Hair straightening comb

By combining the comb teeth base with the multi-directional oscillating component in a coordinated design, along with an elastic structure and sliding surface, the problem of existing straighteners being unable to adapt to different hair types has been solved. This achieves low resistance and low pulling force during the combing process, improving hair care effects and user experience.

CN224069901UActive Publication Date: 2026-04-03SHANGHAI FLYCO ELECTRICAL APPLIANCE
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-03-14
Publication Date
2026-04-03

AI Technical Summary

Technical Problem

Existing hair straighteners have fixed comb teeth during the combing process, which cannot adapt to different hairstyles and hair types. This leads to excessive pulling, breakage, and heat damage to the hair, and fails to provide ideal hair care results and user experience.

Method used

Through the coordinated design of the comb holder and the multi-directional wobbling component, the comb holder can wobble in multiple directions on the main body. Combined with the elastic structure and sliding surface design, the comb holder can be flexibly fine-tuned in the radial and axial directions of the support channel to adapt to different hair types and conditions.

Benefits of technology

It significantly reduces resistance and pulling force during combing, reduces the risk of hair breakage, reduces discomfort, reduces static electricity and frizz, and makes hair smoother and easier to manage.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the field of hair straightening combs, and provides a hair straightening comb which comprises a comb tooth seat, a main body and a multidirectional shaking assembly, the comb tooth seat is provided with a plurality of comb teeth, the main body is provided with a containing cavity and a supporting hole channel, and the multidirectional shaking assembly is suitable for being arranged in the containing cavity in a multidirectional shaking mode and fixedly connected with the comb tooth seat. The comb tooth seat is mounted on the main body in a multidirectional shaking manner. Through collaborative design of the comb tooth seat and the multi-directional shaking assembly, multi-directional shaking of the comb tooth seat on the main body is realized, so that the comb teeth can be precisely attached to a natural curve of hair, resistance and pulling force in the combing process are remarkably reduced, and the risk of hair breakage is effectively reduced; meanwhile, the comb teeth are allowed to be flexibly and finely adjusted in the radial direction and the axial direction of the supporting hole channels through multi-direction shaking of the comb tooth bases, automatic adaptation can be achieved according to different hair quality and hair states, the discomfort during combing is further reduced, the static electricity and frizz phenomena are reduced, and the hair is smoother and easy to care.
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Description

Technical Field

[0001] This utility model relates to the field of hair straighteners, and more specifically to a hair straightener. Background Technology

[0002] Straightening combs are widely used in the hair styling industry because of their ability to efficiently straighten hair. However, most existing straightening combs only have a simple axial floating design for the comb teeth, while the comb teeth seat remains fixed to the main body. This design has significant limitations. It cannot fully adapt to different hairstyles and hair types, and it is difficult to meet users' diverse needs for one-stop hair styling. In actual use, this simple floating method can easily lead to excessive pulling and breakage of hair, and even heat damage due to uneven heating in certain areas, failing to provide users with ideal hair care results and a satisfactory user experience. Utility Model Content

[0003] To address the aforementioned technical problems, the purpose of this utility model is to provide a hair straightener. Through the coordinated design of the comb tooth base and the multi-directional oscillation component, the comb tooth base achieves multi-directional oscillation on the main body, allowing the comb teeth to precisely conform to the natural curve of the hair, significantly reducing resistance and pulling force during combing, thereby effectively reducing the risk of hair breakage. At the same time, the multi-directional oscillation of the comb tooth base allows the comb teeth to be flexibly fine-tuned in the radial and axial directions of the support channel, enabling it to automatically adapt to different hair types and conditions, further reducing discomfort during combing, reducing static electricity and frizz, and making the hair smoother and easier to manage.

[0004] To achieve the above objectives, this utility model provides a hair straightener, including a comb tooth base, a main body, and a multi-directional oscillating component. The comb tooth base is provided with a plurality of comb teeth, and the main body is provided with a receiving cavity and a support channel. The multi-directional oscillating component is adapted to be oscillating in the receiving cavity in multiple directions, and the multi-directional oscillating component is fixedly connected to the comb tooth base, so that the comb tooth base is oscillating in multiple directions and mounted on the main body.

[0005] In some embodiments, the multi-directional swaying component includes several support structures, each support structure including a connecting portion and an abutting portion. The connecting portion passes through the support channel and is fixedly connected to the comb tooth seat. The abutting portion is adapted to abut against the end of the support channel away from the comb tooth seat, so that the support structure is suspended and swaying at the end of the support channel.

[0006] In some embodiments, a first sliding surface is provided on the outer wall of the abutment portion. The first sliding surface extends away from the comb tooth seat along the axial direction of the support channel, and the end of the first sliding surface gradually moves away from the central axis of the support structure. The first sliding surface is slidably connected to the end of the support channel away from the comb tooth seat.

[0007] In some embodiments, a second sliding surface is provided at the end of the support channel away from the comb tooth seat, and the second sliding surface slides and matches the first sliding surface.

[0008] In some embodiments, the support structure is further provided with an assembly groove at one end near the comb tooth seat, and an assembly column is further provided at the bottom of the comb tooth seat, the assembly column being adapted to be disposed in the assembly groove;

[0009] The bottom of the assembly groove of the support structure is also provided with a second through hole that runs through the axis. The second through hole is adapted to be fixedly connected to the assembly column of the comb tooth seat through a mounting component.

[0010] In some embodiments, the receiving cavity is further provided with an elastic structure, which is disposed between the support structure and the main body, so that the support structure is reciprocatingly swaying at the end of the support channel.

[0011] In some embodiments, the elastic structure includes an elastic block, and the bottom of the support structure is further provided with a first fixing groove. The elastic block has an elastic cavity inside, and the top of the elastic cavity is open and disposed in the first fixing groove, so that the support structure reciprocates radially along the support channel.

[0012] In some embodiments, the main body is further provided with a second fixing groove, and the elastic structure is elastically disposed between the first fixing groove and the second fixing groove.

[0013] In some embodiments, the bottom of the comb holder is further provided with a wire guide post, the wire guide post is axially provided with a first wire guide channel, the main body is provided with a second wire guide channel, and the wire guide post is adapted to pass through the second wire guide channel, so that the first wire guide channel connects the main body and the comb holder.

[0014] In some embodiments, the comb holder includes a heat-conducting comb portion and a heat-insulating comb portion, wherein the heat-insulating comb portion is detachably mounted on the heat-conducting comb portion.

[0015] Compared with the prior art, the hair straightening comb provided by this utility model has the following beneficial effects:

[0016] 1. Through the coordinated design of the comb tooth base and the multi-directional oscillation component, the comb tooth base achieves multi-directional oscillation on the main body, allowing the comb teeth to precisely conform to the natural curve of the hair, significantly reducing resistance and pulling force during combing, thereby effectively reducing the risk of hair breakage; at the same time, the multi-directional oscillation of the comb tooth base allows the comb teeth to be flexibly fine-tuned in the radial and axial directions of the support channel, enabling it to automatically adapt to different hair types and conditions, further reducing discomfort during combing, reducing static electricity and frizz, and making the hair smoother and easier to manage.

[0017] 2. The first sliding surface can form a tight and smooth sliding connection with the end of the support channel away from the comb seat. When the support structure shakes in the support channel, the first sliding surface can slide smoothly along the end of the inner wall of the support channel, thereby effectively guiding the shaking direction of the support structure and ensuring that it reciprocates within the defined trajectory. The sliding match between the first sliding surface and the second sliding surface can reduce frictional resistance and improve the motion accuracy and service life of the support structure.

[0018] 3. When the fastener is fixedly connected to the assembly seat of the comb tooth seat through the assembly channel, the assembly column is suitable to be set in the assembly groove to ensure the connection stability of the support structure and the comb tooth seat.

[0019] 4. The elastic structure provides a dynamic support and buffering effect to the support structure, enabling the support structure to reciprocate at the end of the support channel.

[0020] 5. The elastic block absorbs and buffers external forces through the elastic deformation of the elastic cavity, ensuring that the support structure remains within the predetermined range at the end of the support channel during swaying. This effectively controls the swaying range of the support structure and ensures its stability and reliability. Attached Figure Description

[0021] The preferred embodiments will be described below in a clear and easy-to-understand manner, in conjunction with the accompanying drawings, to further explain the above-mentioned characteristics, technical features, advantages and implementation methods of this utility model.

[0022] Figure 1 This is an overall image of a straight hair comb;

[0023] Figure 2 This is a structural diagram of the multi-directional swaying component;

[0024] Figure 3 It is a cross-sectional view of the main body;

[0025] Figure 4 It is a cross-sectional view of the main subject from another perspective;

[0026] Figure 5 This is an exploded view of the comb holder.

[0027] Explanation of icon numbers:

[0028] Comb tooth holder 1, wire guide post 11, first wire guide channel 111, heat-conducting comb tooth part 12, heat-insulating comb tooth part 13, assembly post 14.

[0029] Main body 2, receiving cavity 21, supporting channel 22, second sliding surface 221, second fixing groove 23, second wire passage channel 24.

[0030] The multi-directional swaying component 3 includes a support structure 31, a connecting part 311, an assembly groove 3111, an assembly channel 3112, an abutment part 312, a first sliding surface 3121, and a first fixing groove 314.

[0031] Elastic structure 32, elastic block 321, elastic cavity 3211. Detailed Implementation

[0032] To more clearly illustrate the technical solutions in the embodiments of this utility model or the prior art, the specific implementation methods of this utility model will be described below with reference to the accompanying drawings. Obviously, the drawings described below are merely some embodiments of this utility model. For those skilled in the art, other drawings and other implementation methods can be obtained based on these drawings without any creative effort.

[0033] To keep the drawings concise, each figure only schematically shows the parts relevant to the utility model, and these do not represent the actual structure of the product. Furthermore, for ease of understanding, in some figures, only one of the components with the same structure or function is schematically depicted, or only one is labeled. In this document, "one" not only means "only one," but can also mean "more than one."

[0034] It should also be further understood that the term “and / or” as used in this application specification and the appended claims means any combination of one or more of the associated listed items and all possible combinations, and includes such combinations.

[0035] In this document, it should be noted that, unless otherwise explicitly specified and limited, the terms "installation," "connection," and "linking" should be interpreted broadly. For example, they can refer to fixed connections, detachable connections, or integral connections; they can refer to mechanical connections or electrical connections; they can refer to direct connections or indirect connections through an intermediate medium; and they can refer to the internal connection between two components. Those skilled in the art can understand the specific meaning of the above terms in this utility model based on the specific circumstances.

[0036] Furthermore, in the description of this application, the terms "first," "second," etc., are used only for distinguishing descriptions and should not be construed as indicating or implying relative importance. It should be noted that the above embodiments can be freely combined as needed. The above are merely preferred embodiments of this utility model. It should be pointed out that for those skilled in the art, several improvements and modifications can be made without departing from the principle of this utility model, and these improvements and modifications should also be considered within the protection scope of this utility model.

[0037] refer to Figures 1 to 3To achieve the above objectives, this utility model provides a hair straightener, including a comb tooth base 1, a main body 2, and a multi-directional oscillating component 3. The comb tooth base 1 is provided with a plurality of comb teeth, and the main body 2 is provided with a receiving cavity 21 and a support channel 22. The multi-directional oscillating component 3 is adapted to be oscillating in multiple directions within the receiving cavity 21, and the multi-directional oscillating component 3 is fixedly connected to the comb tooth base 1, so that the comb tooth base 1 is oscillating in multiple directions on the main body 2.

[0038] In this embodiment, the comb tooth holder 1 and the multi-directional oscillation component 3 are designed in a coordinated manner to achieve multi-directional oscillation of the comb tooth holder 1 on the main body 2. This allows the comb teeth to accurately conform to the natural curve of the hair, significantly reducing resistance and pulling force during the combing process, thereby effectively reducing the risk of hair breakage. At the same time, the multi-directional oscillation of the comb tooth holder 1 allows the comb teeth to be flexibly adjusted in the radial and axial directions of the support channel 22, enabling it to automatically adapt to different hair types and conditions, further reducing discomfort during combing, reducing static electricity and frizz, and making the hair smoother and easier to manage.

[0039] Specifically, refer to Figure 2 The multi-directional wobbling component 3 includes several support structures 31. Each support structure 31 includes a connecting part 311 and an abutting part 312. The connecting part 311 passes through the support channel 22 and is fixedly connected to the comb tooth seat 1. The abutting part 312 is adapted to abut against the end of the support channel 22 away from the comb tooth seat 1, so that the support structure 31 is suspended and wobbly positioned at the end of the support channel 22. In this embodiment, the multi-directional wobbling of the comb tooth seat 1 refers to the adjustment of the angle of the comb tooth seat 1 through the support structure 31. The main purpose of the wobbling design is to allow the comb teeth to automatically adjust according to the direction and angle of the hair during the combing process, reducing hair getting stuck and tangling; it is more suitable for long hair or hair that is prone to tangling, and can better cope with the curvature and tangling of the hair. The wobbling design is an adjustment of the angle direction, mainly used to adapt to changes in the direction of the hair. The wobbling design focuses more on reducing hair getting stuck and improving combing efficiency. At the same time, a certain wobbling gap should also be left between the comb tooth seat 1 and the main body 2. This wobbling gap also allows the support channel 22 of the comb tooth seat 1 to be flexibly fine-tuned in both the radial and axial directions.

[0040] In a modified embodiment, the comb holder 1 can be equipped with a locking structure, including a guide cavity and a pressing assembly. The guide cavity is located on the side of the housing, and the pressing assembly can reciprocate within the guide cavity. The pressing assembly drives the locking structure to move, thereby locking or releasing the comb teeth. In another modified embodiment, an elastic element and a sliding groove can be provided at the bottom of the comb holder 1. The elastic element has an elastic space inside, and the comb holder 1 can be rocked by the cooperation of the sliding groove and the slider. This structure not only provides a cushioning function but also controls the direction of rocking through the limiting effect of the sliding groove.

[0041] Further, refer to Figure 2 and Figure 3A first sliding surface 3121 is provided on the outer side wall of the abutment part 312. The first sliding surface 3121 extends away from the comb tooth seat 1 along the axial direction of the support channel 22, and the end of the first sliding surface 3121 gradually moves away from the central axis of the support structure 31. The first sliding surface 3121 is slidably connected to the end of the support channel 22 away from the comb tooth seat 1.

[0042] In this embodiment, the first sliding surface 3121 can form a tight and smooth sliding connection with the end of the support channel 22 away from the comb seat 1. When the support structure 31 shakes in the support channel 22, the first sliding surface 3121 can slide smoothly along the end of the inner wall of the support channel 22, thereby effectively guiding the shaking direction of the support structure 31 and ensuring that it reciprocates within the defined trajectory.

[0043] Specifically, a first sliding surface 3121 is provided on the outer wall of the support structure 31. The first sliding surface 3121 extends along the axial direction of the support channel 22, starting from a position close to the comb tooth seat 1 and moving away from the comb tooth seat 1. During the extension process, the end of the first sliding surface 3121 gradually expands outward, presenting an involute inclined surface structure, so that the distance between its end and the central axis of the support structure 31 gradually increases.

[0044] This unique design allows the first sliding surface 3121 to form a tight and smooth sliding connection with the end of the support channel 22 away from the comb seat 1. The arcuate extension of the first sliding surface 3121 provides a larger range of motion for the support structure 31, avoids interference with other components, optimizes force distribution, and reduces stress concentration. Furthermore, the arcuate extension direction and shape of the first sliding surface 3121 can guide the support structure 31 to move along a predetermined trajectory, achieving a specific motion path. When the support structure 31 moves within the support channel 22, the first sliding surface 3121 can slide smoothly along the inner wall of the support channel 22, effectively guiding the swaying direction of the support structure 31 and ensuring that it reciprocates within a defined trajectory.

[0045] Preferably, the end of the support channel 22 away from the comb tooth seat 1 is further provided with a second sliding surface 221, which is slidably matched with the first sliding surface 3121. The sliding match between the first sliding surface 3121 and the second sliding surface 221 can reduce frictional resistance and improve the movement accuracy and service life of the support structure 31.

[0046] Furthermore, the support structure 31 is provided with an assembly groove 3111 at one end near the comb tooth seat 1, and an assembly post 14 is provided at the bottom of the comb tooth seat 1. The assembly post 14 is adapted to be installed in the assembly groove 3111. The bottom of the assembly groove 3111 of the support structure 31 is also provided with an axially penetrating assembly channel 3112. The assembly channel 3112 is adapted to be fixedly connected to the mounting channel of the assembly post 14 of the comb tooth seat 1 by means of a fastener.

[0047] In this embodiment, when the fastener is fixedly connected to the assembly seat of the comb tooth seat 1 through the assembly channel 3112, the assembly column 14 is adapted to be set in the assembly groove 3111, which ensures the connection stability between the support structure 31 and the comb tooth seat 1.

[0048] Specifically, the support structure 31 has an assembly groove 3111 at one end near the comb tooth seat 1. The shape and size of the assembly groove 3111 match the assembly post 14 at the bottom of the comb tooth seat 1. The assembly post 14 extends from the bottom of the comb tooth seat 1, and its outer diameter fits tightly with the inner diameter of the assembly groove 3111, allowing the assembly post 14 to be accurately inserted into the assembly groove 3111, thereby achieving initial positioning and assembly between the comb tooth seat 1 and the support structure 31. This design not only improves the ease of assembly but also ensures the stability and reliability of the connection between the two. Furthermore, the bottom of the assembly groove 3111 of the support structure 31 is provided with an axially penetrating assembly channel 3112, the inner diameter of which matches the inner diameter of the mounting channel of the assembly post 14 of the comb tooth seat 1. During assembly, after the assembly post 14 is inserted into the assembly channel 3112, a fixed connection can be achieved through mounting (threaded) connection, interference fit, welding, or riveting. This fixing method not only effectively transmits the load but also prevents the two from loosening or separating during use, thereby ensuring the structural stability of the entire device. Preferably, a pair of support structures 31 are disposed at both ends of the main body 2, and the assembly groove 3111 is disposed in the middle of the pair of support structures 31, so that the stability and reliability of the comb tooth seat 1 are optimal.

[0049] Further, refer to Figure 2 and Figure 4 The cavity 21 is also provided with an elastic structure 32, which is located between the support structure 31 and the main body 2, so that the support structure 31 is reciprocated and positioned at the end of the support channel 22.

[0050] In this embodiment, the elastic structure 32 elastically connects the support structure 31 and the main body 2, providing a dynamic support and buffering effect for the support structure 31, enabling the support structure 31 to reciprocate and sway at the end of the support channel 22.

[0051] Specifically, the cavity 21 is further equipped with an elastic structure 32, which is precisely positioned between the support structure 31 and the main body 2. Specifically, when subjected to external force, the elastic structure 32 can undergo elastic deformation, allowing the support structure 31 to sway within a predetermined direction at the end of the support channel 22. When the external force disappears, the elastic structure 32 returns to its original shape, and the elastic restoring force of the elastic structure 32 pulls the support structure 31 back to its initial position, thus achieving the reciprocating swaying of the support structure 31. This reciprocating swaying function not only adapts to complex working conditions but also absorbs and mitigates external impacts to a certain extent, protecting the stability and service life of the entire device. Furthermore, the elastic structure 32 also enables the axial floating reciprocating motion of the comb seat 1, providing the support structure 31 with an adaptive capability, allowing it to maintain good dynamic balance under different working conditions, effectively improving the performance and reliability of the comb seat 1.

[0052] Furthermore, the elastic structure 32 includes an elastic block 321, and the bottom of the support structure 31 is also provided with a first fixing groove 314. The elastic block 321 is provided with an elastic cavity 3211 inside. The top opening of the elastic cavity 3211 is provided and is located in the first fixing groove 314, so that the support structure 31 reciprocates radially along the support channel 22.

[0053] In this embodiment, the elastic block 321 absorbs and buffers external forces through the elastic deformation of the elastic cavity 3211, ensuring that the support structure 31 remains within a predetermined range at the end of the support channel 22 during the shaking process. This effectively controls the shaking range of the support structure 31 and ensures the stability and reliability of its movement.

[0054] Specifically, the elastic structure 32 is composed of an elastic block 321. To achieve a stable connection between the elastic block 321 and the support structure 31, a first fixing groove 314 is specially provided at the bottom of the support structure 31. The shape of the fixing groove matches the shape of the elastic block 321, ensuring that the elastic block 321 can be accurately embedded therein. An elastic cavity 3211 is provided inside the elastic block 321, with an open top design that allows the elastic block 321 to be easily installed into the first fixing groove 314. When the elastic block 321 is embedded in the first fixing groove 314, the top opening of the elastic cavity 3211 fits tightly against the bottom of the first fixing groove 314, thus forming a stable connection. This design not only ensures the stable fixation of the elastic block 321 at the bottom of the support structure 31, but also provides sufficient space for the elastic block 321 to realize its elastic function. When an external force is applied to the support structure 31, the elastic block 321 absorbs and buffers the external force through the elastic deformation of the elastic cavity 3211. The top opening of the elastic cavity 3211 allows the elastic block 321 to deform along the radial direction of the support channel 22 when subjected to force, thereby allowing the support structure 31 to reciprocate in the radial direction. This swaying is limited; the elastic restoring force of the elastic block 321 pulls the support structure 31 back to its initial position, ensuring that the support structure 31 remains within a predetermined range at the end of the support channel 22 during swaying. Through this design, the elastic structure 32 not only provides reliable support and cushioning for the support structure 31 but also effectively controls the sway range of the support structure 31, ensuring its stability and reliability.

[0055] In modified embodiments, the shape of the elastic cavity 3211 can also be adjusted. The elastic cavity 3211 can be designed as a variable cross-section structure, that is, gradually increasing or decreasing from the top opening to the inside, in order to optimize the distribution of elastic deformation. Alternatively, a multi-chamber design can be carried out, with multiple independent elastic cavities 3211 set inside the elastic block 321. Each elastic cavity 3211 is interconnected through small holes to enhance elastic response and buffering capacity.

[0056] Further, refer to Figure 4 The main body 2 is also provided with a second fixing groove 23 inside, and the elastic structure 32 is elastically disposed between the first fixing groove 314 and the second fixing groove 23.

[0057] In this embodiment, the main body 2 is also provided with a second fixing groove 23, which is located corresponding to the first fixing groove 314 at the bottom of the support structure 31. It can provide a stable installation space for the elastic structure 32, so that the elastic structure 32 can be accurately set between the first fixing groove 314 and the second fixing groove 23.

[0058] Specifically, the two ends of the elastic structure 32 are connected to the first fixing groove 314 and the second fixing groove 23, respectively. When the elastic block 321 is installed in place, an elastic structure 32 is formed between the first fixing groove 314 and the second fixing groove 23. This elastic structure 32 not only provides radial elastic buffering for the support structure 31, but also enables the reciprocating motion of the support structure 31 through the deformation and restoring force of the elastic structure 32 when the support structure 31 sways. During operation, when an external force is applied to the support structure 31, the elastic structure 32 will elastically deform according to the magnitude and direction of the external force. This deformation allows the support structure 31 to sway within a limited radius in the support channel 22. When the external force disappears, the elastic structure 32 will pull the support structure 31 back to its initial position through its own elastic restoring force, thereby realizing the reciprocating swaying function of the support structure 31. By placing the elastic block 321 between the first fixing groove 314 and the second fixing groove 23, not only is the stable installation of the elastic structure 32 ensured, but the sway range and motion accuracy of the support structure 31 can also be effectively controlled.

[0059] Furthermore, the bottom of the comb holder 1 is also provided with a wire guide post 11, the wire guide post 11 is axially provided with a first wire guide channel 111, the main body 2 is provided with a second wire guide channel 24, the wire guide post 11 is adapted to pass through the second wire guide channel 24, so that the first wire guide channel 111 connects the main body 2 and the comb holder 1.

[0060] In this embodiment, the wire guide post 11 axially passes through the second wire guide channel 24, and the wire guide post 11 is provided with a first wire guide channel 111 inside, which facilitates providing a safe and stable channel for the wire, ensuring that it can pass smoothly inside the device, while not affecting the normal operation of other components.

[0061] Specifically, the main body 2 includes an upper shell and a lower cover, with a comb holder 1 on the upper shell. A second wire passage 24 is provided on the upper shell of the main body 2, its position and size matching the wire guide post 11. During assembly, the wire guide post 11 precisely passes through the second wire passage 24, allowing the first wire passage 111 to connect with the internal space of the main body 2. This connection not only provides a path for the wires to pass through, but also ensures the wires are fixed and protected inside the comb holder 1 through the tight fit between the wire guide post 11 and the second wire passage 24, preventing damage to the wires due to shaking of the comb holder 1 or external forces. When the wire guide post 11 passes through the second wire passage 24, the first wire passage 111 not only connects to the interior of the main body 2, but also forms a complete wire passage with the comb holder 1. This means that the wires can enter the first wire passage 111 from one side of the main body 2 and ultimately reach the comb holder 1, providing power or signal transmission to the electronic components or other devices on the comb holder 1. This design not only optimizes the internal space layout of the hair straightener but also improves its overall integration and reliability. Furthermore, the design of the thread guide 11 takes into account the device's sealing and protection. The tight fit between this thread guide 11 and the second thread channel 24 effectively prevents dust, liquids, or other impurities from entering the main body 2, thereby extending the device's service life and ensuring its stable operation.

[0062] Further, refer to Figure 5 The comb holder 1 includes a heat-conducting comb tooth section 12 and a heat-insulating comb tooth section 13, with the heat-insulating comb tooth section 13 being detachably mounted on the heat-conducting comb tooth section 12.

[0063] In this embodiment, the detachable heat-insulating comb teeth 13 allows the user to easily remove the heat-insulating comb teeth 13 and remove the hair clippings, dust, grease and other impurities wrapped around the heat-insulating comb teeth 13, thereby making it easier to clean the comb tooth base 1. This effectively solves the problem of the comb tooth base 1 being difficult to clean and avoids bacterial growth and odor caused by long-term accumulation of dirt.

[0064] In actual assembly, the heat-insulating comb teeth 13 can be tightly connected to the heat-conducting comb teeth 12 through threaded connection, snap-fit ​​structure, magnetic connection, or plug-in connection. This connection method not only ensures the stability of both during use but also ensures the convenience of disassembly. For example, when using a snap-fit ​​structure, the user only needs to gently press the snap to separate the heat-insulating comb teeth 13 from the heat-conducting comb teeth 12; while when using a threaded connection, the user can connect or disassemble the two through a simple rotation operation. This split-type comb tooth base 1 not only facilitates cleaning, but also allows the user to easily remove the heat-insulating comb teeth 13 through the detachable heat-insulating comb teeth 13, removing hair clippings, dust, grease, and other impurities entangled on it. This design avoids the pain point of difficult comb cleaning, eliminating the need for users to use small tools or laboriously clean the gaps between each comb tooth, thus greatly simplifying the cleaning process and facilitating deep cleaning of the comb tooth base 1, effectively removing long-term accumulated hair clippings, dust, and grease. This deep cleaning not only improves the product's hygiene but also prevents bacterial growth and odor caused by dirt buildup, ensuring cleanliness and hygiene with every use. Furthermore, the detachable heat-insulated comb teeth 13 enhance the user experience. Users can replace the heat-insulated comb teeth 13 with different functions as needed, such as those with a massage function or made of different materials, to meet various usage requirements. The heat-conducting comb teeth 12 includes a heating element and metal comb teeth, which is prior art and will not be further described here.

[0065] It should be noted that the above embodiments can be freely combined as needed. The above are merely preferred embodiments of this utility model. It should be pointed out that for those skilled in the art, several improvements and modifications can be made without departing from the principle of this utility model, and these improvements and modifications should also be considered within the protection scope of this utility model.

Claims

1. A straightening comb, characterized in that, The straightening comb comprises a comb tooth base, a main body and a multidirectional shaking assembly, the comb tooth base is provided with a plurality of comb teeth, the main body is provided with a receiving cavity and a supporting hole, the multidirectional shaking assembly is arranged in the receiving cavity and is fixedly connected with the comb tooth base, so that the comb tooth base is multidirectionally shaken and installed on the main body.

2. The straightening comb according to claim 1, wherein the multidirectional shaking assembly comprises a plurality of supporting structures, the supporting structure comprises a connecting part and an abutting part, the connecting part is fixedly connected with the comb tooth base after penetrating through the supporting hole, and the abutting part is adapted to abut against one end of the supporting hole away from the comb tooth base, so that the supporting structure is suspended and shaken and arranged at the end of the supporting hole.

3. The straightening comb according to claim 2, wherein the abutting part is provided with a first sliding surface on the outer side wall, the first sliding surface extends to the side away from the comb tooth base along the axial direction of the supporting hole, and the end of the first sliding surface gradually deviates from the central axis of the supporting structure, and the first sliding surface is slidingly connected with one end of the supporting hole away from the comb tooth base.

4. The straightening comb according to claim 3, wherein one end of the supporting hole away from the comb tooth base is also provided with a second sliding surface, and the second sliding surface is slidingly matched with the first sliding surface.

5. The straightening comb according to claim 2, wherein one end of the supporting structure close to the comb tooth base is also provided with a fitting groove, and the bottom of the comb tooth base is also provided with a fitting column, and the fitting column is adapted to be arranged in the fitting groove; the groove bottom of the fitting groove of the supporting structure is also provided with an axial through fitting hole, and the fitting hole is adapted to be fixedly connected with the fitting column of the comb tooth base through a mounting piece.

6. The straightening comb according to any one of claims 2-5, wherein the receiving cavity is also provided with an elastic structure arranged between the supporting structure and the main body, so that the supporting structure is reciprocatingly shaken and arranged at the end of the supporting hole.

7. The straightening comb according to claim 6, wherein the elastic structure comprises an elastic block, the bottom of the supporting structure is also provided with a first fixing groove, the inside of the elastic block is provided with an elastic cavity, and the top of the elastic cavity is open and arranged in the first fixing groove, so that the supporting structure is reciprocatingly shaken along the radial direction of the supporting hole.

8. The straightening comb according to claim 7, wherein the inside of the main body is also provided with a second fixing groove, and the elastic structure is elastically arranged between the first fixing groove and the second fixing groove.

9. The straightening comb according to claim 1, wherein the bottom of the comb tooth base is also provided with a wire passing column, the wire passing column is provided with a first wire passing hole in the axial direction, the main body is provided with a second wire passing hole, and the wire passing column is adapted to penetrate through the second wire passing hole, so that the first wire passing hole is communicated with the main body and the comb tooth base.

10. The straightening comb according to claim 1, wherein The comb tooth base comprises a heat-conducting comb tooth part and a heat-insulating comb tooth part, and the heat-insulating comb tooth part is detachably mounted on the heat-conducting comb tooth part.