The present application relates to the technical field of food processing, and more particularly to a baking machine.
A baking machine includes a machine base, two heating components each disposed in a platy manner and two connecting insertion strips; one of the connecting insertion strips is connected to a platy edge of a lower side of one heating component; the connecting insertion strips are inserted into the machine base; and the two heating components are arranged vertically and are arranged in parallel, and a gap for placing a food material is reserved therebetween. Since the heating components are inserted into the machine base through the connecting insertion strips, when the heating components are subjected to a lateral external force, a large acting force is generated at the contact positions between the connecting insertion strips and a base according to a lever principle, and the connecting insertion strips and the base are deformed, resulting in that the heating components are tilted easily and laterally.
An objective of the present application is to overcome the above-mentioned shortages of the prior art and to provide a baking machine to solve the problem that heating components are tilted easily and laterally.
The present application is implemented as follows:
A baking machine for baking a food material includes a machine base, two heating components each disposed in a platy manner, and a control assembly for controlling the two heating components to heat; the two heating components are arranged vertically and are arranged in parallel, and a gap for placing the food material is reserved therebetween; the control assembly includes two electrical connectors and a controller for controlling the heating components to heat; the heating components are respectively and electrically connected to the controller via the two electrical connectors; the baking machine includes an auxiliary fixing post fixed on the machine base and two groups of anti-tilt assemblies fixed to the auxiliary fixing post and respectively corresponding to the heating components, wherein each of the anti-tilt assemblies includes a first limiting member fixed to the auxiliary fixing post and located at one platy side of each of the heating components and a second limiting member that is fixed to the auxiliary fixing post, is located at the other platy side of each of the heating components, and is opposite to a position of the first limiting member; intervals between the first limiting members and the second limiting members are matched with thicknesses of the heating components at opposite positions, and the controller is disposed in the machine base or the auxiliary fixing post.
Optionally, the first limiting members and the second limiting members all are disposed in a platy manner, and each of the first limiting members and the second limiting members is disposed opposite to each of the heating components via a platy surface.
Optionally, each of the anti-tilt assemblies includes a soft rubber block elastically propped against the heating components; and the soft rubber blocks are mounted at sides, facing the heating components, of the second limiting members.
Optionally, a soft rubber mounting groove is respectively formed at the sides, facing the heating components, of the second limiting members; the groove width of each of the mounting grooves is tapered along a notch direction; and each of the soft rubber blocks includes a mounting portion mounted in each of the soft rubber mounting grooves and a propping portion that is integrally connected with the mounting portion and is configured to prop against each of the heating components.
Optionally, the mounting grooves extend to sides, away from the auxiliary fixing post, of the second limiting members.
Optionally, the cross section of each of the mounting grooves is of a T shape, and the shapes of the cross sections of the mounting portions are matched with the groove shapes of the mounting grooves.
Optionally, the baking machine includes two groups of slip connection assemblies that are respectively configured to slidably connect the heating components to the machine base and are capable of allowing the heating components to slide to the anti-tilt assemblies.
Optionally, the slip connection assemblies each include a sliding rail connected to the machine base and a sliding block matched with the sliding rail through slip connection; and one sliding block is connected to a platy edge, facing the machine base, of one heating component.
Optionally, the cross section of each of the sliding rails is disposed in a T shape; a sliding groove matched with each of the sliding rails is formed on each of the sliding blocks; and the shapes of the cross sections of the sliding grooves are matched with the shapes of the cross sections of the sliding rails.
Optionally, the slip connection assemblies each include a rolling wheel disposed on each sliding rail; the rolling wheels are at least provided; a central axis of each of the rolling wheels is perpendicular to an extending direction of each of the sliding rails, and a wheel surface of each of the rolling wheels is propped against a groove bottom of each of the sliding grooves.
Optionally, each of the electrical connectors includes a socket disposed at the platy edge, facing the auxiliary fixing post, of each of the heating components, and a plug arranged on the auxiliary fixing post and configured to be electrically connected with the socket;
or alternatively, each of the electrical connectors includes a plug disposed at the platy edge, facing the auxiliary fixing post, of each of the heating components, and a socket arranged on the auxiliary fixing post and configured to be electrically connected with the plug.
Optionally, each of the heating components includes two semiconductor heating plates arranged in parallel and spaced apart and a structural reinforcing frame surrounding the two semiconductor heating plates.
Optionally, the semiconductor heating plates are semiconductor heating plates made of a transparent material.
Optionally, a bump protruded out of a platy surface of each of the semiconductor heating plates is respectively provided at two sides of each of the structural reinforcing frames.
Optionally, the baking machine includes lock catch assemblies for restricting the heating components from being away from the anti-tilt assemblies; each of the lock catch assemblies includes a clamping hook for matching with side buckles away from the auxiliary fixing post in the bumps and a driving mechanism for driving the clamping hooks to remove the matching between the clamping hooks and the buckles of the bumps.
Based on the structure of the present application, the auxiliary fixing post and the anti-tilt assemblies are arranged and each anti-tilt assembly includes the first limiting member located at one platy side of the each of the heating components and the second limiting member located at the other platy side of each of the heating components and disposed opposite to the position of the first limiting member. When the heating components are subjected to a lateral external force, due to the presence of the first limiting members and the second limiting members, the first limiting members restrain the heating components from tilting toward certain sides, and the second limiting members restrain the heating components from tilting toward the other sides. Therefore, the first limiting members and the second limiting members jointly restrain the heating components from tilting laterally, and thus the heating components are effectively prevented from tilting laterally.
In order to explain technical solutions of the present application more clearly, the accompanying drawings used in the embodiments will be briefly introduced below. Apparently, the accompanying drawings in the following description show merely some embodiments of the present application, and a person of ordinary skill in the art may still derive other accompanying drawings from these accompanying drawings without creative efforts.
To make the objectives, technical solutions, and advantages of the present application clearer and more comprehensible, the following further describes the present application in detail with reference to the accompanying drawings and embodiments. It should be understood that the specific embodiments described herein are merely used to explain the present application and are not intended to limit the present application.
An embodiment of the present application provides a baking machine for baking a food material, where the food material may be a flaky food material such as a piece of toasted bread, or may be a non-flaky food material.
Referring to
In this embodiment of the present application, the baking machine includes an auxiliary fixing post 400 fixed to the machine base 100 and two groups of anti-tilt assemblies 500 respectively fixed to the auxiliary fixing post 400 and corresponding to the heating components 200, where each of the anti-tilt assemblies 500 includes a first limiting member 510 fixed to the auxiliary fixing post 400 and located at one platy side of each of the heating components 200 and a second limiting member 520 that is fixed to the auxiliary fixing post 400, is located at the other platy side of each of the heating components 200, and is opposite to the position of the first limiting member 510; intervals between the first limiting members 510 and the second limiting members 520 are matched with thicknesses of the heating components 200 at the opposite positions, and the first limiting members 510 and the second limiting members 520 jointly prop against the heating components 200. In this embodiment of the present application, the controller 320 is disposed in the auxiliary fixing post 400. In other embodiments, the controller 320 may also be disposed in the machine base 100.
In the embodiment of the present application, the auxiliary fixing post 400 and the anti-tilt assemblies 500 are arranged and each anti-tilt assembly 500 includes the first limiting member 510 located at one platy side of each of the heating components 200 and the second limiting member 520 located at the other platy side of each of the heating components 200 and disposed opposite to the position of the second limiting member 520. When the heating components are subjected to a lateral external force, due to the presence of the first limiting members 510 and the second limiting members 520, the first limiting members 510 restrain the heating components 200 from tilting toward certain sides, and the second limiting members 520 restrain the heating components 200 from tilting toward the other sides; and the first limiting members 510 and the second limiting members 520 jointly restrain the heating components from tilting laterally, and thus the heating components are effectively prevented from tilting laterally.
Referring to
Further, each of the anti-tilt assemblies 500 includes a soft rubber block 530 elastically propped against the heating components 200; and the soft rubber blocks 530 are mounted at sides, facing the heating components 200, of the second limiting members 520. Since the heating components 200 are to heat food, in order to ensure the cleanliness and the hygiene, it is generally detachable between the heating components 200 and the machine base 100. Based on this structure, with the arrangement of the soft rubber blocks 530, the matching resistance between the heating components 200 and the anti-tilt assemblies 500 is increased. Particularly, during the use and during the process when the heating components 200 are mounted on the anti-tilt assemblies 500, a certain external force is required to mount the heating components 200 on the anti-tilt assemblies 500; and in this way, whether the mounting is in place or not is perceived conveniently. In addition, since the soft rubber blocks 530 are elastic, no damage will be caused to the heating components 200. Specifically, in this embodiment of the present application, the soft rubber blocks are made of a rubber.
Further, a soft rubber mounting groove is respectively formed at the sides, facing the heating components 200, of the second limiting members 520; the groove width of each of the mounting grooves is tapered along a notch direction; and each of the soft rubber blocks 530 includes a mounting portion mounted in each of the soft rubber mounting grooves and a propping portion that is integrally connected with the mounting portion and is configured to prop against each of the heating components 200. Based on this structure, when the soft rubber blocks 530 are mounted on the second limiting members 520, only the mounting portions need to be pressed into the soft rubber mounting grooves, and the soft rubber blocks 530 and the second limiting members 520 do not need to be bonded. When the soft rubber blocks 530 are dismantled from the second limiting members 520, only an external force for making the soft rubber blocks 530 away from the soft rubber mounting grooves is applied to the soft rubber blocks 530 to force the mounting portions to deform to some extent; and thus, the mounting and the dismantling of the soft rubber blocks 530 are very simple and convenient without the need for a tool.
Still further, the mounting grooves extend to sides, away from the auxiliary fixing post, of the second limiting members 520. Based on this structure, when the soft rubber blocks 530 are mounted on the second limiting members 520, only the mounting portions need to be slid into the soft rubber mounting grooves. When the soft rubber blocks 530 are dismantled from the second limiting members 520, only an external force is applied to the soft rubber blocks 530 so that the soft rubber blocks 530 are slid away from the soft rubber mounting grooves, and thus the efficiency of mounting and dismantling the soft rubber blocks 530 is further improved.
Still further, the cross section of each of the mounting grooves is of a T shape, and the shapes of the cross sections of the mounting portions are matched with the groove shapes of the mounting grooves.
Referring to
Further, the cross section of each of the sliding rails 610 is disposed in a T shape; a sliding groove 621 matched with each of the sliding rails 610 is formed on each of the sliding blocks 620; and the shapes of the cross sections of the sliding grooves 621 are matched with the shapes of the cross sections of the sliding rails 610. Thus, based on the structural design of the sliding rails 610 and the sliding grooves 621, the sliding rails 610 and the sliding blocks 620 can be effectively prevented from departing along opening directions of the sliding grooves 621.
Further, the slip connection assemblies 600 each include a rolling wheel 630 disposed on each sliding rail 610; the rolling wheels 630 are at least provided; a central axis of each of the rolling wheels 630 is perpendicular to an extending direction of each of the sliding rails 610, and a wheel surface of each of the rolling wheels 630 is propped against a groove bottom of each of the sliding grooves 621. Based on this structure, with the arrangement of the rolling wheels 630, a frictional force between the sliding rails 610 and the sliding blocks 620 is converted into a rolling friction. In this way, it is beneficial to reducing a friction coefficient and thus a frictional force during the sliding is reduced.
Referring to
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Further, the semiconductor heating plates 210 are made of a transparent material, so that a user can directly observe a baking state of the food through the semiconductor heating plates 210.
Further, a bump protruded out of a platy surface of each of the semiconductor heating plates 210 is respectively provided at two sides of each of the structural reinforcing frames 220. Therefore, when the heating components 200 are placed flat on a plane of a supporting surface, such as a table top, with the arrangement of the structural reinforcing frame 220, the plane of the supporting surface of the table top can be prevented from being in direct contact with the semiconductor heating plates 210.
Referring to
Specifically, in this embodiment of the present application, each driving mechanism 720 includes a wedge block 721 matched with each of the clamping hooks 710 and a press key 722 that drives the wedge block 721 to move. Wedge surfaces of the wedge blocks 721 are propped against the clamping hooks 710. When the press keys 722 are pressed, the wedge blocks 721 are driven to move, and thus the clamping hooks 710 move to remove the matching between the clamping hooks 710 and the buckles of the bumps. In addition, the auxiliary fixing post 400 is of a cavity structure, and the lock catch assemblies 700 are disposed on the auxiliary fixing post 400. The clamping hooks 710 pass through the auxiliary fixing post 400. Punched holes for passing through the press keys 722 are formed on a top of the auxiliary fixing post 400, so that the press keys 722 are pressed by the user conveniently.
Referring to
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Further, the heat insulation plates 800 are made of the transparent material, so that the user observes an internal state through the heat insulation plates 800.
The above are only the preferred embodiments of the present application, and are not intended to limit the present application. Any modifications, equivalent substitutions or improvements made within the spirit and principles of the present application shall fall into the protection scope of the present application.
Filing Document | Filing Date | Country | Kind |
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PCT/CN2017/084716 | 5/17/2017 | WO | 00 |