Filling connection channel and oscillating filling structure
By combining ball joint connection and moving feed pipe, the problem of unstable material conveying in sausage stuffer is solved, realizing the flexibility and stability of filling connection channel, and improving the production efficiency and product quality of sausage stuffer.
Patent Information
- Application Number
- CN202423198982.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-24
- Publication Date
- 2025-11-25
- Estimated Expiration
- 2034-12-24
AI Technical Summary
In existing sausage twisting machines, the hose connection causes material pulsation, resulting in inconsistent specifications of the filled sausage products. In addition, there are problems such as high frictional resistance, uneven operation, and high failure rate.
The filling connection channel design adopts a ball joint connection, which includes a combination of a swing feed pipe, a ball joint groove and a ball joint head, to achieve flexible material transfer. Through the cooperation of the moving feed pipe and the connecting parts, the stability and sealing of the material during the conveying process are ensured.
It enables flexible and stable material conveying in the sausage twisting machine, reduces leakage and pressure loss, and improves production efficiency and product quality.
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Figure CN223585165U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] Embodiments of the present disclosure relate to the technical field of filling equipment, in particular, to a filling connection channel and a swing filling structure. BACKGROUND
[0002] A sausage twisting machine is a mechanical device specially used for processing materials into sausage products. The sausage filling and twisting processes are synchronized by mechanical structures. In the sausage filling process, a strong and powerful pumping system is used to accurately deliver the material into the casing. The pumping system has the ability to accurately control the flow and pressure of the material, thereby ensuring that the casing can be uniformly filled and avoiding the phenomenon of local overfilling or underfilling. When the casing is filled to a certain length, the twisting device of the machine is automatically started. The twisting device mainly relies on a rotating twisting tube to twist the casing. The twisting tube needs to move and rotate during operation, so the connection of the filling machine to the twisting tube requires a soft connection. In the prior art, a hose connection is usually selected, but the hose connection has the problem that material pulsation causes the specifications of the filled sausage products to be inconsistent. Although there are related alternative solutions in the prior art, the alternative solutions also have certain defects, such as large frictional resistance, unsmooth movement, high failure rate, etc. CONTENT OF THE UTILITY MODEL
[0003] To overcome the above-mentioned defects, embodiments of the present disclosure provide a filling connection channel and a swing filling structure, which solve the technical problem of poor material filling effect to the twisting tube in the related art when filling sausages.
[0004] According to one aspect, at least one embodiment of the present disclosure provides a filling connection channel, including a swing feeding pipe, the swing feeding pipe is swingly arranged, including:
[0005] a swing head, the swing head is swingly arranged, having a first material conveying channel;
[0006] a first connecting pipe, the first connecting pipe has a second material conveying channel, the first material conveying channel leads to the second material conveying channel, one of the first connecting pipe and the swing head has a first ball hinge groove, and the other has a first ball hinge head, the first ball hinge head is hinged on the first ball hinge groove.
[0007] For example, the filling connection channel provided by at least one embodiment of the present disclosure further includes:
[0008] a second connecting pipe, the second connecting pipe has a third material conveying channel, the second material conveying channel leads to the third material conveying channel, one of the first connecting pipe and the second connecting pipe has a second ball hinge groove, and the other has a second ball hinge head, the second ball hinge head is hinged on the second ball hinge groove.
[0009] For example, the filling connection channel provided in at least one embodiment of this disclosure further includes:
[0010] A movable feeding pipe is movably disposed on one side of the oscillating feeding pipe, and the oscillating feeding pipe leads to the movable feeding pipe.
[0011] For example, at least one embodiment of this disclosure provides a filling connection channel, wherein the third material conveying channel has a feeding port and further includes:
[0012] A connecting component is disposed on the movable feeding pipe and has a connecting cavity. The connecting cavity has a connecting port, which is connected to the movable feeding pipe. The feeding port reciprocates within the connecting cavity and leads to the connecting cavity.
[0013] For example, in at least one embodiment of this disclosure, a filling connection channel is provided, wherein the feeding port is spaced from the inner wall of the communicating cavity, the communicating cavity has an annular portion, and the feeding port is located within the annular portion.
[0014] For example, at least one embodiment of this disclosure provides a filling connection channel, wherein the connecting member has a first guide portion and a second guide portion, both of which are in frictional contact with the outer wall of the second connecting tube.
[0015] For example, at least one embodiment of this disclosure provides a filling connection channel in which the annular portion is located between the first guide portion and the second guide portion, both of which are annular.
[0016] For example, at least one embodiment of this disclosure provides a filling connection channel in which the first conveying channel and the second conveying channel pass through the first ball joint, and the second conveying channel and the third conveying channel pass through the second ball joint.
[0017] For example, the filling connection channel provided in at least one embodiment of this disclosure further includes:
[0018] Frame;
[0019] A fixed feeding head is provided on the frame.
[0020] A rotary joint having a first connection port and a second connection port, the first connection port being connected to the fixed feeding head, and the second connection port being connected to the first conveying channel.
[0021] According to another aspect, at least one embodiment of this disclosure also provides a swing filling structure, including the aforementioned filling connection channel, and further comprising:
[0022] A twisted tube is rotatably mounted on the movable feed tube.
[0023] The beneficial effects of the embodiments disclosed herein are as follows:
[0024] In this disclosure, when other components of the sausage twisting machine need to swing the feeding pipe to change position and angle, specifically when the sausage casings on the twisting pipe are used up and need to be added, the oscillating head needs to swing flexibly. Material enters the first conveying channel from an external source, then smoothly passes through the hinge between the first ball joint head and the first ball joint groove, enters the second conveying channel, and is finally transported to the subsequent processing area. The advantages of this design are twofold: first, the ball joint connection enables multi-directional flexible swinging of the oscillating head, meeting complex operational requirements; second, the ball joint connection ensures the sealing and stability of the material during conveying, reducing leakage and pressure loss, and is not affected by the swinging conveying action. Attached Figure Description
[0025] To more clearly illustrate the technical solutions in the embodiments of this disclosure, the accompanying drawings used in the description of the embodiments of this disclosure will be briefly introduced below. Obviously, the drawings described below are merely some exemplary embodiments of this disclosure. For those skilled in the art, other drawings can be obtained based on the content of the exemplary embodiments of this disclosure and these drawings without any creative effort.
[0026] Figure 1 This is a schematic diagram of the filling structure in one embodiment of the present disclosure;
[0027] Figure 2 for Figure 1 A top view of the filling structure in the embodiment;
[0028] Figure 3 for Figure 2 Schematic diagram of the AA cross-sectional structure in the embodiment;
[0029] Figure 4 for Figure 3 A partial enlarged structural diagram of B in the embodiment;
[0030] In the diagram: Swing head-1, First feeding channel-101, First ball joint groove-102, First connecting pipe-2, Second feeding channel-201, First ball joint head-202, Second ball joint head-203, Second connecting pipe-3, Third feeding channel-301, Second ball joint groove-302, Feed port-303, Moving feeding pipe-4, Connecting component-5, Connecting cavity-501, Connecting port-502, Spacing-503, Annular part-504, First guide part-505, Second guide part-506, Frame-6, Fixed feeding head-7, Rotary joint-8, First connecting port-801, Second connecting port-802, Twisted pipe-9. Detailed Implementation
[0031] The present disclosure will now be described in further detail with reference to the accompanying drawings and embodiments. It should be understood that the specific embodiments described herein are merely illustrative of the present disclosure and are not intended to limit the scope of the disclosure.
[0032] To keep the drawings concise, each drawing only schematically shows the parts relevant to the disclosure; these do not represent the actual structure of the product. Furthermore, for ease of understanding, in some drawings, only one of components with the same structure or function is schematically shown, or only one is labeled. In this document, "one" not only means "only one," but can also mean "more than one," and "several" includes "two" and "more than two."
[0033] In this document, it should be noted that, unless otherwise explicitly specified and limited, the terms "installation," "connection," and "linkage" should be interpreted broadly. For example, they can refer to fixed connections, detachable connections, or integral connections; they can refer to mechanical connections or electrical connections; they can refer to direct connections or indirect connections through an intermediate medium; and they can refer to the internal connection between two components. Those skilled in the art can understand the specific meaning of the above terms in this disclosure based on the specific circumstances.
[0034] In this disclosure, unless otherwise expressly specified and limited, "above" or "below" the second feature can include direct contact between the first and second features, or contact between the first and second features through another feature between them. Furthermore, "above," "over," and "on top" of the second feature includes the first feature directly above or diagonally above the second feature, or simply indicates that the first feature is at a higher horizontal level than the second feature. "Below," "below," and "under" the second feature includes the first feature directly below or diagonally below the second feature, or simply indicates that the first feature is at a lower horizontal level than the second feature.
[0035] In the description of this embodiment, terms such as "upper," "lower," "left," and "right" are based on the orientation or positional relationship shown in the accompanying drawings. They are used only for the convenience of description and simplification of operation, and are not intended to indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation. Therefore, they should not be construed as limitations on this disclosure.
[0036] Furthermore, in the description of this application, the terms "first," "second," etc., are used only to distinguish descriptions and should not be construed as indicating or implying relative importance.
[0037] like Figures 1-4As shown, a filling connection channel in one embodiment of the present disclosure is illustrated, including a swing feeding pipe, which is swing-configured and includes a swing head 1. The swing head 1 is swing-configured and has a first conveying channel 101. A first connecting pipe 2 has a second conveying channel 201, and the first conveying channel 101 leads to the second conveying channel 201. One of the first connecting pipe 2 and the swing head 1 has a first ball joint groove 102, and the other has a first ball joint head 202, which is hinged to the first ball joint groove 102.
[0038] In this filling connection channel: the oscillating feed pipe is designed to be oscillating. The oscillating head 1 is capable of oscillation and has a first conveying channel 101 inside for conveying materials. The first connecting pipe 2 has a second conveying channel 201, and the first conveying channel 101 and the second conveying channel 201 are interconnected to achieve continuous material transfer. Regarding the connection structure, one of the first connecting pipe 2 and the oscillating head 1 is provided with a first ball joint groove 102, and the other is provided with a first ball joint head 202, which is hinged to the first ball joint groove 102.
[0039] In actual operation, for example, when other parts of the sausage twisting machine need to swing the feeding pipe to change position and angle, such as when the sausage casings on the twisting pipe are used up and need to be added, the oscillating head 1 needs to swing flexibly. The material enters the first conveying channel 101 from the external source, then smoothly passes through the hinge between the first ball joint head 202 and the first ball joint groove 102, enters the second conveying channel 201, and is finally conveyed to the subsequent processing part.
[0040] The advantages of this design are: firstly, the ball joint connection enables multi-directional flexible swinging of the swing head 1, meeting complex operational requirements; secondly, the ball joint connection ensures the sealing and stability of materials during conveying, reducing leakage and pressure loss.
[0041] For example, in the continuous production process of enema twisting, the position and angle of the oscillating feed tube can be quickly and accurately adjusted according to different working scenarios and requirements, thereby improving production efficiency and product quality.
[0042] In terms of technical effectiveness, the design effectively solves the problems of flexibility and stability in the material conveying process. Overall working principle: Material is conveyed sequentially through the first conveying channel 101 of the swing head 1, the hinge point between the first ball joint head 202 and the first ball joint groove 102, and the second conveying channel 201 of the first connecting pipe 2. Simultaneously, the swing head 1 can flexibly swing to adapt to different working positions and angle requirements. Overall technical effect: Through the above design, the performance of the filling connection channel is optimized, improving the working efficiency and reliability of the sausage filling and twisting machine.
[0043] In some examples, a second connecting pipe 3 is also included, which has a third conveying channel 301 leading to the third conveying channel 301. The first connecting pipe 2 and the second connecting pipe 3 each have a second ball joint groove 302 and a second ball joint head 203, which is hinged to the second ball joint groove 302.
[0044] In this filling connection channel, a second connecting pipe 3 is also added. The second connecting pipe 3 has a third conveying channel 301 inside, and the second conveying channel 201 leads to the third conveying channel 301, realizing continuous material conveying. In terms of connection method, one of the first connecting pipe 2 and the second connecting pipe 3 has a second ball joint groove 302, and the other has a second ball joint head 203, with the second ball joint head 203 hinged to the second ball joint groove 302.
[0045] In practical applications, for example, when the working position and angle of the enema twisting machine require a wider range of adjustments, the swing of the swing head 1 drives the corresponding movement of the first connecting pipe 2. Simultaneously, due to the hinged relationship between the second ball joint head 203 and the second ball joint groove 302, the second connecting pipe 3 can also flexibly adapt to changes. The material flows smoothly through each channel sequentially, completing the conveying process.
[0046] The advantages of this design are twofold: First, by adding a second connecting pipe and ball joint connections, the flexibility and adjustability of the connection channel are further improved, adapting to more complex working scenarios. Second, the multi-segment ball joint connections ensure the stability and continuity of material conveying during large-scale adjustments, reducing the risk of interruptions and leaks.
[0047] For example, even with significant variations in the operating modes and positions of the sausage filling and twisting machine, it can maintain efficient and stable material delivery, improving production reliability and efficiency. In terms of technical effects, it significantly enhances the adaptability and stability of the filling connection channel.
[0048] Overall working principle: Material starts from the first conveying channel 101 of the swing head 1, and sequentially passes through the second conveying channel 201 of the first connecting pipe 2, the hinge point of the second ball joint head 203 and the second ball joint groove 302, and the third conveying channel 301 of the second connecting pipe 3 for conveying. Simultaneously, each component can flexibly swing and adjust its angle as needed. Overall technical effect: Through the above design, the structure of the filling connection channel is further optimized, improving the material conveying performance of the sausage stuffer under different working conditions.
[0049] In some examples, a movable feed tube 4 is also included, which is movably disposed on one side of the oscillating feed tube and the oscillating feed tube leads to the movable feed tube 4.
[0050] In this filling connection channel, a movable feed pipe 4 is also introduced. The movable feed pipe 4 is movably arranged on one side of the oscillating feed pipe, and the material in the oscillating feed pipe can pass to the movable feed pipe 4.
[0051] In actual working scenarios, for example, when the sausage filling and twisting machine needs to perform filling operations at different positions, the oscillating feeding tube adjusts its angle through its oscillation function, while driving the moving feeding tube 4 to move linearly according to specific needs, thereby realizing the feeding of sausage casings to the twisting tube and ensuring the accuracy of sausage filling.
[0052] The advantages of this design are twofold: First, it increases the adjustable range of the filling connection channel, better adapting to complex and changing production environments and different filling requirements, and facilitating casing feeding to the twisting tube. Second, the cooperation between the moving feed tube 4 and the oscillating feed tube allows for more accurate delivery of materials to the target position, improving filling precision and efficiency. Through the movement of the moving feed tube 4 and the oscillation of the oscillating feed tube, the sausage filling task can be completed quickly and accurately, and casing feeding to the twisting tube can be achieved.
[0053] In terms of technical effects, it effectively improves the flexibility and adaptability of the filling connection channel, ensuring the accuracy and stability of the filling process. Overall working principle: The material first passes through the oscillating feed pipe for conveying and angle adjustment, then enters the moving feed pipe 4. The moving feed pipe 4 moves according to the specific filling position, ultimately delivering the material accurately. Overall technical effect: By adding the moving feed pipe 4, the function of the filling connection channel is further improved, enhancing the filling performance and production efficiency of the sausage stuffer.
[0054] In some examples, the third feeding channel 301 has a feeding port 303 and also includes a connecting member 5, which is disposed on the movable feeding pipe 4 and has a connecting cavity 501. The connecting cavity 501 has a connecting port 502, which is connected to the movable feeding pipe 4. The feeding port 303 reciprocates within the connecting cavity 501 and leads to the connecting cavity 501.
[0055] In this filling connection channel: the third conveying channel 301 has a feed port 303. A connecting member 5 is also provided, which is installed on the movable feed pipe 4 and has a connecting cavity 501. The connecting cavity 501 has a connecting opening 502, and this connecting opening 502 communicates with the movable feed pipe 4. In actual operation, for example, when the movable feed pipe 4 moves, the feed port 303 of the third conveying channel 301 reciprocates within the connecting cavity 501 and leads to the connecting cavity 501.
[0056] The advantages of this design are: First, it ensures that during the movement of the moving feed pipe 4, the material can continuously and stably enter the connecting cavity 501 from the feed port 303, and then be conveyed to the moving feed pipe 4 through the connecting port 502. This achieves material feeding from the swinging first connecting pipe 2 and the second connecting pipe 3 to the moving feed pipe 4 without affecting their respective swinging and moving actions, and prevents interruption or leakage of material filling due to movement and swinging. Second, the connecting piece 5 acts as a buffer and transition, making the material conveying smoother and more stable, and achieving...
[0057] For example, in high-speed, continuous filling operations, it can effectively ensure an uninterrupted supply of materials, improving production efficiency and product quality.
[0058] In terms of technical effectiveness, the reliability and stability of the filling connection channel during the moving feeding process are enhanced. Overall working principle: Material is fed out from the feed port 303 of the third conveying channel 301. As the moving feeding pipe 4 moves, the feed port 303 reciprocates within the connecting cavity 501, continuously feeding material into the connecting cavity 501, and then through the connecting port 502 into the moving feeding pipe 4 for conveying. Overall technical effect: Through the above design, the material connection and conveying during the moving feeding process are optimized, improving the overall performance of the filling connection channel.
[0059] In some examples, the feed port 303 is spaced 503 from the inner wall of the communicating cavity 501, the communicating cavity 501 has an annular portion 504, and the feed port 303 is located within the annular portion 504.
[0060] In this filling connection channel: there is a gap 503 between the feed port 303 and the inner wall of the connecting cavity 501. The connecting cavity 501 has an annular portion 504, and the feed port 303 is located within the annular portion 504.
[0061] In actual working conditions, for example, when the moving feed pipe 4 moves, the feed port 303 moves within the annular portion 504. Due to the existence of the gap 503 between the feed port 303 and the inner wall of the connecting cavity 501, a certain feeding and conveying space is provided for the movement of the feed port 303, reducing the possibility of collision or friction between the feed port 303 and the inner wall of the connecting cavity 501.
[0062] The advantages of this design are: First, it effectively avoids direct contact and wear between the feed port 303 and the inner wall of the connecting cavity 501 caused by movement, thus extending the service life of the components. Second, the design of the spacer 503 and the annular part 504 ensures that even during movement, the material can stably enter the connecting cavity 501 from the feed port 303, and the conveying effect will not be affected by slight changes in position.
[0063] For example, it can maintain the stable operation of the filling connection channel during long-term, high-frequency mobile feeding operations, thereby reducing equipment maintenance costs.
[0064] In terms of technical effects, the stability and reliability of the filling connection channel during moving material feeding are improved, while reducing component wear. Overall working principle: During the movement of the moving feeding pipe 4, the feeding port 303 moves within the annular portion 504. The interval 503 ensures smooth movement of the feeding port 303, allowing material to continuously and stably enter the connecting cavity 501 from the feeding port 303. Overall technical effect: Through the above structural design, the performance of the filling connection channel during moving material feeding is further optimized, enhancing the durability and working efficiency of the equipment.
[0065] In some examples, the connecting member 5 has a first guide portion 505 and a second guide portion 506, both of which are in frictional contact with the outer wall of the second connecting pipe 3.
[0066] In this filling connection channel, the connecting member 5 has a first guide portion 505 and a second guide portion 506. In actual operation, both the first guide portion 505 and the second guide portion 506 are in frictional contact with the outer wall of the second connecting pipe 3.
[0067] For example, when the second connecting pipe 3 moves or swings as required by the work, the first guide part 505 and the second guide part 506 can guide and stabilize its movement.
[0068] The advantages of this design are twofold: First, the frictional contact with the outer wall of the second connecting pipe 3 reduces the swaying and deviation of the second connecting pipe 3 during movement, improving the accuracy and stability of the movement. Second, it helps to distribute the lateral force borne by the second connecting pipe 3, reducing the risk of damage to components due to uneven force distribution.
[0069] For example, during frequent filling operations, it can ensure the smooth movement of the second connecting pipe 3, thus extending the service life of the equipment.
[0070] In terms of technical effects, the accuracy and reliability of component movement in the filling connection channel are enhanced. Overall working principle: When the second connecting pipe 3 moves, the frictional contact between its outer wall and the first guide part 505 and the second guide part 506 provides guidance and stability, ensuring effective cooperation between the feed port 303 and the connecting cavity 501. Overall technical effect: By setting the first guide part 505 and the second guide part 506, the operating performance of the filling connection channel is further optimized, improving the stability and durability of the equipment.
[0071] In some examples, the annular portion 504 is located between the first guide portion 505 and the second guide portion 506, both of which are annular.
[0072] In this filling connection channel: the annular portion 504 is located between the first guide portion 505 and the second guide portion 506, and both the first guide portion 505 and the second guide portion 506 are annular.
[0073] In practical applications, for example, when the second connecting pipe 3 moves or swings, the annular first guide portion 505 and the second guide portion 506 can contact the outer wall of the second connecting pipe 3 in all directions, providing a uniform and stable guiding effect.
[0074] The advantages of this design are: First, the annular design makes the guiding effect more uniform, avoiding jamming or deviation caused by uneven local force. Second, placing the annular part 504 between the two annular guide parts further improves the stability and sealing of the structure, ensuring that the material can stably enter the annular part 504 through the feed port 303.
[0075] For example, it can effectively maintain the stable operation of the filling connection channel during long-term continuous operation, reducing the probability of failure.
[0076] In terms of technical effects, it significantly improves the guiding accuracy and sealing performance of the filling connection channel. Overall working principle: When the second connecting pipe 3 operates, its outer wall makes uniform contact with the annular first guide part 505 and second guide part 506, achieving precise guidance. The material smoothly enters the annular part 504 located in the middle from the feed port 303. Overall technical effect: This structural layout optimizes the overall performance of the filling connection channel, enhancing the reliability and working efficiency of the equipment.
[0077] In some examples, the first conveying channel 101 and the second conveying channel 201 pass through the first ball joint 202, and the second conveying channel 201 and the third conveying channel 301 pass through the second ball joint 203.
[0078] In this filling connection channel: the first material conveying channel 101 and the second material conveying channel 201 pass through the first ball joint head 202, and the second material conveying channel 201 and the third material conveying channel 301 pass through the second ball joint head 203.
[0079] In actual operation, for example, when material enters the first conveying channel 101 of the swing head 1 from an external source, since the channel passes through the first ball joint 202, the material can smoothly pass through the hinge between the first ball joint 202 and the first ball joint groove 102 and enter the second conveying channel 201 of the first connecting pipe 2. Similarly, the second conveying channel 201 and the third conveying channel 301 pass through the second ball joint 203, so that the material can be transferred unimpeded from the second conveying channel 201 of the second connecting pipe 3 to the third conveying channel 301.
[0080] The advantages of this design are twofold: First, it reduces resistance and pressure loss during material transport, ensuring efficient and stable material delivery. Second, the through-channel design makes the connection structure more compact, reducing space occupation and lowering the risk of leakage.
[0081] For example, it can maintain a stable material conveying speed and pressure during high-flow, long-duration filling operations, thereby improving production efficiency and product quality.
[0082] In terms of technical effects, the performance of material conveying has been optimized, and the reliability and practicality of the filling connection channel have been enhanced. Overall working principle: Material is conveyed continuously and stably through the first conveying channel 101 and the second conveying channel 201 passing through the first ball joint head 202, and the second conveying channel 201 and the third conveying channel 301 passing through the second ball joint head 203. Overall technical effect: The design of the channels passing through the ball joint head further improves the transmission efficiency and stability of the filling connection channel, meeting the working requirements of the sausage twisting machine.
[0083] In some examples, such as Figure 1 As shown, it also includes a frame 6, a fixed feeding head 7 is mounted on the frame 6, and a rotary joint 8 has a first connection port 801 and a second connection port 802. The first connection port 801 is connected to the fixed feeding head 7, and the second connection port 802 is connected to the first conveying channel 101.
[0084] In this filling connection channel: a frame 6 is provided to provide support and a mounting base. A fixed feeding head 7 is mounted on the frame 6 to receive materials conveyed from the outside. A rotary joint 8 has a first connection port 801 and a second connection port 802, wherein the first connection port 801 communicates with the fixed feeding head 7, and the second connection port 802 communicates with the first conveying channel 101.
[0085] In actual operation, for example, the material is first conveyed to the fixed feeding head 7, then enters through the first connection port 801 of the rotary joint 8, and flows out from the second connection port 802, entering the first conveying channel 101 of the swing head 1.
[0086] The advantages of this design are: First, the rotary joint 8 ensures that the swinging motion of the swing head 1 is not limited by the position of the fixed feed head 7 during material transfer, thus improving the system's flexibility. Second, it guarantees stable material transfer from the fixed feed head 7 to the swingable swing head 1, reducing the possibility of leakage and blockage.
[0087] In terms of technical effects, the compatibility and connection stability between the filling connection channel and the external feeding system are enhanced. Overall working principle: Material is supplied from the outside to the fixed feeding head 7, and after being transferred by the rotary joint 8, it smoothly enters the first conveying channel 101 of the swing head 1, realizing the initial input of material. Overall technical effect: By introducing the frame 6, the fixed feeding head 7, and the rotary joint 8, the front-end feeding structure of the filling connection channel is improved, enhancing the overall performance and reliability of the system.
[0088] like Figure 1 As shown, this embodiment also proposes a swing filling structure, including a filling connection channel and a twist tube 9, which is rotatably mounted on the moving feed tube 4.
[0089] This filling structure includes a filling connection channel and a twisted tube 9. The twisted tube 9 is rotatably mounted on the moving feed tube 4.
[0090] In actual working scenarios, for example, materials are stably and flexibly conveyed to the moving feed pipe 4 through the filling connection channel. At the same time, the twisting pipe 9 rotates on the moving feed pipe 4 to realize the twisting operation after filling.
[0091] The advantages of this design are: firstly, the filling connection channel ensures accurate and efficient material delivery, providing a stable material supply for the operation of the twisted tube 9.
[0092] Secondly, the cooperation between the twisting tube 9 and the moving feeding tube 4 enables the filling and twisting processes to be closely connected, improving the efficiency and quality of the entire production process.
[0093] For example, in food filling production, it can quickly and accurately complete the filling and twisting of materials, producing products with consistent specifications and reliable quality.
[0094] In terms of technical effects, the overall performance and production efficiency of the filling structure are significantly improved. Overall working principle: Material reaches the moving feed pipe 4 through the filling connection channel, while the twisting pipe 9 rotates on the moving feed pipe 4, achieving coordinated filling and twisting operations. Overall technical effect: Through the above design, the function of the filling structure is optimized, enabling it to better meet production needs.
[0095] It should be noted that the above embodiments are only used to illustrate the technical solutions of this disclosure and are not intended to limit it. Although this disclosure has been described in detail with reference to preferred embodiments, those skilled in the art should understand that modifications or equivalent substitutions can be made to the technical solutions of this disclosure without departing from the spirit and scope of the technical solutions of this disclosure, and all such modifications and substitutions should be covered within the scope of the claims of this disclosure.
Claims
1. A filling connection channel, characterized in that, Includes a oscillating feed tube, wherein the oscillating feed tube is oscillating and includes: The oscillating head (1) is oscillating and has a first material conveying channel (101). The first connecting pipe (2) has a second conveying channel (201) and the first conveying channel (101) leads to the second conveying channel (201). The first connecting pipe (2) and the swing head (1) each have a first ball joint groove (102) and a first ball joint head (202), and the first ball joint head (202) is hinged to the first ball joint groove (102).
2. The filling connection channel according to claim 1, characterized in that, Also includes: The second connecting pipe (3) has a third conveying channel (301) leading to the third conveying channel (301). The first connecting pipe (2) and the second connecting pipe (3) each have a second ball joint groove (302) and a second ball joint head (203), which is hinged to the second ball joint groove (302).
3. The filling connection channel according to claim 2, characterized in that, Also includes: The movable feeding pipe (4) is movably disposed on one side of the swing feeding pipe, and the swing feeding pipe leads to the movable feeding pipe (4).
4. The filling connection channel according to claim 3, characterized in that, The third material conveying channel (301) has a feeding port (303) and further includes: A connecting component (5) is disposed on the moving feed pipe (4) and has a connecting cavity (501). The connecting cavity (501) has a connecting port (502). The connecting port (502) is connected to the moving feed pipe (4). The feed port (303) reciprocates within the connecting cavity (501) and leads to the connecting cavity (501).
5. The filling connection channel according to claim 4, characterized in that, The feed port (303) is spaced (503) from the inner wall of the communicating cavity (501), the communicating cavity (501) has an annular portion (504), and the feed port (303) is located inside the annular portion (504).
6. The filling connection channel according to claim 5, characterized in that, The connecting member (5) has a first guide portion (505) and a second guide portion (506), both of which are in frictional contact with the outer wall of the second connecting pipe (3).
7. The filling connection channel according to claim 6, characterized in that, The annular portion (504) is located between the first guide portion (505) and the second guide portion (506), both of which are annular.
8. The filling connection channel according to claim 2, characterized in that, The first conveying channel (101) and the second conveying channel (201) pass through the first ball joint (202), and the second conveying channel (201) and the third conveying channel (301) pass through the second ball joint (203).
9. The filling connection channel according to claim 2, characterized in that, Also includes: Frame (6); A fixed feeding head (7) is provided on the frame (6); Rotary joint (8) has a first connection port (801) and a second connection port (802). The first connection port (801) is connected to the fixed feeding head (7), and the second connection port (802) is connected to the first conveying channel (101).
10. A swing-filling structure, characterized in that, Including the filling connection channel as described in any one of claims 3 to 7, further comprising: A twisted tube (9) is rotatably mounted on the movable feed tube (4).