Compact biscuit maker

By integrating the drive components and pushing mechanism into the mounting housing of the biscuit maker, the problem of the biscuit maker's large size is solved, achieving a compact structure and improved space utilization, making it easy to place.

CN223585136UActive Publication Date: 2025-11-25DONGGUAN ASSIDUOUS ELECTRONICS TECHNOLOGY CO LTD
View PDF 0 Cites 0 Cited by

Patent Information

Application Number
CN202423322796.0
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-12-31
Publication Date
2025-11-25
Estimated Expiration
2034-12-31

AI Technical Summary

Technical Problem

The existing pancake maker has a complex transfer module structure that occupies a lot of space, resulting in a large size of the pancake maker, which is not convenient to place in a space-constrained location.

Method used

By integrating drive components and a pushing mechanism within the mounting housing of the cake maker, and utilizing the small-range swing and deceleration mechanism of the mounting housing, the space occupied by the drive components is reduced, the utilization rate of the accommodating cavity is improved, and the size of the cake maker is reduced.

Benefits of technology

This design achieves a compact structure for the cake maker, improving space utilization, reducing its size, facilitating placement, and minimizing the possibility of interference with external factors.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN223585136U_ABST
    Figure CN223585136U_ABST
Patent Text Reader

Abstract

The utility model discloses a compact structure's make pie machine relates to food processing technical field, wherein, compact structure's make pie machine includes casing, base, make dough module, remove and load module and bake pie module, the casing is equipped with the accommodation cavity, the base cover is located at the casing bottom, and will cover the accommodation cavity, make dough module installs in the accommodation cavity, and make dough module is used for kneading dough, remove and load module includes installation shell, push mechanism, drive element and interface seat, remove and load module is located make dough module below, and installation shell rotatablely installs in the accommodation cavity, and installation shell is equipped with installation cavity, and drive element installs in the installation cavity, and drive element drive connection is established in push mechanism, and push mechanism is equipped with installation shell outside, and interface seat is connected to installation shell, and push mechanism is used for pushing dough to bake pie module, the technical scheme provided by the utility model can reduce the volume of make pie machine, promotes the space utilization rate in make pie machine, and the placement of make pie machine is convenient.
Need to check novelty before this filing date? Find Prior Art

Description

TECHNICAL FIELD

[0001] The utility model relates to food processing technical field, especially a kind of compact structure's pie making machine. BACKGROUND

[0002] Multiple modules are included in pie making machine, after dough is kneaded by dough making module, dough is moved to baking module for baking by transfer module, transfer module includes multiple driving members, and the structure of transfer module is relatively complex, multiple driving members are installed in pie making machine, need to occupy more installation space of pie making machine, and space utilization is low, the integration of transfer module is low, resulting in that the overall volume of pie making machine is larger, it is not convenient to place pie making machine in small space. SUMMARY

[0003] The main purpose of the utility model is to provide a kind of compact structure's pie making machine, to reduce the volume of pie making machine, improve the space utilization in pie making machine, it is convenient to place pie making machine.

[0004] To achieve the above object, the compact structure's pie making machine provided by the utility model comprises:

[0005] Shell, is equipped with containing cavity;

[0006] Base, the base cover is equipped in the bottom of the shell, and the containing cavity is covered;

[0007] Dough making module, is installed in the containing cavity, and the dough making module is used to knead dough;

[0008] Transfer module, including installation shell, push mechanism, driving element and interface seat, the transfer module is equipped below the dough making module, the installation shell is rotatably installed in the containing cavity, the installation shell is equipped with installation cavity, the driving element is installed in the installation cavity, the push mechanism is equipped outside the installation shell, the driving element is drivingly connected to the push mechanism, the interface seat is connected to the installation shell, the interface seat is used to receive the dough, and the push mechanism is used to push dough;And

[0009] Baking module, the push mechanism can push the dough to the baking module for baking.

[0010] In an embodiment, the driving element includes a speed reducer and a first motor, the installation shell extends along vertical direction, the first motor is obliquely arranged in the installation cavity, the speed reducer is arranged in the installation cavity, the first motor is drivingly connected to the speed reducer, and the speed reducer is drivingly connected to the push mechanism.

[0011] In an embodiment, the speed reduction mechanism is arranged below the mounting cavity, the first motor is arranged above the mounting cavity, and the rotating shaft of the first motor is arranged towards the speed reduction mechanism.

[0012] In an embodiment, the speed reduction mechanism comprises a housing, a speed reduction gear set, and an output shaft, the housing is mounted in the mounting cavity, the speed reduction gear set is arranged in the housing, the first motor is detachably mounted in the housing, a worm is sleeved on the rotating shaft of the first motor, the worm is engaged with the speed reduction gear set, the output shaft is inserted into the speed reduction gear set and passes through the mounting shell, and the output shaft is drivingly connected to the pushing mechanism.

[0013] In an embodiment, the transfer module comprises a swinging mechanism, the swinging mechanism is mounted on the base, and the swinging mechanism is drivingly connected to the mounting shell for driving the mounting shell to rotate.

[0014] In an embodiment, the bottom of the mounting shell is provided with a rotating shaft, the rotating shaft is movably inserted into the base, and the swinging mechanism drives the mounting shell to swing around the rotating shaft to turn the interface seat towards the pizza baking module.

[0015] In an embodiment, the swinging mechanism comprises a second motor and a cam piece, the second motor is mounted below the base, the rotating shaft of the second motor passes through the base and is drivingly connected to the cam piece, the cam piece is provided with a convex shaft, the bottom of the mounting shell is provided with a sliding groove, and the convex shaft is inserted into the sliding groove.

[0016] In an embodiment, the mounting shell is a polygonal cylinder, one side of the mounting shell towards the pushing mechanism is a plane, and at least one outer wall surface of the mounting shell is an arc surface.

[0017] In an embodiment, the transfer module comprises a connecting rod, and two ends of the connecting rod are detachably connected to the interface seat and the mounting shell respectively.

[0018] In an embodiment, the pushing mechanism comprises a pushing block and a pushing shaft, the first motor is drivingly connected to the pushing shaft through the speed reduction mechanism, the pushing shaft is provided with threads, the pushing block is connected to the pushing shaft in a matching manner, the interface seat is provided with an interface space, the interface space extends along the axial direction of the pushing shaft, the pushing block is slidably mounted in the interface space, and the first motor drives the pushing shaft to rotate to drive the pushing block to move along the extension direction of the interface space.

[0019] In an embodiment, the dough making module comprises a stirring cup, a stirring paddle, a transmission mechanism and a stirring motor, the stirring cup is arranged above the dough seat, the stirring paddle is rotatably arranged in the stirring cup, the transmission mechanism is arranged above the stirring cup, the output end of the transmission mechanism is drivingly connected to the stirring paddle, the stirring motor is drivingly connected to the input end of the transmission mechanism, the stirring motor is arranged below the transmission mechanism, and the axis of the rotating shaft of the stirring motor is collinear with the axis of the stirring cup.

[0020] In the technical scheme of the utility model, the dough making module, the transfer module and the baking module are arranged in the shell, the dough making module and the transfer module are arranged on the same side of the accommodating cavity, the baking module is arranged on the other side, the driving element is arranged in the mounting shell, the driving element is drivingly connected to the pushing mechanism to control the movement of the dough, the mounting shell can swing in a small range in the accommodating cavity, the driving element cannot be arranged in the mounting shell which needs to be rotated in the related art, but the mounting shell in the utility model has a small rotating angle, and the arrangement of the driving element is not affected, the driving element can be integrated in the mounting shell, the mounting shell and the driving element share the mounting space, the driving element does not need to occupy the position of the accommodating cavity, the utilization rate of the mounting space of the accommodating cavity is improved, the volume of the baking machine can be reduced, the volume of the shell can be reduced, the internal structure of the baking machine is more compact, the volume of the baking machine is reduced, the baking machine is convenient to place, and the possibility of interference between the baking machine and the outside world is reduced. BRIEF DESCRIPTION OF DRAWINGS

[0021] In order to more clearly illustrate the technical scheme in the embodiments of the utility model or the prior art, the drawings needed to be used in the following embodiment or prior art description will be briefly introduced, and obviously, the drawings in the following description are only some embodiments of the utility model, and other drawings can be obtained according to the structures shown in the drawings without creative labor for those skilled in the art.

[0022] Figure 1 The structural diagram of one embodiment of the compact baking machine provided by the utility model is shown in the drawings.

[0023] Figure 2 The structural diagram of another angle of the compact baking machine provided by the utility model is shown in the drawings.

[0024] Figure 3 The structural diagram of another angle of the compact baking machine provided by the utility model is shown in the drawings.

[0025] Figure 4 The structural diagram of another angle of the compact baking machine provided by the utility model is shown in the drawings. Figure 2 The explosion view of the transfer module.

[0026] Explanation of reference numerals: 1, shell; 11, accommodating cavity; 2, base; 21, movable hole; 3, noodle making module; 31, stirring motor; 4, transfer module; 41, mounting shell; 41a, rotating shaft; 41b, connecting rod; 42, reduction gear set; 43, housing; 44, first motor; 44a, worm; 45, interface seat; 46, push-out shaft; 47, push-out block; 48, cam piece; 49, convex shaft; 5, support frame; 6, pie baking module.

[0027] The realization, functional features and advantages of the utility model will be further explained in combination with embodiments and with reference to the drawings. DETAILED DESCRIPTION

[0028] The technical solutions in the embodiments of the utility model will be clearly and completely described below in combination with the drawings in 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 scope of protection of the utility model.

[0029] It should be noted that if the embodiments of the utility model involve directional indications (such as up, down, left, right, front, back, etc.), the directional indications are only used to explain the relative positional relationship, movement condition, etc. between components in a certain posture, and if the certain posture changes, the directional indications also change accordingly.

[0030] In addition, if the embodiments of the utility model involve descriptions such as "first", "second", etc., the descriptions of "first", "second", etc. are only for description purposes, and cannot be understood as indicating or implying the relative importance of the indicated technical features or implicitly indicating the number of the indicated technical features. Therefore, the features with "first" and "second" can explicitly or implicitly include at least one of the features. In addition, "and / or" or "and / or" appearing throughout the text means that the three parallel schemes are included, taking "A and / or B" as an example, including A scheme, or B scheme, or A and B scheme. In addition, the technical solutions of each embodiment can be combined with each other, but it must be based on the fact that a person skilled in the art can realize it, and when the combination of technical solutions appears contradictory or unachievable, it should be considered that the combination of technical solutions does not exist, and is not within the scope of protection required by the utility model.

[0031] The utility model provides a kind of compact structure's pie making machine.

[0032] Please refer to Figures 1 to 4In an embodiment of the utility model, this compact pie making machine includes shell 1, base 2, dough making module 3, transfer module 4 and pie baking module 6;Shell 1 is equipped with containing cavity 11;Base 2 is covered in the bottom of shell 1, and containing cavity 11 is covered;Dough making module 3 is installed in containing cavity 11, and dough making module 3 is used for kneading dough;Transfer module 4 includes installation shell 41, push mechanism, driving element and interface seat 45, and transfer module 4 is arranged below dough making module 3, installation shell 41 is rotatably installed in containing cavity 11, installation shell 41 is equipped with installation cavity, driving element is installed in installation cavity, push mechanism is arranged outside installation shell 41, driving element is drivingly connected to push mechanism, interface seat 45 is connected to installation shell 41, interface seat 45 is used for receiving dough, and push mechanism is used for pushing dough;Push mechanism can push dough to pie baking module 6 for baking.

[0033] In the related art, a plurality of modules are included in the pie making machine, after the dough is kneaded by the dough making module, the dough is moved to the pie baking module for baking by the transfer module, the transfer module includes a plurality of driving members, the plurality of driving members are arranged in the shell, since different driving members need to be responsible for different working steps, it is difficult to be integrated together, a large installation space of the pie making machine needs to be occupied, leading to that the pie making machine has a large overall volume, and it is inconvenient to be placed in a small space.

[0034] In the technical scheme of the utility model, the dough making module 3, the transfer module 4 and the pie baking module 6 are arranged in the shell 1, the dough making module 3 and the transfer module 4 are arranged on the same side of the containing cavity 11, the pie baking module 6 is arranged on the other side, the driving element is installed in the installation shell 41, the driving element is drivingly connected to the push mechanism to control the movement of the dough pushed by the push mechanism, the installation shell 41 can swing in a small range in the containing cavity 11, in the related art, the driving element cannot be installed in the installation shell 41 that needs to be rotated, but the installation shell 41 in the present application has a small rotation angle, and the arrangement of the driving element is not affected, the driving element can be integrated in the installation shell 41, the installation shell 41 and the driving element share the installation space, and the driving element does not need to be additionally installed in the containing cavity 11, the utilization rate of the installation space of the containing cavity 11 is improved, the volume of the pie making machine can be reduced, the volume of the shell 1 can be reduced, the internal structure of the pie making machine is more compact, the volume of the pie making machine is reduced, the pie making machine is convenient to place, and the possibility of interference between the pie making machine and the outside world is reduced.

[0035] In an embodiment, the driving element includes a speed reducer and a first motor 44, the installation shell 41 extends along the vertical direction, the first motor 44 is obliquely arranged in the installation cavity, the speed reducer is arranged in the installation cavity, the first motor 44 is drivingly connected to the speed reducer, and the speed reducer is drivingly connected to the push mechanism.

[0036] Specifically, the first motor 44 and the speed reduction mechanism are both installed in the installation shell 41, the speed reduction mechanism is drivingly connected to the pushing mechanism, the rotation speed of the rotation shaft of the first motor 44 is reduced through the speed reduction mechanism, and the first motor 44 is obliquely installed in the installation shell 41 in the vertical direction of the shell 1. This arrangement can improve the utilization rate of the installation cavity by the first motor 44 and avoid occupying too much installation space due to the large structure of the first motor 44. Compared with the horizontal or vertical arrangement of the first motor 44, this arrangement can reduce the space occupied by the first motor 44 in the up-down and left-right directions of the installation shell 41.

[0037] In an embodiment, the speed reduction mechanism is arranged below the installation cavity, the first motor 44 is arranged above the installation cavity, and the rotation shaft of the first motor 44 is arranged towards the speed reduction mechanism.

[0038] Specifically, viewed from the rear side of the cake making machine to the front side, the speed reduction mechanism is arranged at the lower left of the installation cavity, the first motor 44 is arranged at the upper right of the installation cavity, and the rotation shaft of the first motor 44 is arranged towards the lower left. Since the pushing mechanism needs to be arranged close to the base 2, the speed reduction mechanism needs to be arranged below to drivingly connect the output end of the speed reduction mechanism to the pushing mechanism. This arrangement can obliquely arrange the first motor 44 and closely arrange the first motor 44 and the speed reduction mechanism, thereby saving the installation space of the installation shell 41, reducing the volume of the installation shell 41, and reducing the overall volume of the cake making machine. In other embodiments, the speed reduction mechanism is arranged at the top of the installation cavity, the first motor 44 is arranged below the installation cavity, and the rotation shaft of the first motor 44 is arranged towards the speed reduction mechanism.

[0039] In an embodiment, the speed reduction mechanism includes a shell 43, a speed reduction gear set 42, and an output shaft. The shell 43 is installed in the installation cavity, the speed reduction gear set 42 is arranged in the shell 43, the first motor 44 is detachably installed in the shell 43, a worm 44a is sleeved on the rotation shaft of the first motor 44, the worm 44a is engaged with the speed reduction gear set 42, the output shaft is inserted into the speed reduction gear set 42 and passes through the installation shell 41, and the output shaft is drivingly connected to the pushing mechanism.

[0040] Specifically, the speed reduction gear set 42 comprises a plurality of mutually meshing gears rotatably mounted in the mounting cavity, the output shaft is fixedly inserted into one of the gears for outputting power, and is connected with the pushing mechanism for driving from the mounting shell 41, the first motor 44 is sleeved with a worm 44a, the worm 44a is meshed with one of the gears for inputting power, the shell 43 covers the speed reduction gear set 42 and the worm 44a, one end surface of the rotating shaft of the first motor 44 abuts against the shell 43, and the first motor 44 is detachably connected with the shell 43, so that the rotation speed is reduced to increase the torque of the output shaft through the adjustment of the speed reduction gear set 42, the movement stability of the pushing mechanism is ensured, the installation position of the motor is ensured by using the transmission mode of the worm 44a and the gear, and the motor is installed on the shell 43, so that the matching error of the first motor 44 and the speed reduction mechanism is reduced. In other embodiments, the first motor 44 is detachably mounted on the inner side of the shell 1.

[0041] In an embodiment, the transfer module 4 comprises a swinging mechanism mounted on the base 2, and the swinging mechanism is drivingly connected to the mounting shell 41 for driving the mounting shell 41 to rotate.

[0042] Specifically, the swinging mechanism is arranged on the base 2 for controlling the mounting shell 41 to rotate, after the dough is kneaded by the dough making module 3, the dough falls onto the dough receiving seat 45, at this time, the mounting shell 41 is first controlled by the swinging mechanism to rotate towards the direction of the pie baking module 6, and then the dough on the dough receiving seat 45 is pushed to the pie baking module 6 by the pushing mechanism, so that the dough can be more quickly and accurately dropped onto the pie baking module 6, and the moving distance of the dough can be reduced, and the sticking of the dough during movement can be reduced. In other embodiments, the swinging mechanism is mounted on the shell 1.

[0043] In an embodiment, the bottom of the mounting shell 41 is provided with a rotating shaft 41a, the rotating shaft 41a is movably inserted into the base 2, and the swinging mechanism drives the mounting shell 41 to swing with the rotating shaft 41a as the center to rotate the dough receiving seat 45 towards the pie baking module 6.

[0044] Specifically, the base 2 is provided with a movable hole 21, and the rotating shaft 41a at the bottom of the mounting shell 41 is used for inserting into the movable hole 21, so that the mounting shell 41 does not separate from the cooperation with the base 2, and does not translate relative to the base 2, only needs to rotate to drive the dough to rotate, and the working stability of the swinging mechanism can be ensured. In other embodiments, the swinging mechanism is arranged directly below the mounting shell 41, and the swinging mechanism directly drives the mounting shell 41 to rotate.

[0045] In an embodiment, the swinging mechanism comprises a second motor and a cam member 48, the second motor is installed below the base 2, the rotating shaft of the second motor is in driving connection with the cam member 48 through the base 2, and the cam member 48 is provided with a convex shaft 49, and the bottom of the installation shell 41 is provided with a sliding groove, and the convex shaft 49 is inserted into the sliding groove.

[0046] Specifically, the second motor is fixed below the base 2, the rotating shaft of the second motor is in driving connection with the cam member 48 through the base 2 to control the rotation of the cam member 48, the cam member 48 is provided with a convex shaft 49, the position of the convex shaft 49 is different from the position of the rotating shaft of the second motor and is located at two ends of the cam, the convex shaft 49 is used for being inserted into the sliding groove at the bottom of the installation shell 41, the sliding groove is in a long strip wave shape, the convex shaft 49 makes reciprocating motion in the sliding groove to drive the installation shell 41 to swing circularly, and thus the dough can be conveniently transferred, and the second motor does not occupy the installation space in the containing cavity 11. In other embodiments, the second motor is directly in driving connection with the rotating shaft 41a at the bottom of the installation shell 41, and the rotation of the installation shell 41 is controlled by controlling the forward rotation and reverse rotation of the second motor.

[0047] In an embodiment, the transfer module 4 comprises a connecting rod 41b, and two ends of the connecting rod 41b are detachably connected to the interface seat 45 and the installation shell 41 respectively.

[0048] Specifically, the connecting rod 41b is provided with two, and the two connecting rods 41b are arranged in parallel, one end of the connecting rod 41b is provided with a threaded hole, and the other end is provided with a clamping groove, the one end of the connecting rod 41b is inserted into the installation shell 41 and is fixed on the installation shell 41 by a bolt, the inside of the interface seat 45 is provided with a clamping structure, the other end of the connecting rod 41b is inserted into the interface seat 45 so that the clamping groove is clamped by the clamping structure, and different lengths of the connecting rod 41b can be replaced according to the size of the containing cavity 11 to ensure the connection of the installation shell 41 and the interface seat 45. In this way, the connection of the installation seat and the interface seat 45 is convenient, and the interface seat 45 can be conveniently disassembled for cleaning, so that the dough does not stick to the interface seat 45 after being used for a long time, and the efficiency of the pushing mechanism is affected. In other embodiments, the interface seat 45, the connecting rod 41b and the installation shell 41 are integrally formed.

[0049] In an embodiment, the installation shell 41 is in a polygonal cylindrical shape, one side of the installation shell 41 facing the pushing mechanism is a plane, and at least one outer wall surface of the installation shell 41 is an arc surface.

[0050] Specifically, the support frame 5 is arranged in the shell 1, the dough making module 3 is arranged above the support frame 5, and the installation shell 41 is arranged inside the support frame 5. In the process of rotating the installation shell 41, the arc-shaped outer wall surface of the installation shell 41 is arranged close to the inside of the support frame 5. The support frame 5 can also be provided with an arc-shaped outer wall surface corresponding to the arc-shaped outer wall surface of the installation shell 41. The arc-shaped outer wall surface of the installation shell 41 can be matched with the arc-shaped outer wall surface of the support frame 5 in the process of rotating the installation shell 41. In this way, one corner of the support frame 5 can be arranged as a rounded corner. Compared with the support frame 5 without the rounded corner, the volume of the support frame 5 can be reduced, thereby reducing the overall volume of the dough making machine. In other embodiments, the installation shell 41 is in a cylindrical shape.

[0051] In an embodiment, the pushing mechanism includes a pushing block 47 and a pushing shaft 46. The first motor 44 is drivingly connected to the pushing shaft 46 through a speed reduction mechanism. The pushing shaft 46 is provided with a thread. The pushing block 47 is connected to the pushing shaft 46 in a matching manner. The interface seat 45 is provided with an interface space extending along the axial direction of the pushing shaft 46. The pushing block 47 is slidably arranged in the interface space. The first motor 44 drives the pushing shaft 46 to rotate to drive the pushing block 47 to move along the extension direction of the interface space.

[0052] Specifically, the pushing block 47 is a nut seat, and the pushing shaft 46 is a screw rod. The nut seat is used in a matching manner with the screw rod. The first motor 44 drives the screw rod to rotate to control the translation of the nut seat in the horizontal direction. One end of the nut seat is arranged in a protruding manner. The protruding part is used for abutting against the dough to realize the pushing action of the dough. The outer shape of the pushing block 47 is arranged in a matching manner with the interface space, i.e., the pushing block 47 is arranged in a close-fitting manner with the interface space to prevent the dough from being partially trapped in the gap between the pushing block 47 and the interface space. The interface space is in a U-shaped form. In this way, the movement of the dough is smoother and less likely to stick. In other embodiments, the pushing mechanism includes a telescopic shaft and a cam. The first motor 44 is drivingly connected to the cam through a speed reduction mechanism. The cam rotates to drive the telescopic shaft to reciprocate in the axial direction.

[0053] In an embodiment, the dough making module 3 includes a stirring cup, a stirring paddle, a transmission mechanism, and a stirring motor 31. The stirring cup is arranged above the interface seat 45. The stirring paddle is rotatably arranged in the stirring cup. The transmission mechanism is arranged above the stirring cup. The output end of the transmission mechanism is drivingly connected to the stirring paddle. The stirring motor 31 is drivingly connected to the input end of the transmission mechanism. The stirring motor 31 is arranged below the transmission mechanism. The axis of the rotating shaft of the stirring motor 31 is collinear with the axis of the stirring cup.

[0054] Specifically, the stirring motor 31 is vertically arranged below the transmission mechanism, and the stirring motor 31 and the stirring paddle are arranged on the same side. In this way, the space above the accommodating cavity 11 can be occupied, so that the height of the cake making machine is reduced, and the volume of the cake making machine can be further reduced. In other embodiments, the stirring motor 31 is transversely arranged above the transmission mechanism.

[0055] The above is only an exemplary embodiment of the present application, and does not limit the patent scope of the present application. Any equivalent structural transformation or direct / indirect application in other related technical fields within the technical concept of the present application, as described in the present application and the drawings, is included in the patent protection scope of the present application.

Claims

1. A compact cake-making machine, characterized in that, include: The shell (1) is provided with a receiving cavity (11); A base (2) is placed on the bottom of the housing (1) and covers the accommodating cavity (11); A dough-making module (3) is installed in the accommodating cavity (11) and is used to knead dough. A transfer module (4) includes a mounting shell (41), a pushing mechanism, a driving element, and a dough receiving seat (45). The transfer module (4) is located below the dough-making module (3). The mounting shell (41) is rotatably mounted in the receiving cavity (11). The mounting shell (41) has a mounting cavity. The driving element is mounted in the mounting cavity. The pushing mechanism is located outside the mounting shell (41). The driving element is driven and connected to the pushing mechanism. The dough receiving seat (45) is connected to the mounting shell (41) and is used to receive the dough. The pushing mechanism is used to push the dough. The baking module (6) is equipped with a pushing mechanism that can push the dough to the baking module (6) for baking.

2. The compact cake-making machine as described in claim 1, characterized in that, The driving element includes a reduction mechanism and a first motor (44). The mounting shell (41) extends vertically. The first motor is inclinedly disposed in the mounting cavity. The reduction mechanism is disposed in the mounting cavity. The first motor (44) is driven and connected to the reduction mechanism. The reduction mechanism is transmittedly connected to the pushing mechanism.

3. The compact cake-making machine as described in claim 2, characterized in that, The deceleration mechanism is located below the mounting cavity, the first motor (44) is located above the mounting cavity, and the shaft of the first motor (44) is oriented toward the deceleration mechanism.

4. The compact cake-making machine as described in claim 3, characterized in that, The reduction mechanism includes a housing (43), a reduction gear set (42), and an output shaft. The housing (43) is installed in the mounting cavity, the reduction gear set (42) is disposed inside the housing (43), the first motor (44) is detachably installed in the housing (43), a worm gear (44a) is sleeved on the shaft of the first motor (44), the worm gear (44a) meshes with the reduction gear set (42), the output shaft is inserted into the reduction gear set (42) and passes through the mounting shell (41), and the output shaft is driven and connected to the pushing mechanism.

5. The compact cake-making machine as described in claim 1, characterized in that, The transfer module (4) includes a swing mechanism, which is mounted on the base (2) and driven to the mounting shell (41) for driving the mounting shell (41) to rotate.

6. The compact cake-making machine as described in claim 5, characterized in that, The bottom of the mounting shell (41) is provided with a rotating shaft (41a), which is movably inserted into the base (2). The swing mechanism drives the mounting shell (41) to swing around the rotating shaft (41a) as the center, so as to turn the contact seat (45) towards the baking module (6).

7. The compact cake-making machine as described in claim 6, characterized in that, The swing mechanism includes a second motor and a cam (48). The second motor is installed below the base (2). The rotating shaft of the second motor passes through the base (2) and is driven to connect with the cam (48). The cam (48) is provided with a convex shaft (49). The bottom of the mounting shell (41) is provided with a sliding groove. The convex shaft (49) is inserted into the sliding groove.

8. The compact cake-making machine as described in claim 5, characterized in that, The mounting shell (41) is in the shape of a polygonal cylinder. The side of the mounting shell (41) facing the pushing mechanism is a plane, and at least one outer wall surface of the mounting shell (41) is an arc surface.

9. The compact cake-making machine as described in claim 1, characterized in that, The transfer module (4) includes a connecting rod (41b), the two ends of which are detachably connected to the interface seat (45) and the mounting shell (41), respectively.

10. The compact cake-making machine as described in claim 2, characterized in that, The pushing mechanism includes an ejection block (47) and an ejection shaft (46). The first motor (44) drives the ejection shaft (46) connected to the ejection shaft (46) through the reduction mechanism. The ejection shaft (46) is threaded. The ejection block (47) is connected to the ejection shaft (46). The contact seat (45) is provided with a contact space. The contact space extends along the axial direction of the ejection shaft (46). The ejection block (47) is slidably installed in the contact space. The first motor (44) drives the ejection shaft (46) to rotate so as to move the ejection block (47) along the extension direction of the contact space.

11. The compact cake-making machine as described in claim 1, characterized in that, The dough-making module (3) includes a mixing cup, a mixing paddle, a transmission mechanism, and a mixing motor (31). The mixing cup is located above the dough-receiving seat (45). The mixing paddle is rotatably mounted on the mixing cup. The transmission mechanism is located above the mixing cup. The output end of the transmission mechanism is driven and connected to the mixing paddle. The mixing motor (31) is driven and connected to the input end of the transmission mechanism. The mixing motor (31) is located below the transmission mechanism. The axis of the rotating shaft of the mixing motor (31) is collinear with the axis of the mixing cup.