A touch type vacuum cup with water outlet flow adjusting structure
By incorporating a capacitive touchscreen and a servo-driven transmission rod into the thermos, the problems of inconvenient operation and bulky structure in existing technologies have been solved, enabling convenient multi-level water flow adjustment and integrated charging and heating functions.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- ZHEJIANG BEISHENG IND & TRADE CO LTD
- Filing Date
- 2025-04-25
- Publication Date
- 2026-07-24
AI Technical Summary
Existing thermos cups suffer from problems such as inconvenient mechanical knob operation, easy aging of seals, bulky structure, inability to integrate mobile power supply, and delayed touch response, making it difficult to achieve precise adjustment of multiple water flow levels in a small space.
It adopts a capacitive touch screen to replace the mechanical knob, combined with servo motor and flow channel design, to realize single-finger sliding or clicking to adjust the flow rate. It integrates charging and heating functions, and the transmission rod is driven by servo motor to adjust multiple levels.
It features convenient operation, no physical wear, multiple water flow settings to meet the needs of different drinking water scenarios, and charging and heating functions.
Smart Images

Figure CN224539896U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of intelligent insulated container technology, specifically to a touch-sensitive insulated cup with a water flow rate adjustment structure. Background Technology
[0002] Most existing insulated cups use mechanical knobs or push-button valves to adjust the water flow, which has drawbacks such as ambiguous settings, easy aging of seals, and inconvenience for two-handed operation. While some smart cups incorporate touch technology, their structure still separates the heating module from the flow control, resulting in a bulky cup and the inability to integrate mobile power supply. Furthermore, the linkage between touch control and mechanical transmission lacks precision, making it difficult to achieve a balance between accurate multi-level water flow adjustment and durability within a small space. How to integrate touch control, multi-level flow control, rapid heating, and bidirectional charging functions within a limited cup space through compact design, while addressing the short lifespan of traditional mechanical components, touch response delays, and the risk of accidental touches, is a pressing technical challenge in this field.
[0003] No effective solutions have yet been proposed to address the problems in the relevant technologies. Utility Model Content
[0004] In view of the problems in the related technologies, this utility model proposes a touch-sensitive thermos cup with a water flow rate adjustment structure to overcome the above-mentioned technical problems existing in the existing related technologies.
[0005] Therefore, the specific technical solution adopted by this utility model is as follows:
[0006] A touch-sensitive thermos cup with a water flow rate adjustment structure includes a cup body structure, an adjustment structure connected to the top of the cup body structure, a base structure connected to the bottom of the cup body structure, a charging device with a heating effect on the base structure, and a water flow rate adjustment device on the adjustment structure.
[0007] Furthermore, the cup structure includes an insulated cup body, a filter screen, and a docking module. The insulated cup body has a filter screen at its mouth and a docking module at its bottom. The docking module includes a threaded docking groove and a heat conduction contact block.
[0008] Furthermore, the base structure includes a cup base, a charging interface, and a heat conduction patch. The cup base integrates a battery module, and the top surface of the cup base integrates a resistance wire. The resistance wire is matched with a heat conduction patch, and the side of the cup base integrates a charging interface, which is electrically connected to the battery module.
[0009] Furthermore, the adjustment structure includes a docking cup lid, an outer shell, an integrated module, a touch screen, an outer guide channel, an inner shell, a ratchet groove, a water outlet sliding cover, a fixing ring, a docking base plate, an inner guide channel, a fixing ring, and a reset block. The top of the docking cup lid is fixedly docked to the docking base plate, and the outer shell is rotatably mounted on the docking base plate. The inner shell is located inside the outer shell, and an outer guide channel is provided between the outer shell and the inner shell. A fixing ring is fixedly mounted on the docking base plate, and an inner guide channel is opened inside the fixing ring. A fixing ring is fixedly mounted at the center of the top of the docking base plate, and a reset block is provided around the periphery of the fixing ring. The reset block is connected to the docking base plate. An integrated module is fixedly mounted at the top of the fixing ring, and the integrated module integrates a touch screen and a removable battery module. A water outlet is opened on the outer shell, and a water outlet sliding cover is slidably mounted on the outer shell at the water outlet. A servo motor is fixedly mounted at the bottom of the fixing ring, and a transmission rod is fixedly connected to the drive end of the servo motor. One end of the transmission rod is fixedly connected to the ratchet groove.
[0010] The beneficial effects of this utility model are as follows: by replacing the mechanical knob with a capacitive touch screen, the flow rate can be adjusted by sliding or clicking with one finger. The operation is convenient and there is no physical wear. The four sets of flow guide holes, together with the servo motor, can rotate in different gears to meet different drinking water scenarios. Attached Figure Description
[0011] To more clearly illustrate the technical solutions in the embodiments of this utility model or the prior art, the drawings used in the embodiments will be briefly introduced below. Obviously, the drawings described below are only some embodiments of this utility model. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.
[0012] Figure 1 This is a schematic diagram of the main structure of a touch-sensitive thermos cup with a water flow rate adjustment structure according to an embodiment of the present utility model;
[0013] Figure 2 This is a schematic diagram of the cup body structure of a touch-sensitive thermos cup with a water flow rate adjustment structure according to an embodiment of the present utility model;
[0014] Figure 3 This is a schematic diagram of the base structure of a touch-sensitive thermos cup with a water flow rate adjustment structure according to an embodiment of the present utility model;
[0015] Figure 4 This is a schematic diagram of the connecting lid of a touch-sensitive thermos cup with a water flow rate adjustment structure according to an embodiment of the present utility model;
[0016] Figure 5 This is a schematic diagram of the adjustment structure of a touch-sensitive thermos cup with a water flow rate adjustment structure according to an embodiment of the present utility model;
[0017] Figure 6 This is a cross-sectional view of the adjustment structure of a touch-sensitive thermos cup with a water flow rate adjustment structure according to an embodiment of the present utility model;
[0018] Figure 7 This is a schematic diagram of the servo motor connection of a touch-sensitive thermos cup with a water flow rate adjustment structure according to an embodiment of the present utility model.
[0019] In the picture:
[0020] 1. Cup body structure; 101. Insulated cup body; 102. Filter screen; 103. Docking module; 2. Base structure; 201. Cup base; 202. Charging interface; 203. Heat conduction patch; 3. Adjustment structure; 301. Docking cup lid; 302. Outer shell; 303. Integrated module; 304. Touch screen; 305. Outer flow channel; 306. Inner shell; 307. Ratchet groove; 308. Water outlet sliding cover; 309. Fixing retaining ring; 310. Docking base plate; 311. Inner flow channel; 312. Fixing ring; 313. Reset stop; 314. Servo motor; 315. Transmission rod. Detailed Implementation
[0021] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.
[0022] According to an embodiment of the present invention, a touch-sensitive thermos cup with a water flow rate adjustment structure is provided. Example 1
[0023] like Figure 1-7 As shown, the touch-sensitive thermos cup with water flow adjustment structure according to an embodiment of the present invention includes a cup body structure 1, an adjustment structure 3 connected to the top of the cup body structure 1, and a base structure 2 connected to the bottom of the cup body structure 1. The base structure 2 is equipped with a charging device and has a heating effect, while the adjustment structure 3 is equipped with a water flow adjustment device. The base structure 2 connected to the bottom of the cup body structure 1 has a charging function and can charge other devices through an external power data cable. At the same time, it can heat and keep the inside of the cup body structure 1 warm. The adjustment structure 3 can adjust the water flow by rotating it.
[0024] The cup structure 1 includes an insulated cup body 101, a filter screen 102, and a docking module 103. The insulated cup body 101 has a filter screen 102 at its mouth and a docking module 103 at its bottom. The docking module 103 includes a threaded docking groove and a heat conduction contact block. The inside of the insulated cup body 101 of the cup structure 1 is a metal insulated inner liner. The filter screen 102 is used to separate the water from the soaking material. The threaded docking groove of the docking module 103 is used to thread-connect the base structure 2, while the heat conduction contact block can be used to cooperate with the base structure 2 for heating and heat preservation.
[0025] The base structure 2 includes a cup base 201, a charging interface 202, and a heat conduction patch 203. The cup base 201 integrates a battery module. A resistance wire is integrated on the top surface of the cup base 201, and the resistance wire is matched with the heat conduction patch 203. The charging interface 202 is integrated on the side of the cup base 201 and is electrically connected to the battery module. The battery module built into the cup base 201 of the base structure 2 can be charged by connecting to the mains power or an external power source via a power cord. It can also be connected to an electrical device for power supply and reverse charging. The resistance wire is electrically connected to the battery module and can work with the temperature control module integrated in the battery module to heat the resistance wire. The resistance wire heats and keeps the water in the metal insulated inner liner warm through the heat conduction patch 203 and the heat conduction contact block of the cup body structure 1. Example 2
[0026] The adjustment structure 3 includes a docking cup lid 301, an outer shell 302, an integrated module 303, a touch screen 304, an outer guide channel 305, an inner shell 306, a ratchet groove 307, a water outlet sliding cover 308, a fixing ring 309, a docking base plate 310, an inner guide channel 311, a fixing ring 312, and a reset stop block 313. The top of the docking cup lid 301 is fixedly docked with the docking base plate 310. The outer shell 302 is rotatably and sealingly mounted on the docking base plate 310. The inner shell 306 is located inside the outer shell 302. An outer guide channel 305 is provided between the outer shell 302 and the inner shell 306. A fixing ring 309 is fixedly mounted on the docking base plate 310. An inner guide channel 311 is opened inside the fixing ring 309. The top center of the docking base plate 310 is fixedly positioned with... A fixed ring 312 has a reset stop 313 on its periphery, which is connected to the docking base plate 310. An integrated module 303 is fixedly mounted on the top of the fixed ring 312, which integrates a touch screen 304 and a removable battery module. A water outlet is provided on the outer shell 302, and a water outlet cover 308 is slidably mounted on the outer shell 302 at the water outlet. A servo motor 314 is fixedly mounted on the bottom of the fixed ring 312, and a transmission rod 315 is fixedly connected to the drive end of the servo motor 314. One end of the transmission rod 315 is fixedly connected to a ratchet groove 307. The docking cup cover 301 has a built-in threaded groove for threaded docking with the cup mouth of the insulated cup body 101. The outer shell 302 is fixedly connected to the inner shell 306, the ratchet groove 307, and the opening. The outer guide channel 305 is adjustable relative to the inner guide channel 311. The fixed retaining ring 309 is fixedly connected to the docking base plate 310. The inner guide channel 311 is located inside the fixed retaining ring 309 and connects to the inside of the thermos cup 101. The inner shell 306 is rotatably and sealed to the outer layer of the fixed retaining ring 309. At the same time, the inner shell 306 and the outer layer of the fixed retaining ring 309 are provided with guide holes. There are four guide holes in a group, and four groups are provided in a circle. The included angle between each group is the same, so four flow adjustment levels can be achieved. At the same time, the ratchet groove 307 and the reset stop 313 engage with each other, so that the outer shell 302, which is fixedly connected to the ratchet groove 307, can only rotate in one direction. Due to the rotation characteristics of the ratchet and the reset stop 313, the outer shell 302 can only rotate in one direction. The damping characteristic of 13 gives it a jolt during rotation, allowing for gear rotation. The water flow path is as follows: insulated cup body 101 — inner guide channel 311 — fixed baffle ring 309 guide hole — inner shell 306 guide hole — outer guide channel 305 — outer shell 302 outlet. The outlet of the outer shell 302 is equipped with a water outlet sliding cover 308 for opening and closing the outlet. It should be noted that the touch screen 304 integrates a control module, which can adjust the rotation of the servo motor 314 via touch. The servo motor 314 drives the transmission rod 315 to rotate at a maximum angle of 160 degrees, with each 11.25-degree rotation representing one gear adjustment. Since the guide hole is designed with 4 holes and 4 groups, the flow rate of the opening can be adjusted by controlling the servo motor 314 via touch.
[0027] To facilitate understanding of the above-mentioned technical solutions of this utility model, the working principle or operation method of this utility model in actual process will be described in detail below.
[0028] In summary, with the help of the above-mentioned technical solution of this utility model, the base structure 2 connected to the bottom of the cup structure 1 has a charging function, which can charge other devices through an external power data cable. At the same time, it can heat and keep the inside of the cup structure 1 warm. The adjustment structure 3 can adjust the water flow by rotating it. The inside of the insulated cup body 101 of the cup structure 1 is a metal insulated inner liner. The filter screen 102 is used to separate the water from the soaking material. The threaded docking groove of the docking module 103 is used to thread-connect the base structure 2. The heat conduction contact block can be used to cooperate with the base structure 2 for heating and heat preservation. The battery module built into the cup base 201 of the base structure 2 can be connected through a power cord. The device can be charged using mains power or an external power source, or connected to electrical equipment for power supply and reverse charging. The resistance wire is electrically connected to the battery module, which, in conjunction with the temperature control module integrated in the battery module, can heat the resistance wire. The resistance wire then heats and keeps the water in the metal insulated inner liner warm through the heat conduction patch 203 and the heat conduction contact block of the cup body structure 1. The cup lid 301 has a built-in threaded groove for threaded connection with the mouth of the insulated cup body 101. The outer shell 302 is fixedly connected to the inner shell 306, ratchet groove 307, and the external flow guide groove 305, which can be rotated and adjusted relative to the inner flow guide groove 311. The fixed retaining ring 309 is fixedly connected to the docking base plate 310. The inner guide channel 311 is located inside the fixed retaining ring 309 and connects to the inside of the thermos cup 101. The inner shell 306 is rotatably connected to the outer layer of the fixed retaining ring 309. Simultaneously, the inner shell 306 and the outer layer of the fixed retaining ring 309 are provided with guide holes, four in a group, for a total of four groups around the circumference. The included angle between each group is the same, thus enabling four levels of flow adjustment. Furthermore, the engagement of the ratchet groove 307 and the reset stop 313 ensures that the outer shell 302, which is fixedly connected to the ratchet groove 307, can only rotate in one direction. Due to the rotational characteristics of the ratchet and the damping characteristics of the reset stop 313, it exhibits a jolt during rotation, thus allowing for... When the gear is rotated, the water flow path is as follows: insulated cup body 101—inner guide groove 311—fixed baffle ring 309 guide hole—inner shell 306 guide hole—outer guide groove 305—outer shell 302 outlet. The outlet of the outer shell 302 is equipped with a water outlet sliding cover 308 for opening and closing the outlet. It should be noted that the touch screen 304 integrates a control module. The rotation of the servo motor 314 can be adjusted by touch. The servo motor 314 drives the transmission rod 315 to rotate at a maximum angle of 160 degrees. Each 11.25-degree rotation is one gear adjustment. Since the guide hole is designed with 4 holes and 4 groups, the flow rate of the opening can be adjusted by touch control of the servo motor 314.
[0029] The above description is only a preferred embodiment of the present utility model and is not intended to limit the present utility model. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of the present utility model should be included within the protection scope of the present utility model.
Claims
1. A touch-sensitive thermos cup with a water flow rate adjustment structure, characterized in that, It includes a cup body structure (1), an adjustment structure (3) connected to the top of the cup body structure (1), a base structure (2) connected to the bottom of the cup body structure (1), and a charging device with a heating effect on the base structure (2). The adjustment structure (3) includes a docking cup cover (301), an outer shell (302), an integrated module (303), a touch screen (304), an outer guide channel (305), an inner shell (306), a ratchet groove (307), a water outlet slide cover (308), a fixing ring (309), a docking base plate (310), an inner guide channel (311), a fixing ring (312), and a reset stop block (313). The docking cup cover (301) is fixedly docked with the docking base plate (310), and the outer shell (302) is provided on the docking base plate (310) for sealing and rotation.
2. A touch-sensitive thermos cup with a water flow rate adjustment structure according to claim 1, characterized in that, The cup structure (1) includes a thermos cup body (101), a filter screen (102), and a docking module (103). The thermos cup body (101) has a filter screen (102) at its mouth and a docking module (103) at its bottom. The docking module (103) includes a threaded docking groove and a heat conduction contact block.
3. A touch-sensitive thermos cup with a water flow rate adjustment structure according to claim 2, characterized in that, The base structure (2) includes a cup base (201), a charging interface (202), and a heat conduction patch (203). The cup base (201) has an integrated battery module.
4. A touch-sensitive thermos cup with a water flow rate adjustment structure according to claim 3, characterized in that, The top surface of the cup base (201) is integrated with a resistance wire, and the resistance wire is matched with a heat conduction patch (203). The side of the cup base (201) is integrated with a charging interface (202), which is electrically connected to the battery module.
5. A touch-sensitive thermos cup with a water flow rate adjustment structure according to claim 4, characterized in that, The outer shell (302) is provided with an inner shell (306) inside. An outer guide groove (305) is provided between the outer shell (302) and the inner shell (306). A fixed retaining ring (309) is fixedly provided on the docking base plate (310). An inner guide groove (311) is opened inside the fixed retaining ring (309). A fixed ring (312) is fixedly provided at the top center of the docking base plate (310). A reset stop block (313) is provided on the periphery of the fixed ring (312). The reset stop block (313) is connected to the docking base plate (310).
6. A touch-sensitive thermos cup with a water flow rate adjustment structure according to claim 5, characterized in that, An integrated module (303) is fixedly provided at the top of the fixed ring (312). The integrated module (303) integrates a touch screen (304) and a detachable battery module. A water outlet is provided on the outer shell (302). A water outlet cover (308) is slidably provided on the outer shell (302) at the water outlet. A servo motor (314) is fixedly provided at the bottom of the fixed ring (312). A transmission rod (315) is fixedly connected to the drive end of the servo motor (314). One end of the transmission rod (315) is fixedly connected to the ratchet groove (307).