Fountain lamp capable of measuring temperature

By installing a temperature measuring device and a control motherboard on the fountain light, the problem of the lack of temperature measurement and display in the fountain light was solved, realizing real-time measurement and display of liquid temperature, and improving the functionality of the product and user experience.

CN223869170UActive Publication Date: 2026-02-03SICHUAN COOTWAY TECHNOLOGY CO LTD
View PDF 0 Cites 0 Cited by

Patent Information

Application Number
CN202520205311.5
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-02-10
Publication Date
2026-02-03
Estimated Expiration
2035-02-10

AI Technical Summary

Technical Problem

Existing fountain lights lack water temperature measurement and display functions, and the function switching and operation are inconvenient, affecting the product's practicality and user experience.

Method used

A temperature measuring device, including a probe and a display, is installed on the housing of the fountain light. The main control board enables convenient control of the spray mode and lighting mode. Combined with the design of the pump device and lighting device, it realizes real-time measurement and display of liquid temperature and provides convenient function switching.

Benefits of technology

It enables real-time measurement and display of liquid temperature, improving the product's functionality and user experience. Through convenient function switching and operation, it enhances the product's practicality and fun.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN223869170U_ABST
    Figure CN223869170U_ABST
Patent Text Reader

Abstract

The fountain lamp capable of measuring the temperature comprises a shell, a temperature measuring device, a pump device, a lighting device and a control mainboard, the shell is provided with a containing cavity and a water inlet, and the water inlet is used for allowing liquid to enter the containing cavity; the temperature measuring device comprises a probe and a displayer electrically connected with the probe, the probe is arranged on the lower side of the shell, the displayer is arranged on the shell, part of the shell and the probe are used for being placed in liquid so that the probe can be used for measuring the temperature value of the liquid, and the displayer is used for displaying the temperature value of the liquid; the pump device is installed in the containing cavity, communicates with the water inlet and is used for spraying liquid to form a fountain. The lighting device is installed in the containing cavity and used for emitting light out of the shell. The control mainboard is electrically connected to the lighting device, the pump device, the probe and the displayer and used for controllably driving the lighting device, the pump device, the probe and the displayer, through the arrangement of the structure, the probe and the displayer, water temperature can be observed conveniently, and the product is simple in structure and good in waterproof sealing performance.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] This utility model relates to a temperature-measuring fountain light, which is applied in the field of lighting fixtures. Background Technology

[0002] Fountain lights are decorative lighting fixtures that combine the functions of fountains and illumination, and are widely used in homes, gardens, and landscape decoration. Fountain lights not only create beautiful fountain effects and a pleasant waterscape atmosphere, but also provide lighting and add decorative effects to the space. As people's demands for quality of life increase, the functions of fountain lights are constantly being enriched and improved.

[0003] Currently, existing fountain lights on the market only have simple fountain and lighting functions, lacking the ability to measure and display water temperature, thus failing to meet users' needs for water temperature measurement. Furthermore, existing fountain lights are not convenient enough in terms of function switching and operation, and lack effective control over the spray mode, affecting the practicality of the product and the user experience. Summary of the Invention

[0004] To address the problems in the prior art mentioned above, this utility model provides a temperature-measuring fountain light. By setting a temperature measuring device on the housing, the water temperature can be measured and displayed in real time. Through reasonable structural design, the waterproof sealing performance of the product is improved. Through the cooperation of the pressing part and the control board, convenient control of the spray mode and lighting mode is realized, making the product more practical and providing a better user experience.

[0005] The technical solution adopted by this utility model to solve its technical problem is:

[0006] A temperature-measuring fountain light includes: a housing having a receiving cavity and a water inlet for liquid to enter the receiving cavity; a temperature measuring device including a probe and a display electrically connected to the probe, the probe being disposed on the lower side of the housing and the display being disposed on the housing, a portion of the housing and the probe being inserted into the liquid so that the probe can be used to measure the temperature value of the liquid, and the display being used to display the temperature value of the liquid; a pump device installed in the receiving cavity and communicating with the water inlet for spraying liquid to form a fountain; a lighting device installed in the receiving cavity for emitting light out of the housing; and a control board electrically connected to the lighting device, the pump device, the probe, and the display for controllably driving the lighting device, the pump device, the probe, and the display.

[0007] Furthermore, the housing includes an upper housing and a lower housing. The upper side of the lower housing has a first mounting opening. The control motherboard, the lighting device, and the pump device are all disposed in the receiving cavity through the first mounting opening. The probe portion is located in the receiving cavity and extends partially through the bottom of the lower housing to the outside of the lower housing. The display portion is located in the receiving cavity and extends partially to the outside of the upper housing. The upper housing is sealed and covered to the lower housing through the first mounting opening.

[0008] Furthermore, the pump device has a conveying pipe connected to the water inlet for conveying liquid; the top of the upper housing is provided with a water outlet, the upper housing is provided with a first mounting groove adapted to the water outlet, the water outlet is snapped into the first mounting groove, and the water outlet is connected to the conveying pipe.

[0009] Furthermore, the lower housing also includes a sealing ring. When the upper housing is sealed and closed to the first mounting opening, the inner sidewall of the first mounting opening and the outer sidewall of the upper housing press the sealing ring so that the sealing ring presses and seals the upper housing within the first mounting opening.

[0010] Furthermore, the bottom inner wall of the lower housing is provided with a second mounting groove, a sensing plate and a pressure plate. The sensing plate is installed in the second mounting groove and is electrically connected to the control main board. The pressure plate is located above the sensing plate, and both ends of the pressure plate are fixed to the second mounting groove to fix the sensing plate in the second mounting groove.

[0011] Furthermore, the top of the upper housing is provided with a plurality of pressing parts, the control main board is provided with buttons corresponding to the pressing parts, the upper housing is provided with a second mounting opening, the pressing parts and the second mounting opening are both located above the buttons, and the pressing parts are sealed and covered by the second mounting opening.

[0012] Furthermore, it also includes a power storage module, which is electrically connected to the control motherboard and is installed in the receiving cavity through the first mounting opening.

[0013] Furthermore, the upper shell and the lower shell extend outward from the same side to form a hollow, flat structure, which is connected to the first mounting opening.

[0014] Furthermore, the pressing component includes a first pressing component, and the button includes a first button corresponding to the first pressing component. Under the action of external force, the first pressing component drives the first button to switch between direct water spray mode and intermittent water spray mode.

[0015] Furthermore, the upper housing is also provided with a charging interface and a cover. The charging interface is electrically connected to the control motherboard and is used to provide power to the energy storage module. The upper housing is also provided with a third mounting opening. The charging interface is located in the third mounting opening, and the cover is used to cover the third mounting opening.

[0016] Furthermore, the lower housing also includes a floatation element, which is disposed within the flat structure through the first mounting opening.

[0017] Furthermore, the pressing component also includes a second pressing component, and the button also includes a second button corresponding to the second pressing component, the second button being used to switch the temperature display mode.

[0018] Furthermore, the control motherboard is provided with a second connector, and the control motherboard is connected to the upper housing through the second connector.

[0019] Furthermore, the control motherboard is also provided with a socket, through which the display is electrically connected to the control motherboard.

[0020] Furthermore, the display is provided with pins, which are inserted into the sockets to electrically connect the display to the control motherboard.

[0021] Furthermore, the lighting device is an LED lamp, which is located on the lower side of the control motherboard, and the light-emitting surface of the LED lamp is arranged facing the lower side of the lower housing.

[0022] Furthermore, the LED light can emit colored light that flashes alternately under the control of the control motherboard.

[0023] Furthermore, the water inlet is located at the bottom of the lower housing.

[0024] Furthermore, the bottom of the housing is provided with multiple support portions.

[0025] Furthermore, the housing is made of a light-transmitting material.

[0026] The beneficial effects of this utility model are as follows: This utility model provides a temperature-measuring fountain light. By setting a temperature measuring device on the housing, including a probe set on the lower side of the housing and a display set on the housing, the temperature value of the liquid can be measured and displayed in real time when part of the housing and the probe are placed in the liquid, making up for the lack of temperature measurement and display functions in existing fountain lights and improving the functionality of the product. By installing the pump device in the receiving cavity and connecting it to the water inlet, the liquid is circulated and sprayed to form a fountain effect. At the same time, the lighting device is installed in the receiving cavity and shines light out of the housing, providing lighting function while creating a good visual effect. By designing the control board to be electrically connected to the lighting device, pump device and temperature measuring device, centralized control of each functional module is realized. The fountain effect, lighting effect and temperature display can be adjusted as needed, which is convenient to operate and improves the practicality of the product. Attached Figure Description

[0027] Figure 1 This is a schematic diagram of the overall structure of a temperature-measuring fountain light according to this utility model;

[0028] Figure 2 This is a first exploded view of a temperature-measuring fountain light according to this utility model;

[0029] Figure 3 yes Figure 2 Enlarged view of point A;

[0030] Figure 4 This is a second exploded view of a temperature-measuring fountain light according to this utility model;

[0031] Figure 5 This is the third exploded view of a temperature-measuring fountain light according to this utility model;

[0032] Figure 6 yes Figure 5 Enlarged view of point B;

[0033] Figure 7 This is a top view of a temperature-measuring fountain light according to this utility model;

[0034] Figure 8 yes Figure 7 A sectional view.

[0035] Reference numerals: 10-Housing; 11-Receiving cavity; 12-Water inlet; 13-Support; 20-Temperature measuring device; 21-Probe; 22-Display; 221-Pin; 30-Pump device; 31-Delivery pipe; 40-Lighting device; 41-LED light; 50-Control main board; 51-Button; 511-First button; 512-Second button; 52-Socket; 1011-First connector; 53-Second connector; 60-Energy storage module; 70-Flat shape Structure; 80-Floating component; 101-Upper shell; 102-Lower shell; 103-First mounting opening; 104-Water outlet; 105-Water outlet; 106-First mounting groove; 107-Sealing ring; 108-Second mounting groove; 109-Induction plate; 110-Pressure plate; 111-Pressing component; 1111-First pressing component; 1112-Second pressing component; 112-Second mounting opening; 113-Charging interface; 114-Cover; 115-Third mounting opening. Detailed Implementation

[0036] To make the objectives, technical solutions, and effects of this utility model clearer and more explicit, the present utility model will be further described in detail below with reference to the accompanying drawings and embodiments. It should be understood that the specific embodiments described herein are only used to explain this utility model and are not intended to limit this utility model.

[0037] Please see Figures 1 to 8 This utility model provides a temperature-measuring fountain light, comprising: a housing 10, the housing 10 having a receiving cavity 11 and a water inlet 12, the water inlet 12 for liquid to enter the receiving cavity 11; a temperature measuring device 20, the temperature measuring device 20 including a probe 21 and a display 22 electrically connected to the probe 21, the probe 21 being disposed on the lower side of the housing 10, the display 22 being disposed on the housing 10, a portion of the housing 10 and the probe 21 being used to be inserted into the liquid so that the probe 21 can be used to measure the temperature value of the liquid, and the display 22 being used to display the temperature value of the liquid; a pump device 30, the pump device 30 being installed in the receiving cavity 11, the pump device 30 being connected to the water inlet 12, and being used to spray the liquid to form a fountain; a lighting device 40, the lighting device 40 being installed in the receiving cavity 11, and being used to emit light out of the housing 10; and a control main board 50, the control main board 50 being electrically connected to the lighting device 40, the pump device 30 and the temperature measuring device 20, and being used to controllably drive the lighting device 40, the pump device 30 and the temperature measuring device 20.

[0038] With the above structure, when in use, the housing 10 is partially immersed in the liquid, the probe 21 can measure the liquid temperature and display the temperature value on the display 22; at the same time, the pump device 30 draws in the liquid through the water inlet 12 and sprays it to form a fountain effect, the lighting device 40 provides lighting and creates a visual effect, and the control motherboard 50 can control the working status of each functional module.

[0039] In this embodiment, the housing 10 includes an upper housing 101 and a lower housing 102. The upper side of the lower housing 102 has a first mounting opening 103. The control board 50, the lighting device 40, and the pump device 30 are all disposed in the receiving cavity 11 through the first mounting opening 103. The upper end of the probe 21 is located in the receiving cavity 11 and is electrically connected to the control board 50. The lower end of the probe 21 passes through the bottom of the lower housing 102 and extends to the outside of the lower housing 102. The lower end of the display 22 is located in the receiving cavity 11 and is electrically connected to the control board 50. The upper end of the display 22 extends to the outside of the upper housing 101. The upper housing 101 is sealed and covered by the lower housing 102 through the first mounting opening 103. With the above-described structure, the probe 21 extends outward from the bottom of the lower housing 102 and can be installed in two ways: one is that the probe 21 slightly extends beyond the bottom outer surface of the lower housing 102; the other is that the probe 21 is flush with the bottom outer surface. The latter is preferred, that is, the part of the probe 21 that contacts the liquid is flush with the bottom outer surface. This design not only facilitates accurate measurement of liquid temperature, but also allows the display 22 to extend from the outside of the upper housing 101 and can be set at any position on the upper housing 101, but preferably at the top of the upper housing 101, so that the user can better observe the liquid temperature. At the same time, both the probe 21 and the display 22 are electrically connected to the control motherboard 50 to ensure accurate signal transmission. The connection between the upper housing 101 and the lower housing 102 is also provided with multiple first connectors 1011. The first connectors 1011 can make the upper housing 101 more tightly cover the lower housing 102 through the first mounting opening 103, achieving overall sealing and waterproofing.

[0040] In this embodiment, the pump device 30 has a conveying pipe 31 connected to the water inlet 12, which is used to convey liquid. The top of the upper housing 101 is provided with a water outlet 104, and the upper housing 101 is provided with a first mounting groove 106 adapted to the water outlet 104. The water outlet 104 is snapped into the first mounting groove 106, and the water outlet 104 is connected to the conveying pipe 31. Preferably, the water outlet 104 is hollowed out to form a plurality of water outlets 105. By conveying liquid through the conveying pipe 31 to the water outlets 105 and spraying it out, a fountain effect is formed.

[0041] In this embodiment, the lower housing 102 further includes a sealing ring 107. When the upper housing 101 is sealed and closed to the first mounting opening 103, the inner wall of the first mounting opening 103 and the outer wall of the upper housing 101 press against the sealing ring 107, so that the sealing ring 107 presses and seals the upper housing 101 within the first mounting opening 103. Through the above-described structure, the sealing ring 107 further enhances the sealing effect between the upper and lower housings, effectively preventing liquid infiltration.

[0042] In this embodiment, the bottom inner wall of the lower housing 102 is provided with a second mounting groove 108, a sensing plate 109, and a pressure plate 110. The sensing plate 109 is installed in the second mounting groove 108 and is electrically connected to the control main board 50. The pressure plate 110 is located above the sensing plate 109, and both ends of the pressure plate 110 are fixed to the second mounting groove 108 to fix the sensing plate 109 in the second mounting groove 108. With the above structure, the sensing plate 109 can be stably installed in the second mounting groove 108 and fixed by the pressure plate 110, so that the sensing plate 109 can sense whether the product is immersed in water. When the product is placed on the water surface, the sensing plate 109 detects the presence of water and transmits a signal to the control main board 50, which controls the product to start working. When the product leaves the water surface, the sensing plate 109 detects the departure from the water surface and transmits a signal to the control main board 50, which controls the product to stop working, thereby realizing automatic control of the product and improving safety and convenience of use.

[0043] In this embodiment, the top of the upper housing 101 is also provided with a plurality of pressing members 111, and the control main board 50 is provided with buttons 51 corresponding to the pressing members 111. The upper housing 101 is provided with a second mounting opening 112. Both the pressing members 111 and the second mounting opening 112 are located above the buttons 51, and the pressing members 111 are sealed and closed to the second mounting opening 112. Through the above-described structure, the cooperation between the pressing members 111 and the buttons 51 enables convenient control of the product functions and maintains good sealing performance.

[0044] In this embodiment, a power storage module 60 is also included. The power storage module 60 is electrically connected to the control motherboard 50, and the power storage module 60 is installed in the receiving cavity 11 through the first mounting opening 103. With the above-described structure, the power storage module 60 provides power to the product, enabling the product to be used independently and improving its portability.

[0045] In this embodiment, the upper shell 101 and the lower shell 102 extend outward from the same side to form a hollow flat structure 70, and the interior of the flat structure 70 is connected to the first mounting opening 103; preferably, after the upper shell 101 and the lower shell 102 are closed, the whole is shaped like a whale, and the flat structure 70 is shaped like a fish tail, which not only increases the aesthetics of the product, but also improves the stability of the product in water.

[0046] In this embodiment, the pressing component 111 includes a first pressing component 1111, and the button 51 includes a first button 511 corresponding to the first pressing component 1111. The first pressing component 1111 drives the first button 511 under external force to switch between direct spray mode and intermittent spray mode. Preferably, the spray height in both direct spray mode and intermittent spray mode is 15-20 cm. In direct spray mode, the liquid is sprayed continuously, while in intermittent spray mode, the liquid is sprayed intermittently. Users can switch as needed, enhancing the product's fun and practicality.

[0047] In this embodiment, the upper housing 101 is further provided with a charging interface 113 and a cover 114. The charging interface 113 is electrically connected to the control motherboard 50 and is used to provide power to the energy storage module 60. The upper housing 101 is also provided with a third mounting opening 115, where the charging interface 113 is located, and the cover 114 is used to cover the third mounting opening 115. With the above structure, when the energy storage module 60 needs to be charged, the cover 114 can be opened for charging. After charging is completed, the cover 114 seals the third mounting opening 115, which can effectively prevent liquid from entering the housing through the charging interface 113, ensuring the waterproof performance of the product during use.

[0048] In this embodiment, the lower housing 102 also includes a float 80, which is disposed within the flat structure 70 through the first mounting opening 103; the float 80 enables the product to float steadily in water, thereby improving the product's stability.

[0049] In this embodiment, the pressing member 111 further includes a second pressing member 1112, and the button 51 further includes a second button 512 corresponding to the second pressing member 1112. The second button 512 is used to switch the temperature display mode. Specifically, the second button 512 is used to switch between Celsius and Fahrenheit. When the second pressing member 1112 is driven to move the second button 512 under the action of external force, the temperature unit displayed on the display 22 will switch between Celsius "°C" and Fahrenheit "℉", thereby facilitating different users to select the appropriate temperature display unit according to their own needs. It can be understood that when the display 22 displays Celsius, if the user presses the second pressing member 1112, the temperature unit on the display 22 will switch from Celsius to Fahrenheit; conversely, when the display 22 displays Fahrenheit, if the user presses the second pressing member 1112, the temperature unit on the display 22 will switch from Fahrenheit to Celsius.

[0050] In this embodiment, the control motherboard 50 is provided with a second connector 53, and the control motherboard 50 is connected to the upper housing 101 through the second connector 53. This connection structure ensures the stable installation of the control motherboard 50.

[0051] In this embodiment, the control motherboard 50 is also provided with a socket 52, through which the display 22 is electrically connected to the control motherboard 50. This structure facilitates the installation and replacement of the display 22, improving product maintainability.

[0052] In this embodiment, the display 22 is provided with pins 221, which are inserted into sockets 52 to electrically connect the display 22 to the control motherboard 50. The insertion structure of pins 221 and sockets 52 makes the electrical connection more stable and reliable.

[0053] In this embodiment, the lighting device 40 is an LED lamp 41, which is located on the lower side of the control main board 50, with the light-emitting surface of the LED lamp 41 facing downwards towards the lower housing 102. By aligning the light-emitting surface of the LED lamp 41 towards the lower housing 102, the light emitted by the LED lamp 41 can shine downwards and be evenly diffused across the entire housing 10, not only illuminating the housing 10 but also giving the housing 10 a soft lighting effect, thus providing a better decorative effect.

[0054] In this embodiment, the LED light 41 can emit alternating colored light under the control of the control motherboard 50. Preferably, the LED light 41 can emit seven different colors of light, thereby enhancing the decorative effect of the product.

[0055] In this embodiment, the water inlet 12 is located at the bottom of the lower housing 102. By providing the water inlet 12 at the bottom, it is convenient for liquid to be drawn in.

[0056] In this embodiment, the bottom of the housing 10 is provided with a plurality of support portions 13. Preferably, there are three support portions 13 arranged in a triangle on the bottom outer wall of the housing 10, and the triangular arrangement improves the stability of the product during use.

[0057] In this embodiment, the housing 10 is made of a light-transmitting material. The use of the light-transmitting material makes the lighting effect more ideal and improves the overall effect of the product.

[0058] It should be understood that the application of this utility model is not limited to the examples above. Those skilled in the art can make improvements or modifications based on the above description, and all such improvements and modifications should fall within the protection scope of the appended claims.

Claims

1. A temperature-measuring fountain light, characterized in that, include: The housing (10) is provided with a receiving cavity (11) and a water inlet (12), the water inlet (12) being used for liquid to enter the receiving cavity (11); A temperature measuring device (20) includes a probe (21) and a display (22) electrically connected to the probe (21). The probe (21) is disposed on the lower side of the housing (10), and the display (22) is disposed on the housing (10). A portion of the housing (10) and the probe (21) are used to be inserted into a liquid so that the probe (21) can be used to measure the temperature value of the liquid, and the display (22) is used to display the temperature value of the liquid. A pump device (30) is installed in the receiving cavity (11) and is connected to the water inlet (12) for spraying liquid to form a fountain; A lighting device (40) is installed in the receiving cavity (11) to emit light out of the housing (10); A control board (50) is electrically connected to the lighting device (40), the pump device (30), the probe (21) and the display (22) for controllably driving the lighting device (40), the pump device (30), the probe (21) and the display (22).

2. The temperature-measuring fountain light according to claim 1, characterized in that, The housing (10) includes an upper housing (101) and a lower housing (102). The upper side of the lower housing (102) has a first mounting opening (103). The control board (50), the lighting device (40), and the pump device (30) are all disposed in the receiving cavity (11) through the first mounting opening (103). The probe (21) is partially located in the receiving cavity (11) and partially extends through the bottom of the lower housing (102) to the outside of the lower housing (102). The display (22) is partially located in the receiving cavity (11) and partially extends to the outside of the upper housing (101). The upper housing (101) is sealed and covered by the lower housing (102) through the first mounting opening (103).

3. The temperature-measuring fountain light according to claim 2, characterized in that, The pump device (30) has a conveying pipe (31) connected to the water inlet (12), and the conveying pipe (31) is used to convey liquid; the top of the upper housing (101) is provided with a water outlet (104), and the upper housing (101) is provided with a first mounting groove (106) adapted to the water outlet (104), the water outlet (104) is snapped into the first mounting groove (106), and the water outlet (104) is connected to the conveying pipe (31).

4. The temperature-measuring fountain light according to claim 2, characterized in that, The lower housing (102) also includes a sealing ring (107). When the upper housing (101) is sealed and closed to the first mounting opening (103), the inner sidewall of the first mounting opening (103) and the outer sidewall of the upper housing (101) press the sealing ring (107) so that the sealing ring (107) presses and seals the upper housing (101) in the first mounting opening (103).

5. The temperature-measuring fountain light according to claim 4, characterized in that, The bottom inner wall of the lower housing (102) is provided with a second mounting groove (108), a sensing plate (109) and a pressure plate (110). The sensing plate (109) is installed in the second mounting groove (108) and is electrically connected to the control main board (50). The pressure plate (110) is located above the sensing plate (109) and both ends of the pressure plate (110) are fixed on the second mounting groove (108) to fix the sensing plate (109) in the second mounting groove (108).

6. The temperature-measuring fountain light according to claim 2, characterized in that, The top of the upper housing (101) is also provided with a plurality of pressing parts (111), and the control main board (50) is provided with buttons (51) corresponding to the pressing parts (111). The upper housing (101) is provided with a second mounting opening (112). The pressing parts (111) and the second mounting opening (112) are both located above the buttons (51), and the pressing parts (111) are sealed and covered by the second mounting opening (112).

7. The temperature-measuring fountain light according to claim 2, characterized in that, It also includes a power storage module (60), which is electrically connected to the control motherboard (50) and is installed in the receiving cavity (11) through the first mounting opening (103).

8. The temperature-measuring fountain light according to claim 4, characterized in that, The upper housing (101) and the lower housing (102) extend outward from the same side to form a hollow flat structure (70), and the interior of the flat structure (70) is connected to the first mounting opening (103).

9. The temperature-measuring fountain light according to claim 6, characterized in that, The pressing element (111) includes a first pressing element (1111) and a second pressing element (1112). The button (51) includes a first button (511) corresponding to the first pressing element (1111) and a second button (512) corresponding to the second pressing element (1112). The first pressing element (1111) drives the first button (511) to switch between direct water spray mode and intermittent water spray mode under the action of external force. The second button (512) is used to switch the temperature display mode.

10. The temperature-measuring fountain light according to claim 7, characterized in that, The upper housing (101) is also provided with a charging interface (113) and a cover (114). The charging interface (113) is electrically connected to the control motherboard (50) and is used to provide power to the energy storage module (60). The upper housing (101) is also provided with a third mounting opening (115). The charging interface (113) is located in the third mounting opening (115), and the cover (114) is used to cover the third mounting opening (115).