Infrared induction soap dispenser

Through the combination of infrared sensing technology and drive module, contactless automatic quantitative pumping of soap liquid is achieved, solving the hygiene, safety and efficiency of the soap liquid, and improving the user experience.

CN223195976UActive Publication Date: 2025-08-08SHENZHEN YONGJIAXIN INTELLIGENT TECH CO LTD
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Patent Information

Application Number
CN202422284034.X
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-09-19
Publication Date
2025-08-08
Estimated Expiration
2034-09-19

AI Technical Summary

Technical Problem

Existing soap dispensers have problems such as direct contact increases the risk of bacterial transmission, and poor soap output or waste caused by squeeze use.

Method used

The infrared induction technology and the drive module control the automatic pumping of soap liquid. Through infrared sensor sensing needs, the microprocessor controls the drive module to extract the soap liquid from the soap liquid bottle and transport it to the user's hands.

Benefits of technology

It can be used without direct contact, and automatically pump out soap liquid regularly to improve hygiene and safety, avoid waste, and improve user experience.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses an infrared induction soap dispenser which comprises a soap dispenser body and a soap liquid bottle, the soap dispenser body comprises a shell and an installation part arranged at the bottom of the shell, a soap liquid suction pipe is arranged between the shell and the installation part in a through connection mode, a PCBA board and a driving module are arranged in the shell, a microprocessor is arranged on the PCBA board in an integrated mode, and the driving module is connected with the microprocessor in an integrated mode. A liquid outlet nozzle is formed in one side of the top of the shell, a liquid outlet hole is formed in one side of the liquid outlet nozzle, an infrared sensor is arranged at the bottom of the liquid outlet nozzle and located on the side close to the liquid outlet hole, the infrared sensor is connected with the microprocessor, the driving module is arranged between the liquid outlet nozzle and the liquid soap pipe, and the microprocessor is connected with the driving module. The utility model belongs to the technical field of soap dispensers, and particularly provides an infrared induction soap dispenser, which is used for solving the problem that the risk of bacterial spread is easily increased due to direct contact with the soap dispenser and solving the problems of unsmooth soap discharge, insufficient soap discharge or waste caused by excessive soap discharge due to the fact that the soap dispenser can be used only by extrusion.
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Description

Technical Field

[0001] The utility model belongs to the technical field of soap dispensers, and specifically refers to an infrared induction soap dispenser. Background Art

[0002] Existing soap dispensers and hand sanitizers are generally used manually or by hand pressure, which has some obvious disadvantages: first, direct contact with the hands can easily cause bacterial residue or cross infection, especially in public places, where hygiene and safety cannot be guaranteed; second, due to different squeezing forces, it is easy to cause waste without controlling the amount; in addition, manually squeezed soap dispensers require users to squeeze hard to dispensing soap. If the soap dispenser is not designed properly or the user's hand strength is insufficient, it may cause problems such as poor soap dispensing or insufficient soap dispensing, affecting the user experience. Utility Model Content

[0003] In view of the above situation, in order to overcome the defects of the existing technology, the utility model provides an infrared sensing soap dispenser, which is used to solve the problem that direct contact with the soap dispenser easily increases the risk of bacterial transmission, and the problem that the soap needs to be squeezed before use, resulting in poor soap dispensing, insufficient soap dispensing, or excessive soap dispensing, resulting in waste.

[0004] The technical solutions adopted in this application are as follows:

[0005] This solution provides an infrared sensing soap dispenser, comprising a soap dispenser body and a soap bottle; further comprising a table for fixing the soap dispenser body, with a mounting hole provided on the table, the soap bottle being located below the table, and the soap dispenser body being mounted above the table;

[0006] The soap dispenser body includes a shell and a mounting portion provided at the bottom of the shell, a soap liquid suction pipe is provided through-connected between the shell and the mounting portion, the bottom of the soap liquid suction pipe is movably provided in the soap liquid bottle, and the shell is mounted on the mounting hole of the table through the mounting portion;

[0007] A PCBA board and a drive module are provided inside the shell, and a microprocessor is integrated on the PCBA board. A liquid outlet nozzle is provided on one side of the top of the shell, and a liquid outlet hole is provided on one side of the liquid outlet nozzle. An infrared sensor is provided at the bottom of the liquid outlet nozzle, and the infrared sensor is located on the side close to the liquid outlet hole. The infrared sensor is connected to the microprocessor. The drive module is provided between the liquid outlet nozzle and the soap liquid straw. The microprocessor is connected to the drive module. After receiving the signal from the infrared sensor, the microprocessor processes it and issues a soap dispensing instruction, thereby controlling the drive module to extract the soap liquid from the soap liquid bottle and deliver it to the user's hands through the liquid outlet nozzle.

[0008] Furthermore, the mounting portion includes a mounting seat, a threaded tube connected to the bottom of the mounting seat, and a fixing knob. The shell is installed on the top of the mounting seat, the threaded tube passes through the mounting hole and the mounting seat is arranged above the mounting hole, the fixing knob is threadedly connected to the outer bottom of the threaded tube, and the fixing knob contacts the bottom of the table, thereby fixing the mounting portion.

[0009] Furthermore, the soap liquid straw includes an upper tube and a lower tube, the lower tube is arranged inside the soap liquid bottle and the bottom of the lower tube is equipped with a gravity ball, the driving module is provided with a liquid suction cavity in the shell, the upper tube is connected to the liquid suction cavity, the upper tube and the lower tube are detachably connected, and a soap liquid check valve is provided at the bottom of the upper tube.

[0010] As a preferred embodiment, the soap dispenser body also includes a battery unit, which is composed of a battery box and a battery arranged in the battery box. An electric wire is wrapped around the outer circumference of the upper tube, and a power plug is also connected to one side of the battery through the electric wire. The power plug includes a male plug and a female socket. The female socket is fixedly connected to the battery box, and the female socket is electrically connected to the battery. When the male plug is plugged into the female socket, the battery circuit is turned on to realize power supply.

[0011] The beneficial effects achieved by the utility model using the above structure are as follows:

[0012] 1. Through the setting of infrared sensor and drive module, it automatically pumps out a fixed amount of soap liquid after sensing the use demand, which is convenient and quick to use.

[0013] 2. By setting the installation part, when the soap bottle is placed under the countertop, the appearance of the product is improved and the space occupied is saved. BRIEF DESCRIPTION OF THE DRAWINGS

[0014] Figure 1 This is a schematic diagram of the overall structure of an infrared sensing soap dispenser provided in this solution;

[0015] Figure 2 This is a schematic diagram of the structure of the soap dispenser body in this solution;

[0016] Figure 3 The schematic diagram of the principle provided for this scheme;

[0017] Figure 4 Schematic diagram of the internal structure of the shell provided for this solution Figure 1 ;

[0018] Figure 5 Schematic diagram of the internal structure of the shell provided for this solution Figure 2 .

[0019] The meanings of the numbers in the accompanying drawings are as follows:

[0020] 1. Soap dispenser body, 2. Soap bottle, 3. Countertop, 4. Battery unit;

[0021] 11. Housing, 12. Mounting portion, 13. Soap liquid straw, 14. Microprocessor, 15. Drive module, 16. Liquid outlet, 17. Infrared sensor;

[0022] 121, mounting base, 122, threaded tube, 123, fixing knob;

[0023] 131. Upper tube, 132. Lower tube, 133. Gravity ball, 134. Soap liquid check valve;

[0024] 161, liquid outlet;

[0025] 21. Bottle cork;

[0026] 41. Battery box, 42. Batteries, 43. Wires, 44. Male plug, 45. Female socket. DETAILED DESCRIPTION

[0027] The technical solutions in the embodiments of the present invention will be described clearly and completely below with reference to the accompanying drawings in the embodiments of the present invention.

[0028] Example 1

[0029] Please refer to Figure 1 As shown, this embodiment provides an infrared sensing soap dispenser, including a soap dispenser body 1 and a soap bottle 2; it also includes a table top 3 for fixing the soap dispenser body 1, and a mounting hole is opened on the table top 3. The soap bottle 2 is located below the table top 3, and the soap dispenser body 1 is installed above the table top 3.

[0030] refer to Figure 2 and Figure 4 As shown, the soap dispenser body 1 includes a shell 11 and a mounting portion 12 provided at the bottom of the shell 11, a soap liquid straw 13 is connected between the shell 11 and the mounting portion 12, and the bottom of the soap liquid straw is movably provided in the soap liquid bottle 2, the shell 11 is installed at the mounting hole of the table 3 through the mounting portion 12, the mounting portion 12 includes a mounting seat 121, a threaded tube 122 connected to the bottom of the mounting seat 121 and a fixing knob 123, the shell 11 is installed on the top of the mounting seat 121, the threaded tube 122 is provided through the mounting hole and the mounting seat 121 is provided above the mounting hole, the fixing knob 123 is threadedly connected to the outer bottom of the threaded tube 122, and the fixing knob 123 is in contact with the bottom of the table 3, thereby fixing the mounting portion 12.

[0031] refer to Figure 3 and Figure 5As shown, a PCBA board and a driving module 15 are provided inside the shell 11, and a microprocessor 14 is integrated on the PCBA board. A liquid outlet nozzle 16 is provided on one side of the top of the shell 11, and a liquid outlet hole 161 is provided on one side of the liquid outlet nozzle 16. An infrared sensor 17 is provided at the bottom of the liquid outlet nozzle 16, and the infrared sensor 17 is located on the side close to the liquid outlet hole 161. The infrared sensor is connected to the microprocessor 14, and the driving module 15 is provided between the liquid outlet nozzle 16 and the soap liquid straw. The microprocessor 14 is connected to the driving module 15. After receiving the signal from the infrared sensor 17, the microprocessor 14 processes it and issues a soap dispensing instruction, thereby controlling the driving module 15 to extract the soap liquid from the soap liquid bottle 2 and deliver it to the user's hands through the liquid outlet nozzle 16.

[0032] like Figure 1 As shown, the soap liquid straw 13 includes an upper tube 131 and a lower tube 132. The lower tube 132 is arranged inside the soap liquid bottle 2 and the bottom of the lower tube 132 is provided with a gravity ball 133. The driving module 15 is provided with a liquid suction cavity in the shell 11. The upper tube 131 is connected to the liquid suction cavity. The upper tube 131 and the lower tube 132 are detachably connected. A soap liquid check valve 134 is provided at the bottom of the upper tube 131. A bottle stopper 21 is provided at the bottle mouth of the soap liquid bottle 2. A slot matching the lower tube 132 is opened at the center of the bottle stopper 21.

[0033] As an example to further illustrate:

[0034] refer to Figure 1 As shown, the soap dispenser body 1 also includes a battery unit 4 for power supply, and the battery unit 4 consists of a battery box 41 and a battery 42 arranged in the battery box 41. A wire 43 is provided around the outer periphery of the upper tube 131, and a power plug is also connected to one side of the battery 42 through the wire 43. The power plug includes a male plug 44 and a female socket 45. The female socket 45 is fixedly connected to the battery box 41, and the female socket 45 is electrically connected to the battery 42. When the male plug 44 and the female socket 45 are plugged in, the battery 42 circuit is turned on to realize power supply.

[0035] As a preferred embodiment, the driving module 15 adopts a soap pump. A switch button is set on the top of the housing 11, and the switch button is connected to the microprocessor 14. The switch button is used to control the use mode of the soap pump, and the soap pump can pre-set the liquid output.

[0036] Before using the present invention, the soap dispenser body 1 is fixed on the panel via the mounting portion 12 , liquid is added into the soap bottle 2 , and the soap straw 13 is introduced into the soap bottle 2 .

[0037] It should be noted that the liquid filled in the soap bottle 2 can be directly used as a foam type liquid without dilution. If ordinary gel type is used, it should be diluted with 1 times the liquid and 4 times the water. If latex thick type is used, it should be diluted with 1 times the liquid and 8 times the water.

[0038] Gel liquid types include the following: conditioner, facial cleanser, hand soap, dishwashing liquid, shower gel, shampoo, disinfectant gel and other liquids.

[0039] When using the present invention, the hand is placed on the infrared sensor 17. After sensing the use demand, the microprocessor 14 receives the signal from the infrared sensor 17, processes it and issues a soap dispensing instruction, thereby controlling the drive module 15 to extract the soap liquid from the soap liquid bottle 2, automatically pumping out a fixed amount of soap liquid, and delivering it to the user's hand through the liquid outlet nozzle 16.

[0040] It should be noted that although the embodiments of the present invention have been shown and described, for ordinary technicians in this field, without departing from the inventive purpose of the present invention, any structural methods and embodiments similar to the technical solution designed without creative design should fall within the scope of protection of the present invention.

Claims

1. An infrared sensing soap dispenser, comprising a soap dispenser body (1) and a soap bottle (2), and further comprising a table (3) for fixing the soap dispenser body (1), wherein a mounting hole is provided on the table (3), the soap dispenser body (1) is mounted above the table (3), and the soap bottle (2) is located below the table (3), characterized in that: The soap dispenser body (1) comprises a shell (11) and a mounting portion (12) provided at the bottom of the shell (11); a soap liquid suction pipe (13) is provided through-connected between the shell (11) and the mounting portion (12); the bottom of the soap liquid suction pipe is movably provided in the soap liquid bottle (2); and the shell (11) is mounted on a mounting hole of a table top (3) through the mounting portion (12); A PCBA board and a driving module (15) are provided inside the shell (11), and a microprocessor (14) is integrated on the PCBA board. A liquid outlet nozzle (16) is provided on one side of the top of the shell (11), and a liquid outlet hole (161) is provided on one side of the liquid outlet nozzle (16). An infrared sensor (17) is also provided at the bottom of the liquid outlet nozzle (16), and the infrared sensor (17) is located on a side close to the liquid outlet hole (161). The infrared sensor is connected to the microprocessor (14). The driving module (15) is provided between the liquid outlet nozzle (16) and the soap liquid straw. The microprocessor (14) is connected to the driving module (15). After receiving the signal from the infrared sensor (17), the microprocessor (14) processes it and executes a soap dispensing instruction, thereby controlling the driving module (15) to extract the soap liquid from the soap liquid bottle (2) and deliver it to the user's hand through the liquid outlet nozzle (16).

2. The infrared induction soap dispenser according to claim 1, characterized in that: The mounting portion (12) comprises a mounting seat (121), a threaded tube (122) connected to the bottom of the mounting seat (121), and a fixing knob (123); the housing (11) is mounted on the top of the mounting seat (121); the threaded tube (122) passes through the mounting hole and the mounting seat (121) is located above the mounting hole; the fixing knob (123) is threadedly connected to the outer bottom of the threaded tube (122), and the fixing knob (123) contacts the bottom of the table (3).

3. The infrared sensing soap dispenser according to claim 2, characterized in that: The soap liquid suction tube (13) comprises an upper tube (131) and a lower tube (132); the lower tube (132) is arranged inside the soap liquid bottle (2) and a gravity ball (133) is provided at the bottom of the lower tube (132); the driving module (15) is provided with a liquid suction cavity in relation to the housing (11); the upper tube (131) is communicated with the liquid suction cavity; and the upper tube (131) and the lower tube (132) are detachably connected.

4. The infrared sensing soap dispenser according to claim 3, characterized in that: The soap dispenser body (1) further comprises a battery unit (4), the battery unit (4) comprising a battery box (41) and a battery (42) disposed in the battery box (41); a wire (43) is disposed around the outer periphery of the upper tube (131); a power plug is further connected to one side of the battery (42) via the wire (43); the power plug comprises a male end plug (44) and a female end socket (45); the female end socket (45) is fixedly connected to the battery box (41), and the female end socket (45) is electrically connected to the battery (42); when the male end plug (44) and the female end socket (45) are plugged in, the battery (42) circuit is turned on to realize power supply.

5. The infrared sensing soap dispenser according to claim 3, characterized in that: A bottle stopper (21) is provided at the mouth of the soap liquid bottle (2), and a slot hole matching the lower tube (132) is provided at the center of the bottle stopper (21).

6. The infrared sensing soap dispenser according to claim 3, characterized in that: A soap liquid check valve (134) is provided at the bottom of the upper tube (131).

7. The infrared induction soap dispenser according to claim 1, characterized in that: The driving module (15) adopts a soap liquid pump.