Material receiving pipe structural body and lipstick machine
By using the sliding connection design between the receiving tube structure and the sliding component, the problem of requiring manual adjustment of the receiving position in traditional lipstick machines is solved, achieving efficient and accurate raw material reception and system flexibility, thereby improving production efficiency and equipment adaptability.
Patent Information
- Application Number
- CN202422144806.X
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-09-02
- Publication Date
- 2025-10-31
- Estimated Expiration
- 2034-09-02
AI Technical Summary
Traditional lipstick machines have a fixed receiving structure during the raw material addition process, which requires manual intervention to adjust the receiving position whenever raw materials need to be changed. This increases the complexity of operation and reduces production efficiency.
The material receiving pipe structure and the sliding component are designed to slide together. The sliding component drives the material receiving pipe to slide under the target raw material pipe to receive the raw material. The material receiving pipe structure includes a fixed base and a material receiving pipe. The sliding component includes a sliding drive mechanism, a sliding transmission mechanism and a sliding mechanism. Precise sliding is achieved by using helical gears and lead screws.
No manual intervention is required to adjust the receiving position, which improves production efficiency, ensures the accuracy of receiving and the flexibility of the system, reduces raw material contamination and waste, adapts to the needs of mixing multiple raw materials, and simplifies the maintenance and cleaning process.
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Figure CN223494922U_ABST
Abstract
Description
Technical Field
[0001] This application relates to the field of intelligent mechanical manufacturing technology, specifically to a material receiving tube structure and a lipstick machine. Background Technology
[0002] In the current cosmetics manufacturing industry, especially in lipstick production, high efficiency and precision are key factors in improving product quality and market competitiveness. Traditional lipstick machines typically use fixed receiving structures or simple mechanical transmission methods to introduce raw materials into the mixing system. However, fixed receiving structures limit the machine's adaptability to different raw material tubes. Whenever a raw material needs to be changed, manual intervention is often required to adjust the receiving position, increasing operational complexity and reducing production efficiency. Utility Model Content
[0003] In order to solve the above-mentioned technical problems, this application provides a receiving tube structure and a lipstick machine to at least solve or alleviate the above-mentioned problems of the prior art.
[0004] A receiving pipe structure includes: the receiving pipe structure (2) is slidably connected to a sliding component (1) to slide under the drive of the sliding component (1) to receive target raw material from the target raw material pipe;
[0005] The receiving pipe structure (2) includes a fixed base (21) and a receiving pipe (22). The receiving pipe (22) is disposed on the fixed base (21) so that the sliding component (1) drives the receiving pipe structure (2) to slide and move the receiving pipe (22) to the bottom of the target raw material pipe to receive the target raw material from the target raw material pipe. A plurality of raw material pipes (3) are disposed above the receiving pipe structure (2), each raw material pipe containing a predetermined raw material. The target raw material pipe is at least one of the plurality of raw material pipes (3), and the target raw material corresponds to the predetermined raw material in the raw material pipe.
[0006] A material receiving pipe structure.
[0007] The receiving pipe structure (2) is pre-loaded with the target base material. The receiving pipe structure (2) is slidably connected to the sliding component (1) so as to slide under the target raw material pipe under the drive of the sliding component (1) so as to receive the target pigment from the target raw material pipe.
[0008] The receiving pipe structure (2) includes a receiving pipe (22), which can slide to the bottom of the target raw material pipe under the drive of the sliding component (1) to receive the target pigment from the target raw material pipe and can be mixed with the target base material pre-loaded in the receiving pipe structure (2).
[0009] A lipstick machine includes the receiving tube structure described in any embodiment of this application.
[0010] In this embodiment, the receiving pipe structure (2) includes a fixed base (21) and a receiving pipe (22). The receiving pipe (22) is disposed on the fixed base (21). The receiving pipe structure (2) is driven to slide by the sliding component (1) and the receiving pipe (22) is moved to the bottom of the target raw material pipe to receive the target raw material receiving pipe (22) from the target raw material pipe. There is no need for manual intervention to adjust the receiving position, which reduces the complexity of operation and improves production efficiency. Attached Figure Description
[0011] The accompanying drawings, which form part of this application, are used to provide a further understanding of the application and to make other features, objects, and advantages of the application more apparent. The illustrative embodiments and descriptions of this application are used to explain the application and do not constitute an undue limitation of the application. In the drawings:
[0012] Figure 1A This is one of the structural schematic diagrams of a material receiving system using a material receiving pipe structure according to an embodiment of this application;
[0013] Figure 1B This is a second schematic diagram of the material receiving system using the material receiving pipe structure in an embodiment of this application;
[0014] Figure 2A This is the third schematic diagram of the material receiving system using the material receiving pipe structure in the embodiments of this application;
[0015] Figure 2B This is the fourth schematic diagram of the material receiving system using the material receiving pipe structure in the embodiments of this application;
[0016] Figure 3A This is the fifth schematic diagram of the material receiving system using the material receiving pipe structure in the embodiments of this application;
[0017] Figure 3B This is the sixth schematic diagram of the material receiving system using the material receiving pipe structure in the embodiments of this application;
[0018] Figure 4A This is the seventh schematic diagram of the material receiving system using the material receiving pipe structure in the embodiments of this application;
[0019] Figure 4B This is the eighth schematic diagram of the material receiving system using the material receiving pipe structure in the embodiments of this application;
[0020] Figure 5A This is the ninth schematic diagram of the material receiving system using the material receiving pipe structure in the embodiments of this application;
[0021] Figure 5B This is the tenth schematic diagram of the material receiving system using the material receiving pipe structure in the embodiments of this application;
[0022] Figure 6A This is a schematic diagram of the sliding lock structure according to an embodiment of this application;
[0023] Figure 6B This is a schematic diagram of the structure of the pressure block in an embodiment of this application;
[0024] Figure 6C This is a schematic diagram of the assembly relationship between the sliding lock and the pressure block in an embodiment of this application;
[0025] Figure 6D This is a schematic diagram of the locking frame structure according to an embodiment of this application;
[0026] Figure 7A This is one of the structural schematic diagrams of the fixed base in the embodiments of this application;
[0027] Figure 7B This is a second schematic diagram of the structure of the fixed base according to an embodiment of this application;
[0028] Figure 8A This is the third structural schematic diagram of the fixed base in the embodiments of this application;
[0029] Figure 8B This is the fourth structural schematic diagram of the fixed base in the embodiments of this application;
[0030] Figure 8C This is the fifth schematic diagram of the structure of the fixed base in the embodiments of this application;
[0031] Figure 9A This is one of the structural schematic diagrams of the sealing plate in an embodiment of this application;
[0032] Figure 9B This is a second schematic diagram of the structure of the sealing plate in an embodiment of this application;
[0033] Figure 10A This is one of the structural schematic diagrams of the receiving pipe in an embodiment of this application;
[0034] Figure 10B This is a second schematic diagram of the material receiving pipe in an embodiment of this application;
[0035] Figure 10C This is the third schematic diagram of the material receiving pipe in the embodiment of this application;
[0036] Figure 10D This is the fourth schematic diagram of the material receiving pipe in the embodiments of this application;
[0037] Figure 11A This is one of the structural schematic diagrams of the bottle body in the embodiments of this application;
[0038] Figure 11B This is a second schematic diagram of the bottle body according to an embodiment of this application;
[0039] Figure 12A This is one of the structural schematic diagrams of the assembly of the stirring paddle mechanism and the cutting paddle mechanism in the embodiments of this application;
[0040] Figure 12B This is a second structural schematic diagram of the assembly of the stirring paddle mechanism and the cutting paddle mechanism in an embodiment of this application;
[0041] Figure 13A This is one of the structural schematic diagrams of the stirring paddle mechanism in the embodiments of this application;
[0042] Figure 13B This is a second schematic diagram of the structure of the stirring paddle mechanism in an embodiment of this application;
[0043] Figure 13C This is the third schematic diagram of the stirring paddle mechanism in the embodiments of this application;
[0044] Figure 13D This is the fourth schematic diagram of the stirring paddle mechanism in the embodiments of this application.
[0045] Figure 13E This is the fifth schematic diagram of the structure of the stirring paddle mechanism in the embodiments of this application;
[0046] Figure 13F This is the sixth schematic diagram of the stirring paddle mechanism in the embodiments of this application. Detailed Implementation
[0047] To enable those skilled in the art to better understand the present application, the technical solutions in the embodiments of the present application will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present application, and not all embodiments. Based on the embodiments in the present application, all other embodiments obtained by those of ordinary skill in the art without creative effort should fall within the scope of protection of the present application.
[0048] It should be noted that the term "comprising" in the specification, claims, and accompanying drawings of this application is intended to cover a non-exclusive inclusion. In this application, the terms "upper," "lower," "vertical," "horizontal," etc., indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings. These terms are primarily used to better describe this application and its embodiments and are not intended to limit the indicated components to having a specific orientation. Those skilled in the art can understand the specific meaning of these terms in this application according to the specific circumstances.
[0049] It should be noted that, unless otherwise specified, the embodiments and features described in this application can be combined with each other. This application will now be described in detail with reference to the accompanying drawings and embodiments.
[0050] In addition, it should be noted that the following embodiments are described in conjunction with the receiving system only to provide an exemplary description of the receiving pipe structure of this application, so that those skilled in the art can understand the implementation of the receiving pipe structure, so as to achieve the purpose of full disclosure, and are not intended to limit the receiving pipe structure to only be embodied in the form of a receiving system.
[0051] See Figures 1A-13F This application provides a receiving pipe structure (2) which is slidably connected to a sliding component (1) to slide below the target raw material pipe under the drive of the sliding component (1) in order to receive the target raw material from the target raw material pipe.
[0052] The receiving pipe structure (2) includes a fixed base (21) and a receiving pipe (22). The receiving pipe (22) is disposed on the fixed base (21) so that the sliding component (1) drives the receiving pipe structure (2) to slide and move the receiving pipe (22) to the bottom of the target raw material pipe to receive the target raw material from the target raw material pipe. Multiple raw material pipes (3) are disposed above the receiving pipe structure (2), each containing a predetermined raw material. The target raw material pipe is at least one of the multiple raw material pipes (3), and the target raw material corresponds to the predetermined raw material in the raw material pipe. The raw material includes at least one of pigment and base material.
[0053] In this embodiment, the receiving pipe structure (2) includes a fixed base (21) and a receiving pipe (22). The receiving pipe (22) is disposed on the fixed base (21). The receiving pipe structure (2) is driven to slide by the sliding component (1) and the receiving pipe (22) is moved to the bottom of the target raw material pipe to receive the target raw material receiving pipe (22) from the target raw material pipe. There is no need for manual intervention to adjust the receiving position, which reduces the complexity of operation and improves production efficiency.
[0054] The above-mentioned receiving pipe structure of this application is applied to the receiving system, that is, the receiving system includes: a sliding component (1) and a receiving pipe structure (2), wherein the sliding component (1) is slidably connected to the receiving pipe structure (2) to drive the receiving pipe structure (2) to slide below the target raw material pipe in order to receive the target raw material from the target raw material pipe.
[0055] Therefore, in this embodiment of the application, a sliding component (1) and a receiving pipe structure (2) are introduced, and the receiving pipe structure (2) can slide to the bottom of the target raw material pipe through their sliding connection, thereby receiving the target raw material, which greatly reduces the need for manual operation and improves the efficiency and accuracy of receiving.
[0056] Therefore, multiple raw material pipes (3) are provided above the receiving pipe structure (2), each containing a predetermined raw material, and the target raw material pipe is at least one of these raw material pipes (3), which has the following technical advantages:
[0057] (1) Since multiple raw material pipes are arranged above the receiving pipe assembly at the same time, the receiving pipe assembly can be quickly moved to the bottom of the target raw material pipe for receiving by the sliding component. This design reduces the time of manual operation and improves the overall production efficiency.
[0058] (2) The presence of multiple raw material tubes allows the system to adapt to the mixing requirements of various raw materials. Depending on the product needs, raw material tubes can be easily replaced or added to produce lipsticks of different colors.
[0059] (3) The raw materials in each raw material tube are pre-selected, ensuring the purity and quality of the raw materials. Compared with manual operation, this design reduces the risk of raw material contamination or confusion due to human factors.
[0060] (4) The design of the raw material pipes is usually easy to disassemble and replace, which helps with the maintenance and cleaning of the system. When it is necessary to change raw materials or clean the system, the operation can be carried out quickly and easily.
[0061] (5) Arranging multiple raw material pipes vertically above the receiving pipe assembly can save horizontal space, making the equipment more compact and suitable for production environments of different sizes.
[0062] Optionally, the sliding assembly (1) includes a sliding drive mechanism (11), a sliding transmission mechanism (12), and a sliding mechanism (13). The sliding drive mechanism (13) is connected to the sliding transmission mechanism (12) and is used to generate a sliding driving force and transmit the sliding driving force to the sliding transmission mechanism (12). The sliding transmission mechanism (12) is connected to the sliding mechanism (13). The sliding transmission mechanism (12) transmits the received sliding driving force to the sliding mechanism (13) to drive the sliding mechanism (13) to move and drive the receiving pipe structure (2) to slide below the target raw material pipe.
[0063] Therefore, the detailed design of the sliding component (1) described above brings the following technical benefits to the receiving system:
[0064] (1) The sliding drive mechanism (11) can accurately generate the sliding driving force and transmit this force accurately to the sliding mechanism (13) through the sliding transmission mechanism (12). This precise control ensures that the receiving pipe structure (2) can accurately slide under the target raw material pipe, thereby reducing errors and waste.
[0065] (2) The sliding transmission mechanism (12) serves as a bridge for the transmission of driving force, effectively transferring the sliding driving force from the driving mechanism (11) to the sliding mechanism (13). This efficient transmission method ensures that the driving force is less lost during the transmission process, thereby improving the efficiency of the entire system.
[0066] (3) After receiving the sliding driving force, the sliding mechanism (13) can operate stably and reliably, driving the receiving tube structure (2) to slide to the predetermined position. This stability and reliability are crucial to ensuring the accuracy and efficiency of receiving materials.
[0067] (4) The modular design of the sliding component (1) makes each part relatively independent, which is convenient for maintenance and adjustment. For example, when it is necessary to adjust the receiving position or replace the raw material pipe, the sliding mechanism (13) or the sliding transmission mechanism (12) can be operated separately without large-scale modifications to the entire system.
[0068] (5) Since the design of the sliding component (1) is relatively independent and modular, it can be flexibly configured and expanded according to production needs. For example, more raw material tubes can be added or the stroke range of the sliding component can be adjusted to meet the production needs of lipstick machines of different specifications and models.
[0069] Optionally, the sliding drive mechanism (11) is a drive motor, and the power output end of the drive motor is connected to a first helical gear (14A). The first helical gear (14A) meshes with the sliding transmission mechanism (12) to transmit the generated sliding driving force to the sliding transmission mechanism (12).
[0070] Therefore, when the sliding drive mechanism (11) adopts a drive motor and transmits the sliding drive force through the first helical gear (14A) meshing with the sliding transmission mechanism (12), the following technical advantages are achieved:
[0071] (1) The drive motor can provide a precise and controllable rotational force, which can be converted into a linear sliding driving force through the meshing of the first helical gear (14A), and the sliding position and speed of the receiving tube structure (2) can be precisely controlled. This ensures that the receiving tube structure (2) can slide accurately and stably under the target raw material tube, improving the accuracy of receiving.
[0072] (2) The design of helical gears allows power to be transmitted with high efficiency. Because the tooth surfaces of helical gears are oblique, the contact between them is gradual, so the transmission of force is smoother and energy loss is reduced. This enables the sliding component (1) to work efficiently and reduce energy consumption.
[0073] (3) The drive motor and helical gear, as mechanical transmission components, have high durability and reliability. They can withstand high loads and frequent working cycles, ensuring the stable operation of the material receiving system for a long time.
[0074] (4) The drive motor and helical gear (14A) are standard mechanical components that are easy to replace and maintain. When replacement or repair is required, new parts can be quickly disassembled and installed, reducing downtime and maintenance costs.
[0075] Optionally, the power input end of the sliding transmission mechanism (12) is connected to a second helical gear (14B), which meshes with the sliding drive mechanism (11) to receive the sliding driving force generated by the sliding drive mechanism (11).
[0076] Therefore, when the power input end of the sliding transmission mechanism (12) meshes with the sliding drive mechanism (11) through the second helical gear (14B) to receive the sliding driving force, the following technical advantages are achieved:
[0077] (1) The meshing design of the helical gear (14B) ensures stable transmission between the sliding transmission mechanism (12) and the sliding drive mechanism (11). The helical gear tooth surface slope makes the contact between them smoother, reducing energy loss and noise caused by vibration or impact, thereby ensuring the stability and reliability of the transmission.
[0078] (2) The meshing method of helical gears can achieve efficient power transmission. Due to the tooth surface shape and arrangement of helical gears, the contact area between them is large, which allows the power to be distributed to more tooth surfaces during transmission, thereby reducing wear and damage caused by concentrated stress. This ensures that the sliding transmission mechanism (12) can operate stably for a long time and effectively transmit the sliding driving force to the sliding mechanism (13).
[0079] (3) By selecting appropriate helical gear teeth and module, a precise transmission ratio can be achieved. This means that the rotational speed of the sliding drive mechanism (11) can be accurately converted into the linear sliding speed of the sliding mechanism (13), thereby achieving precise control of the position of the docking tube structure (2). This is crucial for applications requiring high-precision positioning.
[0080] (4) The helical gear (14B) is a standard transmission component that is easy to maintain and replace. When replacement or repair is required, a new helical gear can be quickly disassembled and installed, thereby reducing downtime and maintenance costs.
[0081] Specifically, the first helical gear (14A) meshes with the second helical gear (14B) so that the sliding transmission mechanism (12) receives the sliding driving force generated by the sliding drive mechanism (11).
[0082] Optionally, the sliding transmission mechanism (12) includes: a nut (121), a mounting bracket (122), a lead screw (123), and a bearing (124). The two ends of the lead screw (123) are respectively fixed on the mounting bracket (122) by a bearing (124), so that the lead screw (123) passes through the nut (121) and the sliding mechanism (13) in sequence on the mounting bracket (122). The lead screw is driven to rotate by the sliding drive mechanism (11), and the rotating lead screw cooperates with the nut (121) to drive the sliding mechanism to slide.
[0083] Therefore, when the sliding transmission mechanism (12) adopts a combination of lead screw (123), lead nut (121), mounting bracket (122) and bearing (124), it has the following technical advantages:
[0084] (1) The cooperation between the lead screw (123) and the nut (121) enables high-precision linear motion. Due to the helical structure of the lead screw and the nut, their motion is continuous, enabling minute displacement adjustments and ensuring that the sliding mechanism (13) can slide accurately to the target position. This is crucial for applications such as lipstick machines that require precise control of the amount of raw materials received.
[0085] (2) The lead screw (123) is fixed to the mounting bracket (122) by two bearings (124), so that the lead screw can maintain a stable axis during rotation. This stability ensures smooth cooperation between the lead screw and the lead nut, reduces errors caused by vibration or impact, and improves the accuracy and stability of material receiving.
[0086] (3) The lead screw drive mechanism has high reliability. Due to the simple structure of the lead screw and lead nut and its resistance to external environmental influences, it can operate stably under various working conditions. In addition, the lead screw drive mechanism also has high durability and can withstand long-term use and frequent operation.
[0087] (4) The components of the lead screw drive mechanism are relatively independent and easy to disassemble and replace. When a component malfunctions or needs repair, it can be quickly replaced or adjusted, reducing downtime and maintenance costs.
[0088] (5) The lead screw drive mechanism can efficiently convert the rotational power of the sliding drive mechanism (11) into the linear motion of the sliding mechanism (13). Due to the helical structure between the lead screw and the lead nut, a large transmission ratio can be achieved, thereby improving the energy transmission efficiency.
[0089] Optionally, the sliding mechanism (13) includes a first slider (131) and a guide rod (132). The first slider (131) is fixed with the nut (121). The lead screw (123) passes through the nut (121) in sequence. The first slider (131) is mounted on the mounting bracket (122). The guide rod (132) passes through the mounting bracket (122) and runs parallel to the lead screw. The lead screw is driven to rotate by the sliding drive mechanism (11). The rotating lead screw cooperates with the nut (121) to drive the first slider (131) to slide along the guide rod (132).
[0090] Therefore, when the sliding mechanism (13) adopts a combination of the first slider (131) and the guide rod (132), combined with the transmission mechanism of the lead screw (123) and the lead nut (121), it has the following technical advantages:
[0091] (1) The first slider (131) slides along the guide rod (132), which provides a stable sliding path. The screw (123) and the screw nut (121) are screwed together to ensure the accuracy of the sliding, so that the first slider can move accurately to the predetermined position, thereby achieving precise control of the docking tube structure (2).
[0092] (2) The guide rod (132) not only provides the directionality of sliding, but also enhances the stability of the entire sliding mechanism. During the sliding process, the first slider (131) slides along the guide rod, avoiding deviation or shaking caused by external forces or other factors, and ensuring the smoothness and accuracy of sliding.
[0093] (3) The parallel arrangement of the guide rod (132) and the lead screw (123), as well as the helical transmission mechanism of the lead screw and the lead nut, gives the entire sliding mechanism a high load-bearing capacity. This means that the sliding mechanism can withstand a large load and is suitable for scenarios that require receiving a large amount of raw materials.
[0094] (4) The components of the sliding mechanism are relatively independent and easy to disassemble and install. When maintenance or replacement of components is required, it can be easily carried out, reducing downtime and maintenance costs.
[0095] (5) Due to the constraint of the guide rod (132) and the screw screw (123) and the screw nut (121) screw, the sliding mechanism can maintain a stable sliding speed during operation, reducing the error and loss caused by speed fluctuation.
[0096] Optionally, there is one lead screw and two guide rods (132), which are mounted on the mounting bracket (122) in such a way that they are parallel to the lead screw and located on both sides of the lead screw.
[0097] Optionally, the two guide rods are parallel and have a set installation height difference with the lead screw.
[0098] Therefore, when the sliding mechanism (13) has one lead screw and two guide rods (132), and these two guide rods are parallel to the lead screw and located on both sides of it, the following technical advantages are achieved:
[0099] (1) By setting two guide rods (132), the first slider (131) is better guaranteed in stability during the sliding process. The guide rods provide two parallel sliding tracks, which restrict the movement of the first slider in the direction perpendicular to the sliding direction, thereby effectively preventing the slider from deviating or shaking during the sliding process.
[0100] (2) The parallelism of the guide rod (132) and its fixed installation position with the lead screw (123) ensure that the first slider (131) slides along the predetermined trajectory. This helps to improve the positioning accuracy of the receiving tube structure (2) and achieve more accurate receiving operation.
[0101] (3) The supporting effect of the two guide rods (132) enhances the load-bearing capacity of the entire sliding mechanism (13). Even under a large load, the sliding mechanism can maintain stable sliding performance and is not prone to deformation or damage.
[0102] (4) The installation height difference set between the two guide rods and the lead screw can further optimize the performance of the sliding mechanism. This design helps to reduce interference and friction between the lead screw and the guide rods, reduce energy consumption and wear, and improve the service life of the sliding mechanism.
[0103] (5) The guide rod (132) and the lead screw (123) are independent components, which can be easily adjusted and maintained. When it is necessary to adjust the accuracy of the sliding mechanism or replace worn parts, the guide rod or the lead screw can be operated separately without disassembling the entire mechanism.
[0104] Optionally, the receiving pipe structure (2) includes: a fixed base (21) and a receiving pipe (22). The receiving pipe (22) is disposed on the fixed base (21) so that the sliding component (1) drives the receiving pipe structure (2) to slide and causes the receiving pipe (22) to slide below the target raw material pipe so as to receive the target raw material from the target raw material pipe.
[0105] Therefore, when the receiving pipe structure (2) includes a fixed base (21) and a receiving pipe (22), the following technical advantages are available:
[0106] (1) The modular design of the receiving pipe structure (2) makes each part relatively independent, easy to assemble, disassemble and maintain. The fixed base (21) serves as the supporting structure for the receiving pipe (22), providing a stable installation foundation, while the receiving pipe (22) is directly used to receive raw materials. This design allows the receiving pipe structure (2) to adapt to different production needs and to be easily replaced or adjusted.
[0107] (2) Driven by the sliding component (1), the receiving tube structure (2) can accurately slide below the target raw material tube. This high-precision positioning capability ensures that the receiving tube (22) can accurately dock with the raw material tube, avoiding waste and contamination of raw materials. At the same time, it also improves the efficiency and accuracy of receiving, making the production process more reliable and efficient.
[0108] (3) Due to the separate design of the receiving pipe structure (2) and the sliding component (1), the receiving pipe structure (2) can flexibly adapt to different raw material pipe positions and layouts. Whether in a fixed position on the production line or in the case of frequent raw material changes, the receiving pipe structure (2) can quickly adjust its position to meet production needs.
[0109] (4) The receiving pipe (22) is a component that comes into direct contact with the raw materials and requires frequent cleaning and maintenance. Due to the modular design of the receiving pipe structure (2), the receiving pipe (22) can be easily removed from the fixed base (21) for individual cleaning and inspection. This design greatly reduces the difficulty and time of cleaning and maintenance, and improves the utilization rate and production efficiency of the equipment.
[0110] (5) By replacing the receiving pipes (22) with different specifications and models, the receiving pipe structure (2) can adapt to different raw material receiving requirements. This scalability enables the receiving system to be flexibly applied to different production scenarios and process requirements, improving the equipment's versatility and adaptability.
[0111] Optionally, the receiving tube structure (2) further includes a locking member (23), which is connected to the fixed base (21), and the receiving tube (22) is locked to the fixed base (21) or removed from the fixed base (21) by the locking member (23).
[0112] Therefore, when the receiving pipe structure (2) includes a locking element (23), the following technical advantages are available:
[0113] (1) The locking element (23) allows the receiving tube (22) to be easily and quickly installed or removed from the fixed base (21). This is particularly useful for scenarios that require frequent changes of raw materials or adjustment of the position of the receiving tube, and can significantly improve work efficiency.
[0114] (2) The locking element (23) is usually designed with a precise positioning structure to ensure that the receiving tube (22) is accurately positioned on the fixed base (21). This helps to ensure that the receiving tube (22) can slide accurately under the target raw material tube, avoiding material waste or contamination caused by positional deviation.
[0115] (3) The locking element (23) typically provides a reliable seal when securing the receiving pipe (22). This helps prevent leakage of raw materials during the receiving process, ensuring a clean working environment and the quality of the raw materials.
[0116] (4) The locking component (23) can ensure the stability of the receiving pipe (22) on the fixed base (21) and prevent the receiving pipe from falling off or shifting due to vibration or impact during equipment operation, thereby improving the safety of the equipment.
[0117] (5) The design of the locking element (23) allows the receiving tube (22) to be easily removed from the fixed base (21) for cleaning and maintenance. This helps to keep the equipment clean and hygienic and extends its service life.
[0118] Optionally, the locking component (23) includes: a locking frame (231), a sliding lock (232), and a pressure block (233). The sliding lock (232) is disposed on the fixed base (21). The pressure block (233) is slidably connected to the sliding lock (232). The locking frame (231) is connected to the pressure block (233). The receiving tube (22) is fixed on the locking frame (231). By driving the locking frame (231) to move, the pressure block (233) and the sliding lock (232) slide against each other, so that the receiving tube (22) can be disposed on the fixed base (21) or removed from the fixed base (21).
[0119] Therefore, when the locking element (23) is designed to include a locking bracket (231), a sliding lock (232), and a pressure block (233), this structure has the following technical advantages for the receiving tube structure (2):
[0120] (1) By driving the locking bracket (231) to move, the sliding between the pressure block (233) and the sliding lock (232) can be easily realized. This design makes the installation and disassembly of the receiving tube (22) very simple, without the need for complicated tools or operations, thus improving work efficiency.
[0121] (2) When the pressure block (233) and the sliding lock (232) slide into place, the locking mechanism between them can ensure that the receiving pipe (22) is firmly fixed on the fixed base (21). This firm locking state can prevent the receiving pipe (22) from loosening or falling off due to vibration or impact during equipment operation, thus ensuring the stability and safety of the equipment.
[0122] (3) Due to the design flexibility of the locking component (23), it can adapt to different specifications and models of receiving pipes (22). By adjusting the position and size of the locking frame (231) and the pressure block (233), receiving pipes of different sizes can be easily installed and disassembled, improving the versatility and adaptability of the equipment.
[0123] (4) All components of the locking element (23) are detachable and reusable, which reduces the maintenance cost of the equipment. When the receiving pipe (22) needs to be replaced or repaired, the locking element (23) can be simply removed without replacing the entire fixed base (21) or sliding assembly (1), saving resources and reducing costs.
[0124] (5) The design of the locking component (23) allows the receiving pipe (22) to be easily disassembled for cleaning and maintenance, which helps to keep the equipment clean and hygienic. At the same time, since all parts of the locking component (23) are detachable, it also facilitates the maintenance and repair of the equipment.
[0125] Optionally, the locking frame (231) includes a locking panel (2311) and a locking leg (2312). The locking panel (2311) has a through hole (23111) so that the receiving tube (22) passes through the through hole (23111) and is fixed on the locking frame (231). The locking leg (2312) is located below the locking panel (2311) and is connected to the pressure block (233) so that the pressure block (233) and the sliding lock (232) can slide against each other by driving the locking panel (2311) to move and by transmitting through the locking leg (2312).
[0126] Therefore, when the locking frame (231) adopts a design including a locking panel (2311) and locking feet (2312), this structure brings the following technical benefits to the receiving tube structure (2):
[0127] (1) The through hole (23111) on the locking panel (2311) provides a clear installation positioning point for the receiving tube (22). This allows the receiving tube (22) to be quickly fixed on the locking bracket (231), reducing errors and uncertainties in the installation process.
[0128] (2) The locking foot (2312) serves as a connector between the locking panel (2311) and the pressure block (233), ensuring the stability of the entire locking frame (231) structure. This stability helps to keep the receiving pipe (22) in a fixed position during equipment operation, preventing it from loosening or falling off due to vibration or impact.
[0129] (3) By driving the locking panel (2311) to move, the sliding between the pressure block (233) and the sliding lock (232) can be easily realized. This operation method is intuitive and simple, which allows the operator to quickly and accurately complete the installation and disassembly of the receiving pipe (22).
[0130] (4) Since the components of the locking frame (231) are relatively independent and easy to disassemble, they can be easily cleaned, repaired or replaced. This design reduces the maintenance cost of the equipment and improves its reliability and service life.
[0131] (5) By adjusting the position and size of the locking panel (2311) and locking feet (2312), different specifications and models of receiving pipes (22) can be accommodated. This design makes the receiving pipe structure (2) more versatile and adaptable, and can meet different production needs.
[0132] Optionally, the slide lock (232) includes a sliding block (2321) and a latch (2322). The sliding block (2321) is disposed on the latch (2322) and is slidably connected to the pressure block (233) so that the latch (2322) can be connected to or disconnected from the fixed base (21) by the mutual sliding between the pressure block (233) and the slide lock (232).
[0133] Optionally, the slide lock (232) further includes a fixed wing (2323), which is connected to the sliding block (2321), and the slide lock (232) is mounted on the fixed base (21) via the fixed wing (2323).
[0134] Therefore, when the slide lock (232) adopts a design including a sliding block (2321), a locking tongue (2322), and a fixed wing (2323), this structure brings the following technical benefits to the receiving tube structure (2):
[0135] (1) By sliding between the pressure block (233) and the sliding block (2321), the connection or disconnection between the locking tongue (2322) and the fixed base (21) can be easily controlled. This design makes the installation and disassembly of the receiving tube (22) faster and more efficient.
[0136] (2) The connection between the locking tongue (2322) and the fixed base (21) provides a stable locking mechanism. When the locking tongue is fully connected to the fixed base, the receiving tube (22) is firmly fixed on the fixed base (21) and is not easy to loosen due to vibration or impact, thus ensuring the stability of the receiving process.
[0137] (3) The sliding block (2321) serves as a component connecting the pressure block (233) and the locking tongue (2322), allowing the operator to intuitively see and operate the locking and unlocking process. This design reduces the difficulty of operation and improves work efficiency.
[0138] (4) The components of the slide lock (232) are compact and occupy little space, which is conducive to achieving efficient locking and unlocking functions in a limited equipment space.
[0139] (5) By adjusting the size and shape of the sliding block (2321) and the locking tongue (2322), it can be adapted to different specifications and models of receiving pipes (22). This design makes the sliding lock (232) highly versatile and adaptable, and can meet different production needs.
[0140] (6) The components of the slide lock (232) are relatively independent and easy to disassemble, making it convenient to operate when cleaning, maintenance or replacement of parts is required. This design reduces the maintenance cost of the equipment and improves the reliability and service life of the equipment.
[0141] Optionally, a spring (23231) is fitted on the fixed wing (2323). The spring (23231) deforms when the pressure block (233) and the slide lock (232) slide against each other, so that when the pressure block (233) and the slide lock (232) slide against each other, the locking tongue (2322) is connected to or disconnected from the fixed base (21).
[0142] Therefore, when a spring (23231) is fitted onto the fixed wing (2323), this design brings the following technical benefits to the receiving tube structure (2):
[0143] (1) The presence of the spring (23231) provides a reset function for the slide lock (232). When the pressure block (233) is pushed and slides with the slide lock (232) to release the latch (2322), the spring (23231) will push the slide lock (232) and the latch (2322) back to their original positions to achieve locking. This greatly simplifies the operation process and improves work efficiency.
[0144] (2) The spring (23231) stores energy in the compressed state. When the locking tongue (2322) is connected to the fixed base (21), the spring force will further enhance the locking force, ensuring the stability of the receiving tube (22) on the fixed base (21).
[0145] (3) Due to the reset function of the spring (23231), the operator does not need to precisely control the sliding distance of the slide lock (232), but only needs to push the pressure block (233) to a certain position to achieve locking or unlocking. This reduces operating errors and improves the reliability of the equipment.
[0146] (4) The design of the spring (23231) can reduce wear on the slide lock (232) and the fixed base (21) caused by frequent operation. This helps to extend the service life of the equipment and reduce maintenance costs.
[0147] (5) During the locking or unlocking process, the spring (23231) can act as a buffer to reduce the vibration and noise caused by the impact and protect the equipment from damage.
[0148] (6) The elastic force and compression of the spring (23231) can be adjusted according to actual needs to adapt to different specifications and models of receiving pipes (22). This makes the receiving pipe structure (2) more versatile and adaptable.
[0149] Optionally, both the sliding block (2321) and the pressing block (233) have a ramp surface, and the ramp surface on the sliding block (2321) and the ramp surface on the pressing block (233) form a surface contact, so that the pressing block (233) and the sliding lock (232) can slide against each other.
[0150] Therefore, when both the sliding block (2321) and the pressure block (233) are designed with sloping surfaces, and these two sloping surfaces form a surface contact, this design brings the following technical benefits to the receiving pipe structure (2):
[0151] (1) The design of the sloping surface increases the contact area between the pressure block (233) and the sliding block (2321), thereby reducing the friction during sliding and making the sliding between the two smoother. This helps to simplify the operation process and improve the efficiency of installing and disassembling the receiving pipe (22).
[0152] (2) The surface contact of the ramp provides a stable sliding guide, enabling the pressure block (233) to move along a predetermined path when pushing the sliding block (2321). This design ensures that the connection or disconnection between the locking tongue (2322) and the fixed base (21) can be accurately achieved, avoiding operational failures or equipment damage due to inaccurate positioning.
[0153] (3) Surface contact can withstand greater pressure than point contact or line contact. This means that even under greater operating force, the contact surface between the sliding block (2321) and the pressure block (233) will not be easily damaged or deformed, thus ensuring the durability and stability of the equipment.
[0154] (4) The surface contact of the ramp makes the contact pressure distribution more uniform during the sliding process, reducing the possibility of local wear. This helps to extend the service life of the sliding block (2321) and the pressure block (233) and reduce the maintenance cost of the equipment.
[0155] (5) The design of the sloping surface can be adjusted according to actual needs to adapt to different specifications and models of receiving pipes (22). This design makes the receiving pipe structure (2) more versatile and adaptable, and can meet different production needs.
[0156] Optionally, the pressure block (233) includes: a support frame (2331) and a sliding wedge (2332). The support frame (2331) is connected to the sliding block (2321), and the sliding wedge (2332) is disposed in the support frame (2331) and has a slope surface, which serves as the slope surface on the pressure block (233) to form the surface contact with the slope surface on the sliding block (2321).
[0157] Therefore, when the pressure block (233) adopts a design including a support frame (2331) and a sliding wedge (2332), and the slope surface of the sliding wedge (2332) forms a surface contact with the slope surface of the sliding block (2321), this design brings the following technical benefits to the receiving pipe structure (2):
[0158] (1) The support frame (2331) provides stable support for the sliding wedge (2332), ensuring that the sliding wedge (2332) will not deviate or wobble during the sliding process. This stability ensures that the surface contact between the pressure block (233) and the sliding block (2321) is always reliable, thereby improving the accuracy and reliability of locking and unlocking.
[0159] (2) The slope surface of the sliding wedge (2332) and the slope surface of the sliding block (2321) form a surface contact, which increases the contact area and reduces the sliding friction. This makes the pressure block (233) push the sliding block (2321) more smoothly, reduces the difficulty of operation, and improves the work efficiency.
[0160] (3) The slope of the sliding wedge (2332) can be adjusted or replaced according to actual needs to adapt to different specifications and models of receiving pipes (22). This design makes the receiving pipe structure (2) more versatile and adaptable, and can meet different production needs.
[0161] (4) By ensuring stable surface contact between the pressure block (233) and the sliding block (2321), this design reduces the risk of accidental unlocking due to improper operation or equipment failure. This helps improve equipment safety and reduce the occurrence of production accidents.
[0162] Optionally, the support frame (2331) has two protruding connecting feet (23311), and the sliding block (2321) has a plug hole (23211). A connecting rod passes through the plug hole (23211), and the two ends of the connecting rod are respectively located in one of the protruding connecting feet (23311), so that the support frame (2331) is connected to the sliding block (2321).
[0163] Therefore, when the support frame (2331) is connected to the insertion hole (23211) on the sliding block (2321) and the connecting rod through two protruding connecting feet (23311), this design brings the following technical benefits to the receiving pipe structure (2):
[0164] (1) The two protruding connecting feet (23311) of the support frame (2331) are fixed to the insertion holes (23211) on the sliding block (2321) by the connecting rod, forming a stable mechanical connection. This connection method ensures the stability between the pressure block (233) and the sliding block (2321) and prevents sliding or misalignment due to uneven force during operation.
[0165] (2) The design of the connecting rod makes the installation and disassembly of the support frame (2331) simple and quick. When it is necessary to replace or repair the pressure block (233), simply remove the connecting rod from the insertion hole (23211) to easily separate the support frame (2331) from the sliding block (2321). This design reduces maintenance costs and improves work efficiency.
[0166] (3) Due to the constraint of the connecting rod, the position of the support frame (2331) on the sliding block (2321) is fixed, thereby ensuring that the ramp surfaces between the sliding wedge (2332) and the sliding block (2321) can be accurately aligned and form surface contact. This precise positioning helps to improve the accuracy and reliability of locking and unlocking.
[0167] (4) By adjusting the length of the connecting rod or replacing it with a connecting rod of different lengths, it can accommodate sliding blocks (2321) and support frames (2331) of different specifications. This design makes the receiving pipe structure (2) highly versatile and adaptable, and can meet different production needs.
[0168] (5) The robust connection reduces the safety risks caused by loosening or misalignment between the pressure block (233) and the sliding block (2321). This design helps to improve the overall safety of the equipment.
[0169] Optionally, the insertion hole (23211) has a defined hole space so that the connecting rod can move longitudinally in the hole space to engage with the surface contact, so that the pressure block (233) and the sliding lock (232) can slide against each other.
[0170] Therefore, when the insertion hole (23211) has a defined hole space that allows the connecting rod to move longitudinally within the hole space, this design brings the following technical benefits to the receiving tube structure (2):
[0171] (1) Since the connecting rod can move longitudinally in the hole space of the insertion hole (23211), this design allows a certain degree of freedom between the pressure block (233) and the sliding lock (232) during sliding. This degree of freedom ensures that the slope surface of the sliding wedge (2332) and the sliding block (2321) always maintains surface contact, thereby maintaining the smoothness and stability of the sliding process.
[0172] (2) The longitudinal movement of the connecting rod in the hole space makes it easier for the operator to push the pressure block (233) to slide with the slide lock (232). This design reduces the difficulty of operation, improves work efficiency, and reduces the risk of damage or failure due to improper operation.
[0173] (3) Since the connecting rod can move longitudinally in the hole space, this design can accommodate support frames (2331) and sliding blocks (2321) of different sizes. This means that even if the component sizes are slightly different, the correct connection and sliding operation between the pressure block (233) and the sliding lock (232) can be ensured by adjusting the position of the connecting rod in the hole space.
[0174] (4) By ensuring a stable sliding connection between the pressure block (233) and the slide lock (232), this design improves the overall reliability of the equipment. It reduces the risk of failure due to loose or misaligned connections and extends the service life of the equipment.
[0175] (5) Due to the design of the connecting rod and the insertion hole (23211), the pressure block (233) and the slide lock (232) can be easily disassembled and reassembled when maintenance or replacement of parts is required. This design reduces maintenance costs and improves the maintainability of the equipment.
[0176] Optionally, the receiving tube (22) includes: a bottle body (221), a stirring paddle mechanism (222), and a cutting paddle mechanism (223). The bottle body (221) is connected to the locking member (23) so that the receiving tube (22) is located above the fixed base (21). The stirring paddle mechanism (222) and the cutting paddle mechanism (223) are disposed in the inner cavity of the bottle body (221) so that the target raw material contained in the inner cavity is stirred by the stirring paddle mechanism (222) and the target raw material is cut by the cutting paddle mechanism (223).
[0177] Therefore, when the receiving tube (22) includes the bottle body (221), the stirring paddle mechanism (222), and the cutting paddle mechanism (223), and is used in conjunction with the locking member (23) and the fixed base (21), this design brings the following technical benefits:
[0178] (1) The setting of the stirring paddle mechanism (222) enables the target raw material to be effectively stirred in the inner cavity of the bottle body (221). The stirring operation helps to mix the raw material evenly, avoids the sedimentation or stratification of the raw material, and ensures the stability and consistency of the output raw material.
[0179] (2) The cutting paddle mechanism (223) can cut the target material, which is especially important when dealing with some materials that are highly viscous or prone to caking. The cutting operation helps to prevent the material from clogging in the pipes or equipment and keeps the system running smoothly.
[0180] (3) The connection design between the bottle body (221) and the locking part (23) allows the receiving tube (22) to be easily installed on the fixed base (21). This design reduces the difficulty of installation and disassembly and improves work efficiency.
[0181] (4) Through the synergistic effect of the stirring paddle mechanism (222) and the cutting paddle mechanism (223), the receiving pipe (22) can handle various types of target raw materials, improving the applicability and reliability of the system. At the same time, the connection between the locking part (23) and the fixed base (21) ensures the stability of the system and reduces the risk of loosening or leakage caused by vibration or external force.
[0182] (5) The stirring paddle mechanism (222) and the cutting paddle mechanism (223) are typically designed as detachable components, which makes them easy to operate when maintenance or replacement is required. This design reduces maintenance costs and improves the maintainability of the equipment.
[0183] Optionally, the stirring paddle mechanism (222) is nested at the bottom of the cutting paddle mechanism (223) so that when the stirring paddle mechanism (222) stirs the target material contained in the inner cavity, the cutting paddle mechanism (223) simultaneously cuts the target material.
[0184] Therefore, when the stirring paddle mechanism (222) and the cutting paddle mechanism (223) are designed with a bottom nested connection, this configuration brings the following technical benefits to the receiving pipe (22):
[0185] (1) The synchronous operation of the stirring paddle mechanism (222) and the cutting paddle mechanism (223) ensures that the stirring and cutting actions can be performed simultaneously. This synchronicity not only improves the efficiency of processing the target raw materials, but also makes the whole process smoother and more efficient.
[0186] (2) During the mixing process, the cutting paddle mechanism (223) simultaneously cuts the target raw material, which helps to further refine the raw material particles and ensure the uniformity and consistency of the raw material. The cutting operation can also prevent the raw material from clumping or blocking, ensuring the maximum mixing effect.
[0187] (3) The bottom nested connection design simplifies the structure of the stirring paddle mechanism (222) and the cutting paddle mechanism (223), reducing the number and complexity of parts. This design not only reduces manufacturing costs but also improves the stability and reliability of the system.
[0188] (4) The nested connection design of the stirring paddle mechanism (222) and the cutting paddle mechanism (223) makes it easier to disassemble and assemble these components during maintenance and cleaning. This design reduces maintenance costs and improves the maintainability of the equipment.
[0189] (5) This synchronous mixing and cutting design enables the receiving pipe (22) to handle various types of target raw materials, including those with high viscosity or that are prone to caking. This adaptability improves the versatility and flexibility of the system, allowing it to adapt to a wider range of application scenarios.
[0190] Optionally, the stirring paddle mechanism (222) rotates around the cutting paddle mechanism (223) in the inner cavity to stir the target material contained in the inner cavity, and the cutting paddle mechanism (223) is fixed and forms a passive impact with the stirred target material to cut the target material synchronously.
[0191] Therefore, when the stirring paddle mechanism (222) is designed to rotate around the fixed cutting paddle mechanism (223) in the inner cavity of the receiving pipe (22) to stir the target raw material, and the cutting paddle mechanism (223) cuts the target raw material synchronously by passive impact, this design brings the following technical benefits:
[0192] (1) The rotation of the stirring paddle mechanism (222) can ensure that the target raw material is uniformly and effectively stirred in the inner cavity, avoiding sedimentation and stratification of the raw material. At the same time, the cutting paddle mechanism (223) achieves a synchronous cutting effect by passively impacting the target raw material in the stirring through a fixed position, effectively breaking up any possible raw material agglomerates and further improving the uniformity of stirring.
[0193] (2) Since the cutting paddle mechanism (223) is fixed, no additional power source is needed to drive its movement, which greatly simplifies the internal structure of the receiving tube (22) and reduces the complexity of manufacturing and maintenance.
[0194] (3) The fixed design of the cutting paddle mechanism (223) reduces vibration and wear caused by moving parts, thereby improving the stability and durability of the system.
[0195] (4) The dual effects of stirring and cutting can be achieved simply by driving the stirring paddle mechanism (222) to rotate. This design optimizes energy consumption and improves energy efficiency. Reducing moving parts means reducing potential failure points, thereby reducing maintenance costs and downtime.
[0196] (5) This design is applicable to a variety of target raw materials of different types and viscosities. Regardless of the nature of the raw materials, effective mixing and cutting can be achieved through the rotation of the stirring paddle mechanism (222) and the passive impact of the cutting paddle mechanism (223).
[0197] Optionally, the stirring paddle mechanism (222) includes: a stirring paddle base (2221) and a stirring paddle (2222). The stirring paddle is disposed on the stirring paddle base (2221) so that when the stirring paddle base (2221) rotates, it drives the stirring paddle to stir the target raw material contained in the inner cavity.
[0198] Therefore, when the agitator mechanism (222) includes an agitator base (2221) and an agitator (2222), and the agitator (2222) is driven by the rotation of the agitator base (2221) to agitate the target raw material, this design brings the following technical benefits:
[0199] (1) The rotation of the mixing paddle base (2221) can drive the mixing paddle (2222) to move in the inner cavity of the receiving pipe (22) at a certain speed and direction, ensuring that the target raw material is thoroughly and uniformly mixed. This design can effectively prevent the sedimentation and stratification of the raw material and improve the uniformity and stability of the raw material.
[0200] (2) The agitator mechanism (222) consists of two parts: the agitator base (2221) and the agitator (2222), and the structure is simple and clear. This design not only reduces manufacturing costs, but also makes it easier to maintain and replace the agitator.
[0201] (3) The shape and size of the agitator (2222) can be customized according to specific application requirements to adapt to different types, viscosities and volumes of target raw materials. This design makes the agitator mechanism (222) highly adaptable and flexible.
[0202] (4) By controlling the rotation speed and direction of the mixing paddle base (2221), the movement trajectory and mixing effect of the mixing paddle (2222) in the inner cavity of the receiving pipe (22) can be precisely controlled. This control capability makes the mixing process more precise and reliable.
[0203] (5) The rotation of the stirring paddle mechanism (222) is usually driven by a power source such as an electric motor, but due to its simple structure and low frictional resistance, the energy consumption is relatively low. This design helps to reduce production costs and energy consumption.
[0204] (6) The connection between the agitator base (2221) and the agitator (2222) is usually designed to be detachable, which facilitates cleaning, maintenance or replacement when needed. This design improves the maintainability and service life of the equipment.
[0205] Optionally, the cutting paddle mechanism (223) includes a cutting paddle mechanism (2231) and a cutting paddle (2232). The cutting paddle mechanism (2231) is nested and connected to the stirring paddle base (2221). The cutting paddle is disposed in the cutting paddle mechanism (2231) so that when the stirring paddle mechanism (222) stirs the target raw material contained in the inner cavity, the cutting paddle is fixed by keeping the cutting paddle mechanism (2231) stationary, so as to cut the target raw material synchronously.
[0206] Therefore, when the cutting paddle mechanism (223) includes a cutting paddle mechanism (2231) and a cutting paddle (2232), and is nested with the stirring paddle base (2221) to remain fixed during stirring so as to simultaneously cut the target raw material, this design brings the following technical benefits:
[0207] (1) The stirring paddle mechanism (222) rotates and stirs the target raw material under the drive of the stirring paddle base (2221), while the cutting paddle mechanism (2231) and the cutting paddle (2232) on it remain stationary. This design ensures that the stirring and cutting processes are carried out simultaneously, thus improving the processing efficiency.
[0208] (2) The fixed cutting paddle (2232) passively impacts the target raw material during mixing, so that the raw material is effectively cut and broken during the mixing process. This cutting method can effectively prevent the raw material from clumping and maintain the uniformity and fluidity of the raw material.
[0209] (3) Since the cutting paddle mechanism (2231) and the cutting paddle (2232) remain fixed, no additional power source is needed to drive their movement, thereby reducing the energy consumption of the overall system.
[0210] (4) The nested connection design between the cutting paddle mechanism (2231) and the stirring paddle base (2221) simplifies the structure and reduces the number of parts. At the same time, due to the fixed nature of the cutting paddle mechanism (2231), possible failure points are reduced and maintenance costs are lowered.
[0211] (5) The fixed design of the cutting paddle mechanism (2231) reduces vibration and wear caused by moving parts, thereby improving the stability and durability of the entire system.
[0212] (6) This design is applicable to a variety of target raw materials of different types and viscosities. Regardless of the nature of the raw material, the rotation of the stirring paddle mechanism (222) and the fixed cutting of the cutting paddle mechanism (2231) ensure that the raw material is processed uniformly and effectively.
[0213] Optionally, the cutting paddle mechanism (2231) has a protrusion (22311) and the stirring paddle base (2221) has a mounting hole (22211) through which the protrusion passes, so that the cutting paddle mechanism (2231) is nested with the stirring paddle base (2221).
[0214] Therefore, when the cutting paddle mechanism (2231) is nested with the mounting hole (22211) of the mixing paddle base (2221) via the protrusion (22311) thereon, this design brings the following technical benefits:
[0215] (1) By nesting the protrusion (22311) and the mounting hole (22211), the cutting paddle mechanism (2231) can be quickly and accurately installed on the mixing paddle base (2221) without the need for complicated fixing devices or tools, thus simplifying the assembly process.
[0216] (2) The tight fit between the protrusion (22311) and the mounting hole (22211) ensures a stable connection between the cutting paddle mechanism (2231) and the mixing paddle base (2221). This stability not only ensures the smooth progress of the mixing and cutting process, but also extends the service life of the equipment.
[0217] (3) When it is necessary to clean, repair or replace the cutting paddle mechanism (2231), it can be removed from the mixing paddle base (2221) with a simple operation. This design makes maintenance more convenient and quick and reduces maintenance costs.
[0218] (4) The nested connection design avoids equipment failure or safety accidents caused by weak connection. Even during high-speed stirring, the cutting paddle mechanism (2231) can remain stable, ensuring the safety of operators.
[0219] (5) By adjusting the size and shape of the protrusion (22311) and the mounting hole (22211), it can be adapted to different specifications and models of stirring paddle base (2221), so that the cutting paddle mechanism (2231) has stronger versatility and adaptability.
[0220] Optionally, the stirring paddle base (2221) is connected to the stirring drive mechanism, and the stirring paddle base (2221) rotates under the drive of the stirring drive mechanism.
[0221] Optionally, the fixed base (21) includes: a fixed frame (211) and a bracket (212), the receiving tube assembly is mounted on one side of the fixed frame (211), and the bracket (212) is mounted on the other side of the fixed frame (211) and connected to the sliding assembly (1).
[0222] Optionally, the fixed base (21) further includes a sealing plate (213), which is mounted on the bracket (212) to cooperate with the sliding assembly (1) to cover the bracket (212).
[0223] Therefore, when the fixed base (21) includes a fixed frame (211), a bracket (212), and a sealing plate (213), and is designed in such a structure, the following technical advantages are available:
[0224] (1) The fixed frame (211) serves as the main support structure of the entire base, providing a stable installation platform for the receiving pipe assembly. This design ensures the stability and reliability of the receiving pipe assembly during operation, avoiding displacement or damage caused by vibration or external forces.
[0225] (2) The bracket (212) is mounted on the other side of the fixed frame (211) and connected to the sliding assembly (1). This design allows the entire fixed base (21) to be easily assembled and disassembled with the sliding assembly (1), improving the flexibility and maintainability of the equipment.
[0226] (3) The sealing plate (213) is mounted on the bracket (212) and cooperates with the sliding assembly (1) to cover the bracket (212). The presence of the sealing plate can effectively protect the sliding assembly (1) from interference and damage from the external environment, such as dust and moisture. At the same time, the sealing plate can also prevent the debris or waste generated by the sliding assembly (1) during operation from falling, keeping the equipment clean and tidy.
[0227] (4) The cooperation between the sealing plate (213) and the sliding component (1) not only protects the sliding component (1) but also enhances the safety of the entire device. This design can reduce the direct contact between the operator and the sliding component (1) during operation, and reduce the safety risks caused by misoperation or negligence.
[0228] This application embodiment provides a receiving tube structure, wherein the receiving tube structure (2) is pre-loaded with a target base material, and the receiving tube structure (2) is slidably connected to a sliding component (1) so as to slide under the target raw material tube under the drive of the sliding component (1) to receive the target pigment from the target raw material tube;
[0229] The receiving pipe structure (2) includes a receiving pipe (22), which can slide to the bottom of the target raw material pipe under the drive of the sliding component (1) to receive the target pigment from the target raw material pipe and can be mixed with the target base material pre-loaded in the receiving pipe structure (2).
[0230] The material receiving pipe structure shown in the above figure can be used as an exemplary explanation of the material receiving pipe structure here.
[0231] Therefore, since the base material is pre-loaded into the receiving tube assembly, while the colorant is loaded subsequently, the entry points of the base material and colorant into the receiving tube assembly are separated. This allows for flexible selection of the base material and flexible configuration of the colorant according to the needs of the scenario, thereby improving the color gamut range and enriching the texture of the mixed pigment. Furthermore, because the colorant is loaded into the receiving tube assembly independently of the base material, the target raw material tube contains only the colorant, and its concentration can be independently adjusted. Similarly, the receiving tube assembly, pre-loaded with only the base material, also has an independently adjustable concentration. This increases the difficulty of selecting and adjusting both the base material and the colorant. During mixing, since the receiving tube assembly is pre-loaded with the base material, only the colorant from the target raw material tube needs to be loaded into the receiving tube assembly, thus reducing the difficulty of mixing.
[0232] Based on the above embodiments, this application also provides a lipstick machine, which includes the material receiving system described in any of the above embodiments.
[0233] Based on the above embodiments, a lipstick machine is provided, which includes the material receiving system described in any embodiment of this application, wherein the raw materials in each raw material tube are of different colors, and the raw materials in multiple raw material tubes can be mixed to obtain the desired lipstick color.
[0234] It should be noted that the above-mentioned receiving system of this application can be applied not only to the field of lipstick vending machines, but also to the following technical fields:
[0235] (1) On a confectionery production line, a receiving system can be used to receive syrups or jams of different colors from multiple raw material pipes and then mix or inject them into molds separately.
[0236] (2) On a chemical production line, the receiving system can receive chemical raw materials of different components and mix them in a preset ratio to ensure the quality of the final product.
[0237] (3) In the production of pigments or dyes, the receiving system can realize a variety of color ratios and mixing to meet the customized needs of different customers.
[0238] (4) On the pharmaceutical production line, the receiving system can accurately receive drug components from multiple raw material pipes, perform precise proportioning and mixing, and ensure that the composition and dosage of the drug are accurate.
[0239] (5) In pharmaceutical laboratories, receiving systems can be used to receive and mix different reagents for drug development and testing.
[0240] (6) In addition to lipstick machines, the receiving system can also be used for the production of other cosmetics, such as foundation, eyeshadow, blush, etc., to achieve the ratio and mixing of multiple colors.
[0241] (7) In the field of 3D printing, the feeding system can be used to receive and mix different printing materials (such as plastic filaments, metal powders, etc.) to support multi-material or multi-color printing.
[0242] The above description is merely a preferred embodiment of this application and is not intended to limit this application. Various modifications and variations can be made to this application by those skilled in the art. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of this application should be included within the protection scope of this application.
Claims
1. A material receiving pipe structure, characterized in that, include: The receiving pipe structure (2) is slidably connected to the sliding component (1) so as to slide under the target raw material pipe under the drive of the sliding component (1) so as to receive the target raw material from the target raw material pipe; The receiving pipe structure (2) includes a fixed base (21) and a receiving pipe (22). The receiving pipe (22) is disposed on the fixed base (21) so that the sliding component (1) drives the receiving pipe structure (2) to slide and move the receiving pipe (22) to the bottom of the target raw material pipe to receive the target raw material from the target raw material pipe. A plurality of raw material pipes (3) are disposed above the receiving pipe structure (2), each raw material pipe containing a predetermined raw material. The target raw material pipe is at least one of the plurality of raw material pipes (3), and the target raw material corresponds to the predetermined raw material in the raw material pipe.
2. The receiving pipe structure according to claim 1, characterized in that, The receiving tube structure (2) further includes a locking member (23), which is connected to the fixed base (21). The receiving tube (22) is locked to the fixed base (21) or removed from the fixed base (21) by the locking member (23).
3. The receiving pipe structure according to claim 2, characterized in that, The locking component (23) includes: a locking frame (231), a sliding lock (232), and a pressure block (233). The sliding lock (232) is disposed on the fixed base (21). The pressure block (233) is slidably connected to the sliding lock (232). The locking frame (231) is connected to the pressure block (233). The receiving tube (22) is fixed on the locking frame (231). By driving the locking frame (231) to move, the pressure block (233) and the sliding lock (232) slide against each other, so that the receiving tube (22) can be disposed on the fixed base (21) or removed from the fixed base (21).
4. The receiving pipe structure according to claim 3, characterized in that, The locking frame (231) includes a locking panel (2311) and a locking leg (2312). The locking panel (2311) has a through hole (23111) so that the receiving tube (22) passes through the through hole (23111) and is fixed on the locking frame (231). The locking leg (2312) is located below the locking panel (2311) and is connected to the pressure block (233). By driving the locking panel (2311) to move and transmitting through the locking leg (2312), the pressure block (233) and the sliding lock (232) slide against each other.
5. The receiving pipe structure according to claim 3, characterized in that, The slide lock (232) includes a sliding block (2321) and a latch (2322). The sliding block (2321) is disposed on the latch (2322) and is slidably connected to the pressure block (233) so that the latch (2322) can be connected to or disconnected from the fixed base (21) by sliding between the pressure block (233) and the slide lock (232).
6. The receiving pipe structure according to claim 5, characterized in that, The slide lock (232) also includes a fixed wing (2323), which is connected to the sliding block (2321). The slide lock (232) is mounted on the fixed base (21) via the fixed wing (2323).
7. The receiving pipe structure according to claim 2, characterized in that, The receiving tube (22) includes: a bottle body (221), a stirring paddle mechanism (222), and a cutting paddle mechanism (223). The bottle body (221) is connected to the locking member (23) so that the receiving tube (22) is located above the fixed base (21). The stirring paddle mechanism (222) and the cutting paddle mechanism (223) are disposed in the inner cavity of the bottle body (221) so that the stirring paddle mechanism (222) can stir the target raw material contained in the inner cavity, and the cutting paddle mechanism (223) can cut the target raw material.
8. The receiving pipe structure according to claim 7, characterized in that, The stirring paddle mechanism (222) is nested at the bottom of the cutting paddle mechanism (223) so that when the stirring paddle mechanism (222) stirs the target raw material contained in the inner cavity, the cutting paddle mechanism (223) simultaneously cuts the target raw material.
9. A material receiving pipe structure, characterized in that, The receiving pipe structure (2) is pre-loaded with the target base material. The receiving pipe structure (2) is slidably connected to the sliding component (1) so as to slide under the target raw material pipe under the drive of the sliding component (1) so as to receive the target pigment from the target raw material pipe. The receiving pipe structure (2) includes a receiving pipe (22), which can slide to the bottom of the target raw material pipe under the drive of the sliding component (1) to receive the target pigment from the target raw material pipe and can be mixed with the target base material pre-loaded in the receiving pipe structure (2).
10. A lipstick vending machine, characterized in that, Includes the receiving pipe structure as described in any one of claims 1-9.