Cutting and matching device
By designing a detachable cutting module structure, the problem of the cutting module being difficult to disassemble in the cutting device is solved, achieving convenient cleaning and improving safety.
Patent Information
- Application Number
- CN202423236990.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-27
- Publication Date
- 2025-11-28
- Estimated Expiration
- 2034-12-27
AI Technical Summary
In existing cutting and preparation devices, the cutting and preparation module is difficult to disassemble, making cleaning difficult, and the drive module cannot be cleaned independently, affecting the safety of use.
A detachable cutting and mixing module structure was designed. Through the detachable connection of the plug-in part and the docking part, combined with the anti-detachment structure, the cutting and mixing module can be easily disassembled and installed.
It enables convenient cleaning of the cutting and mixing module, improving the safety and cleaning efficiency of the device.
Smart Images

Figure CN223600742U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to cutting and dispensing equipment technical field, more specifically to cutting and dispensing device. BACKGROUND
[0002] Cutting and dispensing device is used to cut and dispense food materials, and is used to cut and dispense food materials. It mainly includes: cutting and dispensing module for cutting food materials, and driving module for providing power to cutting and dispensing module.
[0003] In actual use, because the driving module is far away from the food cutting area, the food is mainly cut in the cutting and dispensing module, resulting in: a lot of food residues are often accumulated in the cutting and dispensing module, which needs to be cleaned frequently; the driving module does not need to be cleaned frequently.
[0004] And in the existing cutting and dispensing device, the cutting and dispensing module connected to the driving module is limited by the connection of the driving module, and often cannot be disassembled and cleaned independently. Utility model content
[0005] The utility model aims at the deficiencies of prior art, and provides: cutting and dispensing device capable of disassembling cutting and dispensing module to better clean cutting and dispensing module.
[0006] The technical solution of the utility model is as follows:
[0007] Cutting and dispensing device, comprising:
[0008] Driving module and cutting and dispensing module on one side of driving module;
[0009] Driving module has: cutting and dispensing output shaft for outputting rotating force, and docking part arranged towards cutting and dispensing module;
[0010] Cutting and dispensing module is provided with cutting and dispensing channel arranged in vertical direction, and the cutting and dispensing channel is provided with knife and chopping board assembly for cutting food materials;
[0011] And cutting and dispensing module also has: connecting shaft for driving knife and chopping board assembly to run, and plug-in part arranged towards driving module;
[0012] The plug-in part is detachably plugged in the docking part, and the cutting and dispensing output shaft is detachably connected with the connecting shaft, so that: the cutting and dispensing module is detachably connected with the driving module (that is: the cutting and dispensing module can be connected with the driving module to form a cutting and dispensing structure with the driving module; or the cutting and dispensing module can be separated from the driving module);
[0013] It also includes anti-disengagement structure, which is configured to: make the plug-in part in the active state of being detachable from the docking part, or in the locked state of being inseparable from the docking part.
[0014] Further preferably, the plug-in part is a plug post arranged on the side of the cutting and dispensing module facing the driving module and protruding towards the driving module.
[0015] The plug-in part is a plug post arranged on the side of the cutting and dispensing module facing the driving module and protruding towards the driving module.
[0016] Further preferably, the anti-disengagement structure comprises:
[0017] a clamping hole arranged on the hole wall of the plug-in part;
[0018] a clamping block slidably mounted in a mounting groove arranged on the outer surface of the plug-in part and matched with the clamping hole;
[0019] an elastic member arranged in the mounting groove and elastically urging one end of the clamping block to protrude out of the mounting groove and be clamped in the clamping hole;
[0020] a switch member configured to slide the clamping block out of the clamping hole when pressed, and slidably mounted in the driving module;
[0021] The plug-in part is in a movable state disengaged from the plug-in part or in a locked state not disengaged from the plug-in part by pressing or not pressing the switch member.
[0022] Further preferably, the one end of the clamping block protruding out of the mounting groove is further formed with a guide inclined surface arranged in an inclined manner and used to be pressed by the hole wall of the plug-in part when the plug-in part is inserted into the plug-in part.
[0023] Further preferably, the mounting groove is further provided with a limiting structure preventing the clamping block from sliding out of the mounting groove;
[0024] The limiting structure comprises:
[0025] a flange part protrudingly arranged on the outer periphery of the clamping block;
[0026] a clamping part protrudingly arranged on the groove wall of the mounting groove and positioned on the side of the flange part facing the opening of the mounting groove to prevent the flange part from sliding out of the mounting groove.
[0027] Further preferably, the driving module is further provided with a reset member acting on the switch member;
[0028] The reset member is elastic and is configured to elastically reset the switch member when no external force is applied to the switch member.
[0029] Further preferably, the elastic member is a spring arranged between the clamping block and the groove wall of the mounting groove.
[0030] And the card block has a protruding part towards the bottom surface of the installation groove, and the elastic member of the spring structure is sleeved on the outer periphery of the protruding part.
[0031] Further, as a preferred solution, the outer edge of the end of the plug-in part is formed with an inclined surface which guides the plug-in part to be inserted into the insertion hole.
[0032] Further, as a preferred solution, the cutting output shaft and the connecting shaft are:
[0033] The end of any one shaft is provided with a spline groove which is open towards the other shaft;
[0034] The end of the other shaft is provided with an external spline which matches the spline groove;
[0035] And the cutting output shaft and the connecting shaft are arranged in a matched manner, so that when the plug-in part is detachably plugged into the counter part, the external spline is adapted to be inserted into the spline groove, and the cutting output shaft is detachably connected to the connecting shaft.
[0036] Further, as a preferred solution, the spline groove is formed with an inclined surface which guides the external spline to be inserted into the spline groove.
[0037] The main beneficial effects of the above technical solutions are:
[0038] Compared with the cutting device with a cutting module which cannot be detached, by detachably connecting the cutting module to the driving module, the cutting module can be detached for better cleaning after the food material is cut by the cutting device.
[0039] At the same time, by setting the anti-falling structure, the cutting module can be better prevented from falling off after being impacted by external force, and the use safety of the cutting device is improved.
[0040] Further or more detailed beneficial effects will be described in the specific embodiments. BRIEF DESCRIPTION OF DRAWINGS
[0041] The utility model will be further described below in combination with the drawings:
[0042] Figure 1 It is an installation structure diagram of the cutting module and the driving module.
[0043] Figure 2 It is a cutting output shaft structure diagram.
[0044] Figure 3 It is a driving module structure diagram.
[0045] Figure 4 It is a cutting module structure diagram.
[0046] Figure 5 This is a schematic diagram of the docking section in the anti-detachment structure.
[0047] Figure 6 This is a schematic diagram of the plug-in part in the anti-detachment structure.
[0048] Figure 7 This is a schematic diagram of the overall anti-detachment structure. Detailed Implementation
[0049] The present invention will be illustrated with specific examples below:
[0050] Example:
[0051] A cutting and preparation device is used to cut food ingredients into slices or strips. It mainly includes: a drive module b and a cutting and preparation module a (e.g., attached) positioned horizontally to one side of the drive module b. Figure 1 As shown in the diagram, the cutting module a is positioned to the right of the drive module b. The cutting module a is used to cut the ingredients, and the drive module b supports the cutting module a and provides the rotational force required for cutting the ingredients.
[0052] For the cutting and matching module a:
[0053] As attached Figure 4 As shown, the cutting module a includes a housing and a knife and chopping board assembly a2 placed inside the housing; in this embodiment, the housing includes a cutting base a1 and a cover plate a3 connected to the cutting base a1.
[0054] The cutting base a1 has an upward-facing cutting groove a1.1. A cover plate a3 is detachably fixed to the cutting base a1 by means of a screw or clip, covering the opening of the cutting groove a1.1. The cover plate a3 has an inlet a3.1 communicating with the cutting groove a1.1 to allow food to enter. The bottom wall of the cutting groove a1.1 has an outlet 1.2 communicating with the cutting groove a1.1 to allow food to fall downwards. The inlet a3.1, the cutting groove a1.1, and the outlet 1.2 together form a vertically continuous cutting channel, in which a cutting board assembly a2 for cutting food is installed. The first sidewall a1.3 and the second sidewall a1.4 of the cutting groove a1.1 are opposite each other, and the third sidewall a1.5 and the fourth sidewall a1.6 are opposite each other.
[0055] In this embodiment, as shown in the appendix Figure 4 As shown, the cutting board assembly a2 includes a first rotating shaft a2.1 and a second rotating shaft a2.2 arranged at intervals. Wherein:
[0056] One end of the first rotating shaft a2.1 (for example, attached) Figure 1The first rotating shaft a2.1 is rotatably inserted into the fourth side wall a1.6 of the cutting groove a1.1 at the left end of the first rotating shaft a2.1, and is rotatably inserted into the first rotating shaft insertion hole a1.52 of the third side wall a1.5 at the right end of the first rotating shaft a2.1. The first rotating shaft a2.1 is sleeved with a plurality of first blades a2.3 at the portion of the first rotating shaft a2.1 inserted into the cutting groove a1.1, and the plurality of first blades a2.3 are arranged at intervals in the extension direction of the first rotating shaft a2.1. Figure 1 The first rotating shaft a2.1 is rotatably inserted into the fourth side wall a1.6 of the cutting groove a1.1 at the left end of the first rotating shaft a2.1, and is rotatably inserted into the first rotating shaft insertion hole a1.52 of the third side wall a1.5 at the right end of the first rotating shaft a2.1. The first rotating shaft a2.1 is sleeved with a plurality of first blades a2.3 at the portion of the first rotating shaft a2.1 inserted into the cutting groove a1.1, and the plurality of first blades a2.3 are arranged at intervals in the extension direction of the first rotating shaft a2.1.
[0057] The second rotating shaft a2.2 is rotatably inserted into the fourth side wall a1.6 of the cutting groove a1.1 at one end of the second rotating shaft a2.2, and is rotatably inserted into the second rotating shaft insertion hole a1.53 of the third side wall a1.5 at the other end of the second rotating shaft a2.2. Figure 1 The second rotating shaft a2.2 is rotatably inserted into the fourth side wall a1.6 of the cutting groove a1.1 at one end of the second rotating shaft a2.2, and is rotatably inserted into the second rotating shaft insertion hole a1.53 of the third side wall a1.5 at the other end of the second rotating shaft a2.2. Figure 1 The second rotating shaft a2.2 is rotatably inserted into the fourth side wall a1.6 of the cutting groove a1.1 at one end of the second rotating shaft a2.2, and is rotatably inserted into the second rotating shaft insertion hole a1.53 of the third side wall a1.5 at the other end of the second rotating shaft a2.2. The second rotating shaft a2.2 is sleeved with a plurality of second blades a2.4 at the portion of the second rotating shaft a2.2 inserted into the cutting groove a1.1, and the plurality of second blades a2.4 are arranged at intervals in the extension direction of the second rotating shaft a2.2.
[0058] The first blades a2.3 and the second blades a2.4 are arranged close to each other, and in the transverse extension direction of the rotating shaft, the plurality of first blades a2.3 and the plurality of second blades a2.4 are arranged in a staggered manner, so that for most of the first blades a2.3 in the middle position, each first blade a2.3 is inserted between two second blades a2.4 at intervals. The staggered area of the first blades a2.3 and the second blades a2.4 forms a cutting area for cutting food materials. The feeding port a3.1 is preferably arranged directly above the cutting area, and the discharge port 1.2 is preferably arranged directly below the cutting area.
[0059] The transmission mechanism a2.5 for drivingly connecting the first rotating shaft a2.1 and the second rotating shaft a2.2 is further included, which comprises a first gear a2.51 fixedly connected to the first rotating shaft a2.1, and a second gear a2.52 fixedly connected to the second rotating shaft a2.2, the second gear a2.52 being engagedly connected to the first gear a2.51, so that when the first rotating shaft a2.1 rotates, the second rotating shaft a2.2 can be driven to rotate in the opposite direction synchronously.
[0060] The connecting shaft a5 is rotatably connected to one side wall of the cutting base a1 facing the driving module b, and the connecting shaft a5 is drivingly connected to the first rotating shaft a2.1 or the second rotating shaft a2.2 through a common transmission connection structure such as a gear structure or a clamping structure, so that the connecting shaft a5 can drive the two rotating shafts to rotate, and in turn drive the blades to rotate to cut food materials.
[0061] In this embodiment, the connecting shaft a5 and the first rotating shaft a2.1 are arranged opposite to each other (that is, the axis of the connecting shaft a5 and the axis of the first rotating shaft a2.1 are on the same straight line), and the end of the connecting shaft a5 facing the first rotating shaft a2.1 is provided with a spline groove with an opening facing the first rotating shaft a2.1; the end of the first rotating shaft a2.1 is inserted into the spline groove, and the outer periphery of the end is provided with an external spline matching the spline groove, so that the connecting shaft a5 is connected to the first rotating shaft a2.1 in a driving connection.
[0062] Furthermore, in this embodiment, in order to improve the safety of the cutting module during operation, a feeding cylinder 4 is preferably detachably fixed to the outer side of the cover plate 3. A feeding channel 4.1 is formed inside the feeding cylinder 4. The lower end of the feeding channel 4.1 is connected to the feeding port 3.1, and the upper end is open.
[0063] At this point, the ingredients are fed into the feeding channel 4.1 through the upper opening of the feeding cylinder 4, and then into the feeding port 3.1 through the feeding channel 4.1, thereby achieving the cutting of the ingredients as described above. This eliminates the need to insert hands directly into the feeding port 3.1 to feed the ingredients, extending the distance between the ingredient placement position and the blade. This better avoids safety accidents caused by inserting hands into the cutting groove 1.1 when using the cutting device, thus improving safety.
[0064] The feed cylinder 4 can be detachably fixed to the cover plate 3 by means of, for example, screws. Or, as shown in the attached... Figure 4 As shown, an insertion part 4.2 matching the feed inlet 3.1 is provided at the lower end of the feed cylinder 4; by inserting the insertion part 4.2 downward into the feed inlet 3.1, the feed cylinder 4 is detachably fixed to the cover plate 3.
[0065] For driver module b:
[0066] As attached Figure 3 As shown, it includes a drive module housing b1 and a rotary motor b2 installed inside the drive module housing b1. A mounting hole b1.2 is provided on the side wall of the drive module housing b1 facing the cutting module a. A rotatable cutting output shaft b3 is inserted into this mounting hole b1.2. The cutting output shaft b3 is connected to the rotary motor b2 via a common transmission structure such as gears, so that the cutting output shaft b3 serves as an output shaft for connecting to an external device and outputting the rotational power provided by the rotary motor b2.
[0067] When a cutting and preparation device is required, it is formed by connecting the cutting and preparation module a to the drive module b, and by connecting the connecting shaft a5 of the cutting and preparation module a to the cutting and preparation output shaft b3 of the drive module b.
[0068] At this time, the rotating motor b2 is turned on to rotate the cutting and dispensing output shaft b3, and through the transmission connection between the cutting and dispensing output shaft b3 and the connecting shaft a5, the first rotating shaft a2.1 and the second rotating shaft a2.2 with blades are driven to rotate, thereby being capable of cutting the food materials when the food materials are put into the feeding port a3.1.
[0069] It should be noted that the food materials are mainly cut in the cutting and dispensing channel of the cutting and dispensing module a by the knife assembly a2, that is, a large amount of food material residues are often accumulated in the cutting and dispensing module a, and cleaning is required frequently; and the driving module b does not need to be cleaned frequently. If the cutting and dispensing module a is directly and non-detachably fixed to the driving module b, the cleaning action of the cutting and dispensing module a is limited, and the cutting and dispensing module a cannot be well detached and cleaned.
[0070] Therefore, in the embodiment, the cutting and dispensing module a is connected to the driving module b in a structure convenient for installation and detachment.
[0071] Specifically, as shown in FIGS. 1 to 3, the driving module b of the embodiment has a docking portion b1.1 arranged towards the cutting and dispensing module a; at the same time, the cutting and dispensing module a has a plug-in portion a6 arranged towards the driving module b, the plug-in portion a6 is detachably plugged into the docking portion b1.1, and the cutting and dispensing output shaft b3 is detachably transmission connected to the connecting shaft a5, so that the cutting and dispensing module a is detachably connected to the driving module b. Figure 1 Figure 3 Specifically, as shown in FIGS. 1 to 3, the driving module b of the embodiment has a docking portion b1.1 arranged towards the cutting and dispensing module a; at the same time, the cutting and dispensing module a has a plug-in portion a6 arranged towards the driving module b, the plug-in portion a6 is detachably plugged into the docking portion b1.1, and the cutting and dispensing output shaft b3 is detachably transmission connected to the connecting shaft a5, so that the cutting and dispensing module a is detachably connected to the driving module b.
[0072] Specifically, the docking portion b1.1 of the driving module b arranged towards the cutting and dispensing module a means that the driving module b has a first column body protruding towards the cutting and dispensing module a; or the driving module b has a first groove with an opening facing the cutting and dispensing module.
[0073] At the same time, the plug-in portion a6 of the cutting and dispensing module a arranged towards the driving module b means that the cutting and dispensing module a has a second groove with an opening facing the driving module b and for inserting the first column body; or the cutting and dispensing module a has a second column body protruding towards the driving module b and inserted into the first groove.
[0074] In the embodiment, on the one hand, if the groove structure is arranged on the cutting and dispensing module a, it will interfere with the internal food cutting space, which is not conducive to the smooth flow of food materials; on the other hand, in order to reduce the weight, the inner wall of the existing cutting base a1 is generally arranged close to the blade, resulting in a large space limitation in the cutting base a1, and the groove structure cannot be formed; if the groove is formed inward, in order to avoid interference with the existing blade, the size of the cutting base a1 must be increased based on the arrangement of the groove structure, which greatly increases the size and weight of the cutting base a1, not only puts higher requirements on the strength of the supporting structure, but also makes the cutting device more prone to tipping.
[0075] Based on this, in this embodiment, the plug-in part a6 is preferably a plug post disposed on the side of the cutting module a facing the driving module b and protruding toward the driving module b; in this embodiment, the plug-in part a6 is a plug post disposed on the side of the cutting base a1 facing the driving module b and protruding toward the driving module b.
[0076] The docking part b1.1 is a socket that is matched to the plug and is disposed on the side of the drive module b facing the cutting module a, and is for the plug to be inserted; in this embodiment, the docking part b1.1 is a socket disposed on the side of the drive module housing b1 facing the cutting module a, and is for the plug to be inserted.
[0077] Meanwhile, to facilitate the disassembly / assembly of the cutting module a, the end of either the cutting output shaft b3 or the connecting shaft a5 is provided with a spline groove with an opening facing the other shaft; the end of the other shaft is provided with an external spline that matches the spline groove. Furthermore, the cutting output shaft b3 and the connecting shaft a5 are aligned (i.e., when the cutting module a is connected to the drive module b, the axis of the cutting output shaft b3 and the axis of the connecting shaft a5 are on the same straight line), so that when the insertion part a6 is detachably inserted into the mating part b1.1, the external spline adapts to the spline groove, thereby achieving a detachable transmission connection between the cutting output shaft b3 and the connecting shaft a5.
[0078] Specifically, in this embodiment, as shown in the appendix Figure 1 To be continued Figure 4 As shown in the figure, the end of the cutting output shaft b3 facing the connecting shaft a5 is provided with a spline groove with an opening facing the connecting shaft a5, as shown in the attached figure. Figure 2 The first spline connecting groove b3.1 in the middle; the outer periphery of the connecting shaft a5 facing the cutting output shaft b3 is provided with an external spline that matches the first spline connecting groove b3.1.
[0079] In this embodiment, both the cutting output shaft b3 and the connecting shaft a5 are horizontal shafts with their axes arranged laterally to extend in the horizontal direction. The insertion part a6 is also a column with its axis arranged laterally to extend in the horizontal direction.
[0080] During installation, the cutting module a is moved laterally close to the driving module b, and the insertion part a6 of the insertion structure is inserted into the abutting part b1.1 of the insertion hole structure, so that the driving module b can support the cutting module a; at the same time, the end of the connecting shaft a5 is inserted into the first spline connection groove b3.1, and the outer spline of the end of the connecting shaft a5 is fitted into the first spline connection groove b3.1, so that the cutting output shaft b3 is drivingly connected to the connecting shaft a5. The installation of the cutting module a is completed. Moreover, the surface of the cutting module a can also be protrusively formed with a boss arranged around the connecting shaft a5, and the insertion hole b1.2 has a portion for inserting the boss; during the above insertion, the boss is fitted into the insertion hole b1.2 to share the force received by the connecting shaft a5 under the gravity of the cutting module a.
[0081] When the cutting module a needs to be cleaned, the cutting module a is moved laterally away from the driving module b until the insertion part a6 is separated from the abutting part b1.1, and at the same time, the output shaft b3 is separated from the first spline connection groove b3.1, and the cutting module a is disassembled.
[0082] Further, the insertion part a6 can be a polygonal prismatic protrusion, such as a quadrangular prismatic protrusion, etc. In the present embodiment, the insertion part a6 is preferably a cylindrical protrusion with a circular cross-section; so as to improve the convenience and smoothness of the insertion of the insertion part a6 and the abutting part b1.1, and reduce the possibility of occurrence of a clamping deviation.
[0083] Still further, the outer edge of the end of the insertion part a6 can be formed with a chamfered surface that guides the insertion of the insertion part a6 into the insertion hole; so that the prismatic protrusion of the insertion part a6 can be more smoothly inserted into the abutting part b1.1 of the recess structure.
[0084] Similarly, the slot of the spline groove (more precisely, the sidewall of the slot) can also be formed with a chamfered surface that guides the insertion of the outer spline into the spline groove; so that the insertion and transmission between the cutting output shaft b3 and the connecting shaft a5 can be more smooth.
[0085] Still further, the outer periphery of the insertion part a6 can also be provided with a sealing layer that surrounds the outer periphery of the insertion part a6 and has elasticity; the sealing layer is formed by covering the outer periphery of the insertion part a6 with a material that has elasticity, such as silicone or rubber, etc. When the insertion part a6 is inserted into the abutting part b1.1, the sealing layer is compressed and filled between the insertion part a6 and the abutting part b1.1, so as to improve the stability of the insertion structure between the insertion part a6 and the abutting part b1.1, and further improve the stability of the installation of the cutting module a.
[0086] The sealing layer has a portion near the end of the insertion part a6. In the direction of the protrusion of the insertion part a6, the thickness of this portion of the sealing layer gradually decreases to form a guide structure, so that the insertion part a6 with the sealing layer can be inserted into the mating part b1.1 more smoothly.
[0087] Based on any of the above solutions, when the cutting and splicing device has higher stability requirements, such as avoiding major impacts, the cutting and splicing module a is prone to detachment, an additional anti-detachment structure can be set for the plug-in part a6, which is configured to allow the plug-in part a6 to be in an active state that can be detached from the docking part b1.1, or in a locked state that cannot be detached from the docking part b1.1.
[0088] For example, the anti-detachment structure can be a screw that is detachably screwed to the drive module housing b1. The threaded end of the screw passes through the drive module housing b1 and is detachably screwed to the insertion part a6 inserted into the docking part b1.1 to form an anti-detachment structure. In this case, by removing the screw, the insertion part a6 can be detached from the docking part b1.1, and the cutting module a can be disassembled as described above; while by installing the screw, the insertion part a6 is locked in a state that cannot be detached from the docking part b1.1, and the cutting module a cannot be disassembled.
[0089] Or, as attached Figures 5 to 7 As shown, the anti-detachment structure consists of a snap-fit hole b1.11, a snap-fit block a6.2, an elastic element a6.3, and a switch element b4.
[0090] Specifically, in this embodiment, the snap-fit hole b1.11 is a through hole provided on the hole wall of the mating part b1.1, preferably located on the hole wall of the mating part b1.1 above the insertion part a6. Meanwhile, the outer surface of the insertion part a6 is provided with a mounting groove a6.1 that matches the snap-fit hole b1.11, i.e., as shown in the attached... Figure 7 When the insertion part a6 is inserted into the mating part b1.1, the groove of the mounting groove a6.1 is aligned with the snap-fit hole b1.11. The snap-fit block a6.2 is slidably installed in the mounting groove a6.1, and the mounting groove a6.1 is also provided with a limiting structure to prevent the snap-fit block a6.2 from sliding out of the mounting groove a6.1.
[0091] In this embodiment, the limiting structure includes: a flange portion a6.22 protruding from the outer periphery of the locking block a6.2, and a locking portion a6.11 protruding from the groove wall of the mounting groove a6.1. The locking portion a6.11 is positioned on the side of the flange portion a6.22 facing the opening of the mounting groove a6.1 to prevent the flange portion a6.22 from sliding out of the mounting groove a6.1, thereby preventing the locking block a6.2 from sliding out of the mounting groove a6.1. During installation, the locking block a6.2 is first installed in the mounting groove a6.1, and then the locking portion a6.11 is fixed at the opening of the mounting groove a6.1, forming the aforementioned limiting structure.
[0092] The elastic element a6.3 is elastic and is installed in the mounting groove a6.1. It elastically drives one end of the locking block a6.2 through the mounting groove a6.1 and into the locking hole b1.11. In this embodiment, the elastic element a6.3 is a spring, which is placed in a compressed state between the locking block a6.2 and the groove wall of the mounting groove a6.1. It elastically drives one end of the locking block a6.2 through the mounting groove a6.1 and into the locking hole b1.11. The locking block a6.2 has a portion that protrudes towards the bottom surface of the mounting groove a6.1. This protruding portion is inserted into the elastic element a6.3 of the spring structure, so that the elastic element a6.3 of the spring structure is fitted around the outer periphery of the protruding portion. This improves the stability of the installation of the elastic element a6.3, thereby allowing the elastic element a6.3 to more stably drive the locking block a6.2 to slide elastically.
[0093] At this time, it forms as shown in the attached image. Figure 7 As shown in diagram A, the locking block a6.2 is fitted into the locking hole b1.11, and the insertion part a6 is in a locked state that cannot be disengaged from the mating part b1.1.
[0094] Meanwhile, a switch b4 for bearing external force is also provided, which is slidably installed in the drive module b and configured to: when pressed, slide the card block a6.2 out of the card hole b1.11 by sliding towards the docking part b1.1.
[0095] Specifically, in this embodiment, as shown in the appendix Figure 5 As shown, a slidable switch b4 is slidably mounted in the drive module housing b1. When the snap-fit hole b1.11 is the hole wall above the insertion part a6 and is a through hole vertically extending through it, in this embodiment, the switch b4 is preferably positioned above the snap-fit hole b1.11. One end of the switch b4 is exposed on the outer surface of the drive module b, for example, attached to... Figure 5 In the middle, the upper end of the switch component b4 can be slidably mounted on the top of the drive module housing b1 in a vertical direction; the other end of the switch component b4, for example, is attached... Figure 5The lower end of the switch b4 is extendedly formed with a part which is located outside the docking part b1.1 and is opposite to the clamping hole b1.11, and the part has a pressing part b4.1 which is protruded towards the clamping hole b1.11 and is close to the clamping block a6.2. The size of the pressing part b4.1 is set according to the hole depth of the clamping hole b1.11 and the size of the clamping block a6.2 which is inserted into the clamping hole b1.11, and the slidable direction of the switch b4 in the driving module shell b1 is set to match the alignment direction between the pressing part b4.1 and the clamping hole b1.11, so that the pressing part b4.1 can be inserted and moved in the clamping hole b1.11 by driving the switch b4 to slide. Thus, the plug-in part a6 can be in a movable state which is separated from the docking part b1.1 or in a locked state which cannot be separated from the docking part b1.1 by pressing (i.e. pressing the switch b4 from outside to drive the switch b4 to move into the driving module shell b1) or not pressing the switch b4.
[0096] Specifically, when the cutting module a needs to be disassembled, the switch b4 is pressed to drive the switch b4 to move into the driving module shell b1, and then the pressing part b4.1 is inserted into the clamping hole b1.11 from the outside to push the clamping block a6.2 to separate from the clamping hole b1.11 and slide into the installation groove a6.1, and at the same time, the elastic part a6.3 is elastically contracted. The clamping block a6.2 is no longer clamped in the clamping hole b1.11, and the plug-in part a6 is in a movable state which is separated from the docking part b1.1. The cutting module a can be disassembled as described above.
[0097] Without pressing the switch b4, the clamping block a6.2 is stably clamped in the clamping hole b1.11 under the elastic action of the elastic part a6.3, as shown in Fig. A, and the plug-in part a6 is in a locked state which cannot be separated from the docking part b1.1. The cutting module a is stably connected to the driving module b to perform cutting work. Figure 7
[0098] In the above scheme, when the cutting module a needs to be connected to the driving module b as described above, the plug-in part a6 with the clamping block a6.2 needs to be inserted into the docking part b1.1, and the clamping block a6.2 needs to be manually pressed first to be retracted into the installation groove a6.1, which causes the installation to be difficult.
[0099] Based on this, as shown in Fig. B, the lower end of the switch b4 is extendedly formed with a part which is located outside the docking part b1.1 and is opposite to the clamping hole b1.11, and the part has a pressing part b4.1 which is protruded towards the clamping hole b1.11 and is close to the clamping block a6.2. The size of the pressing part b4.1 is set according to the hole depth of the clamping hole b1.11 and the size of the clamping block a6.2 which is inserted into the clamping hole b1.11, and the slidable direction of the switch b4 in the driving module shell b1 is set to match the alignment direction between the pressing part b4.1 and the clamping hole b1.11, so that the pressing part b4.1 can be inserted and moved in the clamping hole b1.11 by driving the switch b4 to slide. Thus, the plug-in part a6 can be in a movable state which is separated from the docking part b1.1 or in a locked state which cannot be separated from the docking part b1.1 by pressing (i.e. pressing the switch b4 from outside to drive the switch b4 to move into the driving module shell b1) or not pressing the switch b4. Figure 6 As shown in the diagram, in this embodiment, a guide slope a6.21 is formed at the end of the locking block a6.2 that protrudes from the mounting groove a6.1. This guide slope a6.21 extends at an angle and serves to press against the wall of the hole in the docking part b1.1 when the insertion part a6 with the locking block a6.2 is inserted into the docking part b1.1. Thus, when the insertion part a6 with the locking block a6.2 is inserted into the docking part b1.1, the guide slope a6.21 contacts the wall of the hole at the port of the docking part b1.1. This wall presses against the locking block a6.2, causing it to retract into the mounting groove a6.1, thereby allowing the insertion part a6 to be inserted into the docking part b1.1. When the insertion part a6 is inserted until the locking block a6.2 is aligned with the locking hole b1.11, the locking block a6.2 automatically engages with the locking hole b1.11 under the elastic action of the elastic member a6.3, forming an anti-detachment structure.
[0100] Furthermore, in order to ensure that the card block a6.2 can be more smoothly inserted into the card socket b1.11 during the above-mentioned insertion process, in this embodiment, as shown in the attached figure... Figure 5 As shown, a reset element b5 that acts on the switch element b4 can also be provided in the drive module b.
[0101] In this embodiment, the reset element b5 is an elastic spring, one end of which is connected to the switch element b4, and the other end is connected to the drive module housing b1. It is configured to drive the switch element b4 to elastically reset when no external force is applied. That is, to drive the switch element b4 to reset to: (attached) Figure 7 As shown in Figure A, the position of switch component b4 when the card block a6.2 is installed in the card hole b1.11.
[0102] For example, attached Figure 5 As shown, the reset member b5 can be placed between the switch member b4 and the outer wall of the mating part b1.1. When the switch member b4 is not pressed as described above, the switch member b4 can be reset under the elastic action of the reset member b5, causing most of the pressing part b4.1 to disengage from the snap-fit hole b1.11, leaving sufficient space for the snap-fit of the snap-fit block a6.2. The specific position of the reset member b5 can be set according to actual needs.
[0103] The above merely describes preferred embodiments of the present application, and is not intended to limit the scope of the present application. In addition, the terms "vertical", "horizontal", "front", "back", and the like, as referred to in the embodiments of the present application, indicate the orientation or positional relationship based on the orientation or positional relationship shown in the drawings, or the orientation or positional relationship in which the product is usually placed during use, and are merely intended to facilitate the description of the present application and simplify the description, and therefore should not be construed or implied as indicating or suggesting that the device or element referred to must have a particular orientation, be constructed and operated in a particular orientation, and therefore should not be construed as limiting the present application. It should be further noted that, unless otherwise explicitly specified and limited, the terms "mounting", "connection", "connection", "fixing" and the like in the description should be broadly understood, for example, "connection" can be fixed connection, can also be detachable connection, or integral connection; can be directly connected, can also be indirectly connected through an intermediate medium, or the communication between two elements. For those skilled in the art, the specific meaning of the above terms in the present application can be understood according to the specific circumstances. The present application will be described in detail below with reference to the drawings and in conjunction with the embodiments.
[0104] Although the embodiments of the present application have been shown and described, those skilled in the art can understand that various changes, modifications, replacements and variations can be made to these embodiments without departing from the principles and purposes of the present application, and the scope of the present application is defined by the claims and their equivalents.
Claims
1. A dispensing device, characterized in that The application relates to a cutting module (a) and a driving module (b) which are detachably connected. The driving module (b) comprises a cutting output shaft (b3) for outputting rotating force and a docking portion (b1.1) arranged towards the cutting module (a). The cutting module (a) is provided with a cutting channel which is vertically arranged through the cutting module (a) and comprises a knife rest assembly (a2) for cutting food materials. The cutting module (a) further comprises a connecting shaft (a5) for driving the knife rest assembly (a2) to operate and a plug-in portion (a6) arranged towards the driving module (b). The plug-in portion (a6) is detachably plugged into the docking portion (b1.1), and the cutting output shaft (b3) is detachably connected to the connecting shaft (a5), so that the cutting module (a) is detachably connected to the driving module (b). The application further relates to an anti-disengagement structure which is configured to make the plug-in portion (a6) in a disengaged state or a locked state. The plug-in portion (a6) is a plug-in column which is arranged on a side surface of the cutting module (a) facing the driving module (b) and protrudes towards the driving module (b).
2. The apparatus of claim 1, wherein: The docking portion (b1.1) is a plug-in hole which is arranged on a side surface of the driving module (b) facing the cutting module (a) and is matched with the plug-in column. The anti-disengagement structure comprises:
3. The cutting apparatus of claim 2, wherein: a clamping hole (b1.11) arranged on a hole wall of the docking portion (b1.1); a clamping block (a6.2) which is slidably mounted in a mounting groove (a6.1) arranged on an outer surface of the plug-in portion (a6) and matched with the clamping hole (b1.11); a resilient member (a6.3) arranged in the mounting groove (a6.1) and elastically driving one end of the clamping block (a6.2) to pass through the mounting groove (a6.1) and be clamped in the clamping hole (b1.11); a switch member (b4) which is slidably mounted in the driving module (b) and is configured to slide the clamping block (a6.2) out of the clamping hole (b1.11) when pressed; The plug-in portion (a6) is in a disengaged state or a locked state by pressing or not pressing the switch member (b4). The one end of the clamping block (a6.2) which passes through the mounting groove (a6.1) is further provided with a guide inclined surface (a6.21) which is arranged in an inclined manner and is pressed by the hole wall of the docking portion (b1.1) when the plug-in portion (a6) is inserted into the docking portion (b1.1).
4. The cutting apparatus of claim 3, wherein: The mounting groove (a6.1) is further provided with a limiting structure for preventing the clamping block (a6.2) from sliding out of the mounting groove (a6.1).
5. The cutting apparatus of claim 3, wherein: The limiting structure comprises: The flange part (a6.22) is protruded from the outer periphery of the clamping block (a6.2); The clamping part (a6.11) is protruded from the slot wall of the mounting slot (a6.1) and is arranged on the side of the flange part (a6.22) facing the slot opening of the mounting slot (a6.1) to prevent the flange part (a6.22) from sliding out of the mounting slot (a6.1).
6. The apparatus of claim 3, wherein: The driving module (b) further comprises a reset member (b5) acting on the switch member (b4); The reset member (b5) is elastic and is configured to elastically reset the switch member (b4) when no external force is applied to the switch member (b4).
7. The apparatus of claim 3, wherein: The elastic member (a6.3) is a spring arranged between the clamping block (a6.2) and the slot wall of the mounting slot (a6.1); The clamping block (a6.2) has a protruding part towards the slot bottom surface of the mounting slot (a6.1), and the spring structure of the elastic member (a6.3) is sleeved on the outer periphery of the protruding part.
8. The apparatus of claim 2, wherein: The outer edge of the end of the plug-in part (a6) is chamfered to form a slope guiding the plug-in part (a6) to be inserted into the jack.
9. A tailored device according to any one of claims 2 to 8, characterised in that: The cutting output shaft (b3) and the connecting shaft (a5) are: The end of any one shaft is provided with a spline groove with an opening facing the other shaft; The end of the other shaft is provided with an external spline matched with the spline groove; The cutting output shaft (b3) and the connecting shaft (a5) are arranged in alignment, so that when the plug-in part (a6) is detachably plugged into the counter part (b1.1), the external spline is adapted to be inserted into the spline groove to achieve that the cutting output shaft (b3) is detachably connected in transmission with the connecting shaft (a5).
10. The apparatus of claim 9, wherein: The slot opening of the spline groove is chamfered to form a slope guiding the external spline to be inserted into the spline groove.