Leg shaping trousers with soft support
By designing segmented or zoned soft support structures on the leg shaping pants, the problem of providing personalized support and shaping in existing technologies has been solved. This enables different support and shaping effects to be provided in different positions, improving user comfort and product lifespan.
Patent Information
- Application Number
- CN202423022571.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-09
- Publication Date
- 2025-10-21
- Estimated Expiration
- 2034-12-09
AI Technical Summary
Existing homogeneous soft support cannot provide different support, shaping, or elastic force at different locations in leg shaping pants, and cannot meet the mechanical performance requirements of different support, shaping, and deformation at different locations in leg shaping pants.
A pair of leg shaping pants is designed, which adopts a segmented or zoned first soft support structure with different tensile stiffness and bending stiffness. By arranging multiple segmented or zoned soft supports on the pants body, different mechanical properties are provided to adapt to the support and shaping needs of different positions.
It enables personalized support and shaping effects in different parts of the leg shaping pants, improving user comfort and product lifespan.
Smart Images

Figure CN223452830U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to a kind of leg shaping pants with soft support, belong to clothing technical field. BACKGROUND
[0002] Soft support for clothing is first seen in the application of bra, and then widely used in various clothes to achieve support, shaping, prevent deformation, improve the service life and aesthetic degree of clothes and other effects.
[0003] The conventional soft support structure is a double-layer structure including an inner core and a cladding member, which is generally a homogeneous structure with the same mechanical properties in all directions and at all positions. However, with the popularization and use of soft support, the technical field expects that soft support can provide different mechanical properties at different positions and in different directions. For example, for leg shaping pants using soft support, some positions are expected to be easily adjustable to adapt to the leg contour shape, and other positions are expected to provide shaping support to leg muscle groups and adipose tissue.
[0004] The existing homogeneous elastic soft support cannot meet the needs of different support, shaping, and deformation mechanical properties at different positions in leg shaping pants by providing different support, shaping, or different elastic force at different positions in leg shaping pants. SUMMARY
[0005] The technical problem to be solved by the utility model is that the existing homogeneous soft support cannot provide different support, shaping, or different elastic force at different positions in leg shaping pants, and cannot meet the needs of different support, shaping, and deformation mechanical properties at different positions in leg shaping pants.
[0006] To solve the above problems, the utility model provides a leg shaping pant with soft support, which includes a pant body and a plurality of first soft supports distributed at positions corresponding to leg muscle tissue. The first soft support includes at least two segments with different tensile stiffness, at least two zones with different tensile stiffness, or at least two segments with different bending stiffness.
[0007] Preferably, the first soft support includes an elastomer inner core and a cladding member covering the elastomer inner core. The bending stiffness of the elastomer inner core against bending is set to be directionally anisotropic, and / or the bending stiffness of the elastomer inner core against bending is set to be segmentally anisotropic, and / or the tensile stiffness of the elastomer inner core against stretching is set to be segmentally anisotropic.
[0008] Preferably, the first soft support has N1, N2,..., Nj total j segments along the length direction, j ≥ 2. The tensile stiffness of the j segments varies with the position of the segment, and / or the bending stiffness of the j segments varies with the position of the segment.
[0009] Preferably, the first soft support is a 3D printed material arranged on the inner surface or the outer surface or the inner part of the pant body.
[0010] Preferably, the first soft support is provided with at least one segment with anisotropic bending stiffness.
[0011] Preferably, the first soft support is arranged as a continuous belt structure wrapping around part of the thigh muscle tissue and part of the calf muscle tissue.
[0012] Preferably, the first soft support is provided with a plurality of segments.
[0013] Preferably, the segment of the first soft support corresponding to the position of the thigh muscle is arranged as an upper segment, and the segment of the first soft support corresponding to the position of the calf muscle is arranged as a lower segment, and the tensile stiffness of the upper segment is less than that of the lower segment.
[0014] Preferably, the first soft support is provided with at least one elastic memory segment.
[0015] Preferably, the covering member comprises a first covering layer and a second covering layer, and the elastomer inner core is arranged between the first covering layer and the second covering layer; the first covering layer is arranged as a plastic film layer, and the second covering layer is arranged as a silica gel layer; a bonding agent is arranged between the plastic film layer and the silica gel layer, and the bonding agent is arranged as a silica gel bridging agent; a flocking layer is further arranged outside the silica gel layer.
[0016] The soft support provided in the present application sets the mechanical properties to be different in different segments or different in different zones, sets the bending stiffness resisting bending to be anisotropic in direction, sets the bending stiffness resisting bending to be different in different segments, and sets the tensile stiffness resisting stretching to be different in different segments. Different support effects or shaping effects can be provided at different positions; compared with the traditional soft support, the soft support provided in the present application can adapt to the deformation, support, or shaping requirements at different positions. The leg shaping pant designer can add soft supports at any position of the pant body according to actual requirements, or design the specific segments and zones of the soft support according to the actual situation of the muscle distribution and fat distribution of the user's legs, so as to realize the effects of shaping, supporting, deforming, wrinkle prevention, beauty, rebounding, and improving service life at different positions. BRIEF DESCRIPTION OF DRAWINGS
[0017] Figure 1 The leg shaping pant provided in the embodiment of the present application is illustrated Figure One ;
[0018] Figure 2 The leg shaping pant provided in the embodiment of the present application is illustrated Figure Two ;
[0019] Figure 3Fig. 1 is a schematic view of a soft support multi-layer structure provided in an embodiment of the present application;
[0020] Reference signs: pant body 1, first soft support 2, upper section 21, lower section 22, first cover layer 31, second cover layer 32, elastomeric inner core 33. DETAILED DESCRIPTION
[0021] In order to make the present application more apparent, various example embodiments will be described below. These examples are non-limiting, and it should be understood that they are used to illustrate more general aspects of the present application method. These embodiments can be varied in many ways, and can be replaced by equivalents without departing from the essential content and scope of the present application. In addition, various changes can be made in order to adapt to special circumstances, materials, substance components, processing types, processing actions or steps to adapt to the purpose, content or scope of the present application. All these changes will be within the scope of protection of the present application.
[0022] For any material, size, quantity mentioned in the summary or detailed description, they will only be examples, and not limit the subject matter of the present application. Moreover, various embodiments of the embodiments described herein will complement each other, rather than purely alternative, unless otherwise stated. In other words, embodiments from one embodiment can be freely combined with embodiments of other embodiments, as would be readily known by one of ordinary skill in the art, unless it is stated that these embodiments are only used for replacement.
[0023] In the description of the present application, it should be noted that the terms "inner", "outer" and the like indicate the orientation or positional relationship based on the orientation or positional relationship shown in the drawings, or the orientation or positional relationship commonly placed when the product of the present application is used, only for the convenience of describing the present application and simplifying the description, and not to indicate or imply that the indicated device or element must have a particular orientation, be constructed and operated in a particular orientation, and therefore cannot be understood as a limitation on the present application. In addition, the terms "first", "second" and the like are only used to distinguish the description, and cannot be understood as indicating or implying relative importance.
[0024] In the description of the present application, it should also be noted that where the term "layer" is mentioned, it should be understood that the meaning of "layer" includes but is not limited to that the layer can be composed of a piece, or can be composed of two or more layers together, which are connected or have different characteristics (color, material, etc.). For those of ordinary skill in the art, the specific meaning of the above terms in the present application can be understood according to the specific circumstances.
[0025] EMBODIMENTS
[0026] The thigh is divided into three muscle groups, namely, the front-lateral, the posterior and the medial. The front-lateral muscle group of the thigh is mainly composed of the quadriceps femoris, the sartorius and the tensor fasciae latae; the medial muscle group of the thigh is mainly composed of the vastus medialis, the pectineus, the vastus brevis, the vastus intermedius and the gracilis; and the posterior muscle group of the thigh (the posterior muscle group of the thigh) is mainly composed of the biceps femoris, the semitendinosus and the semimembranosus.
[0027] The calf muscle is also divided into three muscle groups, namely, the anterior, the posterior and the lateral. The anterior muscle group is composed of the tibialis anterior, the extensor digitorum longus and the extensor hallucis longus; the lateral muscle group is composed of the peroneus longus and the peroneus brevis; and the posterior muscle group is composed of the triceps surae, the flexor digitorum longus, the flexor hallucis longus and the tibialis posterior. The triceps surae is the most important muscle of the calf, which is composed of the gastrocnemius and the soleus.
[0028] The embodiment of the present application provides a leg shaping pant with soft support, referring to Figure 1 , which comprises a pant body 1 and a plurality of first soft supports 2 distributed at positions corresponding to leg muscle tissues or fat tissues. It can be understood that, for the leg shaping pant, the pant body 1 should be elastic and deformable to adapt to users with different leg sizes; the first soft support 2 is also elastic and deformable, but it also needs to provide support force and tightening force relative to the pant body 1 to achieve the leg shaping effect. The first soft support 2 is selectively arranged around the periphery of the above-mentioned thigh and calf muscle groups or the muscle edges of the muscle groups to achieve the leg shaping effect.
[0029] For example, the first soft support 2 can be regarded as a strip or a band according to its width. When the width is small, it is regarded as a strip, and when the width is large, it is regarded as a band, which has no essential difference.
[0030] Specifically, the first soft support 2 provides elastic support shaping force, which provides obvious elastic force through its tensile rigidity and / or bending rigidity, and acts on the leg. Generally, one or more first soft supports are arranged on a single pant leg. Taking one of the first soft supports as an example, the first soft support 2 comprises at least two segments with different tensile rigidity or different bending rigidity. By arranging different positions of the first soft support as segments with different elastic properties, the shaping and support requirements of different positions of the leg shaping pant can be met. It can be understood that the first soft support is generally a thin layer structure, and the tensile rigidity is used to represent tensile deformation, and the bending rigidity is used to represent bending deformation conforming to the leg contour.
[0031] For example, referring to Figure 2, the first soft support 2 is provided with two sub-sections, including an upper sub-section 21 corresponding to a position where a thigh is located and a lower sub-section 22 corresponding to a position where a calf is located, and the tensile rigidity of the upper sub-section 21 and the lower sub-section 22 is not completely same, for example, the tensile rigidity of the upper sub-section 21 is less than that of the lower sub-section 22, so that different shaping support effects are provided for the thigh muscle tissue or fat tissue and the calf muscle tissue or fat tissue. Similarly, other sub-section forms can also be adopted, for example, the first soft support is divided into N1, N2,... Nj (j≥2) sub-sections along the length direction, the tensile rigidity of the j sub-sections changes with the position where the sub-sections are located, and / or the bending rigidity of the j sub-sections changes with the position where the sub-sections are located, different tensile rigidity and / or bending rigidity are provided in different sub-sections to obtain different support ability distribution and deformation ability distribution, so as to adapt to the support demand or deformation demand of different positions of the leg, for example, the sub-sections corresponding to the knee and the popliteal fossa region can be provided with lower tensile rigidity and greater deformation ability, so that the region has smaller deformation resistance, and the wearer's movement comfort can be improved.
[0032] It can be understood that the first soft support in the embodiments of the present application can be a prefabricated product attached to the pant body in a sewing or gluing manner, or can be a 3D printed material directly added to the pant body.
[0033] In optional embodiments, the first soft support is a 3D printed material located on the inner surface or the outer surface of the pant body 1.
[0034] In optional embodiments, the pant body 1 is a single-layer fabric or a multi-layer fabric. When the pant body 1 is a multi-layer fabric, the first soft support can be a 3D printed material arranged on the surface or a 3D printed material arranged between the layers of the multi-layer fabric.
[0035] In optional embodiments, the first soft support 2 includes an elastic body inner core and a cladding member wrapping the elastic body inner core, and the elastic body inner core is provided in a segmented structure so as to have two or more sub-sections with different tensile rigidity and / or different bending rigidity.
[0036] The above first soft support 2 can further include a strip-shaped elastic body inner core and a cladding member wrapping the elastic body inner core, the bending rigidity of the elastic body inner core against bending is anisotropic in direction, the bending rigidity of the elastic body inner core against bending is anisotropic in section, and the tensile rigidity of the elastic body inner core against stretching is anisotropic in section.
[0037] The anisotropy in direction of the bending rigidity refers to that the elastic body inner core has different bending rigidity against bending in different radial directions of any cross section along the axial direction of the elastic body inner core, and the anisotropy in direction of the bending rigidity can be realized by using an anisotropic section of the elastic body inner core.
[0038] The elastic inner core is provided with j segments in the axial direction of the core, j≥2; the bending stiffness of the j segments in direction one varies with the position of the segments; direction one represents the direction in which the elastic inner core bends to fit the leg profile. Furthermore, the bending stiffness of the j segments in direction two varies with the position of the segments to provide different mechanical support / molding effects at the position of the segments; the direction one and the direction two are different radial directions of the elastic inner core in any cross section along the axial direction of the elastic inner core; the direction one represents the direction in which the elastic inner core bends to fit the leg profile, so that the elastic inner core is more easily bent to fit the leg profile in the direction of fitting the leg profile, and the elastic inner core is not easily bent to provide leg muscle and fat tissue support / molding effect in direction two.
[0039] The segmented anisotropy of the bending stiffness refers to that the elastic inner core has different bending resistance stiffnesses in different segments along the axial direction of the elastic inner core; or the elastic inner core has different bending resistance stiffnesses at different positions along the axial direction of the elastic inner core; the segmented anisotropy of the bending stiffness can be realized by using different anisotropic sections of the elastic inner core in different segments.
[0040] The segmented anisotropy of the tensile stiffness refers to that the elastic inner core has different tensile resistance stiffnesses in different segments along the axial direction of the elastic inner core; or the elastic inner core has different tensile resistance stiffnesses at different points along the axial direction of the elastic inner core; the segmented anisotropy of the tensile stiffness can be realized by using different shaft diameters of the elastic inner core.
[0041] Referring to Figure 3 The covering member includes a first covering layer 31 and a second covering layer 32, and the elastic inner core 33 is arranged between the first covering layer 31 and the second covering layer 32; the first covering layer 31 is arranged as an adhesive film layer to be bonded and fixed to the pant body, and the second covering layer is arranged as a silica gel layer; an adhesive is arranged between the adhesive film layer and the silica gel layer to bond and fixedly connect the adhesive film layer and the silica gel layer and wrap the elastic inner core 33. The silica gel layer is suitable, the adhesive is selected as a silica gel bridging agent, and the bonding and fixing are stable and have a longer service life; to improve wearing comfort, a flocked layer can be further arranged outside the silica gel layer.
[0042] For example, when the first soft support is a multi-layer structure, one of the layers can be arranged in an intermittent manner, so that the mechanical properties of the first soft support as a whole can achieve a segmented effect. It can be understood that the soft support can rely on physical absence to achieve segmentation of mechanical properties, or rely on different materials at different positions to achieve segmentation of mechanical properties, or rely on different widths at different positions to achieve segmentation of mechanical properties, or rely on different thicknesses at different positions to achieve segmentation of mechanical properties, or rely on different cross-sections at different positions to achieve segmentation of mechanical properties. Further, the mechanical properties are not limited to tensile stiffness for resisting tensile deformation, but can also include bending stiffness for resisting bending deformation, and memory capability for measuring deformation recovery.
[0043] In an optional embodiment, at least one elastic segment in the elastomer inner core is arranged as an elastic memory segment, the elastic memory segment has a memory attribute on the basis of elasticity, and the segment that bears the support or shaping function is arranged as an elastic memory segment, which can still recover to the original shape after multiple deformations, thereby improving the service life of the product. For example, any segment is arranged as an elastic memory segment, which is used to bear deformation and can maintain the shape after multiple uses, thereby prolonging the service life.
[0044] In an optional embodiment, the first soft support provided by the embodiments of the present application is further provided with at least one segment with directionally anisotropic bending stiffness, in which the bending stiffness of the first soft support in direction one is arranged to be smaller than the bending stiffness of the elastomer inner core in direction two, direction one being used to represent the direction in which the first soft support is bent to fit the leg contour of the wearer, so that the first soft support is more easily bent to fit the leg contour of the wearer in the direction of fitting the leg contour of the wearer, and the first soft support is not easily bent to provide support and shaping in direction two, which can be any direction other than direction one according to the characteristics of the muscle distribution and fat tissue distribution of the user's leg. For example, the shape of the cross section of the first soft support can adopt an anisotropic cross section, such as a dumbbell-shaped, rectangular or I-shaped anisotropic cross section with long and short sides.
[0045] The embodiments of the present application also provide a leg shaping pant with a segmented soft support, the first soft support 2 including at least two segments with different tensile stiffness; by arranging different positions of the first soft support as segments with different elastic properties, for example, the central region and the edge region corresponding to the muscle tissue are arranged as segments with different elastic properties, so that the shaping and support requirements of different positions of the leg shaping pant can be met.
[0046] The above merely describes preferred embodiments of the present application, and is not intended to limit the present application in any form or in essence. It should be noted that, for those skilled in the art, without departing from the present application, a number of improvements and supplements can be made, and these improvements and supplements should also be considered as the protection scope of the present application. Those skilled in the art, without departing from the spirit and scope of the present application, can also combine the technical contents disclosed in the above embodiments to obtain new embodiments. The equivalent changes, modifications and evolution made by the above, are equivalent embodiments of the present application; meanwhile, any equivalent changes, modifications and evolution made according to the essential technology of the present application, are still within the scope of the technical solutions of the present application.
Claims
1. A leg shaping pant with soft support, characterized by, The pants body includes a pants body and a plurality of first soft supports arranged at positions corresponding to leg muscle tissues, the first soft supports including at least two segments with different tensile rigidities, or at least two zones with different tensile rigidities, or at least two segments with different bending rigidities.
2. A leg shaping pant with soft support according to claim 1, characterized in that, The first soft support includes an elastomer inner core and a cladding member cladding the elastomer inner core; the bending rigidity of the elastomer inner core against bending is set to be directionally anisotropic, and / or the bending rigidity of the elastomer inner core against bending is set to be segmentally anisotropic, and / or the tensile rigidity of the elastomer inner core against stretching is set to be segmentally anisotropic.
3. The leg shaping pant with soft support according to claim 1, wherein, The first soft support is provided with N1, N2,... Nj, j≥2, segments along the length direction; the tensile rigidity of the j segments varies with the positions of the segments, and / or the bending rigidity of the j segments varies with the positions of the segments.
4. The leg shaping pant with soft support according to claim 1, wherein, The first soft support is a 3D printed material arranged on the inner surface or the outer surface or the inside of the pants body.
5. The leg shaping pant with soft support according to claim 1, wherein, The first soft support is provided with at least one segment with directionally anisotropic bending rigidity.
6. The leg shaping pant with soft support according to claim 1, wherein, The first soft support is a continuous belt structure surrounding part of the thigh muscle tissue and part of the calf muscle tissue.
7. A leg shaping pant with soft support according to claim 6, characterized in that, The first soft support is provided with a plurality of.
8. The leg shaping pant with soft support according to claim 6, wherein, The segment of the first soft support corresponding to the position of the thigh muscle is an upper segment, and the segment of the first soft support corresponding to the position of the calf muscle is a lower segment; the tensile rigidity of the upper segment is smaller than that of the lower segment.
9. The leg shaping pant with soft support according to claim 1, wherein, The first soft support is provided with at least one elastic memory segment.
10. The leg shaping pant with soft support according to claim 2, wherein, The cladding member includes a first cladding layer and a second cladding layer, and the elastomer inner core is arranged between the first cladding layer and the second cladding layer; the first cladding layer is a glue film layer, and the second cladding layer is a silica gel layer; a bonding agent is arranged between the glue film layer and the silica gel layer, and the bonding agent is a silica gel bridging agent; the silica gel layer is further provided with a flocking layer.