Transfer type salad machine
By designing a separate-drive salad machine, a single motor drives the cutting and dehydration modules separately, solving the problems of complex structure and high energy consumption in existing salad machines, and achieving the effects of simple structure, convenient maintenance and low energy consumption.
Patent Information
- Application Number
- CN202511885365.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-12-15
- Publication Date
- 2026-02-10
AI Technical Summary
Existing salad machines have a complex structure, requiring multiple motors to perform cutting and dehydration separately. They are inconvenient to disassemble and assemble, difficult to maintain, and have high energy consumption.
It adopts a split-drive design, with one motor providing power to both the cutting module and the dehydration module. The drive module can be selectively connected to either the cutting module or the dehydration module to achieve independent driving of cutting or dehydration operations.
It simplifies the structure, reduces maintenance difficulty, reduces energy consumption, and improves the flexibility and efficiency of use.
Smart Images

Figure CN121489313A_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of food processing equipment technology, and more specifically, to a split-type salad machine. Background Technology
[0002] As people's living standards improve, their demands for food cooking and preparation are becoming increasingly sophisticated. Therefore, there is a need for processing equipment with various unique functions. Salad machines, which can cut and mix fruits and vegetables, are becoming increasingly widely used. Salad machines are mainly used for making vegetable salads, and also have functions such as cutting, washing, rinsing, and dehydrating vegetables. Common types include household kitchen machines and commercial processing equipment. In existing technology, fruits and vegetables are washed and added to the salad machine. The machine's blades cut the fruits and vegetables, and then the mixing shaft is replaced for further mixing. Some salad machines are also equipped with a dehydration structure, which separates the water from the cut fruits and vegetables.
[0003] The inventors discovered that salad machines using this technology have at least the following drawbacks: Multiple motors are used to achieve cutting and dehydration, resulting in a complex structure that is inconvenient to disassemble, assemble, and maintain. Summary of the Invention
[0004] The present invention aims to provide a split-type salad machine, which can provide power to the cutting module and the dehydration module separately through a single motor. It has a simple structure, is easy to maintain, and can selectively perform cutting and dehydration, with flexible control and low energy consumption.
[0005] The embodiments of the present invention can be implemented as follows: In a first aspect, the present invention provides a split-type salad machine, comprising: The system comprises an outer cover, a drive module, a cutting module, and a dehydration module; the drive module is fixedly connected to the outer cover; both the cutting module and the dehydration module are connected to the outer cover, the cutting module is located above the dehydration module, the cutting module is used to cut fruits and vegetables, and the dehydration module is used to receive the cut fruits and vegetables falling from the cutting module and dehydrate them; The drive module can be selectively connected to the cutting module and the dehydration module for driving the cutting module or the dehydration module to rotate independently.
[0006] In an optional embodiment, the cutting module includes a support plate, a baffle, and an annular cutter. The baffle is mounted on the support plate. The annular cutter has a discharge port. The port of the discharge port located on the inner circumferential surface of the annular cutter has a front side and a rear side in the circumferential direction of the annular cutter. The rear side is provided with a cutting edge. The distance between the cutting edge and the center of the annular cutter is smaller than the distance between the front side and the center of the annular cutter. The carrier plate is located within the area enclosed by the annular cutter and the two are rotatably coupled. The annular cutter is fixedly connected to the outer cover, and the carrier plate is used for transmission connection with the drive module.
[0007] In an optional embodiment, the baffle has a working surface for pushing fruits and vegetables toward the blade, the angle between the working surface and a predetermined tangent of the outer peripheral surface of the support plate is ≤90°; the intersection of the working surface and the outer peripheral surface is located on the tangent line between the predetermined tangent and the outer peripheral surface.
[0008] In an optional embodiment, the cutting module further includes a connecting seat, which is fixedly connected to the annular cutter, and the support plate is rotatably connected to the connecting seat.
[0009] In an optional embodiment, the dehydration module includes a dehydration mesh cover and a connecting block. The dehydration mesh cover is fixedly connected to the connecting block, and the dehydration mesh cover is located below the support plate. The connecting block is rotatably connected to the outer cover. The connecting block is used for transmission connection with the drive module.
[0010] In an optional embodiment, the drive module includes a telescopic device and a motor. The fixed end of the telescopic device is connected to the outer cover, and the telescopic end of the telescopic device is connected to the motor. The telescopic device is used to drive the motor to lift and lower, so that the output shaft of the motor can be selectively connected to the bearing plate and the connecting block for transmission.
[0011] In an optional embodiment, the motor includes a motor body and a transmission head. The transmission head is provided with a first transmission part and a second transmission part. The first transmission part is used to drive the support plate to rotate. The second transmission part is used to drive the connecting block to rotate the dewatering screen.
[0012] In an optional embodiment, the bottom of the bearing plate is provided with a first transmission groove, the cross-sectional profile of the first transmission groove is non-circular, the first transmission part is used to insert into or leave the first transmission groove, and when the first transmission part is inserted into the first transmission groove, the two are fixed relative to each other in the circumferential direction of the output shaft.
[0013] In an optional embodiment, the top of the connecting block is provided with a second transmission groove, the cross-sectional profile of the second transmission groove is non-circular, the second transmission part is used to insert into or leave the second transmission groove, and when the second transmission part is inserted into the second transmission groove, the two are fixed relative to each other in the circumferential direction of the output shaft.
[0014] In an optional embodiment, the outer cover includes a lower shell and an upper shell, the upper shell being detachably connected to the lower shell; the drive module and the dehydration module are mounted on the lower shell, and the annular cutter is mounted on the upper shell.
[0015] The beneficial effects of the split-type salad machine provided in this embodiment of the invention include: In summary, the split-action salad machine provided in this embodiment operates by placing washed fruits and vegetables on the cutting module and adjusting the drive module to be connected to the cutting module. After powering on, the drive module is activated, driving the cutting module to rotate and chop the fruits and vegetables. The chopped fruits and vegetables then leave the cutting module and enter the dehydration module. After chopping, the drive module is adjusted to detach from the cutting module and connect to the dehydration module. The drive module is then activated, driving the dehydration module to dehydrate the chopped fruits and vegetables. After dehydration, the processed fruits and vegetables can be removed. A single drive module can power both the cutting and dehydration modules, resulting in fewer drive modules, a simpler structure, and lower manufacturing costs. The step-by-step dehydration process avoids repeated, ineffective dehydration of the chopped fruits and vegetables, leading to low energy consumption. Attached Figure Description
[0016] To more clearly illustrate the technical solutions of the embodiments of the present invention, the accompanying drawings used in the embodiments will be briefly introduced below. It should be understood that the following drawings only show some embodiments of the present invention and should not be regarded as a limitation on the scope. For those skilled in the art, other related drawings can be obtained based on these drawings without creative effort.
[0017] Figure 1 This is a schematic diagram of the split-type salad machine provided in this embodiment; Figure 2 This is a cross-sectional view of the split-type salad machine provided in this embodiment; Figure 3 for Figure 2 A partially enlarged structural diagram; Figure 4 This is a schematic diagram of the outer casing in this embodiment; Figure 5 This is a schematic diagram showing the cooperation between the cutting module and the dehydration module in this embodiment; Figure 6 This is a schematic diagram of the cutting module in this embodiment; Figure 7 This is a schematic diagram of the AA direction in this embodiment.
[0018] icon: 001-Setting the cutting surface; 100-Outer cover; 110-Upper shell; 120-Lower shell; 130-Mounting cylinder; 200-Drive module; 210-Extension joint; 220-Motor body; 230-Transmission head; 231-First transmission part; 232-Second transmission part; 300-Cutting module; 310-Bearing plate; 311-First transmission groove; 320-Baffle; 321-Working surface; 330-Annular cutter; 331-Discharge port; 332-Blade edge; 340-Connecting seat; 350-First bearing; 400-Dehydration module; 410-Dehydration screen; 420-Connecting block; 421-Second transmission groove; 422-Assembly through hole; 430-Second bearing. Detailed Implementation
[0019] To make the objectives, technical solutions, and advantages of the embodiments of the present invention clearer, the technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. The components of the embodiments of the present invention described and shown in the accompanying drawings can generally be arranged and designed in various different configurations.
[0020] Therefore, the following detailed description of the embodiments of the invention provided in the accompanying drawings is not intended to limit the scope of the claimed invention, but merely to illustrate selected embodiments of the invention. All other embodiments obtained by those skilled in the art based on the embodiments of the invention without inventive effort are within the scope of protection of the invention.
[0021] It should be noted that similar labels and letters in the following figures indicate similar items. Therefore, once an item is defined in one figure, it does not need to be further defined and explained in subsequent figures.
[0022] In the description of this invention, it should be noted that if terms such as "upper," "lower," "inner," or "outer" are used to indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings, or the orientation or positional relationship in which the product of this invention is usually placed, they are only for the convenience of describing this invention and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation, and therefore should not be construed as a limitation of this invention.
[0023] Furthermore, the terms "first" and "second" are used only to distinguish descriptions and should not be interpreted as indicating or implying relative importance.
[0024] It should be noted that, where there is no conflict, the features in the embodiments of the present invention can be combined with each other.
[0025] The overall structure, working principle, and technical effects of the device A provided by the present invention will be described in detail below through embodiments and in conjunction with the accompanying drawings.
[0026] Please combine Figures 1-7 This embodiment provides a split-type salad machine, which includes an outer cover 100, a drive module 200, a cutting module 300, and a dehydration module 400. The drive module 200 is fixedly connected to the outer cover 100; both the cutting module 300 and the dehydration module 400 are connected to the outer cover 100. The cutting module 300 is located above the dehydration module 400. The cutting module 300 is used to cut fruits and vegetables, and the dehydration module 400 is used to receive the cut fruits and vegetables falling from the cutting module 300 and dehydrate them. The drive module 200 can be selectively connected to the cutting module 300 and the dehydration module 400 for driving either the cutting module 300 or the dehydration module 400 to rotate independently.
[0027] As described above, the working principle of the split-action salad bar provided in this embodiment is as follows: During operation, the washed fruits and vegetables are placed on the cutting module 300, and the drive module 200 is adjusted to be connected to the cutting module 300. After the machine is powered on, the drive module 200 is started, driving the cutting module 300 to rotate, thus chopping the fruits and vegetables. The chopped fruits and vegetables leave the cutting module 300 and enter the dehydration module 400. After chopping is complete, the drive module 200 is adjusted to disengage from the cutting module 300 and connect to the dehydration module 400. The drive module 200 is then started, driving the dehydration module 400 to dehydrate the chopped fruits and vegetables. After dehydration is complete, the processed fruits and vegetables can be removed. One drive module 200 can provide power to both the cutting module 300 and the dehydration module 400. The number of drive modules 200 is small, the structure is simple, and the manufacturing cost is low. After cutting, dehydration is carried out in stages, avoiding repeated and ineffective dehydration of the fruits and vegetables that were cut first, thus reducing energy consumption.
[0028] It should be understood that when a split-type salad machine is in operation, cutting and dehydration can be selected according to needs, making it flexible and versatile.
[0029] The following embodiments illustrate the details of the separate-action salad machine of this application by way of example.
[0030] Please combine Figures 1-7In this embodiment, optionally, the split-type salad machine includes an outer casing 100, a drive module 200, a cutting module 300, and a dehydration module 400. The drive module 200, cutting module 300, and dehydration module 400 are all connected to the outer casing 100, forming a compact and small unit that is easy to store and transport. When powered, the drive module 200 provides power to both the cutting module 300 and the dehydration module 400. A single drive module 200 can provide kinetic energy to both modules, resulting in a simple structure and low energy consumption. During operation, power can be transmitted to either the cutting module 300 or the dehydration module 400 as needed, offering flexibility and a wide range of applications.
[0031] Please combine Figure 4 In this embodiment, optionally, the outer cover 100 is configured as a split structure, the outer cover 100 includes an upper shell 110 and a lower shell 120, the upper shell 110 and the lower shell 120 can be connected together, and the two are detachably connected. During operation, the two are connected. After the work is completed, the upper shell 110 can be opened, so as to facilitate the removal of the cut and dehydrated fruits and vegetables.
[0032] It should be understood that the upper shell 110 and the lower shell 120 can be detachably connected by means of snaps, magnetic attraction or threaded structure, and there are many different connection methods. This embodiment does not make any specific limitation.
[0033] In addition, observation windows can be provided in at least a portion of the upper shell 110 or the lower shell 120, allowing for a direct view of the processing of the internal fruits and vegetables, facilitating operation.
[0034] Optionally, an installation cylinder 130 is provided in the middle of the lower shell 120, with the bottom of the installation cylinder 130 open and the top closed.
[0035] Please combine Figures 2-3 In this embodiment, optionally, the drive module 200 includes a telescopic member 210 and a motor. Both the telescopic member 210 and the motor are located inside the mounting cylinder 130. The fixed end of the telescopic member 210 can be fixedly connected to the mounting cylinder 130 via bolts or the like. The telescopic member 210 is located on the side of the motor near the open end of the mounting cylinder 130. The telescopic end of the telescopic member 210 is connected to the motor, enabling the motor to slide back and forth in the extension direction of the axis of the mounting cylinder 130, thereby adjusting the height of the motor. When the motor is raised or lowered, it can selectively connect to the cutting module 300 and the dewatering module 400. Function switching is achieved through motor raising and lowering, making operation flexible and convenient.
[0036] Optionally, the motor includes a motor body 220 and a transmission head 230. The output shaft of the motor body 220 is fixedly connected to the transmission head 230. The two can be connected by a spline or a flat key. After the motor body 220 is powered on and started, it can transmit torque to the transmission head 230, thereby driving the transmission head 230 to rotate.
[0037] The transmission head 230 is provided with a first transmission part 231 and a second transmission part 232, both of which can be configured as annular transmission surfaces. The first transmission part 231 is located on the side of the second transmission part 232 away from the motor body 220. Furthermore, the cross-sectional profiles of both the first transmission part 231 and the second transmission part 232 can be non-circular, with the cross-section being a plane perpendicular to the output shaft. When the telescopic device 210 drives the motor to rise and fall, the first transmission part 231 can be connected to the cutting module 300, at which time the second transmission part 232 is separated from the dehydration module 400, and torque can be transmitted to the cutting module 300 through the transmission head 230. Similarly, the second transmission part 232 can be connected to the dehydration module 400, at which time the first transmission part 231 is separated from the cutting module 300, and torque can be transmitted to the dehydration module 400 through the transmission head 230, allowing for convenient and flexible switching.
[0038] It should be understood that the cross-sectional outer contours of the first transmission part 231 and the second transmission part 232 can both be set as eccentric toroidal surfaces, polygons, ellipses, etc.
[0039] Optionally, the telescopic device 210 can be a cylinder, hydraulic cylinder, electric push rod, or electric lead screw, etc.
[0040] In other embodiments, the telescopic device can also be adjusted to a clutch mechanism to achieve power transmission adjustment. For example, the clutch mechanism may include double ratchet or double one-way bearings, which can realize the switching of the connection state.
[0041] Please combine Figures 5-7 In this embodiment, optionally, the cutting module 300 includes a support plate 310, a baffle 320, and an annular cutter 330. The baffle 320 is mounted on the support plate 310. The annular cutter 330 is provided with a discharge port 331. The port of the discharge port 331 located on the inner circumferential surface of the annular cutter 330 has a front side and a rear side in the circumferential direction of the annular cutter 330. A cutting edge 332 is provided on the rear side. The distance between the cutting edge 332 and the center of the annular cutter 330 is less than the distance between the front side and the center of the annular cutter 330. The difference in distance is the cutting thickness of the vegetables and fruits. The cut vegetables and fruits can be discharged along the discharge port 331 and are not easy to accumulate on the support plate 310. The support plate 310 is located in the area enclosed by the annular cutter 330 and the two are rotatably engaged. The annular cutter 330 and the upper shell 110 can be fixedly connected by screws or other structural components. The support plate 310 can be drivenly connected to the first transmission part 231.
[0042] The cutting module 300 operates as follows: the drive module 200 transmits torque to the support plate 310, causing the support plate 310 and the baffle 320 to rotate together, with their rotation axis collinear with the axis of the mounting cylinder 130. The annular cutter 330 is fixedly connected to the upper shell 110. The annular cutter 330 remains stationary, while the support plate 310 and the baffle 320 rotate together relative to the annular cutter 330. Fruits and vegetables are placed on the support plate 310 and, under centrifugal force, adhere to the inner circumferential surface of the annular cutter 330, making contact with the cutting edge 332. Simultaneously, the baffle 320 pushes the fruits and vegetables towards the cutting edge 332, preventing slippage during contact, improving cutting efficiency, and reducing energy consumption.
[0043] It should be understood that the number of baffles 320 can be one or more. For example, in this embodiment, there are four baffles 320, which are evenly spaced apart in the circumferential direction of the support plate 310. Multiple baffles 320 can separate fruits and vegetables, preventing them from piling up and improving cutting efficiency. Obviously, in other embodiments, the number of baffles 320 is not limited to four and can be other numbers.
[0044] Optionally, the carrier plate 310 is configured as a disc, with a baffle 320 mounted on one circular surface and a first transmission groove 311 provided on the opposite circular surface. The cross-sectional profile of the first transmission groove 311 is non-circular and matches the first transmission part 231. That is, when the first transmission part 231 is inserted into the first transmission groove 311, the transmission head 230 and the carrier plate 310 are relatively fixed in the circumferential direction of the output shaft, and the transmission head 230 can transmit torque to the carrier plate 310, thereby driving the carrier plate 310 to rotate.
[0045] Optionally, the baffle 320 has a working surface 321 for pushing fruits and vegetables towards the blade 332. The angle between the working surface 321 and the set tangent 001 of the outer peripheral surface of the support plate 310 is α, where α ≤ 90°. The intersection of the working surface 321 and the outer peripheral surface is located on the tangent line between the set tangent 001 and the outer peripheral surface. With this design, when fruits and vegetables come into contact with the working surface 321, they move towards the blade 332 under the influence of the working surface 321. Furthermore, the fruits and vegetables do not generate centrifugal force, which does not counteract the centrifugal force. Under the action of centrifugal force, the fruits and vegetables can better adhere to the inner peripheral surface of the annular cutter 330, thereby improving contact with the blade 332 and enhancing the cutting effect. See details for further information. Figure 7 From the perspective shown, the support plate 310 rotates clockwise during operation, and the working surface 321 is located in front in the direction of rotation, which can drive the fruits and vegetables toward the blade 332 to prevent slippage.
[0046] It should be understood that the value of β is designed as needed, and this embodiment does not impose specific limitations.
[0047] Optionally, the cutting module 300 also includes a connecting seat 340, which can be an annular structure. The outer side of the connecting seat 340 can be fixedly connected to the annular cutter 330. A connecting shaft is integrated at the bottom of the support plate 310, and the connecting shaft passes through the connecting seat 340. The two can be rotatably connected by a first bearing 350. In this way, the support plate 310 is supported by the connecting seat 340, and the support plate 310 rotates smoothly and reliably.
[0048] It should be understood that the connector 340 can be detachably connected to the annular cutter 330 via a snap-fit or other structure.
[0049] In addition, the connecting seat 340 can also be sleeved on the top of the mounting cylinder 130. The mounting cylinder 130 can also be used to position the connecting seat 340. The two are in clearance fit and will not affect the separation of the upper shell 110. When the upper shell 110 separates from the lower shell 120, the upper shell 110 first separates from the connecting seat 340, and then drives the annular cutter 330 to leave the carrier plate 310 together, exposing the interior of the lower shell 120. The dehydration module 400 is located inside the lower shell 120. In this way, the dehydration module 400 is exposed, and the dehydrated fruits and vegetables can be taken out from the dehydration module 400.
[0050] In this embodiment, optionally, the dehydration module 400 includes a dehydration mesh cover 410 and a connecting block 420. The dehydration mesh cover 410 is fixedly connected to the connecting block 420. The dehydration mesh cover 410 is located in the lower shell 120 and sleeved outside the mounting cylinder 130. The dehydration mesh cover 410 can rotate around the mounting cylinder 130. Simultaneously, the dehydration mesh cover 410 is located below the support plate 310 and can receive fruits and vegetables discharged from the discharge port 331 of the annular cutter 330. The connecting block 420 is rotatably connected to the top of the mounting cylinder 130 via a second bearing 430. The connecting block 420 and the support plate 310 have a gap in the axial direction of the mounting cylinder 130. The connecting block 420 is provided with a second transmission groove 421, and the bottom wall of the second transmission groove 421 is provided with an assembly through hole 422. The connecting block 420 is used for transmission connection with the transmission head 230.
[0051] During assembly, the connector passes through the assembly through hole 422. The first transmission part 231 and the second transmission part 232 are located between the first transmission groove 311 and the second transmission groove 421, with the first transmission part 231 closer to the first transmission groove 311 and the second transmission part 232 closer to the second transmission groove 421. When the telescopic device 210 drives the motor to move, the motor rises, allowing the first transmission part 231 to be inserted into the first transmission groove 311. At this time, the transmission head 230 is connected to the support plate 310, and torque can be transmitted to the support plate 310. At this time, the second transmission part 232 separates from the second transmission groove 421. Similarly, when the motor descends, the second transmission part 232 is inserted into the second transmission groove 421. At this time, the transmission head 230 is connected to the transmission block, and torque can be transmitted to the dehydration screen 410. At this time, the first transmission part 231 separates from the first transmission groove 311.
[0052] The split-operation salad machine provided in this embodiment can independently control cutting and dehydration by adjusting the connection status of the drive module 200 with the cutting module 300 and the dehydration module 400. It is flexible in operation, has a wide range of applications, and low energy consumption.
[0053] The above description is merely a specific embodiment of the present invention, but the scope of protection of the present invention is not limited thereto. Any variations or substitutions that can be easily conceived by those skilled in the art within the scope of the technology disclosed in the present invention should be included within the scope of protection of the present invention.
Claims
1. A split-type salad machine, characterized in that, include: The enclosure comprises an outer cover (100), a drive module (200), a cutting module (300), and a dehydration module (400); the drive module (200) is fixedly connected to the outer cover (100); both the cutting module (300) and the dehydration module (400) are connected to the outer cover (100), the cutting module (300) is located above the dehydration module (400), the cutting module (300) is used to cut fruits and vegetables, and the dehydration module (400) is used to receive the cut fruits and vegetables falling from the cutting module (300) and dehydrate them; The drive module (200) can be selectively connected to the cutting module (300) and the dehydration module (400) for driving the cutting module (300) or the dehydration module (400) to rotate independently.
2. The split-type salad machine according to claim 1, characterized in that: The cutting module (300) includes a support plate (310), a baffle (320), and an annular cutter (330). The baffle (320) is mounted on the support plate (310). The annular cutter (330) is provided with a discharge port (331). The discharge port (331) is located on the inner circumferential surface of the annular cutter (330). The annular cutter (330) has a front side and a rear side in the circumferential direction. The rear side is provided with a cutting edge (332). The distance between the cutting edge (332) and the center of the annular cutter (330) is smaller than the distance between the front side and the center of the annular cutter (330). The carrier plate (310) is located within the area enclosed by the annular cutter (330) and the two are rotatably coupled. The annular cutter (330) is fixedly connected to the outer cover (100), and the carrier plate (310) is used for transmission connection with the drive module (200).
3. The split-type salad machine according to claim 2, characterized in that: The baffle (320) has a working surface (321) for pushing fruits and vegetables toward the blade (332), the angle between the working surface (321) and the set tangent (001) of the outer peripheral surface of the support plate (310) is ≤90°; the intersection of the working surface (321) and the outer peripheral surface is located on the tangent line between the set tangent (001) and the outer peripheral surface.
4. The split-type salad machine according to claim 2, characterized in that: The cutting module (300) also includes a connecting seat (340), which is fixedly connected to the annular cutter (330), and the bearing plate (310) is rotatably connected to the connecting seat (340).
5. The split-type salad machine according to claim 2, characterized in that: The dehydration module (400) includes a dehydration mesh cover (410) and a connecting block (420). The dehydration mesh cover (410) is fixedly connected to the connecting block (420). The dehydration mesh cover (410) is located below the support plate (310). The connecting block (420) is rotatably connected to the outer cover (100). The connecting block (420) is used for transmission connection with the drive module (200).
6. The split-type salad machine according to claim 5, characterized in that: The drive module (200) includes a telescopic device (210) and a motor. The fixed end of the telescopic device (210) is connected to the outer cover (100), and the telescopic end of the telescopic device (210) is connected to the motor. The telescopic device (210) is used to drive the motor to lift and lower, so that the output shaft of the motor can be selectively connected to the bearing plate (310) and the connecting block (420) for transmission.
7. The split-type salad machine according to claim 6, characterized in that: The motor includes a motor body (220) and a transmission head (230). The transmission head (230) is provided with a first transmission part (231) and a second transmission part (232). The first transmission part (231) is used to drive the support plate (310) to rotate. The second transmission part (232) is used to drive the connecting block (420) to rotate the dewatering screen (410).
8. The split-type salad machine according to claim 7, characterized in that: The bottom of the bearing plate (310) is provided with a first transmission groove (311). The cross-sectional profile of the first transmission groove (311) is non-circular. The first transmission part (231) is used to insert into or leave the first transmission groove (311). When the first transmission part (231) is inserted into the first transmission groove (311), the two are fixed relative to each other in the circumferential direction of the output shaft.
9. The split-type salad machine according to claim 7, characterized in that: The top of the connecting block (420) is provided with a second transmission groove (421). The cross-sectional profile of the second transmission groove (421) is non-circular. The second transmission part (232) is used to insert into or leave the second transmission groove (421). When the second transmission part (232) is inserted into the second transmission groove (421), the two are fixed relative to each other in the circumferential direction of the output shaft.
10. The split-type salad machine according to any one of claims 2-9, characterized in that: The outer cover (100) includes a lower shell (120) and an upper shell (110), the upper shell (110) being detachably connected to the lower shell (120); the drive module (200) and the dehydration module (400) are mounted on the lower shell (120), and the annular cutter (330) is mounted on the upper shell (110).