Hair beating pipe assembly and efficient spiral air beating device

By setting a spiral channel on the surface of the paddle rod and designing its side walls into jagged shape, the problem of space occupation and cost caused by the length of the paddle core is solved, and an efficient paddle effect is achieved.

CN223053870UActive Publication Date: 2025-07-04GUANGDONG XINBAO ELECTRICAL APPLIANCES HLDG CO LTD
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Patent Information

Application Number
CN202422337285.X
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-09-25
Publication Date
2025-07-04
Estimated Expiration
2034-09-25

AI Technical Summary

Technical Problem

In existing squeezing devices, the longer length of the squeezing core leads to large volume, space and high cost, which affects the squeezing efficiency.

Method used

Set a spiral channel on the surface of the whisk rod, and design its side walls into serrations to increase the fluid stroke, and cut and squeeze large bubbles through the spiral channel to form small bubbles, achieving efficient feeding.

Benefits of technology

Without increasing the length of the whisk rod, the whisk efficiency and effect are improved, and the device volume and cost are reduced.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a whipping pipe assembly and an efficient spiral whipping device, the whipping pipe assembly comprises a whipping pipe and a whipping rod, the whipping pipe is hollow, and the whipping rod is assembled in the whipping pipe; a spiral channel is arranged on the surface of the whipping rod, and the side wall of the spiral channel is arranged in a sawtooth shape. The spiral channel is arranged on the surface of the whipping rod, so that the fluid stroke is increased under the condition that the length of the whipping rod is not changed, and an efficient feeding effect is realized; the side wall of the spiral channel is arranged in a sawtooth shape, so that in the flowing process of the fluid in the spiral channel, large bubbles in the fluid can be efficiently cut, extruded and broken to form small bubbles, and the whipping action is achieved.
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Description

Technical Field

[0001] The utility model relates to the technical field of whipping devices, and more specifically to a whipping tube assembly and an efficient spiral whipping device. Background Art

[0002] The production process of milk caps is to mix a certain proportion of air into the prepared milk slurry raw materials for whipping and expansion. During the whipping process, due to the gel property and surface tension of the raw materials themselves, the air mixed into the milk cap raw materials through mechanical action will be wrapped by protein molecules to form a foam with a film-like structure. An important factor affecting the whipping effect is the size of the formed bubbles. The denser the bubbles, the more significant the whipping effect.

[0003] Theoretically, when the air intake is constant, the length of the whipping core will affect the whipping efficiency. Increasing the length of the whipping core will, to a certain extent, improve the whipping efficiency. Therefore, in order to ensure the whipping efficiency, the existing whipping solutions on the market generally have a longer whipping core, and thus a longer whipping stroke. However, its disadvantage is that it results in a large volume, occupies a large space, and has a high cost of the whipping core.

[0004] In order to overcome the above problems, the applicant proposes the following technical solutions. Summary of the Utility Model

[0005] In view of this, the utility model discloses a whipping tube assembly and an efficient spiral whipping device.

[0006] To achieve the above object, the first aspect of the utility model proposes a whipping tube assembly, including: a whipping tube and a whipping rod. The whipping tube is hollow, and the whipping rod is assembled inside the whipping tube; a spiral channel is arranged on the surface of the whipping rod, and the side wall of the spiral channel is arranged in a serrated shape.

[0007] In this technology, by arranging a spiral channel on the surface of the whipping rod, the fluid travel is increased without changing the length of the whipping rod, achieving an efficient feeding effect; the serrated arrangement of the side wall of the spiral channel enables the fluid to be efficiently cut and squeezed to break large bubbles in the fluid into small bubbles during the flow in the spiral channel, thereby realizing the whipping action.

[0008] As a preferred solution of the utility model, the two side walls of the spiral channel are arranged opposite to each other, and convex teeth are formed on the two side walls. The convex teeth on the two side walls are arranged staggeredly, better cutting large bubbles in the fluid into small bubbles.

[0009] As a preferred solution of the utility model, the outer surface of the whipping rod is close to the inner wall of the whipping tube, better limiting the flow of the fluid along the spiral channel of the whipping rod.

[0010] As a preferred solution of the present utility model, the whipping tube includes: a hollow tube body, a feed head installed at the first end of the tube body, and a discharge head installed at the second end of the tube body; the feed head is provided with a feed channel; the discharge head is provided with a discharge channel; the whipping tube is designed as a split structure, which better assembles the whipping rod into the whipping tube, facilitating assembly; it is detachable, convenient for cleaning and later maintenance.

[0011] As a preferred solution of the present utility model, a plurality of feed head bosses are evenly distributed around the feed channel on the end face of the feed head, and gaps are formed between adjacent feed head bosses, so that the feed channel communicates with the spiral channel; a plurality of discharge head bosses are evenly distributed around the discharge channel on the end face of the discharge head, and gaps are formed between adjacent discharge head bosses, so that the discharge channel communicates with the spiral channel;

[0012] After designing the feed head bosses and discharge head bosses in this technology, the fluid better flows into the spiral channel from the gaps between the plurality of feed head bosses; at the same time, the fluid better flows from the spiral channel to the gaps between the plurality of discharge head bosses and into the discharge channel, better completing the flow of the fluid within the whipping tube assembly.

[0013] As a preferred solution of the present utility model, the feed head boss abuts against the first end of the whipping rod; the discharge head boss abuts against the second end of the whipping rod; the whipping rod is thus limited within the whipping tube, preventing the whipping rod from moving up and down within the whipping tube.

[0014] The second aspect of the present utility model discloses an efficient spiral whipping device, including: a pump and the whipping tube assembly; an air inlet pipe and a feed pipe are both connected to the inlet of the pump; a milk inlet pipe is connected to the outlet of the pump and the feed channel of the whipping rod assembly;

[0015] In this technology, the milk slurry raw material and air are sucked into the pump by the negative pressure generated when the pump operates. The milk slurry raw material and air are pressurized and transported into the whipping tube. The milk slurry raw material mixed with large air bubbles flows through the whipping tube assembly at a certain flow rate and pressure under the action of external forces such as the pump, thereby realizing the whipping action.

[0016] As a preferred solution of the present utility model, the air inlet pipe is provided with an air inlet seat and a valve body. Air flows into and through the valve body from the air inlet seat, and the valve body controls the on-off of the air inlet pipe; the on-off of the valve body is synchronous with the whipping action, preventing excessive air from entering and affecting the whipping effect.

[0017] As a preferred solution of the present utility model, the discharge channel of the whipping tube assembly is connected to a milk outlet pipe; the finished milk cap formed after whipping flows out through the milk outlet pipe and flows to the beverage area.

[0018] The remaining beneficial technical effects of the present utility model are embodied in the specific implementation manners. Description of the Drawings

[0019] To more clearly illustrate the technical solutions in the embodiments of the present invention or the prior art, the following will briefly introduce the drawings required for the description of the embodiments or the prior art. Obviously, the drawings in the following description are only the embodiments of the present invention. For those of ordinary skill in the art, without creative efforts, other drawings can also be obtained based on the provided drawings.

[0020] Figure 1 It is a schematic diagram of the combined state of the whipping tube assembly;

[0021] Figure 2 It is a schematic cross-sectional view of the whipping tube assembly;

[0022] Figure 3 It is an exploded view of the whipping tube assembly;

[0023] Figure 4 It is a schematic diagram of the whipping rod in the whipping tube assembly;

[0024] Figure 5 It is a schematic structural diagram of the high-efficiency spiral whipping device;

[0025] Figure 6 It is a schematic diagram of the principle of the high-efficiency spiral whipping device.

[0026] Explanation of reference numerals

[0027] Whipping tube assembly 00; large air bubbles 01; small air bubbles 02; whipping tube 100; feed channel 101; discharge channel 102; tube body 110; feed head 120; feed head boss 121; discharge head 130; discharge head boss 131; whipping rod 200; spiral channel 210; convex teeth 211; pump 300; intake pipeline 400; intake seat 410; valve body 420; feed pipeline 500; milk inlet pipeline 600; milk outlet pipeline 700. Detailed implementation manners

[0028] Now, the present invention will be further described in detail with reference to the accompanying drawings. These drawings are all simplified schematic diagrams, only showing the basic structure of the present invention in a schematic manner, so they only show the components related to the present invention.

[0029] Embodiment 1:

[0030] For the whipping tube assembly, please refer to Figures 1-4 as shown, it includes: a whipping tube 100 and a whipping rod 200. The whipping tube 100 is a straight tube and is hollow. The whipping rod 200 is assembled in the whipping tube 100; the surface of the whipping rod 200 is provided with a spiral channel 210, and the side wall of the spiral channel 210 is serrated.

[0031] As Figure 2As shown, during the fluid flow process, such as Figure 2 flowing in the direction of the arrow, the fluid enters the whipping tube 100 at the first end of the whipping tube 100, and then flows into the spiral channel 210, and flows towards the second end of the whipping tube 100 during the process of flowing along the spiral channel 210;

[0032] Since the spiral channel 210 is spirally arranged, the stroke of the fluid is increased while the length of the whipping rod 200 remains unchanged, achieving an efficient feeding effect;

[0033] In this embodiment, the whipping tube assembly is used to whip the milk cap, which is to mix the milk slurry raw material with a certain proportion of air for whipping and expansion, and the fluid refers to the mixture of the milk slurry raw material and air; such as Figure 4 As shown, during the process of the fluid flowing in the spiral channel 210, the large air bubbles 01 are cut, squeezed and broken by the serrated side walls of the spiral channel 210 to form small air bubbles 02, and finally whipped into the milk cap.

[0034] It should be noted that Figure 4 in, the fluid flows from top to bottom. In order to better show the cutting situation of the air bubbles, Figure 4 in only the state where the large air bubbles 01 are cut into small air bubbles 02 during the process of flowing in the spiral channel 210 is drawn. Actually, when flowing, the fluid is mixed with the milk slurry raw material and air.

[0035] In one embodiment, such as Figure 4 shown, the two side walls of the spiral channel 210 are arranged oppositely, and convex teeth 211 are formed on the two side walls, and the convex teeth 211 on the two side walls are staggered;

[0036] Specifically, from Figure 4 the orientation description, the two side walls of the spiral channel 210 refer to the upper and lower corresponding side walls, and the staggered arrangement of the convex teeth 211 on the two side walls makes the fluid flow in a curved shape up and down in the spiral channel 210, better cutting and squeezing the large air bubbles 01 to form small air bubbles 02, and the whipping effect is better.

[0037] In one embodiment, such as Figure 2 shown, the outer surface of the whipping rod 200 is close to the inner wall of the whipping tube 100, and the gap between the whipping rod 200 and the inner wall of the whipping tube 100 is minimized as much as possible.

[0038] In one embodiment, such as Figure 3 shown, the whipping tube 100 includes: a hollow tube body 110, a feeding head 120 installed at the first end of the tube body 110, and a discharging head 130 installed at the second end of the tube body 110; the feeding head 120 is provided with a feeding channel 101; the discharging head 130 is provided with a discharging channel 102;

[0039] Continuing as Figure 3As shown, the pipe body 110, the feeding head 120 and the discharging head 130 can be assembled by threading; internal threads are provided at both ends of the pipe body 110, and external threads are provided at one end of the feeding head 120 and the discharging head 130 inserted into the pipe body 110, so as to achieve threaded assembly;

[0040] During assembly, the discharging head 130 can be first screwed tightly onto the second end of the pipe body 110, then the whipping rod 200 is inserted into the pipe body 110 from the first end of the pipe body 110, and then the feeding head 120 is screwed tightly onto the first end of the pipe body 110 to complete the assembly.

[0041] After the whipping operation is completed, the pipe body 110, the feeding head 120, the discharging head 130 and the whipping rod 200 can be disassembled to facilitate the cleaning of the whipping pipe assembly 00.

[0042] In one embodiment, as Figure 2 and Figure 3 shown, a plurality of feeding head bosses 121 are evenly distributed around the feeding channel 101 on the end face of the feeding head 120. Specifically, four feeding head bosses 121 are provided, and a gap is formed between adjacent feeding head bosses 121 to connect the feeding channel 101 with the spiral channel 210;

[0043] A plurality of discharging head bosses 131 are evenly distributed around the discharging channel 102 on the end face of the discharging head 130. Specifically, four discharging head bosses 131 are provided, and a gap is formed between adjacent discharging head bosses 131 to connect the discharging channel 102 with the spiral channel 210;

[0044] Furthermore, the feeding head boss 121 abuts against the first end of the whipping rod 200; the discharging head boss 131 abuts against the second end of the whipping rod 200.

[0045] As Figure 3 shown, the fluid enters from the feeding channel 101 of the feeding head 120, flows through the gap between the plurality of feeding head bosses 121 to the whipping rod 200 and flows into the beginning of the spiral channel 210, then flows from the end of the spiral channel 210 to the gap between the plurality of discharging head bosses 131, and finally flows out from the discharging channel 102.

[0046] Embodiment 2

[0047] For the high-efficiency spiral whipping device, please refer to Figures 5-6 shown, it includes: a pump 300 and the whipping pipe assembly 00; an air inlet pipeline 400 and a feeding pipeline 500 are both connected to the inlet of the pump 300; a milk feeding pipeline 600 is connected to the outlet of the pump 300 and the feeding channel 101 of the whipping rod assembly 00;

[0048] During operation, air enters through the air inlet pipe 400, and the milk slurry raw material enters through the feeding pipe 500. Air and milk slurry enter the inlet of the pump 300 simultaneously, and then after a certain mixing in the pump 300, they enter the feeding channel 101 of the whipping rod assembly 00 through the milk inlet pipe 600 and are fully whipped inside the whipping rod assembly 00.

[0049] Furthermore, the air inlet pipe 400 is provided with an air inlet seat 410 and a valve body 420. Air flows in from the air inlet seat 410 and passes through the valve body 420, and the valve body 420 controls the on-off of the air inlet pipe 400.

[0050] Furthermore, the discharge channel 102 of the whipping tube assembly 00 is connected to the milk outlet pipe 700.

[0051] Specifically, during use, the milk cap whipping action of the high-efficiency spiral whipping device mainly occurs inside the whipping tube assembly 00. A certain proportion of air will be mixed into the milk slurry raw material before it enters the whipping tube assembly 00, and the air enters through the pores on the air inlet seat 410.

[0052] To prevent continuous air intake in the high-efficiency spiral whipping device after the whipping stops, which may cause excessive air intake during the next whipping and affect the whipping effect, a valve body 420 is provided in the air inlet pipe 400, and its on-off is synchronized with the whipping action.

[0053] It should be noted that the synchronization setting of the valve body 420 and the whipping action is controlled / set through the control system of the high-efficiency spiral whipping device, and the control system will not be elaborated here in detail; nor are the specific models of the valve body 420 and the pump 300 limited.

[0054] Due to the characteristics of the raw material itself, air will form numerous obvious large air bubbles 01 in the milk slurry raw material; the conveying power of the milk slurry raw material mainly relies on the pump 300. The negative pressure generated when the pump 300 works sucks the milk slurry raw material and air into the pump 300. The milk slurry raw material mixed with air is pressurized and conveyed into the whipping tube 100. The milk slurry raw material mixed with large air bubbles 01 flows through the whipping tube assembly 00 under the action of external forces such as the pump 300 at a certain flow rate and pressure. The inner wall of the whipping tube 100 is almost tightly fitted with the surface of the whipping rod 200. The spiral channel 210 designed on the surface of the whipping rod 200 can increase the fluid travel without changing the length of the whipping rod 200, and the spiral distribution layout can also achieve an efficient feeding effect;

[0055] At the same time, the upper and lower sides of the spiral channel 210 are respectively serrated and in a split state. The structural characteristics of the serrated setting and the spiral flow channel 210 with a small gap can efficiently cut and squeeze the large air bubbles 01 to break them into small air bubbles 02, thereby realizing the whipping action. The milk slurry raw material and air are fully mixed and whipped in the whipping tube and then form the finished milk cap and flow out through the milk outlet pipe 700 and finally flow to the beverage area.

[0056] The above description of the disclosed embodiments enables those skilled in the art to implement or use the present utility model. Various modifications to these embodiments will be apparent to those skilled in the art, and the general principles defined herein can be implemented in other embodiments without departing from the spirit or scope of the present utility model. Therefore, the present utility model will not be limited to the embodiments shown herein, but rather to the widest scope consistent with the principles and novel features disclosed herein.

Claims

1. Dispensing tube assembly, characterized in that: Comprising: A whipping tube (100) and a whipping rod (200), the whipping tube (100) is hollow, and the whipping rod (200) is assembled inside the whipping tube (100); a spiral channel (210) is arranged on the surface of the whipping rod (200), and the side wall of the spiral channel (210) is serrated.

2. The whipping tube assembly according to claim 1, wherein: The two side walls of the spiral channel (210) are arranged oppositely, and convex teeth (211) are formed on the two side walls, and the convex teeth (211) on the two side walls are staggered.

3. The whipping tube assembly according to claim 2, characterized in that: The outer surface of the whipping rod (200) is close to the inner wall of the whipping tube (100).

4. The whipping tube assembly according to claim 2, characterized in that: The whipping tube (100) comprises: a hollow tube body (110), a feeding head (120) installed at the first end of the tube body (110), and a discharging head (130) installed at the second end of the tube body (110); the feeding head (120) is provided with a feeding channel (101); the discharging head (130) is provided with a discharging channel (102).

5. The whipping tube assembly according to claim 4, characterized in that: A plurality of feeding head bosses (121) are evenly distributed around the feeding channel (101) on the end face of the feeding head (120), and a gap is formed between adjacent feeding head bosses (121) to communicate the feeding channel (101) with the spiral channel (210); A plurality of discharging head bosses (131) are evenly distributed around the discharging channel (102) on the end face of the discharging head (130), and a gap is formed between adjacent discharging head bosses (131) to communicate the discharging channel (102) with the spiral channel (210).

6. The whipping tube assembly according to claim 5, wherein: The feeding head boss (121) abuts against the first end of the whipping rod (200); the discharging head boss (131) abuts against the second end of the whipping rod (200).

7. High-efficiency spiral whipping device, characterized in that: Comprising: A pump (300) and a whipping tube assembly (00) according to any one of claims 1-6; An air inlet pipeline (400) and a feeding pipeline (500) are both connected to the inlet of the pump (300); a milk feeding pipeline (600) is connected to the outlet of the pump (300) and the feeding channel (101) of the whipping rod assembly (00).

8. The high-efficiency spiral whipping device according to claim 7, wherein: The air inlet pipeline (400) is provided with an air inlet seat (410) and a valve body (420), air flows in from the air inlet seat (410) and flows through the valve body (420), and the valve body (420) controls the on-off of the air inlet pipeline (400).

9. The high-efficiency spiral whipping device according to claim 8, wherein: The discharging channel (102) of the whipping tube assembly (00) is connected with a milk discharging pipeline (700).