Ice maker
By installing a temperature measuring component in the water storage chamber of the ice maker, the ice-making time can be adjusted according to the water temperature, thus solving the problem of high energy consumption in existing ice makers and achieving a more efficient ice-making process.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-04-07
- Publication Date
- 2026-03-24
AI Technical Summary
Existing ice makers cannot adjust the ice-making time according to the water temperature during the ice-making process, resulting in high energy consumption and low efficiency.
A temperature sensing component is installed in the water storage chamber of the ice maker to adjust the ice-making time by detecting the water temperature, and the ice-making process is optimized by combining it with the cooler of the ice-making component.
By dynamically adjusting the ice-making time, ice-making efficiency is improved, energy consumption is reduced, and the accuracy of temperature detection and ease of assembly are enhanced.
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Figure CN224034074U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The embodiment of the present application relates to the technical field of ice maker, in particular to an ice maker. BACKGROUND
[0002] The ice maker is a device for changing liquid into solid ice block by evaporation heat absorption. It is widely used in catering industry and outdoor activities. In the existing ice maker, the ice making time is constant, that is, no matter the temperature of the water used for ice making is, the same time is cooled, resulting in that when the water with low temperature is used for ice making, the solid ice block is still evaporated and cooled, so that the energy consumption of the ice making process is high. Therefore, how to detect the temperature of the water in the ice maker water storage tank to reasonably control the ice making time has become a technical problem to be solved at present. CONTENT OF THE UTILITY MODEL
[0003] The embodiment of the present application provides an ice maker which can detect the temperature of the liquid used for ice making, adjust the ice making time adaptively according to the water temperature, improve the ice making efficiency and reduce the ice making energy consumption.
[0004] To solve the above technical problem, one technical scheme adopted by the embodiment of the present application is to provide an ice maker. The ice maker comprises an inner container assembly and a temperature measuring assembly. The inner container assembly comprises an inner shell and an outer shell, the inner shell and the outer shell are connected in a nested mode, one side of the inner shell away from the outer shell defines a water storage cavity, and the inner shell is provided with a mounting cavity communicating with the water storage cavity; the temperature measuring assembly is arranged in the mounting cavity, and comprises a first part and a second part connected with each other, the first part is arranged in the mounting cavity, and the second part extends into the water storage cavity, and the diameter of the second part is smaller than that of the first part.
[0005] In some embodiments, the temperature measuring assembly comprises a first shell, a second shell and a temperature sensing component, the first shell is arranged in the mounting cavity, the second shell is fixed to one end of the first shell, the second shell is located in the water storage cavity, a first inner cavity of the first shell and a second inner cavity of the second shell are in communication, and the diameter of the second shell is smaller than that of the first shell. The temperature sensing component comprises a temperature sensing head and a temperature sensing wire bundle, the temperature sensing head is connected with the temperature sensing wire bundle, the temperature sensing head is located in the second inner cavity of the second shell, and at least a part of the temperature sensing wire bundle is located in the first inner cavity of the first shell.
[0006] In some embodiments, the temperature measuring assembly further comprises a first filling piece, the first filling piece is arranged in the first inner cavity and the second inner cavity, and the first filling piece wraps the temperature sensing head. The temperature sensing wire bundle comprises an inner wire bundle and an outer wire bundle, the first filling piece wraps the inner wire bundle, the outer wire bundle is connected with the inner wire bundle and extends out of the first shell.
[0007] In some embodiments, the first shell comprises plastic, and the second shell comprises metal.
[0008] In some embodiments, the inner shell extends towards the outer shell with a first enclosing wall, the first enclosing wall encloses a mounting cavity, the first shell is arranged at the inner side of the first enclosing wall, and the temperature measuring assembly further comprises a sealing member abutting against the first enclosing wall and the first shell.
[0009] In some embodiments, the outer wall of the first shell is provided with a recessed annular groove, the sealing member is arranged in the annular groove, and a part of the sealing member protrudes out of the outer wall of the first shell.
[0010] In some embodiments, the first enclosing wall is provided, at the end away from the water storage cavity, with a first fixing portion, the first shell is provided with a second fixing portion, the first fixing portion and the second fixing portion are connected in cooperation, and the first shell is fixed to the first enclosing wall; and / or the first shell is provided, at the end away from the second shell, with a holding handle, and the holding handle extends out of the first enclosing wall.
[0011] In some embodiments, the inner shell is provided, at the surface away from the outer shell, with a second enclosing wall, the diameter of the second enclosing wall decreases in the direction of the outer shell towards the inner shell, the inner wall of the second enclosing wall abuts against the outer wall of the first shell, and the second shell penetrates through the second enclosing wall and is located in the water storage cavity.
[0012] In some embodiments, the inner shell and the outer shell are arranged in a spaced manner to form a cavity, the surface of the outer shell towards the inner shell is provided with a third enclosing wall, the third enclosing wall is nested and abuts against the first enclosing wall, the third enclosing wall is located at the outer side of the first enclosing wall, and an exhaust passage is arranged between the third enclosing wall and the first enclosing wall, the exhaust passage communicates the cavity with the outside; the ice maker further comprises a second filling member arranged in the cavity.
[0013] In some embodiments, the ice maker further comprises an ice making assembly, the ice making assembly comprises a cooler and a control component, the control component is electrically connected with the cooler and the temperature measuring assembly, the control component is used for receiving the detection data of the temperature measuring assembly, and controls the cooling time length of the cooler according to the detection data.
[0014] The ice maker of the embodiment of the present application has the following beneficial effects: the ice maker of the embodiment of the present application comprises an inner container assembly and a temperature measuring assembly. The inner container assembly comprises an inner shell and an outer shell, the inner shell and the outer shell are connected in a nested manner, one side of the inner shell away from the outer shell defines a water storage cavity, and the inner shell is provided with a mounting cavity communicating with the water storage cavity. The temperature measuring assembly is arranged in the mounting cavity, and comprises a first part and a second part connected with each other. The first part is arranged in the mounting cavity, the second part extends into the water storage cavity, and the diameter of the second part is smaller than that of the first part. By mounting the temperature measuring assembly in the water storage cavity, the temperature of the water in the water storage cavity can be detected, and the ice making time can be adjusted adaptively to improve the ice making efficiency. In addition, the diameter of the second part of the temperature measuring assembly is smaller than that of the first part, which can reduce the distance between the internal temperature measuring structure of the second part and the water, thereby reducing the temperature dissipation of the second part and improving the accuracy of temperature measurement. The size of the first part is larger, which facilitates the assembly of the first part and the inner container assembly and reduces the assembly difficulty. BRIEF DESCRIPTION OF DRAWINGS
[0015] In order to more clearly illustrate the technical solutions in the specific embodiments of the present application, the drawings needed in the specific embodiment description will be briefly introduced below. In all the drawings, similar elements or parts are generally identified by similar reference numerals. In the drawings, each element or part is not necessarily drawn according to the actual proportion.
[0016] Figure 1 is a sectional view of the ice maker of the embodiment of the present application;
[0017] Figure 2 is an exploded view of part of the structure of the ice maker of the embodiment of the present application;
[0018] Figure 3 is a schematic view of the temperature measuring assembly of the ice maker of the embodiment of the present application;
[0019] Figure 4 is Figure 1 is an enlarged schematic view of the local part A in
[0020] The reference numerals in the specific embodiments are as follows:
[0021] 100, ice maker; 10, inner liner assembly; 11, inner shell; 111, water storage cavity; 112, first enclosing wall; 1121, mounting cavity; 1122, first fixing part; 113, second enclosing wall; 12, outer shell; 121, third enclosing wall; 13, cavity; 20, temperature measuring assembly; 21, first part; 22, second part; 23, first shell; 231, first inner cavity; 232, second fixing part; 233, holding handle; 24, second shell; 241, second inner cavity; 25, temperature sensing component; 251, temperature sensing head; 252, temperature sensing wire bundle; 2521, inner wire bundle; 2522, outer wire bundle; 26, first filling piece; 27, sealing piece; 30, second filling piece; 40, ice making assembly. DETAILED DESCRIPTION
[0022] For the purpose of facilitating the understanding of the present application, the present application will be described in more detail below in conjunction with the accompanying drawings and specific embodiments. It should be noted that when an element is described as being "fixed to" another element, it can be directly on the other element or one or more intervening elements can be present therebetween. When an element is described as being "connected to" another element, it can be directly connected to the other element or one or more intervening elements can be present therebetween. The terms "upper", "lower", "inner", "outer", "vertical", "horizontal", and the like as used in the present specification indicate the orientation or positional relationship based on the orientation or positional relationship shown in the drawings, and are merely for the purpose of facilitating the description of the present application and simplifying the description, and are not intended to indicate or imply that the device or element referred to must have a particular orientation, be constructed and operated in a particular orientation, and therefore cannot be understood as limiting the present application. In addition, the terms "first", "second", and the like are merely for the purpose of description and cannot be understood as indicating or implying relative importance.
[0023] Unless otherwise defined, all technical and scientific terms used in the present specification have the same meaning as commonly understood by one of ordinary skill in the art to which the present application belongs. The terms used in the specification of the present application are only for the purpose of describing specific embodiments and are not intended to limit the present application. The term "and / or" used in the present specification includes any and all combinations of one or more of the related listed items.
[0024] In addition, the technical features involved in the different embodiments of the present application described below can be combined with each other as long as they do not conflict with each other.
[0025] The ice maker is internally provided with an ice making cavity, an ice falling cavity, and a water storage cavity. An ice making assembly is arranged in the ice making cavity. An ice basket is arranged below the ice falling cavity and above the water storage cavity. The ice making assembly is used to make solid ice blocks from liquid water by evaporation heat absorption and the like. The solid ice blocks fall into the ice basket through the ice falling cavity.
[0026] However, in the existing ice maker, during the ice making process, there may be some un-frozen liquid water in the ice making assembly. In order to avoid the liquid water from entering the ice basket together and accelerating the melting of the ice cubes, it is necessary to separate the solid ice and the liquid water, and the solid ice cubes are loaded into the ice basket, and the liquid water flows into the water storage cavity. In order to reduce energy consumption, the water in the water storage cavity is usually pumped into the ice making assembly again as a water source to cool the ice making.
[0027] The inventor of the present application found that the temperature of the liquid water in the water storage cavity 111 is different at different time periods, so the time of the water being pumped into the ice making assembly 40 to make ice cubes is also different. For example, the temperature of the liquid water separated during the ice making process approaches 0℃, and the time of the ice making cooling again is short, and the temperature of the liquid water several hours after the ice making is stopped approaches room temperature, and the time of the ice making cooling again is long. If the ice making time of the ice making assembly is set to a constant time each time, it is easy to cause energy waste and too long waiting time. Therefore, how to detect the temperature of the water in the water storage tank of the ice maker to reasonably control the ice making time has become a technical problem to be solved at present.
[0028] To solve the above problems, please refer to Figure 1 The embodiment of the present application provides an ice maker 100, the ice maker 100 is provided with a temperature measuring assembly 20 in the water storage cavity 111, the temperature measuring assembly 20 is used for detecting the temperature of the water in the water storage cavity 111, and the temperature measuring assembly 20 is electrically connected with the ice making assembly 40, so that the ice making assembly 40 can adjust the cooling time of the ice making according to the different water temperature, improve the ice making efficiency, and reduce the energy consumption loss of the ice maker 100.
[0029] As an embodiment, please refer to Figures 1 to 3The ice maker 100 comprises an inner container assembly 10 and a temperature measuring assembly 20. The inner container assembly 10 comprises an inner shell 11 and an outer shell 12, the inner shell 11 is connected to the outer shell 12 in a nested manner, and the inner shell 11 is located inside the outer shell 12. The inner shell 11 is defined with a water storage cavity 111 on a side facing away from the outer shell 12, and the inner shell 11 is provided with a mounting cavity 1121 communicating with the water storage cavity 111. The temperature measuring assembly 20 is arranged in the mounting cavity 1121, and the temperature measuring assembly 20 comprises a first part 21 and a second part 22 connected to each other, the first part 21 is arranged in the mounting cavity 1121, and the second part 22 extends into the water storage cavity 111, and the diameter of the second part 22 is smaller than that of the first part 21. By arranging the temperature measuring assembly 20 in the water storage cavity 111, the temperature of the water in the water storage cavity 111 can be detected, and the ice making time can be adjusted adaptively to improve the ice making efficiency. In addition, the diameter of the second part 22 of the temperature measuring assembly 20 is smaller than that of the first part 21, which can reduce the distance between the internal temperature measuring structure of the second part 22 and the water, thereby reducing the temperature dissipation of the second part 22 and improving the accuracy of temperature measurement. The size of the first part 21 is larger, which facilitates the assembly of the first part 21 and the inner container assembly 10 and reduces the assembly difficulty.
[0030] In some embodiments, referring to Figure 3 and Figure 4 , the temperature measuring assembly 20 comprises a first shell 23, a second shell 24 and a temperature sensing component 25. The first shell 23 is arranged in the mounting cavity 1121 to be fixedly connected to the inner shell 11. The second shell 24 is fixed to one end of the first shell 23 close to the water storage cavity 111, and the second shell 24 is located in the water storage cavity 111. The first shell 23 is provided with a first inner cavity 231, the second shell 24 is provided with a second inner cavity 241, the first inner cavity 231 and the second inner cavity 241 are communicated, and the temperature sensing component 25 is arranged in the first inner cavity 231 and the second inner cavity 241. The diameter of the second shell 24 is smaller than that of the first shell 23. The temperature sensing component 25 comprises a temperature sensing head 251 and a temperature sensing wire bundle 252, the temperature sensing head 251 is connected to the temperature sensing wire bundle 252, the temperature sensing head 251 is located in the second inner cavity 241 of the second shell 24, and at least a part of the temperature sensing wire bundle 252 is located in the first inner cavity 231 of the first shell 23. By arranging the temperature sensing head 251 in the second shell 24 with a smaller diameter, the distance between the temperature sensing head 251 and the water in the water storage cavity 111 can be reduced, thereby reducing the loss of temperature transmission and improving the temperature measurement accuracy of the temperature sensing head 251.
[0031] In some embodiments, the first shell 23 is made of plastic, and the second shell 24 is made of metal. The temperature sensing component 25 mainly measures temperature through the temperature sensing head 251, and therefore the second shell 24 made of metal has good heat conduction performance, further reduces temperature loss, and improves temperature measurement accuracy. The first shell 23 is mainly responsible for fixed connection with the inner shell 11, and therefore the first shell 23 made of plastic can be used to reduce production cost. In addition, the first shell 23 made of plastic has very low thermal conductivity, greatly reduces temperature dissipation, and improves temperature measurement accuracy. The first shell 23 and the second shell 24 can be connected by any mode such as snap-fit connection, adhesion, clamping, injection molding, etc.
[0032] In some embodiments, referring to Figure 4 , the temperature sensing assembly 20 further comprises a first filling member 26, which is arranged in the first inner cavity 231 and the second inner cavity 241, and wraps the temperature sensing head 251. The first filling member 26 is used to keep the temperature sensing head 251 inside the second shell 24, and by arranging the second shell 24 with a smaller diameter, the distance between the temperature sensing head 251 and the inner wall of the second shell 24 can be reduced, thereby reducing the thickness of the first filling member 26 and further reducing temperature transmission loss. The temperature sensing wire bundle 252 comprises an inner wire bundle 2521 and an outer wire bundle 2522. The first filling member 26 wraps the inner wire bundle 2521, the outer wire bundle 2522 is connected with the inner wire bundle 2521 and extends out of the first shell 23. The part of the outer wire bundle 2522 outside the second shell 24 is used for power supply and signal connection with the temperature sensing head 251. The first filling member 26 is poured into the filling member after the temperature sensing component 25 is installed, and then solidifies, which is used to protect and fix the temperature sensing head 251 and the temperature sensing wire bundle 252.
[0033] In some embodiments, referring to Figure 4 , the inner shell 11 extends towards the outer shell 12 with a first enclosing wall 112, which encloses the above-mentioned installation cavity 1121. The first shell 23 is arranged on the inner side of the first enclosing wall 112. The first shell 23 and the first enclosing wall 112 can be connected by a clearance fit mode to facilitate assembly of the two. The temperature sensing assembly 20 further comprises a sealing member 27, which abuts against the first enclosing wall 112 and the first shell 23, thereby sealing the gap between the inner wall of the first enclosing wall 112 and the outer wall of the first shell 23, improving the sealing performance of the water storage cavity 111, and preventing water leakage of the water storage cavity 111 at the gap.
[0034] It can be understood that, in some embodiments, a recessed annular groove is arranged on the outer wall of the first shell 23, the sealing member 27 is annular, the annular sealing member 27 is sleeved in the annular groove to form an integral whole with the first shell 23, and part of the sealing member 27 protrudes from the outer wall of the first shell 23. In the assembly process, the sealing member 27 and the first shell 23 can move synchronously, so that when the assembly worker pushes the first shell 23 into the installation cavity 1121, the sealing member 27 can simultaneously seal the gap between the first shell 23 and the first surrounding wall 112, thereby reducing the time for additionally installing the sealing member 27 and improving the assembly efficiency. It can be understood that the number of sealing members 27 can be multiple.
[0035] In some embodiments, referring to Figure 3 and Figure 4 , the end of the first surrounding wall 112 away from the water storage cavity 111 is provided with a first fixing portion 1122, and the first shell 23 is provided with a second fixing portion 232. The first fixing portion 1122 is connected with the second fixing portion 232 in a matching manner, and the first shell 23 is fixed to the first surrounding wall 112. Through the above structure, the first shell 23 and the first surrounding wall 112 can be quickly installed and fixed. As an example, the first fixing portion 1122 is a clamping groove, and the second fixing portion 232 is a clamping hook. When the first shell 23 enters the inside of the first surrounding wall 112, the clamping hook is connected with the clamping groove in a buckling manner, so as to realize the installation and fixing of the first shell 23 on the first surrounding wall 112. In other examples, the first fixing portion 1122 is a clamping hook, and the second fixing portion 232 is a clamping groove, or the first fixing portion 1122 and the second fixing portion 232 are both clamping hooks, or the first fixing portion 1122 is an internal thread, and the second fixing portion 232 is an external thread, and the internal thread is screwed and fixed with the external thread.
[0036] In some embodiments, referring to Figure 4 , the end of the first shell 23 away from the second shell 24 is provided with a holding handle 233, and the holding handle 233 extends out of the first surrounding wall 112. The holding handle 233 is used for being held by an assembly worker, so as to facilitate pushing the first shell 23 and the second shell 24 into the first surrounding wall 112, and pulling the first shell 23 and the second shell 24 out of the first surrounding wall 112, thereby reducing the disassembly difficulty.
[0037] In some embodiments, referring to Figure 4The surface of the inner shell 11 away from the outer shell 12 is provided with a second surrounding wall 113. The diameter of the second surrounding wall 113 decreases in the direction from the outer shell 12 to the inner shell 11. The inner wall of the second surrounding wall 113 abuts against the outer wall of the first shell 23. The second shell 24 penetrates through the second surrounding wall 113 and is located in the water storage cavity 111. On the one hand, the second surrounding wall 113 with the decreasing diameter has a blocking and limiting effect on the end of the first shell 23, thereby limiting the movement of the first shell 23. Under the cooperation of the first fixing part 1122 and the second fixing part 232, the first shell 23 can be fixed in the first surrounding wall 112. On the other hand, the second surrounding wall 113 with the decreasing diameter can reduce or even seal the gap between the second surrounding wall 113 and the outer wall of the first shell 23, thereby reducing the dirt in the water storage cavity 111 from entering between the first surrounding wall 112 and the first shell 23 through the gap. It can be understood that the diameter of the second surrounding wall 113 can gradually decrease, and the second surrounding wall 113 can also be in a stepped shape.
[0038] In some embodiments, referring to Figure 4 The inner shell 11 and the outer shell 12 are spaced apart to form a cavity 13. The surface of the outer shell 12 toward the inner shell 11 is provided with a third surrounding wall 121. The third surrounding wall 121 is nested and abuts against the first surrounding wall 112, and the third surrounding wall 121 is located outside the first surrounding wall 112. An exhaust passage is provided between the third surrounding wall 121 and the first surrounding wall 112. The exhaust passage communicates the cavity 13 with the outside. The ice maker 100 comprises a second filling part 30 provided in the cavity 13. The second filling part 30 is used to reduce the heat transfer between the inner shell 11 and the outer shell 12, so as to keep the inner shell 11 at a lower temperature and slow down the melting speed of the ice blocks in the ice basket above the water storage cavity 111. The second filling part 30 can be a foaming layer formed by the expansion of a foaming liquid. During the expansion of the foaming liquid, the gas in the cavity 13 can be exhausted to the outside through the exhaust passage, while the foaming layer will not overflow to the outside through the exhaust passage, so as to fill the cavity 13 between the inner shell 11 and the outer shell 12 as much as possible.
[0039] In some embodiments, referring to Figure 1 The ice maker 100 further comprises an ice making assembly 40. The inner shell 11 is further provided with an ice making cavity, and the ice making assembly 40 is arranged in the ice making cavity. The ice making assembly 40 comprises a cooler and a control part. The control part is electrically connected with the cooler and the temperature measuring assembly 20 respectively. The control part is used to receive the detection data of the temperature measuring assembly 20 and control the cooling time of the cooler according to the detection data, so as to improve the ice making efficiency and reduce the energy consumption loss of the ice maker 100.
[0040] The ice maker 100 of the embodiment of the present application comprises an inner container assembly 10 and a temperature measuring assembly 20. The inner container assembly 10 comprises an inner shell 11 and an outer shell 12, the inner shell 11 is connected with the outer shell 12 in a nested manner, one side of the inner shell 11 away from the outer shell 12 is defined with a water storage cavity 111, and the inner shell 11 is provided with a mounting cavity 1121 communicating with the water storage cavity 111. The temperature measuring assembly 20 is arranged in the mounting cavity 1121, and the temperature measuring assembly 20 comprises a first part 21 and a second part 22 connected with each other, the first part 21 is arranged in the mounting cavity 1121, the second part 22 extends into the water storage cavity 111, and the diameter of the second part 22 is smaller than that of the first part 21. By arranging the temperature measuring assembly 20 in the water storage cavity 111, the temperature of the water in the water storage cavity 111 can be detected, and then the ice making time can be adjusted adaptively, and the ice making efficiency can be improved. In addition, the diameter of the second part 22 of the temperature measuring assembly 20 is smaller than that of the first part 21, the distance between the internal temperature measuring structure of the second part 22 and the water can be reduced, the temperature dissipation of the second part 22 can be reduced, and the accuracy of temperature measurement can be improved. The size of the first part 21 is larger, the assembly of the first part 21 and the inner container assembly 10 is facilitated, and the assembly difficulty is reduced.
[0041] The above is only the embodiment of the present application, and does not limit the patent scope of the present application. Any equivalent structure or equivalent process transformation using the content of the specification and drawings, or direct or indirect application in other related technical fields, is also included in the patent protection scope of the present application.
Claims
1. An ice maker characterized by, The ice maker comprises: a liner assembly comprising an inner shell and an outer shell, the inner shell being connected with the outer shell in a nested manner, one side of the inner shell facing away from the outer shell defining a water storage cavity, the inner shell being provided with a mounting cavity communicating with the water storage cavity; a temperature measuring assembly arranged in the mounting cavity, the temperature measuring assembly comprising a first part and a second part connected with each other, the first part being arranged in the mounting cavity, the second part extending into the water storage cavity, the diameter of the second part being smaller than that of the first part.
2. The ice maker according to claim 1, wherein the temperature measuring assembly comprises a first shell, a second shell and a temperature sensing component, the first shell being arranged in the mounting cavity, the second shell being fixed to one end of the first shell, the second shell being located in the water storage cavity, a first inner cavity of the first shell and a second inner cavity of the second shell being in communication, the diameter of the second shell being smaller than that of the first shell; the temperature sensing component comprises a temperature sensing head and a temperature sensing wire harness, the temperature sensing head being connected with the temperature sensing wire harness, the temperature sensing head being located in the second inner cavity of the second shell, at least a part of the temperature sensing wire harness being located in the first inner cavity of the first shell.
3. The ice maker according to claim 2, wherein the temperature measuring assembly further comprises a first filling member, the first filling member being arranged in the first inner cavity and the second inner cavity, the first filling member wrapping the temperature sensing head; the temperature sensing wire harness comprises an inner wire harness and an outer wire harness, the first filling member wrapping the inner wire harness, the outer wire harness being connected with the inner wire harness and extending out of the first shell.
4. The ice maker according to claim 2, wherein the first shell comprises plastic, and the second shell comprises metal.
5. The ice maker according to claim 2, wherein the inner shell extends towards the outer shell with a first surrounding wall, the first surrounding wall enclosing the mounting cavity, the first shell being arranged on the inner side of the first surrounding wall, the temperature measuring assembly further comprising a sealing member, the sealing member abutting against the first surrounding wall and the first shell.
6. The ice maker according to claim 5, wherein an outer wall of the first shell is provided with a recessed annular groove, the sealing member being arranged in the annular groove, and a part of the sealing member protruding out of the outer wall of the first shell.
7. The ice maker according to claim 5, wherein an end of the first surrounding wall away from the water storage cavity is provided with a first fixing portion, the first shell is provided with a second fixing portion, the first fixing portion and the second fixing portion being connected in a matched manner, and the first shell is fixed to the first surrounding wall; and / or an end of the first shell away from the second shell is provided with a holding handle, the holding handle extending out of the first surrounding wall.
8. The ice maker according to claim 5, wherein The inner shell is provided with a second surrounding wall on the surface away from the outer shell, the diameter of the second surrounding wall is reduced along the direction of the outer shell towards the inner shell, the inner wall of the second surrounding wall is in abutment with the outer wall of the first shell, and the second shell passes through the second surrounding wall and is located in the water storage cavity.
9. The ice maker according to claim 5, wherein, The inner shell and the outer shell are spaced apart to form a cavity, the surface of the outer shell towards the inner shell is provided with a third surrounding wall, the third surrounding wall is in abutment with the first surrounding wall in a nested manner, the third surrounding wall is located outside the first surrounding wall, and an exhaust passage is arranged between the third surrounding wall and the first surrounding wall, the exhaust passage communicates the cavity with the outside; The ice maker comprises a second filling piece, and the second filling piece is arranged in the cavity.
10. The ice maker according to any one of claims 1-9, wherein, The ice maker further comprises an ice making assembly, the ice making assembly comprises a cooler and a control component, the control component is electrically connected with the cooler and the temperature measuring assembly respectively, the control component is used for receiving detection data of the temperature measuring assembly, and the control component is used for controlling the cooling time length of the cooler according to the detection data.