Heating assembly mounting structure and cooking equipment

By designing the heating component installation structure in a microwave oven, using the bent cold section and heating section spacing, the detection accuracy and damage problems caused by the close position of the temperature sensor and the heating pipe are solved, achieving more accurate temperature detection and avoiding damage.

CN222996690UActive Publication Date: 2025-06-17HANGZHOU ROBAM APPLIANCES CO LTD
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Patent Information

Application Number
CN202421994026.8
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-08-16
Publication Date
2025-06-17
Estimated Expiration
2034-08-16

AI Technical Summary

Technical Problem

In existing microwave ovens, the temperature sensor and heating tube are located close to each other, which affects the accuracy of temperature detection and may cause ignition problems due to microwave focus, causing damage.

Method used

A heating assembly mounting structure is designed, wherein the temperature sensor passes through the first side wall of the cavity so that the probe is located within the cavity, and the heating tube includes a cold section and a heating section, the cold section passes through the side wall and bent so that the heating section is above the cold section, and the cold section is above the temperature sensor, thereby spatially expanding the spacing between the temperature sensor and the heating section.

Benefits of technology

By expanding the spacing between the temperature sensor and the heating section, the accuracy of the temperature sensor for temperature detection in the cavity is improved, and the problem of temperature sensor damage due to microwave focus is avoided.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the technical field of kitchen appliances, and discloses a heating assembly mounting structure and cooking equipment. The heating assembly installation structure comprises a heating pipe and a temperature sensor, and the temperature sensor penetrates through the first side wall so that a probe of the temperature sensor can be located in the cavity. The heating pipe comprises a cold section and a heating section which are connected, the cold section penetrates through the first side wall and is bent towards the side away from the temperature sensor, so that the heating section is located above the cold section, and the cold section is located above the temperature sensor. The space between the temperature sensor and the heating section is expanded, so that the influence of the heating section on the detection accuracy of the temperature sensor can be avoided, namely the condition that the temperature detection value of the temperature sensor is greater than the real-time temperature in the cavity is avoided. In addition, the interval between the temperature sensor and the heating section is increased, and for the cooking equipment with the microwave function, the problem that microwaves are gathered on the probe and the temperature sensor is damaged due to the fact that the distance between the metal probe and the metal heating pipe is short can be solved.
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Description

Technical Field

[0001] The utility model relates to the technical field of kitchen appliances, in particular to a heating component installation structure and cooking equipment. Background Art

[0002] The existing microwave oven has a cavity, a microwave assembly and a heating assembly, wherein the microwave assembly is installed at the top of the cavity and emits microwaves into the cavity through a microwave inlet arranged on the cavity, and the heating tube and the temperature sensor are fixed on the side wall of the cavity through the heating tube flange, and the size of the heating tube flange is small to reduce the difficulty of installation, which results in that when the heating tube and the temperature sensor are arranged in the same plane, the temperature sensor and the heating tube are located close to each other, which affects the accuracy of temperature detection. In addition, the close position of the temperature sensor and the heating tube also easily causes the microwave to focus on the metal probe of the temperature sensor, which not only affects the detection accuracy, but also may cause ignition problems due to microwave focusing, causing damage.

[0003] Therefore, there is an urgent need for a heating component installation structure and a cooking device to solve the above problems. Utility Model Content

[0004] One purpose of the utility model is to provide a heating component installation structure, which can not only improve the accuracy of the temperature sensor in detecting the temperature in the cavity, but also avoid the problem that the temperature sensor of the cooking device with microwave function is easily damaged.

[0005] As conceived above, the technical solution adopted by the utility model is:

[0006] A heating component mounting structure is provided, which can be mounted on a first side wall of a cavity of a cooking device, and the heating component mounting structure comprises:

[0007] a temperature sensor, wherein the temperature sensor passes through the first side wall so that a probe of the temperature sensor is located in the cavity;

[0008] The heating tube comprises a connected cold section and a heating section, wherein the cold section passes through the first side wall and is bent toward a side away from the temperature sensor so that the heating section is located above the cold section, and the cold section is located above the temperature sensor.

[0009] Optionally, the heating component mounting structure further comprises a microwave shielding net, the microwave shielding net comprises a first shielding portion and a second shielding portion connected to each other, the cold section passes through the first shielding portion, and the temperature sensor passes through the second shielding portion.

[0010] Optionally, the microwave shielding mesh is curved, the upper edge of the first shielding portion is located above the upper edge of the second shielding portion, and the lower edge of the first shielding portion is located below the lower edge of the second shielding portion.

[0011] Optionally, the heating component mounting structure further includes a microwave shielding net, which includes a spaced first shielding net and a second shielding net. The cold section passes through the first shielding net, and the temperature sensor passes through the second shielding net.

[0012] Optionally, the first shielding net and the second shielding net are on the same side of the first sidewall in the extending direction of the temperature sensor; or,

[0013] the first shielding net and the second shielding net are respectively on both sides of the first sidewall in the extending direction of the temperature sensor.

[0014] Optionally, the heating component mounting structure further includes a microwave shielding net and a mounting member. Both the heating pipe and the temperature sensor are connected to the first sidewall through the mounting member. The microwave shielding net is clamped between the mounting member and the first sidewall. The cold section and the temperature sensor both pass through the assembly holes of the microwave shielding net in an interference fit manner.

[0015] Optionally, the heating component mounting structure further includes a sealing member, which is clamped between the mounting member and the microwave shielding net.

[0016] Optionally, the minimum distance between the temperature sensor and the cold section in the vertical direction is a, and a≥5mm; and / or,

[0017] the minimum distance between the temperature sensor and the cold section in the horizontal direction is b, and b≥10mm.

[0018] Optionally, along the extending direction of the temperature sensor, the length of the probe extending into the cavity is L2, and 5mm≤L2≤25mm.

[0019] Another object of the present invention is to provide a cooking device, which can not only avoid the problem that the temperature sensor of a cooking device with a microwave function is easily damaged, but also improve the accuracy of the temperature sensor for detecting the temperature in the cavity.

[0020] Based on the above concept, the technical solution adopted by the present invention is as follows:

[0021] Provide a cooking device, including a cavity and the above-mentioned heating component mounting structure, and the heating component mounting structure is arranged on the first sidewall of the cavity.

[0022] The beneficial effects of the present invention are:

[0023] The heating assembly installation structure proposed by the utility model includes a heating tube and a temperature sensor, and the temperature sensor passes through the first side wall so that the probe of the temperature sensor is located in the cavity. The heating tube includes a connected cold section and a heating section, and the cold section passes through the first side wall and is bent toward the side away from the temperature sensor so that the heating section is located above the cold section, and the cold section is located above the temperature sensor. By expanding the interval between the temperature sensor and the heating section in space, the heating section can be prevented from affecting the detection accuracy of the temperature sensor, that is, the situation where the temperature detection value of the temperature sensor is greater than the real-time temperature in the cavity can be avoided. The cold section of the heating tube is closer to the probe of the temperature sensor than the heating section of the heating tube, and the cold section does not heat, that is, the cold section has little effect on the detection accuracy of the temperature sensor. In addition, when the interval between the temperature sensor and the heating section is increased, for a cooking device with a microwave function, it can also be avoided that the metal probe and the metal heating tube are close to each other, causing microwaves to gather on the probe, thereby causing the temperature measured by the temperature sensor to be higher than the actual temperature, and it can also be avoided that the microwaves gather on the probe to cause ignition, thereby causing the temperature sensor to be damaged.

[0024] The cooking device proposed by the utility model comprises a cavity and the above-mentioned heating component mounting structure, wherein the heating component mounting structure is arranged on the first side wall of the cavity. The cooking device can not only improve the accuracy of the temperature sensor in detecting the temperature in the cavity, but also avoid the problem that the temperature sensor of the cooking device with microwave function is easily damaged. BRIEF DESCRIPTION OF THE DRAWINGS

[0025] Figure 1 This is a partial structural diagram of a cooking device provided by an embodiment of the utility model. Figure 1 ;

[0026] Figure 2 This is a partial structural diagram of a cooking device provided by an embodiment of the utility model. Figure 2 ;

[0027] Figure 3 It is a partial structural exploded schematic diagram of a cooking device provided by an embodiment of the utility model;

[0028] Figure 4 A cross-sectional view of a cooking device provided by an embodiment of the utility model Figure 1 ;

[0029] Figure 5 yes Figure 4 The enlarged view of A1 in the middle;

[0030] Figure 6 A cross-sectional view of a cooking device provided by an embodiment of the utility model Figure 2 ;

[0031] Figure 7 yesFigure 6 Enlarged view at B1;

[0032] Figure 8 It is a partial structural exploded view of another cooking device provided by an embodiment of the present utility model;

[0033] Figure 9 It is a cross-section of another cooking device provided by an embodiment of the present utility model Figure 1 ;

[0034] Figure 10 It is Figure 9 Enlarged view at A2;

[0035] Figure 11 It is a cross-section of another cooking device provided by an embodiment of the present utility model Figure 2 ;

[0036] Figure 12 It is Figure 11 Enlarged view at B2.

[0037] In the figure:

[0038] 1. Heating tube; 11. Heating section; 12. Cold section; 2. Temperature sensor; 21. Probe; 3. First shielding net; 4. First mounting part; 5. Second shielding net; 6. Second mounting part; 7. Sealing part;

[0039] 101. First hole; 102. Second hole; 103. First fixing hole; 104. Second fixing hole; 105. First assembly hole; 106. Second assembly hole;

[0040] 100. First side wall; 1001. First through hole; 1002. Second through hole. Detailed implementation manners

[0041] To make the technical problems solved, the technical solutions adopted, and the technical effects achieved by the present utility model clearer, the technical solutions of the present utility model will be further described below with reference to the accompanying drawings and through specific implementation manners. It can be understood that the specific embodiments described herein are only used to explain the present utility model, rather than limiting the present utility model. Additionally, it should be noted that for the sake of description, only parts related to the present utility model are shown in the drawings, rather than all of them.

[0042] In the description of the present utility model, unless otherwise clearly defined and limited, the terms "connected", "connected to", and "fixed" shall be understood in a broad sense. For example, it may be a fixed connection, a detachable connection, or integrated; it may be a mechanical connection or an electrical connection; it may be directly connected or indirectly connected through an intermediate medium, and it may be the communication inside two components or the interaction relationship between two components. For those of ordinary skill in the art, the specific meanings of the above terms in the present utility model can be understood according to specific situations.

[0043] In the present utility model, unless otherwise clearly defined and limited, the first feature being "above" or "below" the second feature may include the direct contact between the first and second features, or may include the situation where the first and second features are not in direct contact but in contact through other features therebetween. Moreover, the first feature being "above", "over", and "on top of" the second feature includes that the first feature is directly above and obliquely above the second feature, or merely indicates that the horizontal height of the first feature is higher than that of the second feature. The first feature being "below", "beneath", and "underneath" the second feature includes that the first feature is directly below and obliquely below the second feature, or merely indicates that the horizontal height of the first feature is lower than that of the second feature.

[0044] In the description of this embodiment, the orientation or positional relationships such as "above", "below", "left", and "right" are based on the orientation or positional relationships shown in the drawings, and are only for the convenience of description and simplifying the operation, rather than indicating or implying that the device or component referred to must have a specific orientation, be constructed and operated in a specific orientation, so it cannot be understood as a limitation to the present utility model. In addition, the terms "first" and "second" are only used for distinction in description and have no special meanings.

[0045] The technical solution of the present utility model will be further described below with reference to the drawings and through specific implementation manners.

[0046] This embodiment provides a heating component installation structure, which can be installed on the first side wall 100 of the cavity of a cooking device. It can not only improve the accuracy of the temperature sensor 2 for detecting the temperature inside the cavity, but also avoid the problem that the temperature sensor 2 of a cooking device with a microwave function is easily damaged.

[0047] Such as Figures 1 to 12As shown, the heating component mounting structure includes a heating tube 1 and a temperature sensor 2. The heating tube 1 includes a heating section 11 and a cold section 12 which are connected. The cold section 12 passes through a first through hole 1001 on the first side wall 100, so that the heating section 11 is located inside the cavity to heat the inside of the cavity. The temperature sensor 2 passes through a second through hole 1002 on the first side wall 100, so that the probe 21 of the temperature sensor 2 is located inside the cavity to measure the temperature inside the cavity. The cold section 12 has a bend, so that the heating section 11 is located above the connection position of the cold section 12 and the first side wall 100. While ensuring the heating space inside the cavity, there is a gap between the cold section 12 and the top of the cavity to reserve the installation space of the cold section 12 on the first side wall 100 in the vertical direction. On this basis, the temperature sensor 2 is installed on the first side wall 100 and below the cold section 12, which can expand the gap between the temperature sensor 2 and the heating section 11 in space, avoiding the influence of the heating section 11 on the detection accuracy of the temperature sensor 2, that is, avoiding the situation where the temperature detection value of the temperature sensor 2 is greater than the real-time temperature inside the cavity. The cold section 12 of the heating tube 1 is closer to the probe 21 of the temperature sensor 2 than the heating section 11 of the heating tube 1. Since the cold section 12 does not generate heat, the influence of the cold section 12 on the detection accuracy of the temperature sensor 2 is small. In addition, when the gap between the temperature sensor 2 and the heating section 11 increases, for a cooking device with a microwave function, it can also avoid the microwave from gathering on the probe 21 due to the close distance between the metal probe 21 and the metal heating tube 1, resulting in the temperature measured by the temperature sensor 2 being higher than the actual temperature, and can also avoid the problem of damage to the temperature sensor 2 caused by the microwave gathering on the probe 21 and causing a fire.

[0048] Preferably, the minimum distance between the temperature sensor 2 and the cold section 12 in the vertical direction is a, and a≥5mm. The minimum distance between the temperature sensor 2 and the cold section 12 in the horizontal direction is b, and b≥10mm. In specific implementation, the temperature sensor 2 is perpendicular to the plane where the first side wall 100 is located and horizontally inserted into the second through hole 1002, then the minimum linear distance between the probe 21 of the temperature sensor 2 and the heating tube 1 is greater than or equal to In specific implementation, as the minimum linear distance between the probe 21 of the temperature sensor 2 and the heating tube 1 increases, the installation difficulty of the heating tube 1 will increase. In this embodiment, the first preset distance is The minimum linear distance between the probe 21 and the heating tube 1 is greater than or equal to the first preset distance, which can effectively avoid the microwave from gathering on the probe 21 due to the close distance between the metal probe 21 and the metal heating tube 1, resulting in the temperature measured by the temperature sensor 2 being higher than the actual temperature, and avoid the problem of damage to the temperature sensor 2 caused by the microwave gathering on the probe 21 and causing a fire.

[0049] To further improve the detection accuracy of the temperature sensor 2 for the temperature inside the cavity, along the extending direction of the temperature sensor 2, the length L2 of the probe 21 extending into the cavity satisfies 5 mm ≤ L2 ≤ 25 mm.

[0050] Furthermore, the heating component mounting structure further includes a microwave shielding net. The microwave shielding net is made of a soft metal material. Both the cold section 12 and the temperature sensor 2 pass through the microwave shielding net and extend into the cavity of the cooking device. The microwave shielding net is used to prevent microwaves from leaking out through the gaps between the cold section 12 and the first through-hole 1001 and between the temperature sensor 2 and the second through-hole 1002.

[0051] Optionally, the microwave shielding net includes a connected first shielding portion and a second shielding portion. The cold section 12 passes through the first shielding portion, and the temperature sensor 2 passes through the second shielding portion. Since the microwave shielding net is an integral part, to ensure that the installation positions of the integral part with respect to the cold section 12 and the temperature sensor 2 are both suitable, in the vertical direction, the upper edge of the integral part must be above the cold section 12, and the lower edge of the integral part must be below the temperature sensor 2.

[0052] Further optionally, to reduce the size of the microwave shielding net and lower the cost, the microwave shielding net can be set to be curved. Based on the fact that the cold section 12 is above the temperature sensor 2, at least part of the first shielding portion is above the second shielding portion, that is, the upper edge of the first shielding portion is above the upper edge of the second shielding portion, and the lower edge of the first shielding portion is above the lower edge of the second shielding portion.

[0053] In this embodiment, there are two sets of cold sections 12, and the two sets of cold sections 12 are respectively located on both sides of the temperature sensor 2. Then, there are two first shielding portions and one second shielding portion. The two first shielding portions are respectively connected to both sides of the second shielding portion. Specifically, in implementation, both the first shielding portion and the second shielding portion can be rectangular to form a stepped microwave shielding net, and all edges of this microwave shielding net are straight edges. Additionally, the first shielding portion and the second shielding portion can also be set to be arc-shaped, and the two first shielding portions are respectively connected to both sides of the second shielding portion to form a wavy microwave shielding net, and all edges of this microwave shielding net are arc-shaped edges. In addition, the first shielding portion and the second shielding portion can also be other shapes.

[0054] Optionally, the microwave shielding net includes a spaced first shielding net 3 and a second shielding net 5. The first shielding net 3 only covers the installation area where the cold section 12 is located, and the second shielding net 5 only covers the installation area where the temperature sensor 2 is located, so as to save the material of the microwave shielding net.

[0055] Further optionally, since both the cold section 12 and the temperature sensor 2 penetrate the first side wall 100 in the thickness direction of the first side wall 100 and extend into the cavity, in order to avoid microwave leakage, it is necessary to cover the first through hole 1001 and the second through hole 1002 with a microwave shielding net. Then, the first shielding net 3 and the second shielding net 5 can be located on the same side of the first side wall 100 in the extending direction of the temperature sensor 2, that is, both of them can be located inside the cavity or both outside the cavity. Alternatively, the first shielding net 3 and the second shielding net 5 can also be respectively arranged on both sides of the first side wall 100 in the extending direction of the temperature sensor 2, that is, one of them is located inside the cavity and the other is located outside the cavity.

[0056] Furthermore, the heating component mounting structure further includes a microwave shielding net and a mounting member. Both the heating tube 1 and the temperature sensor 2 are connected to the first side wall 100 through the mounting member. The microwave shielding net is clamped between the mounting member and the first side wall 100. The cold section 12 and the probe 21 both pass through the assembly holes of the microwave shielding net in an interference fit manner.

[0057] During specific implementation, the mounting member is provided with a first hole 101 and a second hole 102. The cold section 12 of the heating tube 1 passes through the first hole 101 and the first through hole 1001, and the probe 21 of the temperature sensor 2 passes through the second hole 102 and the second through hole 1002. The mounting member is further provided with a first fixing hole 103 and a second fixing hole 104. The heating component mounting structure further includes a first fixing member and a second fixing member. The first fixing member connects the mounting member and the first side wall 100 through the first fixing hole 103, so as to fix the heating tube 1 to the first side wall 100 of the cooking device. The second fixing member connects the mounting member and the first side wall 100 through the second fixing hole 104, so as to fix the temperature sensor 2 to the first side wall 100 of the cooking device. The microwave shielding net is made of a soft metal material. The microwave shielding net is provided with assembly holes for the cold section 12 and the probe 21 to pass through, and the cold section 12 and the probe 21 are both in interference fit with the assembly holes, which can prevent microwaves from being emitted from the gaps between the cold section 12 and the first hole 101, the first through hole 1001, and between the probe 21 and the second hole 102, the second through hole 1002.

[0058] Based on the fact that the microwave shielding net includes a first shielding net 3 and a second shielding net 5, and the first shielding net 3 and the second shielding net 5 are respectively located on both sides of the first side wall 100 in the extending direction of the temperature sensor 2, the following two mounting methods are provided in this embodiment.

[0059] One of them is, as Figures 3 to 7As shown, the mounting member includes a first mounting member 4 and a second mounting member 6. The first mounting member 4 is located inside the cavity, and the second mounting member 6 is located outside the cavity. First fixing holes 103 are provided on both the first mounting member 4 and the second mounting member 6. The first fixing member sequentially passes through the first fixing hole 103 on the first mounting member 4, the first side wall 100, and the first fixing hole 103 of the second mounting member 6, thereby realizing the fixation of the first mounting member 4, the first side wall 100, and the second mounting member 6. A second fixing hole 104 is provided on the second mounting member 6. The second fixing member sequentially passes through the second fixing hole 104 on the second mounting member 6 and the first side wall 100, thereby realizing the fixation of the second mounting member 6 and the first side wall 100. First holes 101 are provided on both the first mounting member 4 and the second mounting member 6. The cold section 12 sequentially passes through the first hole 101 on the first mounting member 4, the first through hole 1001, and the first hole 101 on the second mounting member 6. Second holes 102 are provided on both the first mounting member 4 and the second mounting member 6. The probe 21 sequentially passes through the second hole 102 on the first mounting member 4, the second through hole 1002, and the second hole 102 on the second mounting member 6.

[0060] The first shielding net 3 is a microwave shielding net for the heating tube. The first shielding net 3 is located between the first mounting member 4 and the inner wall of the first side wall 100. The first fitting hole 105 on the first shielding net 3 is in interference fit with the cold section 12 of the heating tube 1. And when the first mounting member 4 is fixed to the first side wall 100, the first shielding net 3 is clamped between the first mounting member 4 and the inner wall of the first side wall 100. In specific implementation, the first fixing member passes through the first shielding net 3 to ensure the clamping effect on the first shielding net 3. Preferably, the first fixing member is in interference fit with the first shielding net 3.

[0061] The second shielding net 5 is a microwave shielding net for the temperature sensor. The second shielding net 5 is located between the second mounting member 6 and the outer wall of the first side wall 100. The second fitting hole 106 on the second shielding net 5 is in interference fit with the probe 21 of the temperature sensor 2. And when the second mounting member 6 is fixed to the first side wall 100, the second shielding net 5 is clamped between the second mounting member 6 and the outer wall of the first side wall 100. In specific implementation, the temperature sensor 2 is connected to the first side wall 100 through a mounting piece. The mounting piece surrounds the outer periphery of the probe 21. The second fixing member sequentially passes through the mounting piece, the second mounting member 6, the second shielding net 5, and the first side wall 100.

[0062] Second, that is, as Figures 8 to 12As shown in the figure, the mounting member includes a first mounting member 4 and a second mounting member 6. The first mounting member 4 is located inside the cavity, and the second mounting member 6 is located outside the cavity. First fixing holes 103 are provided on both the first mounting member 4 and the second mounting member 6. The first fixing member sequentially passes through the first fixing hole 103 on the first mounting member 4, the first side wall 100, and the first fixing hole 103 of the second mounting member 6, thereby realizing the fixation of the first mounting member 4, the first side wall 100, and the second mounting member 6. A second fixing hole 104 is provided on the second mounting member 6. The second fixing member sequentially passes through the second fixing hole 104 on the second mounting member 6 and the first side wall 100, thereby realizing the fixation of the second mounting member 6 and the first side wall 100. First holes 101 are provided on both the first mounting member 4 and the second mounting member 6. The cold section 12 sequentially passes through the first hole 101 on the first mounting member 4, the first through hole 1001, and the first hole 101 on the second mounting member 6. Second holes 102 are provided on both the first mounting member 4 and the second mounting member 6. The probe 21 sequentially passes through the second hole 102 on the first mounting member 4, the second through hole 1002, and the second hole 102 on the second mounting member 6.

[0063] The first shielding net 3 is a microwave shielding net for the heating tube. The first shielding net 3 is located between the outer walls of the second mounting member 6 and the first side wall 100. The first fitting hole 105 on the first shielding net 3 is in interference fit with the cold section 12 of the heating tube 1. And when the second mounting member 6 is fixed to the first side wall 100, the first shielding net 3 is clamped between the outer walls of the second mounting member 6 and the first side wall 100.

[0064] The second shielding net 5 is a microwave shielding net for the temperature sensor. The second shielding net 5 is located between the inner walls of the first mounting member 4 and the first side wall 100. The second fitting hole 106 on the second shielding net 5 is in interference fit with the probe 21 of the temperature sensor 2. And when the first mounting member 4 is fixed to the first side wall 100, the second shielding net 5 is clamped between the inner walls of the first mounting member 4 and the first side wall 100.

[0065] Optionally, the cold section 12 is press-fitted through the first fitting hole 105, and the interference amount between the cold section 12 and the first fitting hole 105 is e1, where 0.25mm ≤ e1 ≤ 0.5mm. The probe 21 is press-fitted through the second fitting hole 106, and the interference amount between the probe 21 and the second fitting hole 106 is e2, where 0.25mm ≤ e2 ≤ 0.5mm.

[0066] Furthermore, the heating component mounting structure further includes a seal 7, which is clamped between the mounting member and the microwave shielding net and abuts against the outer wall of the first side wall 100. In this embodiment, the second mounting member 6 is located outside the cavity, that is, the second mounting member 6 abuts against the outer wall of the first side wall 100 through the seal 7, thereby increasing the sealing performance between the second mounting member 6 and the cavity. The first shielding net 3 or the second shielding net 5 is located outside the cavity and is clamped between the outer wall of the first side wall 100 and the seal 7, which can further prevent a gap from existing between the first shielding net 3 or the second shielding net 5 located outside the cavity and the outer wall of the first side wall 100, and avoid the risk of microwave being led out of the cavity.

[0067] This embodiment further provides a cooking device, including a cavity and the above-mentioned heating component mounting structure, and the heating component mounting structure is arranged on the first side wall 100 of the cavity. This cooking device can not only avoid the problem that the temperature sensor 2 of a cooking device with a microwave function is easily damaged, but also improve the accuracy of the temperature sensor 2 in detecting the temperature inside the cavity.

[0068] The above embodiments only illustrate the basic principles and characteristics of the present invention. The present invention is not limited by the above embodiments. Without departing from the spirit and scope of the present invention, there are various changes and modifications to the present invention, and these changes and modifications all fall within the scope of the present invention claimed. The scope of the present invention claimed is defined by the appended claims and their equivalents.

Claims

1. A heating assembly mounting structure, capable of being mounted on a first side wall (100) of a cavity of a cooking device, characterized in that: The heating assembly installation structure comprises: a temperature sensor (2), the temperature sensor (2) passing through the first side wall (100) so that a probe (21) of the temperature sensor (2) is located in the cavity; A heating tube (1) comprises a connected cold section (12) and a heating section (11), wherein the cold section (12) passes through the first side wall (100) and is bent toward a side away from the temperature sensor (2), so that the heating section (11) is located above the cold section (12), and the cold section (12) is located above the temperature sensor (2).

2. The heating assembly installation structure according to claim 1, characterized in that: The heating component installation structure also includes a microwave shielding net, which includes a first shielding part and a second shielding part that are connected, the cold section (12) passes through the first shielding part, and the temperature sensor (2) passes through the second shielding part.

3. The heating assembly installation structure according to claim 2, characterized in that: The microwave shielding net is curved, the upper edge of the first shielding portion is located above the upper edge of the second shielding portion, and the lower edge of the first shielding portion is located above the lower edge of the second shielding portion.

4. The heating assembly installation structure according to claim 1, characterized in that: The heating component installation structure also includes a microwave shielding net, which includes a first shielding net (3) and a second shielding net (5) that are spaced apart. The cold section (12) passes through the first shielding net (3), and the temperature sensor (2) passes through the second shielding net (5).

5. The heating assembly installation structure according to claim 4, characterized in that: The first shielding net (3) and the second shielding net (5) are located on the same side of the first side wall (100) in the extension direction of the temperature sensor (2); or, The first shielding net (3) and the second shielding net (5) are respectively located on two sides of the first side wall (100) in the extension direction of the temperature sensor (2).

6. The heating assembly installation structure according to claim 1, characterized in that: The heating component installation structure also includes a microwave shielding net and a mounting component, the heating tube (1) and the temperature sensor (2) are both connected to the first side wall (100) via the mounting component, the microwave shielding net is clamped between the mounting component and the first side wall (100), and the cold section (12) and the temperature sensor (2) are both interference-pierced in the assembly hole of the microwave shielding net.

7. The heating assembly installation structure according to claim 6, characterized in that: The heating component installation structure also includes a sealing member (7), and the sealing member (7) is sandwiched between the installation member and the microwave shielding net.

8. The heating assembly installation structure according to any one of claims 1 to 7, characterized in that: The minimum distance between the temperature sensor (2) and the cold section (12) in the vertical direction is a, a≥5 mm; and / or, The minimum distance between the temperature sensor (2) and the cold section (12) in the horizontal direction is b, where b≥10 mm.

9. The heating assembly installation structure according to any one of claims 1 to 7, characterized in that: Along the extension direction of the temperature sensor (2), the length of the probe (21) extending into the cavity is L2, 5mm≤L2≤25mm.

10. A cooking device, characterized in that It comprises a cavity and a heating component mounting structure according to any one of claims 1 to 9, wherein the heating component mounting structure is arranged on a first side wall (100) of the cavity.