Pressurized garment, manufacturing method and device thereof, electronic equipment and storage medium

Through precise weaving parameter setting based on human muscle characteristics and fabric elastic modulus, the problem of inaccurate positioning of pressure points in pressurized clothing is solved, and efficient pressure adjustment and comfortable wearing experience are achieved.

CN120391769APending Publication Date: 2025-08-01SHANDONG WEIQIAO TEXTILE TECHNOLOGY CO LTD
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Patent Information

Application Number
CN202510367850.3
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-03-26
Publication Date
2025-08-01

AI Technical Summary

Technical Problem

Existing pressurized clothing cannot accurately locate pressure points and determine pressure values, resulting in low pressure function efficiency, and overall compression may lead to discomfort in clothing and difficulty in breathing.

Method used

By determining the fabric structure type and size required for each functional partition based on human muscle characteristic data and fabric structure type, the tissue structure diagram is generated in combination with weaving parameters to achieve precise pressure adjustment and seamless molding.

Benefits of technology

Accurate pressure adjustments to different muscle groups are achieved, the pressure function efficiency of pressurized clothing is improved, the compression effect is optimized, the wear comfort is improved, and unnecessary vibration and friction damage is reduced.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention relates to the technical field of garment digital design and manufacturing, and discloses a compression garment, a manufacturing method and device of the compression garment, electronic equipment and a storage medium. Determining a first target fabric structure type and a fabric size required by the functional zone corresponding to each main force exerting muscle; according to the muscle characteristic data of each main force exerting muscle and the first target fabric structure type and the fabric size of the corresponding functional zone, determining a first weaving parameter of the functional zone; determining a second target fabric structure type and a second weaving parameter of a non-functional zone corresponding to each auxiliary muscle; according to the first target fabric structure type, the first weaving parameter, the second target fabric structure type and the second weaving parameter, an organization structure chart is obtained, and a machine control program used for being imported into a weaving machine is generated. The method can improve the pressure function efficiency of the compression garment.
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Description

Technical Field

[0001] The present disclosure relates to the technical field of clothing production, for example, to a pressurized clothing and its manufacturing method, device, electronic device, and storage medium. Background Art

[0002] Pressurized clothing (such as compression pants) can generate uniform or non-uniform tension on the human body through the deformation of the fabric, providing additional support and comfort. Such clothing is widely used in various sports, including but not limited to running, fitness, and cycling. Pressurized clothing can improve muscle support, reduce fat jiggling, reduce the impact of exercise on body tissues and joints, thereby protecting the body, and also helps to promote blood circulation, relieve muscle fatigue, and maintain muscle function to improve sports performance. Therefore, pressurized clothing has become the choice of more sports enthusiasts and is favored by athletes and sports lovers.

[0003] Existing pressurized clothing usually adopts the method of overall compression. The pressurized clothing will apply relatively uniform pressure on different parts of the human body. For example, an overall compression compression pants will apply relatively uniform pressure on the entire leg muscles. Although such pressurized clothing can achieve the above effects to a certain extent, there are also some problems. For example, this unified pressure mode may cause discomfort when wearing, and even affect the smoothness of breathing. It cannot be optimized for different muscle groups required for different sports, and it is also difficult to precisely control the pressure points and pressure values, making the pressure function of the pressurized clothing not fully play its advantages.

[0004] Based on the above situation, related technologies provide pressurized clothing that realizes zoned pressurization. Such pressurized clothing adjusts the pressure distribution according to the needs of different muscle groups. However, related technologies cannot accurately locate the pressure points and determine the pressure values, resulting in low efficiency of the pressure function of the pressurized clothing. Summary of the Invention

[0005] To have a basic understanding of some aspects of the disclosed embodiments, a simple summary is given below. The summary is not a general review, nor is it intended to identify key / important constituent elements or delineate the protection scope of these embodiments, but rather serves as a preface to the subsequent detailed description.

[0006] The embodiments of the present disclosure provide a pressurized clothing and its manufacturing method, device, electronic device, and storage medium, which allow precise pressure adjustment for different muscle groups, ensure that each functional zone can provide the pressure value most suitable for its working characteristics, and help improve the pressure function efficiency of the pressurized clothing.

[0007] According to the first aspect of the present disclosure, a method for manufacturing a pressurized clothing is provided, including:

[0008] Determine the first target fabric structure type and fabric size required for the functional area corresponding to each main force - generating muscle according to the muscle characteristic data of each main force - generating muscle of the human body under the specified exercise type and the elastic modulus of each preset fabric structure type;

[0009] Determine the first weaving parameters of the functional area according to the muscle characteristic data of each main force - generating muscle, the first target fabric structure type and fabric size required for the functional area corresponding to each main force - generating muscle;

[0010] Determine the second target fabric structure type and the second weaving parameters of the non - functional area corresponding to each auxiliary muscle;

[0011] Obtain an organizational structure diagram according to the first target fabric structure type and the first weaving parameters of each functional area, the second target fabric structure type and the second weaving parameters of each non - functional area, generate a machine control program based on the organizational structure diagram, and import the machine control program into a weaving machine to manufacture the corresponding pressure garment.

[0012] In some embodiments, determining the first target fabric structure type and fabric size required for the functional area corresponding to each main force - generating muscle according to the muscle characteristic data of each main force - generating muscle of the human body under the specified exercise type and the elastic modulus of each preset fabric structure type includes:

[0013] For each main force - generating muscle of the human body under the specified exercise type, calculate the fabric elongation rate and fabric size of each fabric structure type in the functional area corresponding to the main force - generating muscle based on the muscle characteristic data of the main force - generating muscle and the elastic modulus of each fabric structure type;

[0014] Take the fabric structure type whose fabric elongation rate and fabric size meet the fabric limit conditions as the first target fabric structure type required for the functional area corresponding to the main force - generating muscle.

[0015] In some embodiments, calculating the fabric elongation rate and fabric size of each fabric structure type in the functional area corresponding to the main force - generating muscle based on the muscle characteristic data of the main force - generating muscle and the elastic modulus of each fabric structure type includes:

[0016] Determine the pressure - bearing value required for each main force - generating muscle;

[0017] Calculate the fabric elongation amount of each fabric structure type in the functional area corresponding to the main force - generating muscle based on the muscle characteristic data of the main force - generating muscle, the required pressure - bearing value, the elastic modulus of each fabric structure type, and the fabric thickness of each fabric structure type;

[0018] Based on the muscle characteristic data of the main force - generating muscle and the fabric elongation of each fabric structure type in the functional area corresponding to the main force - generating muscle, calculate the fabric elongation rate and fabric size of each fabric structure type in the functional area corresponding to the main force - generating muscle.

[0019] In some embodiments, the fabric limiting conditions include: the fabric elongation rate is less than the corresponding fabric elongation rate threshold, and the fabric size is less than the fabric size threshold of the weaving machine.

[0020] In some embodiments, according to the first target fabric structure type and the first weaving parameters of each functional area, and the second target fabric structure type and the second weaving parameters of each non - functional area, obtain an organizational structure diagram, including:

[0021] Draw a color - block design diagram according to the first weaving parameters of each functional area and the second weaving parameters of the non - functional area;

[0022] Fill the first target fabric structure type of each functional area and the second target fabric structure type of each non - functional area into the corresponding functional area and non - functional area in the color - block design diagram to obtain an organizational structure diagram.

[0023] In some embodiments, the muscle characteristic data includes the size parameters of the human body area to which the muscle belongs and the curvature of the muscle center point.

[0024] In some embodiments, the weaving parameters include the number of needles and the number of horizontal rows.

[0025] In some embodiments, the muscle characteristic data of the main force - generating muscle and the auxiliary muscle is obtained by the following method:

[0026] Scan the human body to obtain scan data, and generate a human digital model based on the scan data;

[0027] Calculate the muscle characteristic data of the main force - generating muscle and the auxiliary muscle based on the human digital model.

[0028] According to the second aspect of the present disclosure, there is provided a compression garment, which is obtained by the compression garment manufacturing method provided in the first aspect of the present disclosure.

[0029] According to the third aspect of the present disclosure, there is provided a compression garment manufacturing device, including:

[0030] The functional area parameter determination module is configured to: determine the first target fabric structure type and fabric size required for the functional area corresponding to each main force - generating muscle according to the muscle characteristic data of each main force - generating muscle of the human body under the specified movement type and the elastic modulus of each preset fabric structure type; determine the first weaving parameters of the functional area according to the muscle characteristic data of each main force - generating muscle, the first target fabric structure type and fabric size required for the functional area corresponding to each main force - generating muscle.

[0031] The non - functional area parameter determination module is configured to: determine the second target fabric structure type and the second weaving parameters of the non - functional area corresponding to each auxiliary muscle.

[0032] The clothing manufacturing module is configured to: obtain an organizational structure diagram according to the first target fabric structure type and the first weaving parameters of each functional area, the second target fabric structure type and the second weaving parameters of each non - functional area, and import the organizational structure diagram into a weaving machine to manufacture the corresponding pressure clothing.

[0033] According to a fourth aspect of the present disclosure, there is provided an electronic device, including a processor and a memory storing program instructions. The processor obtains an organizational structure diagram according to the first target fabric structure type and the first weaving parameters of each functional area, the second target fabric structure type and the second weaving parameters of each non - functional area, generates a machine control program based on the organizational structure diagram, and imports the machine control program into the weaving machine to manufacture the corresponding pressure clothing.

[0034] According to a fifth aspect of the present disclosure, there is provided a storage medium storing computer program instructions. When the computer program instructions are run by a processor, the processor obtains an organizational structure diagram according to the first target fabric structure type and the first weaving parameters of each functional area, the second target fabric structure type and the second weaving parameters of each non - functional area, generates a machine control program based on the organizational structure diagram, and imports the machine control program into the weaving machine to manufacture the corresponding pressure clothing.

[0035] The pressure clothing, its manufacturing method, device, electronic device, and storage medium provided by the embodiments of the present disclosure can achieve the following technical effects:

[0036] The method for manufacturing a pressurized garment provided by the embodiments of the present disclosure first determines the first target fabric structure type and size required for the functional zones corresponding to each main force - generating muscle based on the muscle characteristic data of each main force - generating muscle of the human body under a specified exercise type and the elastic modulus of the fabric structure type. This method allows for precise pressure adjustment of different muscle groups, ensuring that each functional zone can provide the pressure value most suitable for its working characteristics, which helps improve the pressure - function efficiency of the pressurized garment, optimizes the compression effect, enhances wearing comfort, and avoids discomfort or dyspnea that may be caused by overall compression. Next, according to the characteristic data of the main force - generating muscles and the fabric structure type and size required for their corresponding functional zones, the specific weaving parameters of these functional zones are further determined. This enables both the selection of fabrics and the weaving process to achieve customized personalized settings, ensuring that the final product can precisely conform to the human body curve and apply appropriate tension at the required positions, effectively supporting muscle activities, reducing unnecessary vibrations, and protecting joints from impact damage. In addition, for auxiliary muscles (non - main force - generating muscles), the appropriate fabric structure type is also selected and the weaving parameters are set based on their characteristic data. This ensures that even in the secondary action areas, reasonable pressure distribution and support can be obtained, enabling the entire body to receive uniform and effective protection during exercise and preventing injury risks caused by uneven stress on certain parts. Finally, by integrating the information of all functional zones and non - functional zones, an organizational structure diagram is generated and directly imported into the weaving machine for processing, realizing the seamless one - piece molding of the pressurized garment. This process reduces the multi - step cutting and sewing links that may be involved in traditional manufacturing, reduces the possibility of frictional damage to the human body caused by internal stitches of the finished product, simplifies the production process flow, and improves production efficiency.

[0037] The above general description and the following description are only exemplary and explanatory and are not used to limit the present disclosure. Description of the Drawings

[0038] One or more embodiments are exemplarily illustrated by corresponding drawings. These exemplary illustrations and the drawings do not constitute limitations on the embodiments. Elements with the same reference numerals in the drawings are shown as similar elements. The drawings do not constitute a scale limitation, and among them:

[0039] Figure 1 is a schematic flow chart of a method for manufacturing a pressurized garment provided by the embodiments of the present disclosure;

[0040] Figure 2 is a schematic flow chart of another method for manufacturing a pressurized garment provided by the embodiments of the present disclosure;

[0041] Figure 3 is a schematic diagram of a functional zone corresponding to a main force - generating muscle provided by the embodiments of the present disclosure;

[0042] Figure 4 is a schematic flowchart of another method for manufacturing a compression garment provided by an embodiment of the present disclosure;

[0043] Figure 5 is a color block design diagram provided by an embodiment of the present disclosure;

[0044] Figure 6 is an organizational structure diagram provided by an embodiment of the present disclosure;

[0045] Figure 7 is a schematic diagram of a compression garment manufacturing apparatus provided by an embodiment of the present disclosure;

[0046] Figure 8 is a schematic diagram of an electronic device provided by an embodiment of the present disclosure. Detailed implementation manners

[0047] In order to more fully understand the features and technical content of the embodiments of the present disclosure, the implementation of the embodiments of the present disclosure will be described in detail below with reference to the accompanying drawings. The accompanying drawings are for reference and illustration purposes only and are not intended to limit the embodiments of the present disclosure. In the following technical description, for the sake of explanation, numerous details are provided to give a thorough understanding of the disclosed embodiments. However, one or more embodiments may still be implemented without these details. In other instances, well-known structures and devices may be shown in a simplified manner to simplify the drawings.

[0048] In the specification and claims of the embodiments of the present disclosure and the above accompanying drawings, terms such as "first", "second", etc. are used to distinguish similar objects and are not necessarily used to describe a specific order or sequence. It should be understood that such data may be interchanged where appropriate so as to implement the embodiments of the present disclosure described herein. In addition, the terms "comprising" and "having" and any variations thereof are intended to cover non-exclusive inclusion.

[0049] Unless otherwise specified, the term "plurality" means two or more.

[0050] In the embodiments of the present disclosure, the character " / " indicates that the objects before and after are in an "or" relationship. For example, A / B means: A or B.

[0051] The term "and / or" is a description of the association relationship of an object and indicates that three relationships may exist. For example, A and / or B means: A or B, or, A and B these three relationships.

[0052] The term "corresponding" may refer to an association relationship or a binding relationship. A corresponding to B means that there is an association relationship or a binding relationship between A and B.

[0053] The embodiments of the present disclosure provide a method for manufacturing a compression garment, in combination withFigure 1 As shown in Figure 1 , the method for manufacturing a compression garment includes:

[0054] S101. Determine the first target fabric structure type and fabric size required for the functional partition corresponding to each main force - generating muscle according to the muscle characteristic data of each main force - generating muscle of the human body under the specified exercise type and the elastic modulus of each preset fabric structure type.

[0055] S102. Determine the first weaving parameters of the functional partition according to the muscle characteristic data of each main force - generating muscle, the first target fabric structure type and fabric size required for the functional partition corresponding to each main force - generating muscle.

[0056] S103. Determine the second target fabric structure type and second weaving parameters of the non - functional partition corresponding to each auxiliary muscle.

[0057] In the embodiments of the present disclosure, for the convenience of understanding and representation, the fabric structure type and weaving parameters of the functional partition are respectively defined as the first target fabric structure type and the first weaving parameters, and the fabric structure type and weaving parameters of the non - functional partition are respectively defined as the first target fabric structure type and the first weaving parameters.

[0058] S104. Obtain an organizational structure diagram according to the first target fabric structure type and the first weaving parameters of each functional partition, the second target fabric structure type and the second weaving parameters of each non - functional partition, generate a machine control program based on the organizational structure diagram, and import the machine control program into a weaving machine to manufacture the corresponding compression garment.

[0059] The method for manufacturing a pressurized garment provided by the embodiments of the present disclosure first determines the first target fabric structure type and size required for the functional zones corresponding to each main force - generating muscle based on the muscle characteristic data of each main force - generating muscle of the human body under a specified exercise type and the elastic modulus of a preset fabric structure type. This method allows for precise pressure adjustment for different muscle groups, ensuring that each functional zone can provide the pressure value most suitable for its working characteristics, which helps improve the pressure - function efficiency of the pressurized garment, optimizes the compression effect, enhances wearing comfort, and avoids discomfort or dyspnea that may be caused by overall compression. Next, according to the characteristic data of the main force - generating muscles and the fabric structure type and size required for their corresponding functional zones, the specific weaving parameters of these functional zones are further determined. This enables both the selection of fabrics and the weaving process to achieve customized personalized settings, ensuring that the final product can precisely conform to the human body curve and apply appropriate tension at the required positions, effectively supporting muscle activities, reducing unnecessary vibrations, and protecting joints from impact damage. In addition, for auxiliary muscles (non - main force - generating muscles), the appropriate fabric structure type is also selected and the weaving parameters are set based on their characteristic data. This ensures that even in the secondary action areas, reasonable pressure distribution and support can be obtained, enabling the entire body to receive uniform and effective protection during exercise and preventing injury risks caused by uneven force on certain parts. Finally, by integrating the information of all functional zones and non - functional zones, an organizational structure diagram is generated and directly imported into a weaving machine for processing, realizing the seamless one - piece molding of the pressurized garment. This process reduces the multi - step cutting and sewing links that may be involved in traditional manufacturing, reduces the possibility of frictional damage to the human body caused by internal stitches in the finished product, simplifies the production process flow, and improves production efficiency.

[0060] In the embodiments of the present disclosure, the pressurized garment can be compression pants, compression tops, etc. The specified exercise type is the exercise type that the to - be - manufactured pressurized garment is adapted to. Here, according to the exercise type that the to - be - manufactured pressurized garment is adapted to, the main force - generating muscles and auxiliary muscles of the human body can be determined. Taking the pressurized garment as compression pants and the specified exercise type as running as an example, the gastrocnemius, vastus medialis, rectus femoris, and biceps femoris of the leg are defined as main force - generating muscles, and the other parts of the leg are defined as auxiliary muscles.

[0061] In the embodiments of the present disclosure, the muscle characteristic data of the main force - generating muscles and auxiliary muscles are obtained in the following way: scanning the human body to obtain scanning data, generating a human digital model based on the scanning data; calculating the muscle characteristic data of the main force - generating muscles and auxiliary muscles based on the human digital model.

[0062] Specifically, a three-dimensional (3D) scanner can be used to scan the human body or a mannequin to obtain scan data, and a human digital model is generated based on the scan data. Subsequently, muscle characteristic data of the main force-generating muscles and auxiliary muscles is calculated based on the human digital model. Here, a mannequin is a physical model of the human body made according to the human body proportion.

[0063] In the embodiments of the present disclosure, the muscle characteristic data may include size parameters of the human body region to which the muscle belongs and the curvature of the muscle center point. The size parameters may include the perimeter and radius of the human body region to which the muscle belongs, etc. Taking the specified exercise type as running as an example, the size parameters of the human body region to which the muscle belongs may be the thigh circumference and radius of the leg region to which the muscle belongs.

[0064] In the embodiments of the present disclosure, the elastic modulus of each preset fabric structure type can be obtained through experiments in advance. First, determine the yarn types (such as face yarn, base yarn, and elastic yarn), and use a circular knitting machine to prepare fabric samples of different fabric structure types with the specified yarns. The fabric samples are subjected to a series of processing techniques (such as degreasing, washing, pre-shrinking, softening, and drying), and the wale density, course density, and fabric thickness of each fabric sample are measured. Subsequently, each fabric sample is cut into a unified size (such as a transverse length of 200 mm and a longitudinal length of 50 mm), and a universal testing machine is used to test the mechanical properties of the fabric samples to obtain the elastic modulus of each fabric sample, that is, the elastic modulus of each preset fabric structure type is obtained.

[0065] The structure diagrams, wale density, course density, fabric thickness, and elastic modulus of some fabric structure types are shown in Table 1:

[0066] Table 1

[0067]

[0068]

[0069] In the embodiments of the present disclosure, according to the muscle characteristic data of each main force-generating muscle of the human body under the specified exercise type and the elastic modulus of each preset fabric structure type, the first target fabric structure type and fabric size required for the functional partition corresponding to each main force-generating muscle are determined, including: for each main force-generating muscle of the human body under the specified exercise type, based on the muscle characteristic data of the main force-generating muscle and the elastic modulus of each preset fabric structure type, calculate the fabric elongation rate and fabric size of each fabric structure type in the functional partition corresponding to the main force-generating muscle; and use the fabric structure type whose fabric elongation rate and fabric size meet the fabric limit conditions as the first target fabric structure type required for the functional partition corresponding to the main force-generating muscle.

[0070] In the embodiments of the present disclosure, by calculating the elongation rate and size of different fabric structure types on the main force - generating muscles, the fabric structure types suitable for supporting the main force - generating muscles are selected based on the calculation results. Selecting a suitable fabric structure type can accurately control the pressure points and pressure values on the main force - generating muscles, so that each functional area can provide the most suitable pressure for its working characteristics, improving the pressure - function efficiency of the compression garment.

[0071] Combined with Figure 2 As shown, the embodiments of the present disclosure provide another method for manufacturing a compression garment. The method for manufacturing a compression garment includes:

[0072] S201, for each main force - generating muscle of the human body under a specified exercise type, based on the muscle characteristic data of the main force - generating muscle and the elastic modulus of each preset fabric structure type, calculate the fabric elongation rate and fabric size of each fabric structure type in the functional area corresponding to the main force - generating muscle.

[0073] S202, take the fabric structure types whose fabric elongation rate and fabric size meet the fabric limit conditions as the first target fabric structure types required for the functional areas corresponding to the main force - generating muscles.

[0074] S203, determine the first weaving parameters of the functional areas according to the muscle characteristic data of each main force - generating muscle, the first target fabric structure types required for the functional areas corresponding to each main force - generating muscle, and the fabric size.

[0075] S204, determine the second target fabric structure types and second weaving parameters of the non - functional areas corresponding to each auxiliary muscle.

[0076] S205, according to the first target fabric structure types and first weaving parameters of each functional area, the second target fabric structure types and second weaving parameters of each non - functional area, obtain an organizational structure diagram, generate a machine control program based on the organizational structure diagram, and import the machine control program into a weaving machine to manufacture the corresponding compression garment.

[0077] In the embodiments of the present disclosure, based on the muscle characteristic data of the main force - generating muscle and the elastic modulus of each preset fabric structure type, calculating the fabric elongation rate and fabric size of each fabric structure type in the functional area corresponding to the main force - generating muscle includes: determining the pressure - bearing value required for each main force - generating muscle; based on the muscle characteristic data of the main force - generating muscle, the required pressure - bearing value, the elastic modulus of each preset fabric structure type, and the fabric thickness of each fabric structure type, calculate the fabric elongation amount of each fabric structure type in the functional area corresponding to the main force - generating muscle; based on the muscle characteristic data of the main force - generating muscle and the fabric elongation amount of each fabric structure type in the functional area corresponding to the main force - generating muscle, calculate the fabric elongation rate and fabric size of each fabric structure type in the functional area corresponding to the main force - generating muscle.

[0078] In the embodiments of the present disclosure, by combining the muscle characteristic data of each main force - generating muscle and the pressure - bearing values required by them, the most suitable fabric type and its parameters can be selected for each functional area. This ensures that the compression clothing can provide precise pressure support for the muscle characteristic data during exercise, optimize muscle activity, and reduce fatigue.

[0079] In the embodiments of the present disclosure, each main force - generating muscle has its required pressure - bearing value. The pressure - bearing value refers to the pressure value that the compression clothing needs to provide to relieve muscle fatigue. Taking the specified exercise type as running as an example, the pressure - bearing value of the gastrocnemius muscle is 1.92 KPa (kilo - pascal), the pressure - bearing value of the vastus medialis muscle is 1.35 KPa, the pressure - bearing value of the rectus femoris muscle is 1.28 KPa, and the pressure - bearing value of the biceps femoris muscle is 1.3 KPa.

[0080] In the embodiments of the present disclosure, the muscle characteristic data includes the size parameters of the human body area where the muscle is located and the curvature of the center point of the muscle. Figure 3 A schematic diagram of the functional area corresponding to a main force - generating muscle is shown. The fabric elongation of each fabric structure type in the functional area corresponding to the main force - generating muscle can be calculated by the following formula:

[0081]

[0082] In the above formula, △L is the fabric elongation, Π represents pi, R represents the radius of the human body area where the main force - generating muscle is located, K is the curvature of the center point of the main force - generating muscle, L1 is the perimeter of the human body area where the main force - generating muscle is located (such as the leg circumference), P is the pressure - bearing value required by the main force - generating muscle, E is the elastic modulus of the fabric structure type, and a is the thickness of the fabric sample of the fabric structure type.

[0083] In some embodiments, in the formula for calculating the fabric elongation, some correction parameters can be added to obtain a new formula, and the fabric elongation is calculated based on the new formula. Here, the correction parameters can include the girth correction parameter, the elastic modulus correction parameter, the thickness correction parameter, etc.

[0084] In the embodiments of the present disclosure, the fabric size of each fabric structure type in the functional area corresponding to the main force - generating muscle can be calculated by the following formula: L2 = L1 - △L.

[0085] In the above formula, L2 is the fabric size of the fabric structure type in the functional area corresponding to the main force - generating muscle, △L is the fabric elongation, and L1 is the perimeter of the human body area where the main force - generating muscle is located.

[0086] In the embodiments of the present disclosure, the fabric elongation rate of each fabric structure type in the functional area corresponding to the main force - generating muscle can be calculated by the following formula:

[0087] In the above formula, e is the fabric elongation rate of the fabric structure type in the functional area corresponding to the main force - generating muscle, L1 is the perimeter of the human body area to which the main force - generating muscle belongs, and L2 is the fabric size of the fabric structure type in the functional area corresponding to the main force - generating muscle.

[0088] In the embodiments of the present disclosure, the fabric limiting conditions include: the fabric elongation rate is less than the corresponding fabric elongation rate threshold, and the fabric size is less than the fabric size threshold of the weaving machine. Each fabric structure type has its corresponding fabric elongation rate threshold. The fabric elongation rate threshold refers to the maximum allowable elongation ratio at which the fabric can work safely and effectively without permanent deformation or damage when subjected to tensile force.

[0089] It can be understood that among the fabric structure types, the fabric structure type with a fabric elongation rate less than the corresponding fabric elongation rate threshold and a fabric size less than the fabric size threshold of the weaving machine is used as the first target fabric structure type required for the functional area corresponding to the main force - generating muscle.

[0090] In the embodiments of the present disclosure, setting the fabric elongation rate threshold can prevent damage caused by excessive stretching of the fabric during use. Setting the fabric size less than the fabric size threshold of the weaving machine ensures that the selected fabric can be smoothly produced on the existing weaving machine without additional adjustment or special customization, simplifies the production process flow, and reduces costs.

[0091] In some embodiments, according to the first target fabric structure type and the first weaving parameters of each functional area, and the second target fabric structure type and the second weaving parameters of each non - functional area, an organizational structure diagram is obtained, including: drawing a color - block design diagram according to the first weaving parameters of each functional area and the second weaving parameters of each non - functional area; filling the first target fabric structure type of each functional area and the second target fabric structure type of each non - functional area into the corresponding functional areas and non - functional areas in the color - block design diagram to obtain the organizational structure diagram.

[0092] In the embodiments of the present disclosure, the precise matching of the fabric structure and the color - block design diagram is achieved through digital tools to ensure that the fabric characteristics of each area meet their expected functional requirements. The organizational structure diagram, as a guiding document, can provide a clear direction for the production process, help reduce the trial - and - error cost, and improve production efficiency. Each color - block represents specific weaving parameters and structure types, making each part of the finished product traceable. Once a problem is found, the problem can be quickly located through the color - block, facilitating the analysis of the cause and the taking of corrective measures.

[0093] Combined with Figure 4 As shown, the embodiments of the present disclosure provide another method for making a pressurized garment. The method for making a pressurized garment includes:

[0094] S401. Based on the muscle characteristic data of each main force - generating muscle of the human body under the specified exercise type and the elastic modulus of each preset fabric structure type, determine the first target fabric structure type and fabric size required for the functional area corresponding to each main force - generating muscle.

[0095] S402. Based on the muscle characteristic data of each main force - generating muscle, the first target fabric structure type and fabric size required for the functional area corresponding to each main force - generating muscle, determine the first weaving parameters of the functional area.

[0096] In the embodiments of the present disclosure, the weaving parameters include the number of needles and the number of horizontal rows. The number of needles is the product of the horizontal density of the fabric type and the fabric size. The number of horizontal rows is the product of the longitudinal density of the fabric type and the longitudinal size of the corresponding area of the human body.

[0097] S403. Determine the second target fabric structure type and the second weaving parameters of the non - functional area corresponding to each auxiliary muscle.

[0098] In the embodiments of the present disclosure, the second target fabric structure type of the non - functional area corresponding to the auxiliary muscle can be randomly selected, and then the weaving parameters suitable for this fabric structure type can be determined based on the muscle characteristic data of the auxiliary muscle.

[0099] S404. Draw a color - block design diagram according to the first weaving parameters of each functional area and the second weaving parameters of the non - functional area.

[0100] S405. Fill the first target fabric structure type of each functional area and the second target fabric structure type of each non - functional area into the corresponding functional area and non - functional area in the color - block design diagram to obtain an organizational structure diagram.

[0101] S406. Import the organizational structure diagram into a weaving machine to manufacture the corresponding compression clothing.

[0102] In the embodiments of the present disclosure, some non - functional areas may be adjacent to the functional areas, and some non - functional areas are not adjacent to the functional areas. Determining the second target fabric structure type and the second weaving parameters of the non - functional area corresponding to each auxiliary muscle includes: for the non - functional areas not adjacent to the functional areas, the second target fabric structure type of the non - functional area can be randomly selected, and then the weaving parameters suitable for this fabric structure type can be determined based on the muscle characteristic data of the auxiliary muscle.

[0103] Determine the second target fabric structure type and the second weaving parameters for the non-functional zones corresponding to each auxiliary muscle, including: for the non-functional zones adjacent to at least one functional zone, the first reference fabric elongation and the second reference fabric elongation can be calculated based on the fabric elongations of the functional zones adjacent to the non-functional zone. Among them, the first reference fabric elongation is less than the second reference fabric elongation. The elongation range defined by the first reference fabric elongation and the second reference fabric elongation does not exceed the maximum value of the fabric elongations in each functional zone. At the same time, the average value of the fabric elongations in all functional zones adjacent to the non-functional zone should be close to the first reference fabric elongation or the second reference fabric elongation.

[0104] In the embodiments of the present disclosure, select the fabric structure type with the fabric elongation threshold between the first reference fabric elongation and the second reference fabric elongation as the second target fabric structure type for the non-functional zone.

[0105] By setting the first reference fabric elongation (lower) and the second reference fabric elongation (higher), and selecting an appropriate fabric structure type between them as the second target fabric structure type for the non-functional zone, a gradual pressure transition from the functional zone to the non-functional zone can be achieved. This helps to maintain the uniformity of the pressure around the entire functional zone and avoid local pressure mutations. Limiting the elongation range not to exceed the maximum value in each adjacent functional zone ensures that the non-functional zone does not exert excessive pressure and also does not lose its supporting effect due to being too loose. Since the fabric elongation of the non-functional zone is controlled within a moderate range, neither too tight nor too loose, it can significantly reduce the local compression or friction felt by the wearer during exercise and improve the overall wearing experience.

[0106] When the number of functional zones adjacent to the non-functional zone is 1, both the first reference fabric elongation and the second reference fabric elongation are less than the fabric elongation of the functional zone, and the second reference fabric elongation is close to the fabric elongation of the functional zone, and the first reference fabric elongation is not less than 50% of the fabric elongation of the functional zone.

[0107] When the number of functional zones adjacent to the non-functional zone is more than 2, the first reference fabric elongation is greater than the minimum value of the fabric elongations in each functional zone adjacent to the non-functional zone, and the second reference fabric elongation is less than the maximum value of the fabric elongations in each functional zone adjacent to the non-functional zone. Optionally, the first reference fabric elongation is the average value of the fabric elongations in all functional zones adjacent to the non-functional zone, and the second reference fabric elongation is the average value of the first reference fabric elongation and the maximum value of the fabric elongations in each functional zone.

[0108] Taking the pressure garment as compression pants and the specified sport type as running as an example, the gastrocnemius, vastus medialis, rectus femoris, and biceps femoris in the legs are defined as the main force - generating muscles, and the other muscles in the legs are defined as auxiliary muscles. The data corresponding to each main force - generating muscle in a person's legs calculated based on the method provided in the present disclosure is shown in Table 2. Specifically, Table 2 shows the fabric transverse parameters (number of stitches) of the functional zones of the compression pants for a certain person.

[0109] Table 2

[0110] Main force - generating muscle Fabric structure type Wale density (stitches / cm) Fabric size (cm) Number of stitches Gastrocnemius 2+1 21.91 22.7 497 Vastus medialis 1+1 22.88 19.3 442 Rectus femoris 1+1 22.88 26.4 604 Biceps femoris Interlaced tissue 2 21.94 28.2 619

[0111] Taking the pressure garment as compression pants as an example, combined with Figure 5 As shown, the color - block design diagram includes zones A to J. The biceps femoris corresponds to zone D, the rectus femoris and vastus medialis correspond to zone E, and the gastrocnemius corresponds to zone G. Zones D, E, and G are all functional zones, and zones A, B, F, H, and I are all non - functional zones. Zones C and J are weaving auxiliary zones, and their fabric structure types, fabric sizes, and weaving parameters can be determined according to actual design requirements.

[0112] Table 3 shows the fabric longitudinal parameters (horizontal rows) of each functional zone and non - functional zone of the compression pants for a certain person.

[0113] Table 3

[0114]

[0115]

[0116] After the device draws the color - block design diagram according to the first weaving parameters of each functional zone and the second weaving parameters of the non - functional zone, the device fills the first target fabric structure type of each functional zone and the second target fabric structure type of each non - functional zone into the corresponding functional zones and non - functional zones in the color - block design diagram, and fills the fabric structure type in the weaving auxiliary zones according to the design requirements, obtaining an Figure 6 organizational structure diagram as shown.

[0117] The embodiments of the present disclosure provide a pressure garment, which is obtained by the pressure - garment manufacturing method provided in the above - mentioned embodiments. Specifically, the pressure garment is obtained by performing at least one of the following processes on the garment semi - finished product: degreasing process, water - washing process, pre - shrinking process, softening process, drying process, cutting process, and sewing process; wherein, the garment semi - finished product is obtained by the pressure - garment manufacturing method provided in the above - mentioned embodiments.

[0118] In some embodiments, the degreasing process includes: adding 0.5 g / L to 2 g / L of degreasing agent into water with a bath ratio of 1:6 to 1:10 to form a degreasing solution and maintaining the temperature at 80°C to 100°C, soaking the semi-finished garment in the degreasing solution for 20 minutes to 30 minutes, and then taking out the semi-finished garment and washing it in water at 40°C to remove residues.

[0119] In some embodiments, the pre-shrinking process includes: soaking the semi-finished garment in water at 100°C for 30 minutes to 40 minutes.

[0120] In some embodiments, the softening removal process includes: adding a softening agent into water with a bath ratio of 1:10 to form a softening solution, soaking the semi-finished garment in the softening solution, and maintaining the ratio of the softening agent to the weight of the semi-finished garment at 1% to 3%.

[0121] In some embodiments, the drying process includes: drying and shaping the semi-finished garment in a blast drying oven at a temperature of 80°C, and the drying time is 20 minutes to 40 minutes.

[0122] In some embodiments, the semi-finished garment is cut along the cutting line, and then the cut semi-finished garment is sewn into a pressurized garment using a sewing process.

[0123] Combined Figure 7 As shown, an embodiment of the present disclosure provides a pressurized garment manufacturing device 700, which includes a functional area parameter determination module 701, a non-functional area parameter determination module 702, and a garment manufacturing module 703.

[0124] The functional area parameter determination module 701 is configured to: determine the first target fabric structure type and fabric size required for the functional area corresponding to each main force-generating muscle according to the muscle characteristic data of each main force-generating muscle of the human body under a specified movement type and the elastic modulus of each preset fabric structure type; determine the first weaving parameters of the functional area according to the muscle characteristic data of each main force-generating muscle, the first target fabric structure type and fabric size required for the functional area corresponding to each main force-generating muscle.

[0125] The non-functional area parameter determination module 702 is configured to: determine the second target fabric structure type and the second weaving parameters of the non-functional area corresponding to each auxiliary muscle.

[0126] The garment manufacturing module 703 is configured to: obtain an organizational structure diagram according to the first target fabric structure type and the first weaving parameters of each functional area, the second target fabric structure type and the second weaving parameters of each non-functional area, and import the organizational structure diagram into a weaving machine to manufacture the corresponding pressurized garment.

[0127] In some embodiments, the functional area parameter determination module 701 is configured to:

[0128] For each main force - generating muscle of the human body under a specified movement type, based on the muscle characteristic data of the main force - generating muscle and the elastic modulus of each preset fabric structure type, calculate the fabric elongation rate and fabric size of each fabric structure type in the functional area corresponding to the main force - generating muscle;

[0129] Take the fabric structure type whose fabric elongation rate and fabric size meet the fabric limit conditions as the first target fabric structure type required for the functional area corresponding to the main force - generating muscle.

[0130] In some embodiments, the functional area parameter determination module 701 is configured to:

[0131] Determine the pressure - bearing value required for each main force - generating muscle;

[0132] Based on the muscle characteristic data of the main force - generating muscle, the required pressure - bearing value, and the elastic modulus of each preset fabric structure type, calculate the fabric elongation of each fabric structure type in the functional area corresponding to the main force - generating muscle;

[0133] Based on the muscle characteristic data of the main force - generating muscle and the fabric elongation of each fabric structure type in the functional area corresponding to the main force - generating muscle, calculate the fabric elongation rate and fabric size of each fabric structure type in the functional area corresponding to the main force - generating muscle.

[0134] In some embodiments, the fabric limit conditions include: the fabric elongation rate is less than the corresponding fabric elongation rate threshold, and the fabric size is less than the fabric size threshold of the weaving machine.

[0135] In some embodiments, the clothing manufacturing module 703 is configured to:

[0136] Draw a color - block design diagram according to the first weaving parameters of each functional area and the second weaving parameters of the non - functional area;

[0137] Fill the first target fabric structure type of each functional area and the second target fabric structure type of each non - functional area into the corresponding functional areas and non - functional areas in the color - block design diagram to obtain an organizational structure diagram.

[0138] In some embodiments, the muscle characteristic data includes the size parameters of the human body area to which the muscle belongs and the curvature of the muscle center point.

[0139] In some embodiments, the weaving parameters include the number of needles and the number of horizontal rows.

[0140] In some embodiments, the pressure - clothing manufacturing device 700 further includes a muscle data acquisition module. The muscle data acquisition module obtains the muscle characteristic data of the main force - generating muscles and auxiliary muscles in the following manner:

[0141] Scan the human body to obtain scan data, and generate a digital human model based on the scan data;

[0142] Calculate the muscle characteristic data of the main force - generating muscles and auxiliary muscles based on the digital human model.

[0143] Combined Figure 8 As shown, an embodiment of the present disclosure provides an electronic device 800, which includes a processor 801 and a memory 802. Optionally, the electronic device 800 may further include a communication interface 803 and a bus 804. Among them, the processor 801, the communication interface 803, and the memory 802 can communicate with each other through the bus 804. The communication interface 803 can be used for information transmission. The processor 801 can call the logical instructions in the memory 802, and based on the first target fabric structure type and the first weaving parameters of each functional partition, the second target fabric structure type and the second weaving parameters of each non - functional partition, obtain an organizational structure diagram, generate a machine control program based on the organizational structure diagram, and import the machine control program into a weaving machine to manufacture a corresponding pressure garment.

[0144] The second target fabric structure type and the second weaving parameters of each non - functional partition of each functional partition are obtained in the following way: According to the muscle characteristic data of each main force - generating muscle of the human body under a specified movement type and the elastic modulus of each preset fabric structure type, determine the first target fabric structure type and fabric size required for the functional partition corresponding to each main force - generating muscle; According to the muscle characteristic data of each main force - generating muscle, the first target fabric structure type and fabric size required for the functional partition corresponding to each main force - generating muscle, determine the first weaving parameters of the functional partition; Determine the second target fabric structure type and the second weaving parameters of the non - functional partition corresponding to each auxiliary muscle.

[0145] In addition, when the logical instructions in the above - mentioned memory 802 are implemented in the form of software functional units and sold or used as an independent product, they can be stored in a computer - readable storage medium.

[0146] The memory 802, as a computer - readable storage medium, can be used to store software programs and computer - executable programs, such as the program instructions / modules corresponding to the methods in the embodiments of the present disclosure. The processor 801 executes functional applications and data processing by running the program instructions / modules stored in the memory 802, that is, implements the method for manufacturing a pressure garment in the above - mentioned embodiments.

[0147] The memory 802 may include a program storage area and a data storage area. Among them, the program storage area may store an operating system and application programs required for at least one function; the data storage area may store data created according to the use of the terminal device, etc. In addition, the memory 802 may include a high-speed random access memory and may also include a non-volatile memory.

[0148] Embodiments of the present disclosure provide a computer-readable storage medium storing computer program instructions. When the computer program instructions are run by a processor, the processor can obtain an organizational structure diagram according to the first target fabric structure type and the first weaving parameters of each functional partition, and the second target fabric structure type and the second weaving parameters of each non-functional partition, generate a machine control program based on the organizational structure diagram, and import the machine control program into a weaving machine to manufacture a corresponding pressure garment.

[0149] The technical solution of the embodiments of the present disclosure may be embodied in the form of a software product. The computer software product is stored in a storage medium and includes one or more instructions for causing a computer device (which may be a personal computer, a server, or a network device, etc.) to execute all or part of the steps of the method described in the embodiments of the present disclosure. The foregoing storage medium may be a non-transitory storage medium, such as: a USB flash drive, a mobile hard disk, a read-only memory (ROM, Read-Only Memory), a random access memory (RAM, Random Access Memory), a magnetic disk, or an optical disc, etc., which are various media that can store program codes.

[0150] The above description and the accompanying drawings fully illustrate the embodiments of the present disclosure, enabling those skilled in the art to practice them. Other embodiments may include structural, logical, electrical, process, and other changes. The embodiments only represent possible variations. Unless explicitly required, individual components and functions are optional, and the order of operations may vary. Parts and features of some embodiments may be included in or replace parts and features of other embodiments. Moreover, the terms used in this application are only for describing the embodiments and do not limit the claims. As used in the description of the embodiments and the claims, unless the context clearly indicates otherwise, the singular forms "a", "an", and "the" are intended to also include the plural forms. Similarly, as used in this application, the term "and / or" refers to any and all possible combinations of one or more of the associated listed items. Additionally, when used in this application, the term "comprise" and its variants "comprises" and / or "comprising" etc. mean the presence of the stated features, wholes, steps, operations, elements, and / or components, but do not exclude the presence or addition of one or more other features, wholes, steps, operations, elements, components, and / or groups of these. Without further limitation, an element defined by the statement "comprising an..." does not exclude the presence of additional identical elements in the process, method, or device comprising the element. Herein, each embodiment may focus on the differences from other embodiments, and the same or similar parts among the embodiments may be referred to each other. For the methods, products, etc. disclosed in the embodiments, if they correspond to the method parts disclosed in the embodiments, the relevant parts may refer to the description of the method parts.

[0151] Those skilled in the art can realize that the units and algorithm steps of each example described in combination with the embodiments disclosed herein can be implemented by electronic hardware, or a combination of computer software and electronic hardware. Whether these functions are executed in a hardware or software manner may depend on the specific application and design constraints of the technical solution. The skilled person can use different methods for each specific application to implement the described functions, but such implementation should not be considered to exceed the scope of the embodiments of the present disclosure. The skilled person can clearly understand that for the convenience and brevity of description, the specific working processes of the systems, devices, and units described above can refer to the corresponding processes in the foregoing method embodiments, and will not be described herein again.

[0152] In the embodiments disclosed in this document, the disclosed methods, products (including but not limited to devices, equipment, etc.) can be implemented in other ways. For example, the device embodiments described above are merely illustrative. For example, the division of the units can be merely a logical function division. In actual implementation, there can be other division methods. For example, multiple units or components can be combined or integrated into another system, or some features can be ignored or not executed. Additionally, the displayed or discussed couplings or direct couplings or communication connections to each other can be through some interfaces. The indirect coupling or communication connection of devices or units can be in electrical, mechanical, or other forms. The units described as separate components may or may not be physically separated. The components displayed as units may or may not be physical units, that is, they can be located in one place or distributed to multiple network units. Some or all of the units can be selected according to actual needs to implement this embodiment. Additionally, in the embodiments of this disclosure, the various functional units can be integrated in one processing unit, or each unit can exist physically separately, or two or more units can be integrated in one unit.

[0153] The flowcharts and block diagrams in the accompanying drawings illustrate the possible architectures, functions, and operations of systems, methods, and computer program products according to embodiments of the present disclosure. In this regard, each block in the flowchart or block diagram can represent a module, a program segment, or a part of code that contains one or more executable instructions for implementing the specified logical function. In some alternative implementations, the functions marked in the blocks can occur in a different order than that marked in the accompanying drawings. For example, two consecutive blocks can actually be executed substantially in parallel, and they can sometimes be executed in the reverse order, depending on the functions involved. In the descriptions corresponding to the flowcharts and block diagrams in the accompanying drawings, the operations or steps corresponding to different blocks can also occur in a different order than that disclosed in the description. Sometimes, there is no specific order between different operations or steps. For example, two consecutive operations or steps can actually be executed substantially in parallel, and they can sometimes be executed in the reverse order, depending on the functions involved. Each block in the block diagram and / or flowchart, as well as the combination of blocks in the block diagram and / or flowchart, can be implemented by a dedicated hardware-based system for performing the specified functions or actions, or can be implemented by a combination of dedicated hardware and computer instructions.

Claims

1. A method for manufacturing a compression garment, characterized in that, Including: Determine the first target fabric structure type and fabric size required for the functional partition corresponding to each main force - generating muscle according to the muscle characteristic data of each main force - generating muscle of the human body under a specified exercise type and the elastic modulus of each preset fabric structure type; Determine the first weaving parameters of the functional partition according to the muscle characteristic data of each main force - generating muscle, the first target fabric structure type and fabric size required for the functional partition corresponding to each main force - generating muscle; Determine the second target fabric structure type and second weaving parameters of the non - functional partition corresponding to each auxiliary muscle; Obtain an organizational structure diagram according to the first target fabric structure type and first weaving parameters of each functional partition, the second target fabric structure type and second weaving parameters of each non - functional partition, generate a machine control program based on the organizational structure diagram, and import the machine control program into a weaving machine to manufacture the corresponding pressure garment.

2. The method for manufacturing a compression garment according to claim 1, characterized in that, Determine the first target fabric structure type and fabric size required for the functional partition corresponding to each main force - generating muscle according to the muscle characteristic data of each main force - generating muscle of the human body under a specified exercise type and the elastic modulus of each preset fabric structure type, including: For each main force - generating muscle of the human body under a specified exercise type, calculate the fabric elongation rate and fabric size of each fabric structure type in the functional partition corresponding to the main force - generating muscle based on the muscle characteristic data of the main force - generating muscle and the elastic modulus of each preset fabric structure type; Take the fabric structure type whose fabric elongation rate and fabric size meet the fabric limit conditions as the first target fabric structure type required for the functional partition corresponding to the main force - generating muscle.

3. The method for manufacturing a compression garment according to claim 2, wherein Calculate the fabric elongation rate and fabric size of each fabric structure type in the functional partition corresponding to the main force - generating muscle based on the muscle characteristic data of the main force - generating muscle and the elastic modulus of each preset fabric structure type, including: Determine the pressure - bearing value required for each main force - generating muscle; Calculate the fabric elongation of each fabric structure type in the functional partition corresponding to the main force - generating muscle based on the muscle characteristic data of the main force - generating muscle, the required pressure - bearing value, the elastic modulus of each preset fabric structure type, and the fabric thickness of each fabric structure type; Calculate the fabric elongation rate and fabric size of each fabric structure type in the functional partition corresponding to the main force - generating muscle based on the muscle characteristic data of the main force - generating muscle and the fabric elongation of each fabric structure type in the functional partition corresponding to the main force - generating muscle.

4. The method for manufacturing a compression garment according to claim 2, characterized in that, The fabric limit conditions include: the fabric elongation rate is less than the corresponding fabric elongation rate threshold, and the fabric size is less than the fabric size threshold of the weaving machine.

5. The method for manufacturing a compression garment according to claim 1, wherein Obtain an organizational structure diagram according to the first target fabric structure type and first weaving parameters of each functional partition, the second target fabric structure type and second weaving parameters of each non - functional partition, including: Draw a color - block design diagram according to the first weaving parameters of each functional partition and the second weaving parameters of each non - functional partition; Fill the first target fabric structure type of each functional partition and the second target fabric structure type of each non - functional partition into the corresponding functional partition and non - functional partition in the color - block design diagram to obtain an organizational structure diagram.

6. The method for manufacturing a compression garment according to claim 1, characterized in that, The muscle characteristic data includes the dimensional parameters of the human body area to which the muscle belongs and the curvature of the muscle center point.

7. The method for manufacturing a compression garment according to claim 1, wherein, The weaving parameters include the number of needles and the number of horizontal rows.

8. The method for manufacturing a compression garment according to claim 1, wherein The muscle characteristic data of the main force - generating muscle and the auxiliary muscle are obtained by the following methods: Scanning the human body to obtain scanning data and generating a digital human model based on the scanning data; Calculating the muscle characteristic data of the main force - generating muscle and the auxiliary muscle based on the digital human model.

9. A compression garment, characterized in that, The compression garment is obtained by the compression garment manufacturing method described in any one of claims 1 to 8.

10. A pressurized clothing manufacturing device, characterized in that, Including: A functional area parameter determination module, configured to: determine the first target fabric structure type and fabric size required for the functional area corresponding to each main force - generating muscle according to the muscle characteristic data of each main force - generating muscle of the human body under a specified exercise type and the elastic modulus of each preset fabric structure type; determine the first weaving parameters of the functional area according to the muscle characteristic data of each main force - generating muscle, the first target fabric structure type and fabric size required for the functional area corresponding to each main force - generating muscle; A non - functional area parameter determination module, configured to: determine the second target fabric structure type and second weaving parameters of the non - functional area corresponding to each auxiliary muscle; A garment manufacturing module, configured to: obtain an organizational structure diagram according to the first target fabric structure type and first weaving parameters of each functional area, the second target fabric structure type and second weaving parameters of each non - functional area, generate a machine control program based on the organizational structure diagram, and import the machine control program into a weaving machine to manufacture the corresponding compression garment.

11. An electronic device, comprising a processor and a memory storing program instructions, characterized in that, The processor obtains an organizational structure diagram according to the first target fabric structure type and first weaving parameters of each functional area, the second target fabric structure type and second weaving parameters of each non - functional area, generates a machine control program based on the organizational structure diagram, and imports the machine control program into a weaving machine to manufacture the corresponding compression garment.

12. A storage medium, characterized in that, Computer program instructions are stored in a storage medium. When the computer program instructions are run by the processor, the processor obtains an organizational structure diagram according to the first target fabric structure type and first weaving parameters of each functional area, the second target fabric structure type and second weaving parameters of each non - functional area, generates a machine control program based on the organizational structure diagram, and imports the machine control program into a weaving machine to manufacture the corresponding compression garment.