A stirring head for assembling a rod-shaped structure, a stirring device and a hand drill
By designing a detachable mixing head and an electric drill drive, the problem of low efficiency in traditional mixing methods is solved, achieving rapid and uniform mixing and reducing pollution.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- YULIN ORCHID HUIXIN MEDICAL TECHNOLOGY CO LTD
- Filing Date
- 2025-07-29
- Publication Date
- 2026-06-26
AI Technical Summary
Traditional mixing methods are inefficient, making it difficult to evenly mix highly viscous materials, and manual mixing can easily lead to contamination or color mixing.
Design a stirring head for assembling a rod-shaped structure, including detachable first and second assembly parts, driving the rod-shaped structure to rotate rapidly for stirring via a rotating device such as an electric drill, and supporting quick replacement of the rod-shaped structure to reduce contamination.
It enables rapid and uniform mixing of materials, reduces pollution and color mixing, improves mixing efficiency, and reduces the labor intensity of users.
Smart Images

Figure CN224405021U_ABST
Abstract
Description
Technical Field
[0001] This application relates to the field of auxiliary stirring technology, and in particular to a stirring head, stirring equipment and hand-held electric drill for assembling a rod-shaped structure. Background Technology
[0002] In the process of artistic creation or handicraft making, it is often necessary to thoroughly mix the materials to be stirred, such as stirring pigments to achieve the desired color effect. However, traditional stirring methods, such as manually stirring with wooden sticks or plastic rods, are not only inefficient but also produce unsatisfactory results. This is especially true when dealing with highly viscous materials, where manual stirring often proves inadequate.
[0003] However, manually stirring materials is a patient and meticulous task, involving mixing at least one material with a suitable solvent to achieve the desired consistency and uniformity. Manual stirring is difficult to achieve quickly and uniformly, and the quick replacement of rod-shaped components can reduce contamination or color mixing. Utility Model Content
[0004] This application provides a stirring head, stirring device, and hand-held electric drill for assembling a rod-shaped structure, which can effectively replace the manual stirring of materials to be stirred. By using the rotational power of a rotating device such as an electric drill, the rod-shaped structure is rotated quickly, thereby achieving the purpose of quickly and evenly stirring the materials to be stirred. Furthermore, the quick replacement of the rod-shaped structure can reduce contamination or color mixing.
[0005] In a first aspect, this application provides a stirring head for assembling a rod-shaped structure. The stirring head is capable of installing and replacing the rod-shaped structure, and includes a first assembly part and a second assembly part. The rod-shaped structure can be configured as a common tongue depressor, popsicle stick, or other common assembleable structures.
[0006] The first assembly part is detachably connected to the drive unit of the mixing equipment. The second assembly part is connected to or integrally formed with the first assembly part, and an assembly groove is provided on the second assembly part.
[0007] The assembly slot can replace the rod-shaped structure, and the rotation of the drive unit can drive the first assembly part to rotate. The second assembly part rotates with the first assembly part and drives the rod-shaped structure to stir the preset fluid.
[0008] The aforementioned stirring heads have the ability to install and replace rod-shaped structures. These stirring heads consist of two main assembly parts, namely the first assembly part and the second assembly part.
[0009] The first assembly section is designed to be detachably connected to the drive unit of the mixing equipment. This design allows users to easily install the mixing head onto the mixing equipment or replace it when needed. The second assembly section is connected to the first assembly section, or it can be designed to be integrally formed with the first assembly section to enhance the structural stability. The second assembly section has specially provided assembly slots for assembly.
[0010] The assembly tank can accommodate and replace rod-shaped structures, allowing users to easily place the rod-shaped structures in the tank opening for stirring. When the drive unit starts to rotate, its rotation effectively drives the first assembly unit to rotate as well. As the first assembly unit rotates, the second assembly unit also rotates, thereby driving the rod-shaped structures to stir in the preset fluid, thus achieving stirring and mixing of the rod-shaped structures to achieve the desired stirring effect.
[0011] The shape and size of the assembly groove match the cross-section of the rod-shaped structure, ensuring that the rod-shaped structure can be stably installed within the assembly groove. When fluid agitation is required, the user simply inserts the rod-shaped structure into the assembly groove and then connects the first assembly part of the stirring head to the drive unit of the agitator. After the drive unit is activated, the first assembly part begins to rotate, and the second assembly part rotates accordingly, thereby driving the rod-shaped structure to rapidly agitate the fluid.
[0012] Furthermore, the first and second assembly parts of the stirring head can be detachably connected, allowing users to easily replace rod-shaped structures of different sizes or shapes to adapt to various stirring needs. This detachable design also facilitates cleaning and maintenance of the stirring head, ensuring its optimal working condition. Alternatively, the first and second assembly parts can be integrated, and different models of stirring heads can be produced by incorporating assembly slots of varying sizes.
[0013] During the mixing process, the rod-shaped structure acts as a mixing medium, effectively mixing the material to be mixed or other components in the fluid evenly. Compared to traditional manual mixing methods, the mixing head of this application can greatly improve mixing efficiency and reduce the labor intensity of users.
[0014] In some examples, the first assembly is a prism-shaped structure; and / or, the second assembly is a shovel-shaped structure.
[0015] This design allows the first assembly to be securely mounted on the drive unit, ensuring stability and reliability during rotation. The shovel-shaped structure of the second assembly optimizes its fluid contact area during mixing, resulting in more uniform and efficient mixing. The edges of the shovel-shaped structure can also be specially treated to reduce fluid abrasion and extend the service life of the mixing head.
[0016] In some examples, the second assembly part has a guide ramp on the side opposite to the first assembly part.
[0017] The guide ramp design not only simplifies the assembly process but also improves assembly efficiency. During the rotation of the stirring head, the guide ramp guides the rod-shaped structure smoothly into its assembly position along a predetermined path, preventing jamming or damage caused by improper assembly. Furthermore, the smooth surface of the guide ramp reduces friction with the rod-shaped structure, further protecting it from damage and ensuring its integrity and stability during use. This ingenious design not only enhances the user experience but also demonstrates the product's meticulous attention to detail and thoughtful design.
[0018] In some examples, the slot opening area of the assembly slot is provided with at least one guide surface.
[0019] The guide surface is also designed with ease and efficiency in mind. Its shape and angles have been carefully calculated to ensure the rod-shaped structure slides smoothly and accurately into the assembly slot. Similar to the guide ramp, the smooth surface of the guide surface also helps reduce friction, protecting the rod-shaped structure from damage during assembly. When the guide surface and guide ramp are present simultaneously, they work synergistically to provide a smoother and more stable assembly path for the rod-shaped structure, further improving assembly efficiency and user experience. This meticulous design not only reflects a focus on user experience but also demonstrates the product's exceptional capabilities in technological innovation and attention to detail.
[0020] In some examples, at least one elastic element is provided on the inner wall of the assembly slot.
[0021] The inclusion of elastic components further enhances the stability and robustness of the rod-shaped structure assembly. When the rod-shaped structure is assembled into the assembly slot, the elastic components provide elastic support, ensuring a tight fit within the slot and preventing loosening or detachment. This design not only improves assembly reliability but also helps extend the lifespan of the rod-shaped structure. Furthermore, the use of elastic components takes into account the assembly needs of rod-shaped structures of different specifications and sizes. By adjusting the elasticity and position of the components, different sizes of rod-shaped structures can be accommodated, increasing the product's versatility and flexibility. This design, incorporating elastic components on the inner wall of the assembly slot, once again demonstrates attention to detail and a commitment to an exceptional user experience.
[0022] In some examples, at least one elastic element is provided on each of the two opposing inner walls of the assembly slot.
[0023] This dual-sided arrangement not only enhances the stability of the rod-shaped structure within the assembly tank but also ensures uniform force distribution during the mixing process. When the mixing head begins operation, the rod-shaped structure experiences rotational force from it, and the elastic elements on the inner wall of the assembly tank effectively disperse these forces, preventing damage to the rod-shaped structure due to uneven stress. Furthermore, the double-sided elastic elements create a small elastic buffer zone between the rod-shaped structure and the assembly tank. This zone absorbs vibrations generated during mixing, further reducing noise and wear, and improving overall mixing efficiency and user experience. This meticulously designed assembly structure undoubtedly reflects a high level of attention to product performance and user satisfaction.
[0024] In some examples, the elastic element is a spring sheet structure, which includes a connecting part, an elastic part, and a movable part that are connected or integrally formed. The connecting part is connected to the inner wall of the assembly groove, the elastic part is bent and the bending direction is away from the inner wall of the assembly groove, and the movable part is spaced apart from the inner wall of the assembly groove. During the deformation of the spring sheet structure, the movable part can abut against the inner wall of the assembly groove.
[0025] This spring-loaded structure design allows the elastic element to generate a larger deformation space under stress, thus providing more stable elastic pressure. The robust connection between the connecting part and the inner wall of the mounting groove ensures the stability and reliability of the spring-loaded structure.
[0026] The bending design of the elastic part not only increases the elasticity of the spring structure but also allows the spring to distribute force more evenly when under stress, preventing damage caused by concentrated force. The design of the movable part allows the spring structure to more effectively abut against the inner wall of the assembly groove during deformation, thereby further enhancing the stability of the rod-shaped structure within the assembly groove.
[0027] In some examples, the first assembly is one of a triangular prism, a square prism, or a hexagonal prism.
[0028] The design of triangular prisms, square prisms, hexagonal prisms, and other shapes not only increases the contact area between the first assembly part and the drive part, but also makes the connection more secure and less prone to loosening. This design provides better stability and durability when facing various forces and vibrations during the mixing process. At the same time, the geometric characteristics of these shapes also help to disperse forces and prevent damage caused by excessive local stress. Of course, in practical applications, other shapes of the first assembly part can be selected according to specific needs and working environment to achieve the best connection effect and mixing performance.
[0029] Secondly, this application provides a stirring device, including a drive unit and a stirring head as described above for assembling a rod-shaped structure, the stirring head being detachably connected to the drive unit.
[0030] This mixing equipment can effectively replace the method of manually mixing materials and other pre-set fluids. By using the rotational power of a rotating device such as an electric drill, the rod structure is rotated quickly, thereby achieving the purpose of quickly and evenly mixing the materials. Furthermore, the quick replacement of the rod structure can reduce contamination or color mixing.
[0031] The design of this mixing equipment fully considers practicality and flexibility. The drive unit, as the core power source of the equipment, provides stable rotational power to drive the mixing head for mixing operations. The mixing head, especially the specially designed and optimized one described above, can efficiently assemble a rod-shaped structure and perform mixing.
[0032] Furthermore, the detachable connection between the stirring head and the drive unit allows users to quickly replace different stirring heads according to varying stirring needs and working environments. This design not only improves the equipment's versatility and adaptability but also facilitates daily maintenance and upkeep for users.
[0033] Thirdly, this application provides a handheld electric drill, including a drill mounting part and a stirring head for assembling a rod-shaped structure as described above, the stirring head being detachably connected to the drill mounting part.
[0034] The aforementioned handheld electric drill not only possesses the basic functions of a traditional electric drill, but also includes a special mixing head for mounting a rod-shaped structure. This mixing head is designed to be easily disassembled and can be connected to the mounting part of the electric drill.
[0035] The advent of this handheld electric drill has provided users with great convenience, especially when it is necessary to stir materials or other pre-set fluids. By using the rotational power of the drill, users can easily and quickly rotate the rod-shaped structure, thereby effectively achieving the goal of quickly and evenly stirring the materials. This stirring method not only improves work efficiency but also ensures the uniformity of stirring, resulting in a more ideal final mixture of materials. Attached Figure Description
[0036] To more clearly illustrate the technical solutions in this application or the prior art, the drawings used in the examples or prior art description will be briefly introduced below. Obviously, the drawings described below are only some examples of this application. For those skilled in the art, other drawings can be obtained from these drawings without creative effort.
[0037] Figure 1 This is a schematic diagram of the structure of a stirring head for assembling a rod-shaped structure in one example of this application.
[0038] Figure 2 This is a structural schematic diagram from another perspective of a stirring head used for assembling a rod-shaped structure, as shown in one example of this application.
[0039] Figure 3 This is a structural schematic diagram from another perspective of a stirring head used for assembling a rod-shaped structure, as shown in one example of this application.
[0040] Figure 4 This is a schematic diagram of a stirring head with a wire bevel in one example of this application.
[0041] Figure 5 This is a schematic diagram of the structure of the stirring head used for assembling the rod-shaped structure in one example of this application.
[0042] Figure 6 This is a schematic diagram of the structure of a stirring head with a guide wire slope and a guide surface in one example of this application.
[0043] Figure 7 This is a schematic diagram of the structure of the stirring head with an elastic element installed in the assembly groove in one example of this application.
[0044] Figure 8 This is a cross-sectional view of the structure of the stirring head in one example of this application, where an elastic element is provided in the assembly groove.
[0045] Figure 9 This is a schematic diagram of another structure for assembling a stirring head with a rod-shaped structure, as shown in one example of this application.
[0046] Figure 10 This is another structural schematic diagram from another perspective of an example of a stirring head for assembling a rod-shaped structure in this application.
[0047] Figure label:
[0048] 100. First assembly section; 200. Second assembly section; 210. Assembly groove; 220. Guide slope; 230. Guide surface; 240. Elastic element; 241. Connecting part; 242. Elastic part; 243. Movable part; 300. Rod-shaped structure. Detailed Implementation
[0049] To make the objectives, technical solutions, and advantages of this application clearer, the following detailed description is provided in conjunction with the accompanying drawings and examples. It should be understood that the specific examples described herein are merely illustrative and not intended to limit the scope of this application.
[0050] To solve the above technical problems, please refer to Figures 1-8As shown, the first aspect of this application proposes a stirring head for assembling a rod-shaped structure 300, which can effectively replace the manual stirring of the material to be stirred. By using the rotational power of a rotating device such as an electric drill, the rod-shaped structure 300 is made to rotate rapidly, thereby achieving the purpose of quickly and evenly stirring the material to be stirred. Furthermore, the quick replacement of the rod-shaped structure can reduce contamination or color mixing.
[0051] Reference Figures 1-8 As shown, in some examples, the stirring head can be installed and replaced with the rod-shaped structure 300, and the stirring head includes a first assembly part 100 and a second assembly part 200.
[0052] The first assembly part 100 is detachably connected to the drive part of the mixing equipment. The second assembly part 200 is connected to or integrally formed with the first assembly part 100, and the second assembly part 200 is provided with an assembly groove 210.
[0053] The assembly groove 210 can replace the rod-shaped structure 300. The rotation of the drive unit can drive the first assembly part 100 to rotate. The second assembly part 200 rotates with the first assembly part 100 and drives the rod-shaped structure 300 to stir the preset fluid.
[0054] The stirring head is mainly used to connect the rod-shaped structure 300 and to stir different types of materials such as silicone, foamed silicone, polyurethane, paint, or other materials to be stirred. The materials to be stirred may also include at least one color of pigment.
[0055] Furthermore, materials such as silicone, foamed silicone, and polyurethane have specific requirements during the mixing process.
[0056] The aforementioned materials need to be mixed very evenly because uneven mixing during the process can lead to product failure. Therefore, the portable mixing head of this application is particularly important. This mixing head effectively solves the problem of uneven mixing, thereby significantly reducing the mixing time and ensuring that the materials are fully and evenly mixed.
[0057] The rod-shaped structure 300 allows for quick replacement, ensuring that the material is not contaminated or its color mixed each time the rod-shaped structure 300 is inserted into the mixing head. This is crucial for maintaining the purity and color accuracy of the material. This method not only eliminates the hassle of cleaning the mixing head but also avoids the risk of material poisoning due to mixing head residue, which is especially important for sensitive materials such as platinum and silicone.
[0058] The aforementioned stirring head has the ability to install and replace the rod-shaped structure 300. These stirring heads consist of two main assembly parts, namely the first assembly part 100 and the second assembly part 200.
[0059] The first assembly part 100 is designed to be detachably connected to the drive unit of the mixing equipment. This design allows the user to easily install the mixing head onto the mixing equipment or replace it when needed. The second assembly part 200 is connected to the first assembly part 100, or it can be designed to be integrally formed with the first assembly part 100 to enhance the structural stability. The second assembly part 200 is specially provided with an assembly groove 210 for assembly.
[0060] The assembly slot 210 can accommodate and replace the rod-shaped structure 300, allowing the user to easily place the rod-shaped structure 300 in the slot for stirring. When the drive unit starts to rotate, its rotational motion effectively drives the first assembly unit 100 to rotate as well. As the first assembly unit 100 rotates, the second assembly unit 200 also rotates, thereby driving the rod-shaped structure 300 to stir in the preset fluid, thus achieving stirring and mixing of the rod-shaped structure 300 to achieve the desired stirring effect.
[0061] The shape and size of the assembly groove 210 match the cross-section of the rod-shaped structure 300, ensuring that the rod-shaped structure 300 can be stably installed within the assembly groove 210. When fluid stirring is required, the user simply inserts the rod-shaped structure 300 into the assembly groove 210 and then connects the first assembly part 100 of the stirring head to the drive unit of the stirring device. After the drive unit is started, the first assembly part 100 begins to rotate, and the second assembly part 200 rotates accordingly, thereby driving the rod-shaped structure 300 to rapidly stir the fluid.
[0062] Furthermore, the first assembly part 100 and the second assembly part 200 of the stirring head can be detachably connected, allowing users to easily replace rod-shaped structures 300 of different sizes or shapes to adapt to different stirring needs. This detachable design also facilitates cleaning and maintenance of the stirring head, ensuring its optimal working condition. Alternatively, the first assembly part 100 and the second assembly part 200 can be integrated, and different models of stirring heads can be produced by using assembly slots 210 of different sizes.
[0063] During the mixing process, the rod-shaped structure 300 serves as the mixing medium, effectively and uniformly mixing the materials to be mixed or other components in the fluid. Compared to traditional manual mixing methods, the mixing head of this application can greatly improve mixing efficiency and reduce the user's workload. Users only need to install the mixing head on a suitable drive device, such as an electric mixer or a manual rotary device, to easily achieve uniform mixing of the materials to be mixed.
[0064] The aforementioned pre-mixed fluids can be composed of a variety of different types of substances, including materials to be mixed, powders, and liquid mixtures. These components are selected and blended to ensure the fluid possesses the desired properties and application effects. Furthermore, pre-mixed fluids can further include other types of building and decorative materials, such as cement, latex paint, and varnishes. These additional components can be added according to specific application requirements to enhance the fluid's adhesion, durability, or aesthetics. Through this flexible combination method, pre-mixed fluids can adapt to various construction environments and decorative requirements, thus providing users with a wider range of application options.
[0065] The stirring head can be made of materials with sufficient strength, such as metals, non-metals, and semi-metals, specifically through integral molding or splicing. Metals can include elemental iron, copper, and aluminum, as well as alloys. Non-metals can include rigid plastics, rigid rubber, and other polymer materials with a certain stress (or strength). Semi-metals can be composite structures of metals and non-metals, which can be a combination of a rigid metal skeleton and a soft non-metallic material, or a combination of a rigid non-metallic skeleton and a metal reinforcing layer.
[0066] The design of the stirring head takes into full consideration its durability and adaptability in practical applications. Metals such as iron, copper, aluminum, and their alloys, due to their high strength and excellent corrosion resistance, ensure that the stirring head is not easily damaged during prolonged use. Non-metallic materials such as hard plastics and hard rubber, with their lightweight, corrosion resistance, and ease of processing, provide greater design flexibility for the stirring head. At the same time, these non-metallic materials can also reduce noise and vibration during the stirring process to a certain extent, improving the user experience.
[0067] Semi-metallic materials combine the advantages of both metallic and non-metallic materials. For example, the rigid metal skeleton provides robust structural support, while the soft non-metallic material increases the flexibility and wear resistance of the mixing head. This composite structure design allows the mixing head to maintain high strength while adapting to various complex mixing environments.
[0068] Integrated molding can be achieved through processes such as injection molding, 3D printing, and powder metallurgy. Assembled molding allows multiple smaller parts to be connected using at least one method, such as snap-fit, clamping, threaded connection, magnetic attraction, binding, or bonding. For example, the first assembly part 100 and the second assembly part 200 can be configured as separate units.
[0069] In terms of processing methods, unibody molding utilizes advanced technologies such as injection molding, 3D printing, and powder metallurgy to precisely manufacture stirring heads with complex shapes and accurate dimensions. Meanwhile, modular assembly uses simple connection methods, such as snap-fit, clamps, and threaded connections, to combine multiple parts together, reducing manufacturing costs and facilitating maintenance and replacement. Furthermore, magnetic and binding connection methods offer more options for assembling stirring heads, enabling them to adapt to different application scenarios and needs.
[0070] The rod structure 300 can be configured as a common tongue depressor, ice cream stick, or other common assembleable structures.
[0071] The first assembly part 100 is connected to the drive unit of the mixing equipment and can be detachably connected by means of threaded connection, snap-fit connection, etc., so that users can replace different mixing heads according to actual needs. The second assembly part 200 is connected to the first assembly part 100 or is integrally set. The assembly groove 210 opened on the second assembly part 200 is used to install and fix the rod-shaped structure 300. The shape and size of the assembly groove 210 match the rod-shaped structure 300 to ensure that the rod-shaped structure 300 can be stably installed in the assembly groove 210 and rotate together with the mixing head.
[0072] In practical use, users can select a suitable rod structure 300 as needed and insert it into the assembly slot 210. Then, the stirring head is installed on the drive unit of the stirring equipment. Starting the stirring equipment causes the drive unit to rotate, driving the stirring head and rod structure 300 to rotate together, thereby stirring the preset fluid. Since the stirring head and rod structure 300 can be easily replaced, users can select the appropriate stirring head and rod structure 300 according to different stirring requirements and fluid characteristics to improve stirring efficiency and effect.
[0073] Furthermore, the stirring head of this application has the advantages of simple structure, ease of manufacture and maintenance. The rational structural design of the first assembly part 100 and the second assembly part 200 enables the stirring head to maintain stability and reliability during use. At the same time, the shape and size of the assembly tank 210 can also be customized according to actual needs to meet the stirring requirements of different users.
[0074] Reference Figures 1-8 As shown, in some examples, the first assembly part 100 is a prism-shaped structure; and / or, the second assembly part 200 is a shovel-shaped structure.
[0075] This design allows the first assembly 100 to be securely mounted on the drive unit, while ensuring stability and reliability during rotation. The shovel-shaped structure of the second assembly 200 optimizes its fluid contact area during mixing, resulting in more uniform and efficient mixing. The edges of the shovel-shaped structure can also be specially treated to reduce fluid abrasion and extend the service life of the mixing head.
[0076] Reference Figures 1-8 As shown, in some examples, the second assembly part 200 is provided with a guide ramp 220 on the side opposite to the first assembly part 100. The guide ramp 220 facilitates the rapid assembly of the rod-shaped structure 300.
[0077] The design of the guide ramp 220 not only simplifies the assembly process but also improves assembly efficiency. During the rotation of the stirring head, the guide ramp 220 guides the rod-shaped structure 300 smoothly into the assembly position along a predetermined path, avoiding jamming or damage caused by improper assembly. Furthermore, the smooth surface of the guide ramp 220 reduces friction with the rod-shaped structure 300, further protecting it from damage and ensuring its integrity and stability during use. This ingenious design not only enhances the user experience but also demonstrates the product's meticulous attention to detail and thoughtful design.
[0078] In some examples, the slot area of the assembly slot 210 is provided with at least one guide surface 230. The guide surface 230 can further facilitate the rapid assembly of the rod structure 300. The guide surface 230 and the guide ramp 220 can be either one or both.
[0079] The guide surface 230 is also designed with ease and efficiency in mind. Its shape and angles have been carefully calculated to ensure that the rod-shaped structure 300 can slide smoothly and accurately into the assembly slot 210. Similar to the guide ramp 220, the smooth surface of the guide surface 230 also helps reduce friction and protects the rod-shaped structure 300 from damage during assembly. When the guide surface 230 and the guide ramp 220 are present simultaneously, they work synergistically to provide a smoother and more stable assembly path for the rod-shaped structure 300, thereby further improving assembly efficiency and user experience. This meticulous design not only reflects the emphasis on user experience but also demonstrates the product's outstanding capabilities in technological innovation and attention to detail.
[0080] Reference Figure 7 and Figure 8 As shown, in some examples, at least one elastic element 240 is provided on the inner wall of the assembly groove 210.
[0081] The elastic element 240 further enhances the stability and robustness of the rod-shaped structure 300 assembly. When the rod-shaped structure 300 is assembled into the assembly slot 210, the elastic element 240 provides elastic support, ensuring that the rod-shaped structure 300 fits tightly within the assembly slot 210, preventing loosening or detachment. This design not only improves assembly reliability but also helps extend the service life of the rod-shaped structure 300. Furthermore, the use of the elastic element 240 also considers the assembly needs of rod-shaped structures 300 of different specifications and sizes. By adjusting the elasticity and position of the elastic element 240, it can accommodate rod-shaped structures 300 of different sizes, increasing the product's versatility and flexibility. This design, incorporating the elastic element 240 on the inner wall of the assembly slot 210, once again demonstrates attention to detail and a pursuit of the ultimate user experience.
[0082] The elastic element 240 can be a sheet, spring, rubber pad, or other elastic material. Its function is to provide a certain elastic pressure between the stirring head and the rod structure 300, ensuring that the rod structure 300 will not easily fall off during the stirring process, thereby improving the stability and safety of the stirring.
[0083] Reference Figure 7 and Figure 8 As shown, in some examples, at least one elastic element 240 is provided on each of the two opposing inner walls of the assembly groove 210.
[0084] This dual-sided arrangement not only enhances the stability of the rod-shaped structure 300 within the assembly tank 210 but also ensures uniform force distribution during the mixing process. When the mixing head begins operation, the rod-shaped structure 300 is subjected to rotational force from the mixing head, and the elastic element 240 on the inner wall of the assembly tank 210 effectively disperses these forces, preventing damage to the rod-shaped structure 300 due to uneven force distribution. Furthermore, the dual-sided elastic element 240 forms a small elastic buffer zone between the rod-shaped structure 300 and the assembly tank 210. This area absorbs vibrations generated by mixing, further reducing noise and wear, and improving overall mixing efficiency and user experience. This meticulously designed assembly structure undoubtedly reflects a high level of attention to product performance and user satisfaction.
[0085] Reference Figure 7 and Figure 8 As shown, in some examples, the elastic element 240 is a spring sheet structure. The spring sheet structure includes a connecting part 241, an elastic part 242, and a movable part 243 that are connected or integrally formed. The connecting part 241 is connected to the inner wall of the assembly groove 210. The elastic part 242 is bent and the bending direction is away from the inner wall of the assembly groove 210. The movable part 243 is spaced apart from the inner wall of the assembly groove 210. During the deformation of the spring sheet structure, the movable part 243 can abut against the inner wall of the assembly groove 210.
[0086] This spring-loaded structure design allows the elastic element 240 to generate a larger deformation space when subjected to force, thus providing more stable elastic pressure. The firm connection between the connecting part 241 and the inner wall of the mounting groove 210 ensures the stability and reliability of the spring-loaded structure.
[0087] The bending design of the elastic part 242 not only increases the elasticity of the spring structure, but also allows the spring to distribute force more evenly when under stress, preventing damage caused by force concentration. The design of the movable part 243 allows the spring structure to more effectively abut against the inner wall of the assembly groove 210 during deformation, thereby further enhancing the stability of the rod-shaped structure 300 within the assembly groove 210.
[0088] Furthermore, the choice of material for the spring structure is also crucial. High-strength, highly elastic materials are typically selected to ensure that the spring structure maintains good elasticity and stability during long-term use. The elastic element 240 in this spring structure undoubtedly represents an optimization and improvement to the performance of the stirring head.
[0089] In some examples, the first assembly part 100 is one of a triangular prism, a square prism, or a hexagonal prism. This arrangement makes the connection between the first assembly part 100 and the drive part more stable and reliable. Other shapes of the first assembly part 100 can also be used if necessary.
[0090] The design of triangular prisms, square prisms, hexagonal prisms, and other shapes not only increases the contact area between the first assembly part 100 and the drive part, but also makes the connection more secure and less prone to loosening. This design provides better stability and durability when facing various forces and vibrations during the mixing process. At the same time, the geometric characteristics of these shapes also help to disperse forces and prevent damage caused by excessive local stress. Of course, in practical applications, other shapes of the first assembly part 100 can be selected according to specific needs and working environment to achieve the best connection effect and mixing performance.
[0091] Reference Figure 9 and Figure 10 The second assembly part in this application is not limited to a shovel-shaped structure, but can be set as a barrel-shaped structure, for example... Figure 9 and Figure 10 The prism-shaped barrel structure can also be a cylindrical barrel structure, depending on the specific needs. The second assembly section can be used to assemble the rod-shaped structure 300.
[0092] The barrel-shaped structure design also takes into account the stability and mixing efficiency of the stirring head. Its spacious assembly area can accommodate larger rod-shaped structures (300), thereby increasing the stirring capacity and applicability of the stirring head. Simultaneously, the edges of the barrel-shaped structure can be specially treated to reduce fluid wear, further extending the service life of the stirring head. This flexible and versatile design allows the stirring head to adapt to different mixing needs and fluid characteristics, providing users with a more convenient and efficient mixing solution.
[0093] Secondly, this application provides a stirring device, including a drive unit and a stirring head as described above for assembling a rod-shaped structure 300, the stirring head being detachably connected to the drive unit.
[0094] This mixing equipment can effectively replace the method of manually mixing materials and other pre-set fluids. By using the rotational power of a rotating device such as an electric drill, the rod structure 300 is rotated quickly, thereby achieving the purpose of quickly and evenly mixing the materials. Furthermore, the quick replacement of the rod structure can reduce contamination or color mixing.
[0095] The design of this mixing equipment fully considers practicality and flexibility. The drive unit, as the core power source of the equipment, provides stable rotational power to drive the mixing head for mixing operations. The mixing head, especially the specially designed and optimized one described above, can efficiently assemble the rod-shaped structure 300 and perform mixing.
[0096] Furthermore, the detachable connection between the stirring head and the drive unit allows users to quickly replace different stirring heads according to varying stirring needs and working environments. This design not only improves the equipment's versatility and adaptability but also facilitates daily maintenance and upkeep for users.
[0097] In summary, the mixing equipment provided in this application, by combining an optimized mixing head and a reliable drive unit, achieves efficient and flexible mixing operations, meeting the needs of different users.
[0098] Thirdly, this application provides a handheld electric drill, including a drill mounting part and a stirring head for assembling a rod-shaped structure 300 as described above, the stirring head being detachably connected to the drill mounting part.
[0099] The aforementioned handheld electric drill not only possesses the basic functions of a traditional electric drill, but also includes a special mixing head for mounting the rod-shaped structure 300. This mixing head is designed to be easily detachable and can be connected to the mounting part of the electric drill.
[0100] The advent of this handheld electric drill has provided users with great convenience, especially when it is necessary to stir materials or other pre-set fluids. By using the rotational power of the drill, users can easily make the rod-shaped structure 300 rotate quickly, thereby effectively achieving the goal of quickly and evenly stirring the materials. This stirring method not only improves work efficiency but also ensures the uniformity of stirring, resulting in a more ideal final mixture of materials.
[0101] In the accompanying drawings of this application, the same or similar reference numerals correspond to the same or similar components. In the description of this application, it should be understood that if terms such as "upper," "lower," "left," "right," etc., indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings, they are only for the convenience of describing this application and simplifying the description, and do not 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, the terms used to describe positional relationships in the accompanying drawings are only for illustrative purposes and should not be construed as limiting this patent. For those skilled in the art, the specific meaning of the above terms can be understood according to the specific circumstances.
[0102] The above are merely preferred examples of this application and are not intended to limit this application. Any modifications, equivalent substitutions, and improvements made within the spirit and principles of this application shall be included within the scope of protection of this application.
Claims
1. A stirring head for assembling a rod-shaped structure, characterized in that, The stirring head is capable of being fitted with and having its rod-shaped structure replaced, and the stirring head includes: The first assembly part is detachably connected to the drive part of the mixing equipment; The second assembly part is connected to or integrally formed with the first assembly part, and the second assembly part is provided with an assembly groove. The assembly slot allows for the replacement of the rod-shaped structure. The rotation of the drive unit can drive the first assembly unit to rotate, and the second assembly unit rotates with the first assembly unit and drives the rod-shaped structure to stir a preset fluid.
2. The stirring head for assembling a rod-shaped structure as described in claim 1, characterized in that, The first assembly part is a prism-shaped structure; and / or, the second assembly part is a shovel-shaped structure.
3. The stirring head for assembling a rod-shaped structure as described in claim 1 or 2, characterized in that, The second assembly part has a guide slope on the side opposite to the first assembly part.
4. The stirring head for assembling a rod-shaped structure as described in claim 1 or 2, characterized in that, The groove opening area of the assembly slot is provided with at least one guide surface.
5. The stirring head for assembling a rod-shaped structure as described in claim 1, characterized in that, At least one elastic element is provided on the inner wall of the assembly groove.
6. The stirring head for assembling a rod-shaped structure as described in claim 1, characterized in that, At least one elastic element is provided on each of the two opposing inner walls of the assembly groove.
7. The stirring head for assembling a rod-shaped structure as described in claim 5 or 6, characterized in that, The elastic element is a spring sheet structure, which includes a connecting part, an elastic part, and a movable part that are connected or integrally formed; The connecting part is connected to the inner wall of the assembly groove, and the elastic part is bent, with the bending direction being the side away from the inner wall of the assembly groove. The movable part is spaced apart from the inner wall of the assembly groove, and during the deformation of the spring sheet structure, the movable part can abut against the inner wall of the assembly groove.
8. The stirring head for assembling a rod-shaped structure as described in claim 1, characterized in that, The first assembly part is one of a triangular prism, a square prism, or a hexagonal prism; or the rod-shaped structure is a tongue depressor, an ice cream stick, or other assemblable structures.
9. A mixing device, characterized in that, include: Drive unit; and, The stirring head for assembling a rod-shaped structure as described in any one of claims 1 to 8, wherein the stirring head is detachably connected to the drive unit.
10. A handheld electric drill, characterized in that, include: Electric drill installation department; and, The stirring head for assembling a rod-shaped structure as described in any one of claims 1 to 8, wherein the stirring head is detachably connected to the electric drill mounting portion.