Intelligent brewing tea art machine
By designing energy storage and separation components and side-push components in the tea maker, and using a motor to control the rotation of the teaware and the limiting plate system, the problem of liquid overflowing when the tea maker is tilted is solved, achieving stable liquid pouring and safety in the teacup.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- CHAXIAONIU (XIAMEN) INTELLIGENT TECH CO LTD
- Filing Date
- 2025-06-13
- Publication Date
- 2026-04-17
AI Technical Summary
When a tea maker is tilted, any remaining liquid that hasn't flowed out can easily continue to pour into the teacup, causing the liquid to overflow.
A smart tea brewing machine was designed, which includes an energy storage and separation component and a side push component. The rotation of the teaware is controlled by a drive motor. The machine uses a limiting plate, a placement plate, a toothed plate and a gear system to prevent excessive liquid flow. The side push component pushes the teacup out of the pouring range.
This effectively prevents any remaining liquid from flowing into the teacup, avoiding spillage and improving the stability and safety of the tea maker.
Smart Images

Figure CN120284121B_ABST
Abstract
Description
Technical Field
[0001] This invention belongs to the field of tea brewing machines, specifically relating to an intelligent tea brewing machine. Background Technology
[0002] In existing technology, when using a tea maker to pour tea into a teacup, the remaining liquid that has not yet flowed out is easily poured back into the teacup, causing the liquid in the teacup to overflow. This situation urgently needs to be improved.
[0003] This invention seeks to mitigate or at least alleviate such problems or defects by providing new or otherwise improved tea maker machines. Summary of the Invention
[0004] In view of one or more of the above-mentioned defects or improvement needs of the prior art, the present invention provides an intelligent tea brewing machine, which has the advantage of preventing the remaining liquid that has not flowed out from continuing to pour into the teacup, thus preventing the liquid in the teacup from overflowing.
[0005] To achieve the above objectives, the present invention provides an intelligent tea brewing machine, comprising a tea brewing machine body, which includes a shell, a drive motor, a fan, and a placement container. A limiting plate is disposed at the output end of the drive motor, and a tea pouring device is disposed on the limiting plate. The tea brewing machine body also includes a water storage box, and a strainer is disposed inside the water storage box. A limiting ring is disposed inside the strainer. The machine further includes:
[0006] An energy storage and separation component is composed of an energy storage component and a separation component connected to the energy storage component. The energy storage component can pass through the limiting ring. When the liquid injected into the teacup on the energy storage component reaches a first predetermined value, the energy storage component can be displaced to drive the separation component to move and push away the teaware located above the teacup.
[0007] The side pusher is detachably installed on one side wall of the water storage box, and the side pusher is linked with the energy storage component of the energy storage separation component. The side pusher can be pulled when the energy storage component is displaced. When the side pusher generates a pulling action, it can push the teacup on the energy storage component to move, so that the teacup on the energy storage component is removed from the pouring range of the tea set.
[0008] As a further improvement of the present invention, the energy storage component of the energy storage separation component includes:
[0009] The base is installed inside the water storage box, and an energy storage rod is slidably installed inside the base;
[0010] The first spring is slidably arranged on the energy storage rod;
[0011] A placement plate is connected to the energy storage rod, and the placement plate can pass through the limiting ring;
[0012] The pressure roller is rotatably mounted at the tail end of the energy storage rod;
[0013] An internal base is located inside the water storage box. A limiting rod is slidably arranged on the internal base. A step plate is arranged on one end of the limiting rod. A second spring is slidably sleeved on the limiting rod, and the second spring is located between the internal base and the step plate.
[0014] A toothed plate is disposed on the stepped plate and extends along the length of the stepped plate.
[0015] As a further improvement of the present invention, the step plate has a first side and a second side, and there is a length difference between the first side and the second side. In the initial position, the step plate can abut against the pressure roller through the first side. When the pressure roller is pressed down, it can move from the first side to the second side and abut against the second side. The step plate has a tendency to move to the right.
[0016] As a further improvement of the present invention, in the initial position, the placement plate can pass through the limiting ring, and the highest point of the placement plate is flush with the highest point of the limiting ring. The energy storage rod is located between the base and the placement plate, and the energy storage rod is in a relaxed state.
[0017] As a further improvement of the present invention, the energy storage separation component includes a separation element comprising:
[0018] The first rotating shaft is rotatably arranged inside the water storage box. There are two sets of first gears on the first rotating shaft. One set of first gears meshes with the toothed plate, and the other set of first gears is fitted with a belt.
[0019] The second rotating shaft is rotatably installed inside the water storage box. The second rotating shaft has a second gear, which is wound around the belt.
[0020] A horizontal plate is installed inside the water storage box, and the horizontal plate is passed through by the second rotating shaft;
[0021] A half gear is disposed at one end of the second rotating shaft, and a rocker arm is provided on the half gear, and an insert rod is disposed on the rocker arm;
[0022] A cross plate is rotatably arranged on the horizontal plate. The cross plate has multiple sets of actuating grooves. When the actuating groove is passed through the insertion rod, the cross plate can be rotated.
[0023] The column wheel is arranged on the cross plate;
[0024] An outer cylinder is installed inside the water storage box. An inner cylinder is slidably installed inside the outer cylinder. A separation ring is provided on the inner cylinder. A follower rod that can slide inside the roller is located in the middle of the inner cylinder.
[0025] As a further improvement of the present invention, a ball is provided on one end of the follower rod that penetrates into the column wheel, and a drive groove is also provided in the column wheel. The drive groove is formed by connecting multiple sets of continuous V-grooves. In the initial position, the ball provided by the follower rod is located at the lowest point of the multiple sets of continuous V-grooves.
[0026] As a further improvement of the present invention, in the initial position, the separating ring is located above the placement plate and can cover the teacup inside it. When the separating ring moves upward, it can push away the teaware that is located above the teacup.
[0027] As a further improvement of the present invention, the rocker arm can extend along the center of the cross section of the half gear toward the radius of the cross section of the half gear, and the insert can pass through the actuation groove of the cross plate.
[0028] As a further improvement of the present invention, the side-pushing member includes:
[0029] An integrated frame, which is detachably installed on one side wall of the water storage box;
[0030] A displacement plate is rotatably arranged inside the integrated frame. A third spring is detachably installed on the displacement plate, and one end of the third spring is connected to the bottom surface of the integrated frame.
[0031] A step block is detachably mounted on the displacement plate, forming an abutting step between the step block and the displacement plate. A V-shaped lever is rotatably mounted on the step block, and the V-shaped lever is rotatably connected to the integrated frame.
[0032] A pressure ring is rotatably arranged within the integrated frame. A pressure plate is detachably arranged on the pressure ring. A connecting rod is also detachably installed on the pressure ring, and the connecting rod is rotatably connected to the energy storage separation component. In the initial position, the pressure plate and the contact step are in contact with each other.
[0033] As a further improvement of the present invention, the V-shaped lever can pass through the energy storage separation member, and the V-shaped lever can abut against the teacup on the energy storage separation member.
[0034] In summary, the beneficial effects of the above-described technical solutions conceived by this invention compared with the prior art include:
[0035] 1. The intelligent tea brewing machine of the present invention, through the arrangement of energy storage and separation components, allows the operator to turn on the drive motor to rotate the tea pouring utensils, thereby pouring the liquid in the tea pouring utensils into the teacup. When the liquid in the teacup reaches a first predetermined value, the placement plate can move down along the limiting ring, and at the same time, the energy storage rod moves down and squeezes the first spring. When the pressure roller moves down from the first side to the second side, the toothed plate moves to the right. When the toothed plate moves to the right, it can drive the first rotating shaft to rotate, thereby driving the belt to rotate, which in turn drives the second gear and half gear to rotate. Thus, each time the insertion rod is inserted into the cross plate, it can actuate the cross plate to rotate, and at the same time drive the column wheel to rotate. When the column wheel rotates, it can drive the follower rod to move in the drive groove of the column wheel, and can pull the inner cylinder and the separation ring to move up. When the separation ring moves up, it can push the tea pouring utensils located above the teacup away, which can effectively prevent the remaining liquid in the tea pouring utensils from continuing to pour into the teacup and causing the liquid in the teacup to overflow.
[0036] 2. The intelligent tea brewing machine of the present invention, through the arrangement of the side-pushing component, allows the operator to pull the connecting rod to move to the right when the limiting rod moves to the right, and simultaneously causes the pressure ring and pressure plate to rotate, causing the pressure plate to press the displacement plate downward and causing the V-shaped lever to flip. Initially, the V-shaped lever is in contact with the teacup, so when the V-shaped lever flips, it can push the teacup to deviate, so that the teacup on the energy storage component is removed from the pouring range of the teaware, which can prevent the remaining liquid in the teaware from continuing to flow into the teacup and causing the liquid in the teacup to overflow, thus promoting the use of the energy storage separation component. On the other hand, when the limiting rod moves to the right, it can generate a traction object to reduce the impact force generated when the pressure roller drops instantaneously, which causes the rapid movement impact of the toothed plate to cause the inner cylinder to move upward rapidly and the impact force to be too large. Attached Figure Description
[0037] Figure 1 This is a schematic diagram of the overall structure of the intelligent tea brewing machine of the present invention;
[0038] Figure 2 This is an exploded view of the intelligent tea brewing machine of the present invention;
[0039] Figure 3 From another perspective, this invention Figure 2 A schematic diagram of the structure at that time;
[0040] Figure 4 This is a schematic diagram of the structure of the water storage box and the leak plate combined according to the present invention;
[0041] Figure 5 This is a schematic diagram of the structure of the water storage box and the leak plate when they are separated.
[0042] Figure 6 From another perspective, this invention Figure 5 A schematic diagram of the structure at that time;
[0043] Figure 7 This is a schematic diagram of the structure of the energy storage separation component and the side thrust component of the present invention when they are combined.
[0044] Figure 8 This is a schematic diagram of the structure of the present invention when the energy storage separation component and the side thrust component are combined from another perspective;
[0045] Figure 9 For the present invention Figure 8 Enlarged view of point A;
[0046] Figure 10 For the present invention Figure 8 Enlarged view of point B.
[0047] In all the accompanying drawings, the same reference numerals denote the same technical features, specifically: 1. Tea machine body; 11. Outer shell; 12. Drive motor; 13. Limiting plate; 14. Tea pouring utensils; 15. Fan; 16. Placement hopper; 2. Water storage box; 21. Drain plate; 22. Limiting ring; 3. Energy storage separation component; 31. Base; 32. Energy storage rod; 33. First spring; 34. Placement plate; 35. Pressure roller; 36. Internal seat; 37. Limiting rod; 371. Second spring; 372. Step plate; 373. Toothed plate 374. First rotating shaft; 375. First gear; 376. Belt; 38. Second rotating shaft; 381. Second gear; 382. Horizontal plate; 383. Half gear; 384. Swing rod; 385. Insert rod; 386. Cross plate; 387. Column wheel; 388. Follower rod; 39. Outer cylinder; 391. Inner cylinder; 392. Separation ring; 4. Side push component; 41. Integrated frame; 42. Displacement plate; 43. Third spring; 44. Step block; 45. V-shaped lever; 46. Pressure ring; 47. Pressure plate; 48. Connecting rod. Detailed Implementation
[0048] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.
[0049] The terminology used herein is for the purpose of describing particular embodiments only and is not intended to limit the invention. The terms “comprising,” “including,” etc., as used herein indicate the presence of the stated features, steps, operations, and / or components, but do not exclude the presence or addition of one or more other features, steps, operations, or components.
[0050] All terms used herein (including technical and scientific terms) have the meanings commonly understood by those skilled in the art, unless otherwise defined. It should be noted that the terms used herein are to be interpreted in a manner consistent with the context of this specification, and not in an idealized or overly rigid way.
[0051] In the embodiments, by Figure 1-10 Provided is an intelligent tea brewing machine, comprising a tea brewing machine body 1, within which are a shell 11, a drive motor 12, a fan 15, and a placement tray 16; a limiting plate 13 is disposed at the output end of the drive motor 12, and a tilting teaware 14 is disposed on the limiting plate 13; a water storage box 2 is also disposed within the tea brewing machine body 1, and a strainer 21 is disposed within the water storage box 2, with a limiting ring 22 disposed within the strainer 21; further comprising: an energy storage and separation component 3, which consists of an energy storage element and a separation element connected to the energy storage element, wherein the energy storage element can... It can pass through the limiting ring 22. When the liquid injected into the teacup on the energy storage component reaches the first predetermined value, it can activate the displacement of the energy storage component to drive the separation component to move and push the pouring teaware 14 above the teacup away; the side push component 4 is detachably installed on one side wall of the water storage box 2, and the side push component 4 is linked with the energy storage component of the energy storage separation component 3. The side push component 4 can be pulled when the energy storage component is displaced. When the side push component 4 generates a pulling action, it can push the teacup on the energy storage component to move so that the teacup on the energy storage component is removed from the pouring range of the pouring teaware 14.
[0052] The overall concept of this invention is as follows: through the deployed energy storage and separation component 3, the operator turns on the drive motor 12 to rotate the pouring teaware 14, thereby pouring the liquid in the pouring teaware 14 into the teacup. When the liquid in the teacup reaches a first predetermined value, the placement plate 34 moves down along the limiting ring 22, and at the same time, the energy storage rod 32 moves down and compresses the first spring 33. When the pressure roller 35 moves down from the first side to the second side, the toothed plate 373 moves to the right. After activation, it can drive the first rotating shaft 374 to rotate, which in turn drives the belt 376 to rotate, thereby driving the second gear 381 and the half gear 383 to rotate. Thus, each time the insert rod 385 is inserted into the cross plate 386, it can actuate the cross plate 386 to rotate, and at the same time drive the column wheel 387 to rotate. When the column wheel 387 rotates, it can drive the follower rod 388 to move in the drive groove of the column wheel 387, and can pull the inner cylinder 391 and the separating ring 392 upward. When the separating ring 392 moves upward, it can tilt the tea set 14 located above the teacup. The push mechanism effectively prevents any remaining liquid from the spilled teaware 14 from flowing back into the teacup, thus preventing spillage. The side-pushing component 4 allows the operator to move the limiting rod 37 to the right, which in turn pulls the connecting rod 48 to the right. Simultaneously, it rotates the pressure ring 46 and the pressure plate 47, causing the pressure plate 47 to press the displacement plate 42 downwards and causing the V-shaped lever 45 to flip. Initially, the V-shaped lever 45 is in contact with the teacup; therefore, when the V-shaped lever 45 flips, it can... The teacup is pushed to deviate from its position, causing it to move away from the pouring range of the teapot 14. This prevents any remaining liquid in the teapot 14 from flowing back into the teacup and causing it to overflow, thus promoting the use of the energy storage separation component 3. On the other hand, when the limit rod 37 moves to the right, it generates a traction force to reduce the impact force generated when the pressure roller 35 drops instantaneously, which would otherwise cause the rapid movement of the toothed plate 373 and result in an excessively large impact force on the rapid upward movement of the inner cylinder 391.
[0053] Next, a more specific structure and construction of the energy storage separation component 3 will be given for further explanation. The energy storage components of the energy storage separation component 3 include a base 31, which is arranged inside the water storage box 2, and an energy storage rod 32 is slidably arranged inside the base 31; a first spring 33, which is slidably arranged on the energy storage rod 32; a placement plate 34, which is connected to the energy storage rod 32 and can pass through the limiting ring 22; a pressure roller 35, which is rotatably arranged at the tail end of the energy storage rod 32; and an inner seat 36, which is located in the water storage box 2. Inside, a limiting rod 37 is slidably arranged on the inner seat 36, and a step plate 372 is arranged on one end of the limiting rod 37. A second spring 371 is slidably sleeved on the limiting rod 37, and the second spring 371 is located between the inner seat 36 and the step plate 372; a toothed plate 373 is arranged on the step plate 372 and extends along the length direction of the step plate 372; the energy storage separation component 3 has a separation component including a first rotating shaft 374, which is rotatably arranged in the water storage box 2, and two sets of first... Gears 375, one set of first gears 375 meshing with a toothed plate 373, and another set of first gears 375 fitted with a belt 376; a second rotating shaft 38, rotatably mounted inside the water storage box 2, with a second gear 381 on the second rotating shaft 38, and the second gear 381 being wound around the belt 376; a cross plate 382, mounted inside the water storage box 2, through which the second rotating shaft 382 passes; and a half gear 383, mounted at one end of the second rotating shaft 38, with a rocker arm 384 on the half gear 383. A rod 385 is mounted on the rocker arm 384; a cross plate 386 is rotatably mounted on the horizontal plate 382, and has multiple sets of actuating grooves, which can cause the cross plate 386 to rotate when the rod 385 passes through the actuating grooves; a roller 387 is mounted on the cross plate 386; an outer cylinder 39 is mounted inside the water storage box 2, and an inner cylinder 391 is slidably mounted inside the outer cylinder 39, with a separation ring 392 on the inner cylinder 391, and a follower rod 388 that can slide inside the roller 387 in the middle of the inner cylinder 391.
[0054] Next, the working principle and effect of the energy storage and separation component 3 will be further explained. The operator turns on the drive motor 12 to make the pouring teaware 14 rotate, so as to pour the liquid in the pouring teaware 14 into the teacup. When the liquid in the teacup reaches the first predetermined value, the placement plate 34 can move down along the limiting ring 22, and at the same time, the energy storage rod 32 moves down and squeezes the first spring 33 to compress it. When the pressure roller 35 moves down from the first side to the second side, it causes the toothed plate 373 to move to the right. When the toothed plate 373 moves to the right, it can drive the first rotating shaft 374 to rotate, which in turn drives the belt 376 to rotate. The movement drives the second gear 381 and half gear 383 to rotate, thereby causing the cross plate 386 to rotate each time the insert rod 385 is inserted into the cross plate 386, and simultaneously driving the column wheel 387 to rotate. When the column wheel 387 rotates, it can drive the follower rod 388 to move in the drive groove of the column wheel 387, and can pull the inner cylinder 391 and the separating ring 392 upward. When the separating ring 392 moves upward, it can push away the pouring teaware 14 located above the teacup, which can effectively prevent the remaining liquid in the pouring teaware 14 from continuing to flow into the teacup and causing the liquid in the teacup to overflow.
[0055] In some embodiments, more specifically, in order to further improve the elastic energy storage effect of the step plate 372 on the pressure roller 35, the step plate 372 has a first side and a second side, and there is a length difference between the first side and the second side. In the initial position, the step plate 372 can abut against the pressure roller 35 through the first side. When the pressure roller 35 is pressed down, it can move from the first side to the second side and abut against each other. The step plate 372 has a tendency to move to the right.
[0056] In some embodiments, in order to prevent the placement plate 34 from tipping over during the downward movement, the placement plate 34 is able to pass through the limiting ring 22 in the initial position, and the highest point of the placement plate 34 is flush with the highest point of the limiting ring 22. The energy storage rod 32 is located between the base 31 and the placement plate 34, and the energy storage rod 32 is in a relaxed state.
[0057] In some embodiments, in order to make the follower rod 388 slide more smoothly in the column wheel 387, a ball is provided at one end of the follower rod 388 that enters the column wheel 387, and a drive groove is also provided in the column wheel 387. The drive groove is formed by connecting multiple sets of continuous V-grooves. In the initial position, the ball of the follower rod 388 is located at the lowest point of the multiple sets of continuous V-grooves.
[0058] In some embodiments, in order for the separating ring 392 to cover the teacup and to make timely contact with the pouring teaware 14 so as to push the pouring teaware 14 away, in the initial position, the separating ring 392 is located above the placement plate 34 and can cover the teacup inside it. When the separating ring 392 moves upward, it can push away the pouring teaware 14 located above the teacup.
[0059] In some embodiments, more specifically, in order to make the insertion rod 385 more stable when it is inserted into the cross plate 386, the rocker arm 384 can extend along the cross center of the half gear 383 toward the cross radius of the half gear 383, and the insertion rod 385 can pass through the actuation groove of the cross plate 386.
[0060] Next, a more specific structure and construction of the side-push component 4 will be given for further explanation. The side-push component 4 includes an integrated frame 41, which is detachably installed on one side wall of the water storage box 2; a displacement plate 42, which is rotatably arranged inside the integrated frame 41, and a third spring 43 is detachably installed on the displacement plate 42, with one end of the third spring 43 connected to the bottom surface of the integrated frame 41; and a step block 44, which is detachably arranged on the displacement plate 42. A contact step is formed between the step block 44 and the displacement plate 42. A V-shaped lever 45 is rotatably arranged on the step block 44 and is rotatably connected to the integrated frame 41. A pressure ring 46 is rotatably arranged inside the integrated frame 41. A pressure plate 47 is detachably arranged on the pressure ring 46. A connecting rod 48 is also detachably installed on the pressure ring 46 and is rotatably connected to the energy storage separation component 3. In the initial position, the pressure plate 47 and the contact step are in contact with each other.
[0061] Next, the working principle and effect of the side-push component 4 will be further explained. When the operator moves the limit rod 37 to the right, it can pull the connecting rod 48 to the right and simultaneously rotate the pressure ring 46 and the pressure plate 47. The pressure plate 47 presses the displacement plate 42 down and causes the V-shaped lever 45 to flip. Initially, the V-shaped lever 45 is in contact with the teacup. Therefore, when the V-shaped lever 45 flips, it can push the teacup to deviate, so that the teacup on the energy storage component is removed from the pouring range of the pouring teaware 14. This can prevent the remaining liquid in the pouring teaware 14 from continuing to flow into the teacup and causing the liquid in the teacup to overflow, thus promoting the use of the energy storage separation component 3. On the other hand, when the limit rod 37 moves to the right, it can generate a traction to reduce the impact force generated by the pressure roller 35 when it drops instantly, which would cause the toothed plate 373 to move rapidly and cause the inner cylinder 391 to move rapidly and have an excessive impact force.
[0062] In some embodiments, more specifically, in order to enable the V-shaped lever 45 to contact the teacup, the V-shaped lever 45 can pass through the energy storage separation member 3, and the V-shaped lever 45 can contact the teacup on the energy storage separation member 3.
[0063] In summary, through the deployed energy storage and separation component 3, the operator turns on the drive motor 12 to rotate the pouring teaware 14, thereby pouring the liquid in the pouring teaware 14 into the teacup. When the liquid in the teacup reaches a first predetermined value, the placement plate 34 moves down along the limiting ring 22, and at the same time, the energy storage rod 32 moves down and compresses the first spring 33. When the pressure roller 35 moves down from the first side to the second side, it causes the toothed plate 373 to move to the right. When the toothed plate 373 moves to the right, it can drive the first rotating shaft. Rotation of 374 drives belt 376 to rotate, which in turn drives second gear 381 and half gear 383 to rotate. Each time the insert rod 385 inserts into the cross plate 386, it actuates the cross plate 386, causing it to rotate and simultaneously driving the column wheel 387 to rotate. When the column wheel 387 rotates, it drives follower rod 388 to move within the drive groove of the column wheel 387, pulling the inner cylinder 391 and separating ring 392 upwards. When the separating ring 392 moves upwards, it pushes away the tea-pouring vessel 14 located above the teacup, effectively... To prevent the remaining liquid in the spilled teaware 14 from continuing to flow into the teacup and causing it to overflow, a side-pushing component 4 is installed. When the operator moves the limiting rod 37 to the right, it pulls the connecting rod 48 to the right, simultaneously rotating the pressure ring 46 and the pressure plate 47. This causes the pressure plate 47 to press the displacement plate 42 downwards, and the V-shaped lever 45 to flip. Initially, the V-shaped lever 45 is in contact with the teacup; therefore, when the V-shaped lever 45 flips, it can push the teacup... The cup deviates from its original position, causing the teacup on the energy storage component to move out of the pouring range of the pouring teaware 14. This prevents the remaining liquid in the pouring teaware 14 from continuing to flow into the teacup and causing the liquid in the teacup to overflow. This promotes the use of the energy storage separation component 3. On the other hand, when the limit rod 37 moves to the right, it can generate a traction to reduce the impact force generated when the pressure roller 35 drops instantaneously, which would cause the rapid movement impact of the toothed plate 373 to cause the inner cylinder 391 to move upward rapidly and the impact force to be too large.
[0064] Although embodiments of the invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the invention, the scope of which is defined by the appended claims and their equivalents.
Claims
1. A smart tea brewing machine, comprising a main body, which includes a shell, a drive motor, a fan, and a placement container. A limiting plate is disposed at the output end of the drive motor, and a tea pouring device is disposed on the limiting plate. The main body also includes a water storage box, within which a strainer is disposed, and a limiting ring is disposed within the strainer. The machine is characterized in that... Also includes: An energy storage and separation component is composed of an energy storage component and a separation component connected to the energy storage component. The energy storage component can pass through the limiting ring. When the liquid injected into the teacup on the energy storage component reaches a first predetermined value, the energy storage component can be displaced to drive the separation component to move and push away the teaware located above the teacup. The side pusher is detachably installed on one side wall of the water storage box, and the side pusher is linked with the energy storage component of the energy storage separation component. The side pusher can be pulled when the energy storage component is displaced. When the side pusher generates a pulling action, it can push the teacup on the energy storage component to move, so that the teacup on the energy storage component is removed from the pouring range of the tea set. The energy storage components of this energy storage separation component include: The base is installed inside the water storage box, and an energy storage rod is slidably installed inside the base; The first spring is slidably arranged on the energy storage rod; A placement plate is connected to the energy storage rod, and the placement plate can pass through the limiting ring; The pressure roller is rotatably mounted at the tail end of the energy storage rod; An internal base is located inside the water storage box. A limiting rod is slidably arranged on the internal base. A step plate is arranged on one end of the limiting rod. A second spring is slidably sleeved on the limiting rod, and the second spring is located between the internal base and the step plate. A toothed plate is disposed on the stepped plate and extends along the length of the stepped plate. The energy storage separation component includes the following separation elements: The first rotating shaft is rotatably arranged inside the water storage box. There are two sets of first gears on the first rotating shaft. One set of first gears meshes with the toothed plate, and the other set of first gears is fitted with a belt. The second rotating shaft is rotatably installed inside the water storage box. The second rotating shaft has a second gear, which is wound around the belt. A horizontal plate is installed inside the water storage box, and the horizontal plate is passed through by the second rotating shaft; A half gear is disposed at one end of the second rotating shaft, and a rocker arm is provided on the half gear, and an insert rod is disposed on the rocker arm; A cross plate is rotatably arranged on the horizontal plate. The cross plate has multiple sets of actuating grooves. When the actuating groove is passed through the insertion rod, the cross plate can be rotated. The column wheel is arranged on the cross plate; An outer cylinder is installed inside the water storage box. An inner cylinder is slidably installed inside the outer cylinder. A separation ring is provided on the inner cylinder. A follower rod that can slide inside the roller is provided in the middle of the inner cylinder. The lateral thrust component includes: An integrated frame, which is detachably installed on one side wall of the water storage box; A displacement plate is rotatably arranged inside the integrated frame. A third spring is detachably installed on the displacement plate, and one end of the third spring is connected to the bottom surface of the integrated frame. A step block is detachably mounted on the displacement plate, forming an abutting step between the step block and the displacement plate. A V-shaped lever is rotatably mounted on the step block, and the V-shaped lever is rotatably connected to the integrated frame. A pressure ring is rotatably arranged within the integrated frame. A pressure plate is detachably arranged on the pressure ring. A connecting rod is also detachably installed on the pressure ring, and the connecting rod is rotatably connected to the energy storage separation component. In the initial position, the pressure plate and the contact step are in contact with each other. The step plate has a first side and a second side, and there is a length difference between the first side and the second side. In the initial position, the step plate can abut against the pressure roller through the first side. When the pressure roller is pressed down, it can move from the first side to the second side and abut against the second side. The step plate has a tendency to move to the right. In the initial position, the placement plate can pass through the limiting ring, and the highest point of the placement plate is flush with the highest point of the limiting ring. The energy storage rod is located between the base and the placement plate, and the energy storage rod is in a relaxed state.
2. The intelligent tea brewing machine according to claim 1, characterized in that, The follower rod has a ball at one end that extends into the roller, and the roller also has a drive groove, which is formed by a series of continuous V-grooves. In the initial position, the ball on the follower rod is located at the lowest point of the series of continuous V-grooves.
3. The intelligent tea brewing machine according to claim 2, characterized in that, In its initial position, the separating ring is located above the placement plate and can cover the teacup. When the separating ring moves upward, it can push away the teaware that is being poured over the teacup.
4. The intelligent tea brewing machine according to claim 3, characterized in that, The lever can extend along the center of the cross section of the half gear toward the radius of the cross section of the half gear, and the insert can pass through the actuation groove of the cross plate.
5. The intelligent tea brewing machine according to claim 4, characterized in that, The V-shaped lever can pass through the energy storage separation component and can abut against the teacup on the energy storage separation component.
Citation Information
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