulping structure 4 includes a drive motor 401, which is connected to the end face of the movable base 1 via a connecting seat. The drive end of the drive motor 401 is connected to a drive rod 402 via a coupling. A drive pulley 403 is connected to the side wall of the drive rod 402. A driven pulley 404 is connected to the side wall of the drive pulley 403 via a connecting belt. A rotating rod 405 is connected to the center of the driven pulley 404. One end of the rotating rod 405 is meshed with a driven bevel gear 407 via a drive bevel gear 406. A connecting rod 408 is connected to the center of the driven bevel gear 407. A transmission bevel gear 410 is meshed with a rotating bevel gear 409 on the side wall of the connecting rod 408. A transmission rod 411 is connected to the center of the transmission bevel gear 410. A rotating cam 412 is connected to the end face of the connecting rod 408. A connecting lever 413 is connected to the bottom of the rotating cam 412. A movable connecting plate 414 is connected via a connecting plate and is located at the bottom of the material hopper 3. One end of the transmission rod 411 is meshed with a transmission gear 416 via a rotating gear 415. A blade connecting roller 417 is connected at the center of the rotating gear 415 and the transmission gear 416 and within the inner cavity of the connecting housing 2. One end of the rotating rod 405 is meshed with a driven gear 419 via a driving gear 418. A crushing roller 420 is connected at the center of the driving gear 418 and the driven gear 419 and within the inner cavity of the connecting housing 2. A rotating auger 421 is connected at one end of the driving rod 402 and within the inner cavity of the connecting housing 2. A fixed housing 422 is connected outside the blade connecting roller 417, the crushing roller 420, and the rotating auger 421 and within the inner cavity of the connecting housing 2. A pulp outlet 423 is provided on the outer wall of the fixed housing 422 and below the rotating auger 421.

[0028] Based on the above structure and its connection relationships, the controller 7 controls the drive motor 401. When the drive end of the drive motor 401 rotates, it sequentially drives the drive rod 402, drive pulley 403, driven pulley 404, rotating rod 405, drive bevel gear 406, driven bevel gear 407, connecting rod 408, rotating bevel gear 409, transmission bevel gear 410, transmission rod 411, and rotating cam 412 to rotate. When the rotating cam 412 rotates, it can push and pull the moving connecting plate 414 at the bottom of the stacking funnel 3 via the connecting lever 413, so that the fruit in the stacking funnel 3 can be intermittently fed into the fixed shell 422, preventing the fruit from being... During pulping, the blade connecting roller 417, crushing roller 420, and rotating auger 421 are locked. When the transmission rod 411 rotates, it drives the rotating gear 415, transmission gear 416, and blade connecting roller 417 to rotate, which can initially crush the fruit falling from the material hopper 3. When the rotating rod 405 rotates, it drives the drive gear 418, driven gear 419, and crushing roller 420 to rotate, which further crushes and presses the initially crushed fruit. When the drive rod 402 rotates, it drives the rotating auger 421 to rotate, which can separate the crushed and pressed fruit into pulp and pulp, allowing the pulp to flow out from the pulp outlet 423 and the pulp to be discharged from the controllable slag removal structure 5.

[0029] The drive motor 401 is electrically connected to the controller 7 via wires, and the controller 7 can control the operation of the drive motor 401. The connecting rod 408 is connected to the side wall of the connecting housing 2 via a bearing seat, wherein the connecting rod 408 and the bearing seat are rotatably connected. The bottom of the rotating cam 412 and the connecting lever 413 are provided with a connecting groove, wherein the connecting lever 413 and the connecting groove are slidably connected. When the drive motor 401 runs, it can drive the connecting rod 408 and the rotating cam 412 to rotate. The bottom of the stacking hopper 3 and the movable connecting plate 414 are provided with a connecting slide rail, wherein the movable connecting plate 414 and the connecting slide rail are slidably connected. When the rotating cam 412 rotates... The moving connecting plate 414 can be moved. Multiple sets of cutting blades are connected to the side wall of the blade connecting roller 417. The blade connecting roller 417 is connected to the side wall of the connecting housing 2 through the bearing seat. The blade connecting roller 417 and the bearing seat are connected in a rotatable manner. The crushing roller 420 is connected to the side wall of the connecting housing 2 through the bearing seat. The crushing roller 420 and the bearing seat are connected in a rotatable manner. The rotating auger 421 is connected to the side wall of the connecting housing 2 through the bearing seat. The rotating auger 421 and the bearing seat are connected in a rotatable manner. The outer wall of the fixed housing 422 is provided with filter holes corresponding to the pulp outlet 423. When the drive motor 401 is running, it can drive the blade connecting roller 417, the crushing roller 420 and the rotating auger 421 to rotate.

[0030] In this embodiment, reference Figure 1 , Figure 2 , Figure 5 and Figure 6 The controllable slag removal structure 5 includes a rotating motor 501, which is connected to the side wall of the inner cavity of the connecting housing 2. The drive end of the rotating motor 501 is connected to a drive rod 502 via a coupling. A drive belt gear 503 is connected to the side wall of the drive rod 502. A driven belt gear 505 is symmetrically meshed with the side wall of the drive belt gear 503 via a connecting belt 504. An adjusting screw 506 is connected to the center of the driven belt gear 505. A fixed disc 507 is connected to the other end of the adjusting screw 506. The tail end of the rotating auger 421 is rotatably connected to the side wall of the fixed housing 422. A movable disc 508 is connected to the side wall of the adjusting screw 506. A pressure sensor 509 is connected to the center of the movable disc 508. A movable stopper plate 510 is connected to the other end of the pressure sensor 509, which is located at the tail end of the rotating auger 421.

[0031] Based on the above structure and the connection relationship of the above structure, when the pressure sensor 509 senses a certain pressure, the controller 7 controls the rotating motor 501 to rotate. When the drive end of the rotating motor 501 rotates, it sequentially drives the drive rod 502, drive belt gear 503, connecting belt 504, driven belt gear 505 and adjusting screw 506 to rotate. When the adjusting screw 506 rotates, it drives the moving disc 508, pressure sensor 509 and moving stopper plate 510 to move on the side wall of the adjusting screw 506, so that a gap appears between the moving stopper plate 510 and the tail end shell of the rotating auger 421. As the rotating auger 421 continues to rotate, the fruit residue is discharged into the receiving trough 6.

[0032] The rotary motor 501 is electrically connected to the controller 7 via wires, and the pressure sensor 509 is also electrically connected to the controller 7 via wires. The controller 7 can control the operation of the rotary motor 501 and the pressure sensor 509. The drive rod 502 is connected to the side wall of the connecting housing 2 via a bearing seat, wherein the drive rod 502 and the bearing seat are rotatably connected. The adjusting screw 506 is connected to the side wall of the fixed disc 507 via a bearing seat, wherein the adjusting screw 506 and the bearing seat are rotatably connected, and the adjusting screw 506 and the movable disc 508 are threadedly connected. When the rotary motor 501 is running, it can drive the drive rod 502 and the adjusting screw 506 to rotate.

[0033] When using the fruit pulping machine, first connect the power supply to the device to put it into operation. The controller 7 controls the drive motor 401. When the drive motor 401 rotates, it drives the drive rod 402 to rotate. The drive rod 402 drives the drive pulley 403 to rotate, which in turn drives the driven pulley 404 to rotate. The driven pulley 404 drives the rotating rod 405 to rotate, which in turn drives the drive bevel gear 406 to rotate. The drive bevel gear 406 drives the driven bevel gear 407 to rotate, which in turn drives the connecting rod 408 to rotate. The connecting rod 408 drives the rotating bevel gear 409 to rotate, which in turn drives the transmission bevel gear 410 to rotate. The transmission bevel gear 410 drives the transmission rod 411 to rotate, and the connecting rod 408 drives the rotating cam 412 to rotate. When the rotating cam 412 rotates, it can be driven by the connecting rod... Rod 413 pushes and pulls the movable connecting plate 414 at the bottom of the material hopper 3, allowing the fruit in the material hopper 3 to be intermittently fed into the fixed shell 422, preventing the fruit from jamming the blade connecting roller 417, crushing roller 420 and rotating auger 421 during pulping. When the transmission rod 411 rotates, it drives the rotating gear 415, transmission gear 416 and blade connecting roller 417 to rotate, which can initially crush the fruit falling from the material hopper 3. When the rotating rod 405 rotates, it drives the drive gear 418, driven gear 419 and crushing roller 420 to rotate, which further crushes the initially crushed fruit into pulp. When the drive rod 402 rotates, it drives the rotating auger 421 to rotate, which can separate the pulp and pulp from the crushed fruit, allowing the pulp to flow out from the pulp outlet 423 and the pulp to be discharged from the controllable slag removal structure 5.

[0034] When the pressure sensor 509 senses a certain pressure, the controller 7 controls the rotating motor 501. When the drive end of the rotating motor 501 rotates, it sequentially drives the drive rod 502, drive belt gear 503, connecting belt 504, driven belt gear 505, and adjusting screw 506 to rotate. When the adjusting screw 506 rotates, it drives the moving disc 508, pressure sensor 509, and moving stopper plate 510 to move on the side wall of the adjusting screw 506, so that a gap appears between the moving stopper plate 510 and the tail end housing of the rotating auger 421. As the rotating auger 421 continues to rotate, the fruit pulp is discharged into the receiving trough 6, which can more fully extract the fruit pulp from the fruit pulp and reduce the waste of fruit pulp.

[0035] Although embodiments of the present invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the present invention, the scope of which is defined by the appended claims and their equivalents.

Claims

1. A fruit pulping machine, comprising a movable base (1), characterized in that: A connecting housing (2) is connected to the end face of the movable base (1), a material stacking funnel (3) is connected to the end face of the connecting housing (2), a continuously feeding pulping structure (4) is connected in the inner cavity of the connecting housing (2) and below the material stacking funnel (3), a controllable slag removal structure (5) is connected to the tail end of the pulping structure (4), a receiving trough (6) is connected on the side wall of the connecting housing (2) and below the controllable slag removal structure (5), and a controller (7) is connected on the side wall of the connecting housing (2). The pulping structure (4) includes a drive motor (401), which is connected to the end face of the movable base (1) via a connecting seat. The drive end of the drive motor (401) is connected to a drive rod (402) via a coupling. A drive pulley (403) is connected to the side wall of the drive rod (402), and a driven pulley (404) is connected to the side wall of the drive pulley (403) via a connecting belt. A rotating rod (405) is connected to the center of the driven pulley (404), and one end of the rotating rod (405) is connected to a drive cone. A driven bevel gear (407) is meshed with a gear (406). A connecting rod (408) is connected to the center of the driven bevel gear (407). A transmission bevel gear (410) is meshed with the side wall of the connecting rod (408) via a rotating bevel gear (409). A transmission rod (411) is connected to the center of the transmission bevel gear (410). A rotating cam (412) is connected to the end face of the connecting rod (408). A connecting lever (413) is connected to the bottom of the rotating cam (412). The bottom of the material hopper (3) is connected to a movable connecting plate (414) via a connecting plate. The movable connecting plate (414) is located at the bottom of the material hopper (3). One end of the transmission rod (411) is connected to a transmission gear (416) via a rotating gear (415). A blade connecting roller (417) is connected at the center of the rotating gear (415) and the transmission gear (416) and located in the inner cavity of the connecting housing (2). One end of the rotating rod (405) is connected to a driven gear (419) via a driving gear (418). The driving gear (418) A crushing roller (420) is connected at the center of the driven gear (419) and in the inner cavity of the connecting housing (2). A rotating auger (421) is connected at one end of the drive rod (402) and in the inner cavity of the connecting housing (2). A fixed housing (422) is connected outside the blade connecting roller (417), the crushing roller (420) and the rotating auger (421) and in the inner cavity of the connecting housing (2). A pulp outlet (423) is provided on the outer wall of the fixed housing (422) and below the rotating auger (421).

2. The fruit pulping machine according to claim 1, characterized in that: The controllable slag removal structure (5) includes a rotary motor (501), which is connected to the side wall of the inner cavity of the connecting housing (2). The drive end of the rotary motor (501) is connected to a drive rod (502) via a coupling. A drive belt gear (503) is connected to the side wall of the drive rod (502). A driven belt gear (505) is symmetrically meshed with the side wall of the drive belt gear (503) via a connecting belt (504). The driven belt gear (505) is located in the middle of the drive belt gear (505). An adjusting screw (506) is connected to the center of the rotating auger (421), and a fixed disc (507) is connected to the other end of the adjusting screw (506). The tail end of the rotating auger (421) is rotatably connected to the side wall of the fixed housing (422). A movable disc (508) is connected to the side wall of the adjusting screw (506). A pressure sensor (509) is connected to the center of the movable disc (508). A movable stopper plate (510) is connected to the other end of the pressure sensor (509) and located at the tail end of the rotating auger (421).

3. The fruit pulping machine according to claim 2, characterized in that: The drive motor (401) is connected to the controller (7) by wires and the connection method is electrical connection. The connecting rod (408) is connected to the side wall of the connecting housing (2) by bearing seat, wherein the connection method between the connecting rod (408) and the bearing seat is rotational connection.

4. The fruit pulping machine according to claim 2, characterized in that: The bottom of the rotating cam (412) and the connecting lever (413) are provided with a connecting groove, wherein the connecting lever (413) and the connecting groove are connected in a sliding connection. The bottom of the material hopper (3) and the moving connecting plate (414) are provided with a connecting rail, wherein the moving connecting plate (414) and the connecting rail are connected in a sliding connection.

5. The fruit pulping machine according to claim 2, characterized in that: Multiple sets of cutting blades are connected to the side wall of the blade connecting roller (417). The blade connecting roller (417) is connected to the side wall of the connecting housing (2) through a bearing seat. The blade connecting roller (417) and the bearing seat are connected by a rotatable connection. The crushing roller (420) is connected to the side wall of the connecting housing (2) through a bearing seat. The crushing roller (420) and the bearing seat are connected by a rotatable connection.

6. The fruit pulping machine according to claim 2, characterized in that: The rotating auger (421) is connected to the side wall of the connecting housing (2) through a bearing seat. The rotating auger (421) and the bearing seat are connected by a rotating connection. The outer wall of the fixed housing (422) is provided with a filter hole corresponding to the pulp outlet (423).

7. The fruit pulping machine according to claim 2, characterized in that: The rotating motor (501) is connected to the controller (7) by wires and the connection method is electrical connection. The driving rod (502) is connected to the side wall of the connecting housing (2) by bearing seat, wherein the connection method between the driving rod (502) and the bearing seat is rotational connection.

8. The fruit pulping machine according to claim 2, characterized in that: The adjusting screw (506) is connected to the side wall of the fixed disk (507) through a bearing seat. The adjusting screw (506) is connected to the bearing seat by rotation. The adjusting screw (506) is connected to the movable disk (508) by thread. The pressure sensor (509) is connected to the controller (7) by a wire and the connection is electrical.