Cake making machine
By using non-stick trays and sensors to detect the dough in the pie-making machine, the problem of dough sticking during the transfer process was solved, enabling smooth transfer and baking of the dough and improving the reliability and efficiency of the pie-making process.
Patent Information
- Application Number
- CN202423322791.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-31
- Publication Date
- 2025-11-21
- Estimated Expiration
- 2034-12-31
AI Technical Summary
The dough tends to stick together during the transfer process in the pie-making machine, which prevents it from being transferred and baked properly, thus affecting the pie-making process.
A dough-making machine was designed, including a shell, a material bin, a mixing bin, a baking module, and a transfer module. The transfer module's tray is made of non-stick material and is equipped with a sensor to detect the dough's condition. The tray moves between the mixing bin and the baking module to achieve non-stick transfer of the dough.
This effectively reduces the sticking problem of dough during the transfer process, ensuring that the dough can be smoothly transferred from the mixing chamber to the baking module for baking, thus improving the reliability and efficiency of the dough making process.
Smart Images

Figure CN223568527U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to the technical field of food processing, particularly relates to a pie making machine. BACKGROUND
[0002] The pie making machine is mixed and stirred into dough by flour, water, oil and other seasonings, and then the dough is pressed and formed and is baked. Then the dough is transferred from the dough stirring module to the baking module, and the dough is easily stuck and cannot be transferred, which causes the subsequent pie making process to be unable to proceed. SUMMARY
[0003] The main purpose of the utility model is to provide a pie making machine, which aims to reduce the possibility of dough sticking.
[0004] To achieve the above purpose, the pie making machine provided by the utility model comprises:
[0005] A shell;
[0006] A material bin is installed in the shell;
[0007] A dough stirring bin is installed in the shell and located below the material bin, and the material bin and the dough stirring bin are connected;
[0008] A baking module is installed in the shell and used for baking the dough;
[0009] A transfer module comprises a supporting plate and a first driving assembly, the first driving assembly is installed in the shell, the supporting plate is in transmission connection with the first driving assembly, the supporting plate is made of anti-sticking material, the supporting plate has a stirring state and a baking state, when the supporting plate is in the stirring state, the first driving assembly drives the supporting plate to move to the opening of the dough stirring bin, and the dough stirring bin stirs the material flowing into the material bin into dough; when the supporting plate is in the baking state, the first driving assembly drives the supporting plate to move to the baking module, and pushes the dough on the supporting plate to the baking module for baking treatment; and
[0010] A control panel and an inductor are installed in the shell, the inductor and the first driving assembly are electrically connected with the control panel, and the control panel and the inductor are used for detecting the condition of the dough.
[0011] In an embodiment, the material of the supporting plate is Teflon.
[0012] In an embodiment, the baking module comprises a second driving assembly, an upper baking tray and a lower baking tray, the second driving assembly and the lower baking tray are both mounted on the housing, the upper baking tray is movably mounted on the housing and is in transmission connection with the second driving assembly, the first driving assembly drives the tray plate to move to transfer the dough in the dough mixing bin to the lower baking tray, and the second driving assembly drives the upper baking tray to move up and down to perform compression baking on the dough in the lower baking tray.
[0013] In an embodiment, the sensor comprises a weight sensor, which is mounted on the tray plate and / or the lower baking tray.
[0014] In an embodiment, the sensor comprises an enzyme sensor, which is mounted on the dough mixing bin to detect the fermentation degree of the dough in the dough mixing bin.
[0015] In an embodiment, the dough making machine further comprises a dough receiving bin, the transferring module further comprises a swing frame and a push block, the first driving assembly comprises a swing driving assembly and a screw rod driving assembly, the swing frame is in rotational connection with the housing, the dough receiving bin is mounted on the swing frame, the swing driving assembly is in transmission connection with the swing frame, so that the swing driving assembly drives the dough receiving bin to switch between the dough mixing bin and the baking module; the tray plate is mounted on the push block, and the tray plate and the push block are both in transmission connection with the screw rod driving assembly, the screw rod driving assembly is used to drive the push block to move along the axial direction of the screw rod driving assembly and to drive the tray plate to move up and down.
[0016] In an embodiment, the screw rod driving assembly comprises a screw rod motor and a first transmission rod, the screw rod motor is mounted on the housing, one end of the first transmission rod is in transmission connection with the output shaft of the screw rod motor, the push block is in rotational connection with the first transmission rod, and the push block is in sliding connection with the dough receiving bin, the first transmission rod is provided with a lifting groove and a rotating groove, the lifting groove is arranged on the end face of the first transmission rod away from the screw rod motor and extends from the axial direction of the first transmission rod to the outer circumferential surface; the rotating groove is arranged on the outer circumferential surface of the first transmission rod and is arranged in a spiral manner, the dough receiving bin is provided with a rotating shaft, and the tray plate is provided with a lifting shaft; the tray plate has a dough mixing state and a dough receiving state, in the dough mixing state, the lifting shaft is located in the lifting groove, and the rotating shaft is separated from the rotating groove; in the dough receiving state, the lifting shaft is separated from the lifting groove, and the rotating shaft is located in the rotating groove.
[0017] In an embodiment, the sensor comprises a displacement sensor, which is mounted on the swing frame and / or the push block.
[0018] In an embodiment, the first transmission rod is further provided with a joint groove in communication with the lifting groove, the joint groove is coaxially arranged with the first transmission rod, and the diameter of the joint groove is smaller than the diameter of the first transmission rod; in the stirring state, the lifting shaft is located in the lifting groove, and the screw motor drives the lifting of the supporting plate; in the joint state, the lifting shaft is located in the joint groove, and the screw motor drives the supporting plate to move along the axial direction of the first transmission rod.
[0019] The lifting groove comprises a first lifting groove and a second lifting groove, the first lifting groove is connected to the joint groove, the second lifting groove is connected to one end of the first lifting groove away from the joint groove, the first lifting groove extends from the axial direction of the transmission rod to the outer circumferential surface and is arranged in an arc shape, and the second lifting groove is coaxially arranged with the joint groove; when the lifting shaft is located in the second lifting groove, the height of the supporting plate remains unchanged.
[0020] The baking machine comprises a shell, a material bin, a dough stirring bin, a baking module, a transfer module, a control panel and a sensor, the material bin, the dough stirring bin and the baking module are all installed on the shell, the dough stirring bin is located below the material bin, and the material bin and the dough stirring bin are in communication, so that the materials such as flour, water and oil in the material bin can enter the dough stirring bin, and then the dough stirring bin stirs the materials into dough; the transfer module comprises a supporting plate and a first driving assembly, the first driving assembly is installed on the shell, the supporting plate is in transmission connection with the first driving assembly, the supporting plate is made of anti-sticking material, and the supporting plate has a stirring state and a baking state; when the supporting plate is in the stirring state, the first driving assembly drives the supporting plate to move to the opening of the dough stirring bin, and the dough stirring bin stirs the materials flowing from the material bin into dough; when the supporting plate is in the baking state, the first driving assembly drives the supporting plate to move to the baking module, and pushes the dough on the supporting plate to the baking module for baking treatment; the dough in the dough stirring bin is transferred to the baking module by the supporting plate, and then the material of the supporting plate is made of anti-sticking material, so that the sticking problem of the dough is reduced; further, the sensor is arranged to detect the position, viscosity and fermentation degree of the dough, so that the sticking possibility of the dough is further reduced. BRIEF DESCRIPTION OF DRAWINGS
[0021] In order to more clearly illustrate the technical scheme in the embodiments of the present application or the prior art, the drawings needed in the following embodiment or prior art description will be briefly introduced. Obviously, the drawings in the following description are only some embodiments of the present application, and other drawings can be obtained by those skilled in the art without creative labor on the basis of the drawings shown.
[0022] Figure 1 The structural schematic diagram of the baking machine according to an embodiment of the present application is shown in the figure.
[0023] Figure 2 is a partial structural schematic view of the first transmission rod in the first transmission rod; Figure 1
[0024] Figure 3 is a partial structural schematic view of the first transmission rod in the first transmission rod; Figure 1
[0025] Figure 4 is an exploded view of the first transmission rod in the first transmission rod; Figure 3
[0026] Figure 5 is a partial structural schematic view of the first transmission rod in the first transmission rod; Figure 1
[0027] Figure 6 is a partial structural schematic view of the first transmission rod in the first transmission rod. Figure 1
[0028] BRIEF DESCRIPTION OF DRAWINGS
[0029] 10, shell; 20, material bin; 30, dough mixing bin; 41, second driving assembly; 42, lower baking tray; 50, transfer module; 51, supporting plate; 511, lifting shaft; 52, swing frame; 53, push block; 55, first transmission rod; 551, lifting groove; 5511, first lifting groove; 5512, second lifting groove; 552, rotating groove; 553, interface groove; 60, interface bin; 61, rotating shaft.
[0030] 10 Housing 53 Push block 20 Material bin 55 First transmission rod 30 Material mixing bin 551 Lifting groove 41 Second driving assembly 5511 First lifting groove 42 Lower baking tray 5512 Second lifting groove 50 Transfer module 552 Rotary groove 51 Support plate 553 Joint groove 511 Lifting shaft 60 Joint bin 52 Swing frame 61 Rotary shaft
[0031] The implementation, functional features and advantages of the present application will be further described with reference to the accompanying drawings in conjunction with the embodiments. DETAILED DESCRIPTION
[0032] The technical solutions in the embodiments of the present application will be clearly and completely described below with reference to the accompanying drawings in the embodiments of the present application. Obviously, the described embodiments are only part of the embodiments of the present application, rather than all the embodiments. Based on the embodiments in the present application, all other embodiments obtained by those skilled in the art without creative labor fall within the scope of protection of the present application.
[0033] It should be noted that if the present application embodiments 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 the components in a certain posture, and if the certain posture changes, the directional indications also change accordingly.
[0034] In addition, if the description of "first", "second" and the like is involved in the embodiments of the utility model, the description of "first", "second" and the like is only for the purpose of description, 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 limited by "first", "second" can be explicitly or implicitly included at least one feature. In addition, if "and / or" or "and / or" appears throughout the text, it means that the three parallel schemes are included, for example, "A and / or B" includes 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 realization of ordinary skilled in the art, when the combination of technical solutions appears contradictory or unachievable, it should be considered that the combination of technical solutions does not exist, also not in the protection scope required by the utility model.
[0035] Referring to Figure 1 And Figure 2 The utility model proposes a kind of pie making machine, comprising:
[0036] Shell 10;
[0037] Material bin 20, is installed in the shell 10;
[0038] Stirring bin 30, is installed in the shell 10, and is located below the material bin 20, the material bin 20 and the stirring bin 30 are communicated;
[0039] Baking module, is installed in the shell 10, for carrying out baking treatment to dough;
[0040] Transfer module 50, including supporting plate 51 and first drive assembly, the first drive assembly is installed in the shell 10, the supporting plate 51 is transmission connection with the first drive assembly, the supporting plate 51 is anti-sticking material, the supporting plate 51 has stirring state and baking state, when the supporting plate 51 is in stirring state, the first drive assembly drives the supporting plate 51 and moves to the opening of the stirring bin 30, the stirring bin 30 stirs the material flowing in the material bin 20 into dough;When the supporting plate 51 is in baking state, the first drive assembly drives supporting plate 51 and moves to baking module, and pushes dough on the supporting plate 51 to baking module and carries out baking treatment;And
[0041] Control panel and inductor, the control panel is installed in the shell 10, the inductor and the first drive assembly are electrically connected with the control panel, and are used to detect dough condition.
[0042] The technical scheme of the utility model discloses a cake making machine, including shell 10, material bin 20, stirring bin 30, baking module, transfer module 50, control panel and inductor, material bin 20, stirring bin 30 and baking module are all installed in shell 10, stirring bin 30 is located below material bin 20, and material bin 20 and stirring bin 30 are communicated, so that the flour, water, oil and other materials in material bin 20 can enter stirring bin 30, then stirring bin 30 stirs these materials into dough, transfer module 50 includes supporting plate 51 and first drive assembly, first drive assembly is installed in shell 10, supporting plate 51 is transmission connection with first drive assembly, supporting plate 51 is of anti -sticky material, supporting plate 51 has stirring state and baking state, when supporting plate 51 is in stirring state, first drive assembly drives supporting plate 51 to move to the opening of stirring bin 30, and stirring bin 30 stirs the material flowing in material bin 20 into dough, when supporting plate 51 is in baking state, first drive assembly drives supporting plate 51 to move to baking module, and pushes the dough on supporting plate 51 to baking module and carries out baking treatment, by supporting plate 51, the dough in stirring bin 30 is transferred to baking module, then the material of supporting plate 51 is anti -sticky material, thereby reducing the stickiness of dough, further, by setting inductor, the position, stickiness, fermentation degree of dough are detected, thereby further reducing the possibility of dough stickiness.
[0043] Wherein, material bin 20 and stirring bin 30 can be communicated by pipeline, and also can be communicated by setting flow channel on plate.
[0044] In an embodiment of the utility model, the material of supporting plate 51 is Teflon. Because supporting plate 51 only plays the role of transferring dough, and will not carry out baking and other heating treatment on supporting plate 51, and Teflon has good anti -sticky effect, therefore by setting the material as Teflon, the possibility of dough stickiness is reduced. Of course, the material of supporting plate 51 can also be any one of PE, PP, POM and nylon.
[0045] Specifically, the baking module includes second drive assembly 41, upper baking tray and lower baking tray 42, the second drive assembly 41 and the lower baking tray 42 are all installed in the shell 10, the upper baking tray is movably installed in the shell 10 and is in transmission connection with the second drive assembly 41, the first drive assembly drives the supporting plate 51 to move to transfer the dough in the stirring bin 30 to the lower baking tray 42, and the second drive assembly 41 drives the upper baking tray to lift to carry out compression baking treatment on the dough in the lower baking tray 42. The upper baking tray is compressed into the form of cake after stirring the dough, and then the upper baking tray and the lower baking tray 42 simultaneously carry out baking treatment on both sides of the cake, so that the baking processing of the cake is quickly completed.
[0046] The second driving assembly 41 can be a cylinder, which drives the upper baking tray to ascend and descend. Of course, the second driving assembly 41 can also be a second driving motor, a gear and a rack. The second driving motor is installed on the shell 10, the gear is in transmission connection with the output shaft of the second driving motor, the rack is installed on the upper baking tray, the gear and the rack are in meshing connection, and the second driving motor drives the upper baking tray to ascend and descend through the gear and the rack. Of course, in other embodiments, the second driving assembly 41 can also be a second driving motor, a driving wheel, a transmission wheel and a transmission rod. The upper baking tray is in sliding connection with the shell 10, the driving wheel is in transmission connection with the output shaft of the second driving motor, the driving wheel and the transmission wheel are in meshing connection, the transmission rod is in rotation connection with the transmission wheel and the upper baking tray at two ends respectively, and the second driving motor drives the upper baking tray to ascend and descend through the driving wheel, the transmission wheel and the transmission rod.
[0047] In an embodiment of the present application, the sensor includes a weight sensor, which is installed on the supporting plate 51 and / or the lower baking tray 42. The weight sensor installed on the supporting plate 51 and / or the lower baking tray 42 can detect the weight of the dough on the supporting plate 51 and / or the lower baking tray 42, and then sense whether the dough is successfully transferred from the supporting plate 51 to the lower baking tray 42. When the weight sensor is installed on the supporting plate 51, if the weight of the dough in the dough mixing bin 30 exceeds a predetermined value, the weight sensor can also sense it, so as to prevent the stirring paddle in the dough mixing bin 30 from being damaged.
[0048] In another embodiment of the present application, the sensor includes an enzyme sensor, which is installed on the dough mixing bin 30, and is used to detect the fermentation degree of the dough in the dough mixing bin 30, so as to improve the taste of the biscuit.
[0049] With reference to Figures 3 to 6 Further, the biscuit making machine further includes a dough receiving bin 60, the transferring module 50 further includes a swing frame 52 and a push block 53, the first driving assembly includes a swing driving assembly and a screw rod driving assembly, the swing frame 52 is in rotation connection with the shell 10, the dough receiving bin 60 is installed on the swing frame 52, the swing driving assembly is in transmission connection with the swing frame 52, so that the swing driving assembly drives the dough receiving bin 60 to switch between the dough mixing bin 30 and the baking module, the supporting plate 51 is installed on the push block 53, and the supporting plate 51 and the push block 53 are in transmission connection with the screw rod driving assembly. The screw rod driving assembly is used to drive the push block 53 to move along the axial direction of the screw rod driving assembly, and is used to drive the supporting plate 51 to ascend and descend.
[0050] When the swing driving assembly drives the swing frame 52 to move to the lower side of the dough mixing bin 30, the supporting plate 51 is blocked at the opening of the dough mixing bin 30, at this time, the dough mixing bin 30 mixes the materials such as flour, water and oil to process into dough; when the dough is finished, the screw driving assembly drives the supporting plate 51 to move downward to the lower end surface of the dough mixing bin 30, and then drives the push block 53 to move along the length direction of the push block 53, so that the dough in the dough mixing bin 30 falls into the dough receiving bin 60. Then the swing driving assembly drives the swing frame 52 to swing to the baking module, at this time, the screw driving assembly drives the push block 53 to move along the length direction again, so that the dough in the dough receiving bin 60 is pushed to the lower baking tray 42 for baking treatment.
[0051] Specifically, the screw driving assembly comprises a screw motor and a first transmission rod 55, the screw motor is installed on the shell 10, one end of the first transmission rod 55 is in transmission connection with the output shaft of the screw motor, the push block 53 is rotationally connected with the first transmission rod 55, and the push block 53 is in sliding connection with the dough receiving bin 60, the first transmission rod 55 is provided with a lifting groove 551 and a rotating groove 552, the lifting groove 551 is arranged on the end surface of the first transmission rod 55 away from the screw motor, and extends from the axial direction of the first transmission rod 55 to the outer circumferential surface; the rotating groove 552 is arranged on the outer circumferential surface of the first transmission rod 55 and is arranged in a spiral manner, the dough receiving bin 60 is provided with a rotating shaft 61, and the supporting plate 51 is provided with a lifting shaft 511; the supporting plate 51 has a dough mixing state and a dough receiving state, in the dough mixing state, the lifting shaft 511 is located in the lifting groove 551, and the rotating shaft 61 is separated from the rotating groove 552; in the dough receiving state, the lifting shaft 511 is separated from the lifting groove 551, and the rotating shaft 61 is located in the rotating groove 552.
[0052] In another embodiment of the present application, the inductor comprises a displacement inductor, which is installed on the swing frame 52 and / or the push block 53. Through the displacement inductor, it can be detected whether the swing frame 52 swings to a predetermined position and / or whether the push block 53 pushes to a predetermined position, so as to prevent the dough from not being pushed to the lower baking tray 42.
[0053] In an embodiment, the first transmission rod 55 is further provided with a joint groove 553 in communication with the lifting groove 551, the joint groove 553 is coaxially arranged with the first transmission rod 55, and the diameter of the joint groove 553 is smaller than that of the first transmission rod 55. In the stirring state, the lifting shaft 511 is located in the lifting groove 551, and the screw motor drives the supporting plate 51 to lift. In the jointing state, the lifting shaft 511 is located in the joint groove 553, and the screw motor drives the supporting plate 51 to move along the axial direction of the first transmission rod 55. By arranging the joint groove 553 in communication with the lifting groove 551, the lifting shaft 511 is located in the joint groove 553 or the lifting groove 551 in the stirring state and the jointing state, thereby reducing the possibility of the lifting shaft 511 deviating from the predetermined track during operation, and thereby increasing the stability of the operation of the supporting plate 51.
[0054] When the lifting shaft 511 is located in the joint groove 553, the shortest distance between the lifting shaft 511 and the axis of the transmission rod remains unchanged, so the height of the supporting plate 51 remains unchanged at this time. At this time, the rotating shaft 61 is located in the rotating groove 552, so the screw motor only drives the push block 53 to move along the axial direction of the transmission rod, and does not drive the supporting plate 51 to lift.
[0055] Specifically, the lifting groove 551 includes a first lifting groove 5511 and a second lifting groove 5512. The first lifting groove 5511 is connected to the joint groove 553, and the second lifting groove 5512 is connected to one end of the first lifting groove 5511 away from the joint groove 553. The first lifting groove 5511 extends from the axial direction of the transmission rod to the outer peripheral surface and is arranged in an arc shape. The second lifting groove 5512 is coaxially arranged with the joint groove 553. When the lifting shaft 511 is located in the second lifting groove 5512, the height of the supporting plate 51 remains unchanged. When the lifting shaft 511 is located in the first lifting groove 5511, the supporting plate 51 lifts. When the lifting shaft 511 is located in the second lifting groove 5512, the height of the supporting plate 51 remains unchanged. Understandably, when the screw motor drives the supporting plate 51 to lift, the precision of the screw motor cannot be set too accurately, that is, it is difficult to achieve that the screw motor stops immediately and reverses after the supporting plate 51 reaches the highest point. Therefore, by arranging the second lifting groove 5512, a certain buffer and error are provided for the lifting shaft 511, thereby reducing the precision of the screw motor, and thereby reducing the cost of the screw motor.
[0056] The above merely describes exemplary embodiments of the present application, and does not limit the patent scope of the present application. Any equivalent structural transformation made by referring to the content of the present application specification and drawings, or direct / indirect application in other related technical fields is included in the patent protection scope of the present application.
Claims
1. A cake making machine characterised in that, The application relates to a dough kneading and baking device. The device comprises a housing (10), a material bin (20) installed on the housing (10), a dough kneading bin (30) installed on the housing (10) and below the material bin (20), the material bin (20) and the dough kneading bin (30) being connected, a baking module installed on the housing (10) and used for baking dough, a transfer module (50) comprising a supporting plate (51) and a first driving assembly, the first driving assembly being installed on the housing (10), the supporting plate (51) being in transmission connection with the first driving assembly, the supporting plate (51) being made of a non-stick material, the supporting plate (51) having a kneading state and a baking state, when the supporting plate (51) is in the kneading state, the first driving assembly drives the supporting plate (51) to move to an opening of the dough kneading bin (30), and the dough kneading bin (30) kneads material flowing into the material bin (20) into dough, when the supporting plate (51) is in the baking state, the first driving assembly drives the supporting plate (51) to move to the baking module, and pushes the dough on the supporting plate (51) to the baking module for baking treatment, and a control panel and a sensor, the control panel being installed on the housing (10), the sensor and the first driving assembly being electrically connected with the control panel and used for detecting the condition of the dough. The material of the supporting plate (51) is Teflon. The baking module comprises a second driving assembly (41), an upper baking tray and a lower baking tray (42), the second driving assembly (41) and the lower baking tray (42) being installed on the housing (10), the upper baking tray being movably installed on the housing (10) and in transmission connection with the second driving assembly (41), the first driving assembly drives the supporting plate (51) to move, so as to transfer the dough in the dough kneading bin (30) to the lower baking tray (42), and the second driving assembly (41) drives the upper baking tray to ascend and descend, so as to perform compression baking treatment on the dough in the lower baking tray (42). The sensor comprises a weight sensor, the weight sensor being installed on the supporting plate (51) and / or the lower baking tray (42). The sensor comprises an enzyme sensor, the enzyme sensor being installed on the dough kneading bin (30) and used for detecting the fermentation degree of the dough in the dough kneading bin (30). 2. The cake maker of claim 1, wherein, 3. The cake maker of claim 1, wherein, 4. The cake making machine of claim 3, wherein, 5. The cake maker of claim 1, wherein, 6. The cake maker of claim 1, wherein, The cake making machine further comprises an interface bin (60), the transfer module (50) further comprises a swing frame (52) and a push block (53), the first driving assembly comprises a swing driving assembly and a screw driving assembly, the swing frame (52) is rotationally connected to the shell (10), the interface bin (60) is mounted on the swing frame (52), the swing driving assembly is drivingly connected with the swing frame (52) to enable the swing driving assembly to drive the interface bin (60) to switch between the stirring bin (30) and the baking module, the supporting plate (51) is mounted on the push block (53), and the supporting plate (51) and the push block (53) are both drivingly connected with the screw driving assembly, and the screw driving assembly is used to drive the push block (53) to move along the axial direction of the screw driving assembly and to drive the supporting plate (51) to ascend and descend.
7. The cake making machine of claim 6, wherein, The screw driving assembly comprises a screw motor and a first transmission rod (55), the screw motor is mounted on the shell (10), one end of the first transmission rod (55) is drivingly connected with an output shaft of the screw motor, the push block (53) is rotationally connected to the first transmission rod (55), and the push block (53) is slidingly connected with the interface bin (60), the first transmission rod (55) is provided with a lifting groove (551) and a rotating groove (552), the lifting groove (551) is arranged on an end face of the first transmission rod (55) away from the screw motor and extends from the axial direction of the first transmission rod (55) to the outer circumferential surface, the rotating groove (552) is arranged on the outer circumferential surface of the first transmission rod (55) and is arranged in a spiral manner, the interface bin (60) is provided with a rotating shaft (61), and the supporting plate (51) is provided with a lifting shaft (511), the supporting plate (51) has a stirring state and an interface state, in the stirring state, the lifting shaft (511) is located in the lifting groove (551), and the rotating shaft (61) is separated from the rotating groove (552), and in the interface state, the lifting shaft (511) is separated from the lifting groove (551), and the rotating shaft (61) is located in the rotating groove (552).
8. The cake making machine of claim 7, wherein, The inductor comprises a displacement inductor, which is mounted on the swing frame (52) and / or the push block (53).
9. The cake making machine of claim 7, wherein, The first transmission rod (55) is further provided with an interface groove (553) in communication with the lifting groove (551), the interface groove (553) is coaxially arranged on the first transmission rod (55), the diameter of the interface groove (553) is smaller than that of the first transmission rod (55), in the stirring state, the lifting shaft (511) is located in the lifting groove (551), the screw motor drives the supporting plate (51) to ascend and descend, in the interface state, the lifting shaft (511) is located in the interface groove (553), and the screw motor drives the supporting plate (51) to move along the axial direction of the first transmission rod (55).
10. The cake making machine of claim 9, wherein, The lifting groove (551) comprises a first lifting groove (5511) connected to the interface groove (553) and a second lifting groove (5512) connected to one end of the first lifting groove (5511) away from the interface groove (553). The first lifting groove (5511) extends from the axis direction of the transmission rod to the outer circumferential surface and is arranged in an arc shape. The second lifting groove (5512) is coaxially arranged with the interface groove (553). When the lifting shaft (511) is located in the second lifting groove (5512), the height of the supporting plate (51) is unchanged.