Intelligent toilet foot sensor fixing structure

CN224729053UActive Publication Date: 2026-09-08HUIDA SANITARY WARE
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Patent Information

Application Number
CN202522096133.X
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-09-29
Publication Date
2026-09-08
Estimated Expiration
2035-09-29

AI Technical Summary

Technical Problem

但这两种安装方式只考虑了用户使用方便,却不利于安装及售后维修

Benefits of technology

[0018] The smart toilet foot sensor fixing structure provided by this utility model detachably connects the foot sensor to the ceramic fixing module. In use, by rotating the rotating pressure component, the locking pin on the rotating shaft moves upward along the inclined plane, thereby applying a downward force to the rotating downward pressure component below. This force is transmitted to the vacuum suction component, causing the air inside the vacuum suction component to be squeezed out, forming a temporary sealed space between the suction cup and the ceramic, and firmly adhering the foot sensor to the ceramic.

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Abstract

The utility model provides a kind of intelligent closestool foot feel spare fixed structure, including ceramic fixed module and foot feel spare, the ceramic fixed module and foot feel spare detachably connect, the ceramic fixed module is installed in ceramic inside, the ceramic fixed module includes vacuum suction accessory, the foot feel spare and foot feel line are connected.The utility model will foot feel spare with ceramic fixed module detachably connect, when using, by rotating rotation pressure component, make the clamping post on rotating shaft move upwards along slope, to rotate lower pressing component below to exert downward force, the force is transmitted to vacuum suction accessory, make the air in vacuum suction accessory be extruded, form a temporary airtight space between suction cup and ceramic, firmly adsorb foot feel spare on ceramic.The intelligent closestool foot feel spare fixed structure, it is convenient to install, easy to disassemble and replace, overcome the problem of foot feel spare installation and after-sales maintenance inconvenience.
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Description

Technical Field

[0001] This utility model belongs to the field of smart toilet technology, specifically relating to a fixing structure for a foot sensor component in a smart toilet. Background Technology

[0002] As people's living standards and consumption power improve, smart technology is becoming more widespread and developed in home life. The application of smart toilets is gradually expanding to individual households. As a smart home product, smart toilets not only have conventional functions such as bidet / feminine wash, seat heating, flushing upon leaving the seat, and warm air drying, but also add foot touch or foot feel control methods for the convenience of customers.

[0003] Existing foot-sensor modules come in two types: built-in and external. Built-in modules don't require drilling into the toilet bowl; they are simply attached to the inner wall of the toilet bowl after applying adhesive to the back, with a corresponding kick label affixed to the outer wall. External modules require drilling a hole in the toilet bowl, passing the module through the hole, and then securing it to the inner wall with fasteners. However, while these two installation methods prioritize user convenience, they are less convenient for installation and after-sales maintenance. Utility Model Content

[0004] The purpose of this utility model is to provide a toilet foot sensor fixing structure to solve the above-mentioned technical problems existing in the prior art.

[0005] Therefore, the technical solution provided by this utility model is as follows:

[0006] A smart toilet foot sensor fixing structure includes a ceramic fixing module and a foot sensor, which are detachably connected. The ceramic fixing module is installed inside a ceramic element and includes a vacuum adsorption component. The foot sensor is connected to a foot sensor cable.

[0007] Furthermore, the ceramic fixing module also includes a rotating pressing component and a rotating pressure applying component. The rotating pressing component is disposed on the vacuum adsorption component, and the rotating pressure applying component is disposed on the rotating pressing component. The rotating pressure applying component is used to rotate to press the rotating pressing component down on the vacuum adsorption component. A spring is provided between the vacuum adsorption component and the rotating pressing component.

[0008] Furthermore, the vacuum adsorption component is a suction cup, the suction cup has a rotating shaft in the middle, and the rotating pressing component has a through hole in the middle that matches the rotating shaft.

[0009] Furthermore, the rotating pressing component includes a central frustum, and the through hole is located at the center of the central frustum;

[0010] The outer edge of the rotating pressing component includes an inner ring and an outer ring. The inner ring is higher than the outer ring. The inner ring has a notch. A limiting groove is provided between the central frustum and the notch. A spring-loaded component is provided in the limiting groove.

[0011] Furthermore, the rotating pressure-applying component has a circular hole at its center, and two inclined surfaces are symmetrically arranged on the outer periphery of the circular hole. A rotating shaft retainer is provided on the rotating shaft, and the rotating shaft retainer contacts the inclined surfaces. The inclined surfaces can rotate relative to the rotating shaft retainer.

[0012] The lower end face of the rotating pressure component is provided with two symmetrically distributed rotating grooves. The outer inner wall of the rotating groove is a concave-convex groove. The outer side of the rotating groove is located on the outer ring of the rotating pressing component. The spring component is connected to the concave-convex groove.

[0013] Furthermore, the spring-loaded component includes a second spring, a locking block, and a locking post. The width of the locking block is greater than the width of the notch. The locking block is located in the limiting groove. The second spring is located between the central frustum and the locking block. The locking post is located at the other end of the locking block and extends from the notch to the outer edge of the rotating pressing component.

[0014] Furthermore, a positioning element is provided between the foot sensor and the rotating pressing component, and a snap-fit ​​groove is opened on the upper end face of the rotating pressing component, so that the foot sensor and the rotating pressing component are snapped together.

[0015] Furthermore, the positioning component includes an inner positioning post and an outer positioning post. The inner positioning post is symmetrically arranged outside the central frustum of the rotating pressing component. The upper end face of the foot sensor has a through hole. The outer positioning post is located on the lower end face of the foot sensor and its top end passes through the through hole and is flush with the upper end face of the foot sensor. The inner positioning post has a thread inside. The outer positioning post is sleeved on the inner positioning post, and the two are connected by screws.

[0016] The rotating pressure component has a rotating channel, and the top of the inner positioning column extends beyond the rotating pressure component and into the rotating channel.

[0017] The beneficial effects of this utility model are as follows:

[0018] The smart toilet foot sensor fixing structure provided by this utility model detachably connects the foot sensor to the ceramic fixing module. In use, by rotating the rotating pressure component, the locking pin on the rotating shaft moves upward along the inclined plane, thereby applying a downward force to the rotating downward pressure component below. This force is transmitted to the vacuum suction component, causing the air inside the vacuum suction component to be squeezed out, forming a temporary sealed space between the suction cup and the ceramic, and firmly adhering the foot sensor to the ceramic.

[0019] The foot sensor fixing structure of this smart toilet is easy to install, disassemble, and replace, overcoming the problems of inconvenient installation and after-sales maintenance of foot sensors. Attached Figure Description

[0020] Figure 1 This is an exploded view of one embodiment of the ceramic fixing module of this utility model;

[0021] Figure 2 This is a schematic diagram of one embodiment of the foot-feeling component of this utility model;

[0022] Figure 3 This is a schematic diagram of the overall structure of this utility model;

[0023] Figure 4 This is a schematic diagram of one embodiment of the rotating pressing component of this utility model;

[0024] Figure 5 This is a magnified view of a portion of the spring mechanism installation;

[0025] Figure 6 This is a schematic diagram of the structure after the rotating pressure application component and the rotating downward pressure component are installed.

[0026] Explanation of reference numerals in the attached figures:

[0027] 1. Vacuum adsorption component; 2. Spring 1; 3. Rotating pressing component; 4. Rotating pressure application component; 5. Rotating shaft; 6. Central frustum; 7. Notch; 8. Limiting groove; 9. Foot sensor component; 10. Circular hole; 11. Inclined surface; 12. Rotating shaft retaining strip; 13. Foot sensor line; 14. Concave-convex groove; 15. Spring 2; 16. Locking block; 17. Locking post; 18. Locking groove; 19. Ceramic fixing module; 20. Inner positioning post; 21. Rotating channel. Detailed Implementation

[0028] The following specific embodiments illustrate the implementation of the utility model. Those skilled in the art can easily understand other advantages and effects of the utility model from the content disclosed in this specification.

[0029] Exemplary embodiments of the utility model are now described with reference to the accompanying drawings. However, the utility model can be embodied in many different forms and is not limited to the embodiments described herein. These embodiments are provided to fully and completely disclose the utility model and to fully convey its scope to those skilled in the art. The terminology used in the exemplary embodiments shown in the drawings is not intended to limit the utility model. In the drawings, the same units / elements are referred to by the same reference numerals.

[0030] Unless otherwise stated, the terms used herein (including technical terms) have their common meaning as understood by one of ordinary skill in the art. Furthermore, it is understood that terms defined in commonly used dictionaries should be understood to have a meaning consistent with the context of their relevant field, and not to be interpreted as having an idealized or overly formal meaning.

[0031] Example 1

[0032] This embodiment provides a smart toilet foot sensor fixing structure, including a ceramic fixing module 19 and a foot sensor 9. The ceramic fixing module 19 and the foot sensor 9 are detachably connected. The ceramic fixing module 19 is installed inside a ceramic element and includes a vacuum adsorption component 1. The foot sensor 9 is connected to a foot sensor cable 13. Figure 2 , Figure 3 As shown.

[0033] The smart toilet foot sensor fixing structure provided by this utility model detachably connects the foot sensor 9 to the ceramic fixing module 19, making installation convenient, disassembly and replacement easy, thus overcoming the problems of inconvenient installation and after-sales maintenance of the foot sensor 9.

[0034] Example 2

[0035] Based on Embodiment 1, this embodiment provides a fixing structure for the foot sensor component of a smart toilet, such as... Figure 1 As shown, the ceramic fixing module 19 also includes a rotating pressing component 3 and a rotating pressure applying component 4. The rotating pressing component 3 is disposed on the vacuum adsorption component 1, and the rotating pressure applying component 4 is disposed on the rotating pressing component 3. The rotating pressure applying component 4 is used to rotate to make the rotating pressing component 3 press down on the vacuum adsorption component 1. A spring 2 is provided between the vacuum adsorption component 1 and the rotating pressing component 3.

[0036] Operating principle:

[0037] In use, by rotating the rotating pressure component 4, a downward force is applied to the rotating downward pressure component 3 below. This force is transmitted to the vacuum adsorption component 1, causing the air inside the vacuum adsorption component 1 to be squeezed out, forming a temporary sealed space between the suction cup and the ceramic, which firmly adsorbs the foot-feeling component 9 onto the ceramic.

[0038] Example 3

[0039] Based on Embodiment 1, this embodiment provides a smart toilet foot sensor fixing structure, wherein the vacuum adsorption component 1 is a suction cup, the suction cup is provided with a rotating shaft 5 in the middle, and the rotating pressing component 3 is provided with a through hole matching the rotating shaft 5 in the middle.

[0040] like Figure 1As shown, the rotating shaft 5 passes sequentially through the rotating pressing component 3 and the rotating pressure applying component 4. In use, the rotating pressure applying component 4 rotates around the rotating shaft 5.

[0041] Example 4

[0042] Based on Embodiment 3, this embodiment provides a fixing structure for the foot sensor component of a smart toilet, such as... Figure 4 As shown, the rotating pressing component 3 includes a central frustum 6, and the through hole is located at the center of the central frustum 6;

[0043] The outer edge of the rotating pressing component 3 includes an inner ring and an outer ring. The inner ring is higher than the outer ring. The inner ring has a notch 7. A limiting groove 8 is provided between the central frustum 6 and the notch 7. A spring-loaded component is provided in the limiting groove 8.

[0044] The outer edge of the rotating pressing component 3 provides support and a rotation track for the rotating pressure application component 4.

[0045] Example 5

[0046] Based on embodiment 4, this embodiment provides a smart toilet foot sensor fixing structure. The rotating pressure component 4 has a circular hole 10 in the center. Two inclined surfaces 11 are symmetrically arranged on the outer periphery of the circular hole 10. The rotating shaft 5 is provided with a rotating shaft retainer 12. The rotating shaft retainer 12 contacts the inclined surface 11. The inclined surface 11 can rotate relative to the rotating shaft retainer 12.

[0047] The lower end face of the rotating pressure component 4 is provided with two symmetrically distributed rotating grooves. The outer inner wall of the rotating groove is a groove 14. The outer side of the rotating groove is located on the outer ring of the rotating pressing component 3. The spring component is connected to the groove 14.

[0048] The rotating groove on the lower end face of the rotating pressure component 4 and the inner and outer rings of the outer edge of the rotating pressing component 3 cooperate, allowing the rotating pressure component 4 to rotate around the outer edge of the rotating pressing component 3 via the rotating shaft 5. During the rotation of the rotating pressure component 4, the inclined plane 11 rotates, causing the rotating shaft retainer 12 to move along the inclined plane 11. When the rotating pressure component 4 is rotated clockwise, the rotating shaft retainer 12 moves from the bottom of the inclined plane 11 to the top of the inclined plane 11, thereby causing the rotating pressure component 4 to apply downward pressure. The pressure is transmitted to the spring 2 and the vacuum adsorption component 1 through the rotating pressing component 3, causing the air in the vacuum adsorption component 1 to be emptied, thus achieving adsorption. When the rotating pressure component 4 is rotated counterclockwise, the rotating shaft retainer 12 moves from the top of the inclined plane 11 to the bottom of the inclined plane 11, releasing the downward pressure. The spring 2 rebounds, and by swaying left and right or gently lifting the handle at the edge of the vacuum adsorption component 1, air can enter, and the ceramic fixing module 19 can be removed.

[0049] Example 6

[0050] Based on Example 5, this example provides a fixing structure for the foot sensor component of a smart toilet, such as... Figure 4 and Figure 5 As shown, the spring-loaded component includes a second spring 15, a locking block 16, and a locking post 17. The width of the locking block 16 is greater than the width of the notch 7. The locking block 16 is located in the limiting groove 8. The second spring 15 is located between the central frustum 6 and the locking block 16. The locking post 17 is located at the other end of the locking block 16 and extends from the notch 7 to the outer edge of the rotating pressing component 3.

[0051] During the rotation of the rotating pressure component 4, the locking pin 17 of the spring component and the groove 14 come into contact, causing the spring 15 to be continuously compressed and rebounded. When it reaches the limit, the rotation angle of the rotating pressure component 4 is fixed by the locking pin 17 to prevent it from rotating back after being released.

[0052] Example 7

[0053] Based on Embodiment 5, this embodiment provides a smart toilet foot sensor fixing structure. A positioning component is provided between the foot sensor 9 and the rotating pressing component 3. A snap-fit ​​groove 18 is opened on the upper end face of the rotating pressing component 4, and the foot sensor 9 and the rotating pressing component 4 are snap-fitted together.

[0054] The foot sensor 9 and the rotating pressure application component 4 are snapped together via the snap-fit ​​groove 18, thereby achieving a detachable connection between the foot sensor 9 and the ceramic fixing module 19.

[0055] Example 8

[0056] Based on Example 7, this example provides a fixing structure for the foot sensor component of a smart toilet, such as... Figure 6 As shown, the positioning component includes an inner positioning post 20 and an outer positioning post 20. The inner positioning post 20 is symmetrically arranged on the outside of the central frustum 6 of the rotating pressing component 3. The upper end face of the foot sensor 9 has a through hole. The outer positioning post 20 is arranged on the lower end face of the foot sensor 9 and its top end passes through the through hole and is flush with the upper end face of the foot sensor 9. The inner positioning post 20 has a thread, and the outer positioning post 20 is sleeved on the inner positioning post 20. The two are connected by screws.

[0057] The rotating pressure component 4 has a rotating channel 21, and the top of the inner positioning column 20 extends beyond the rotating pressure component 4 and into the rotating channel 21.

[0058] During the rotation of the rotating pressure-applying component 4, the positioning component moves relative to it along the rotating channel 21. The rotating pressure-applying component 3, the rotating pressure-applying component 4, and the foot sensor 9 are connected as a whole by screws. When the foot sensor 9 needs to be replaced, the screws are removed, and the foot sensor 9 is pulled out from the snap-fit ​​groove 18 for replacement and maintenance.

[0059] The examples above are merely illustrative of utility models and do not constitute a limitation on the scope of protection of utility models. All designs that are the same as or similar to utility models fall within the scope of protection of utility models.

[0060] The examples above are merely illustrative of utility models and do not constitute a limitation on the scope of protection of utility models. All designs that are the same as or similar to utility models fall within the scope of protection of utility models.

Claims

1. A fixing structure for a foot sensor component in a smart toilet, characterized in that: It includes a ceramic fixing module and a foot-feeding component, which are detachably connected. The ceramic fixing module is installed inside the ceramic and includes a vacuum adsorption component. The foot-feeding component is connected to a foot-feeding cable.

2. The smart toilet foot sensor fixing structure according to claim 1, characterized in that: The ceramic fixing module further includes a rotating pressing component and a rotating pressure applying component. The rotating pressing component is disposed on the vacuum adsorption component, and the rotating pressure applying component is disposed on the rotating pressing component. The rotating pressure applying component is used to rotate to make the rotating pressing component press down on the vacuum adsorption component. A spring is provided between the vacuum adsorption component and the rotating pressing component.

3. The smart toilet foot sensor fixing structure according to claim 2, characterized in that: The vacuum adsorption component is a suction cup, and the suction cup has a rotating shaft in the middle. The rotating pressing component has a through hole in the middle that matches the rotating shaft.

4. The smart toilet foot sensor fixing structure according to claim 3, characterized in that: The rotating pressing component includes a central frustum, and the through hole is located at the center of the central frustum; The outer edge of the rotating pressing component includes an inner ring and an outer ring. The inner ring is higher than the outer ring. The inner ring has a notch. A limiting groove is provided between the central frustum and the notch. A spring-loaded component is provided in the limiting groove.

5. The smart toilet foot sensor fixing structure according to claim 4, characterized in that: The rotating pressure-applying component has a circular hole at its center, and two inclined surfaces are symmetrically arranged on the outer periphery of the circular hole. The rotating shaft is provided with a rotating shaft retainer, which contacts the inclined surfaces. The inclined surfaces can rotate relative to the rotating shaft retainer. The lower end face of the rotating pressure component is provided with two symmetrically distributed rotating grooves. The outer inner wall of the rotating groove is a concave-convex groove. The outer side of the rotating groove is located on the outer ring of the rotating pressing component. The spring component is connected to the concave-convex groove.

6. A smart toilet foot sensor fixing structure according to any one of claims 4-5, characterized in that: The spring-loaded component includes a second spring, a locking block, and a locking post. The width of the locking block is greater than the width of the notch. The locking block is located in the limiting groove. The second spring is located between the central frustum and the locking block. The locking post is located at the other end of the locking block and extends from the notch to the outer edge of the rotating pressing component.

7. A smart toilet foot sensor fixing structure according to claim 4 or 5, characterized in that: A positioning component is provided between the foot sensor and the rotating pressing component, and a snap-fit ​​groove is opened on the upper end face of the rotating pressing component, so that the foot sensor and the rotating pressing component are snapped together.

8. The smart toilet foot sensor fixing structure according to claim 7, characterized in that: The positioning component includes an inner positioning post and an outer positioning post. The inner positioning post is symmetrically arranged outside the central frustum of the rotating pressing component. The upper end face of the foot sensor has a through hole. The outer positioning post is located on the lower end face of the foot sensor and its top end passes through the through hole and is flush with the upper end face of the foot sensor. The inner positioning post has a thread inside. The outer positioning post is sleeved on the inner positioning post, and the two are connected by screws. The rotating pressure component has a rotating channel, and the top of the inner positioning column extends beyond the rotating pressure component and into the rotating channel.