Fabric and garment
By incorporating lighting components and vibration sensors into the fabric, the problem of low visibility of textile fabrics at night has been solved, enabling the fabric to be interactive and have positioning functions, thereby improving nighttime safety and the parent-child interaction experience.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-04-07
- Publication Date
- 2026-04-07
AI Technical Summary
Existing textile printing technologies lack self-illuminating properties and interactivity, resulting in low visibility at night. They cannot help parents quickly identify their child's location in low light conditions, and they lack interaction mechanisms with clothing, making it impossible to transmit signals in emergency situations.
Lighting components and vibration sensors are incorporated into the fabric, protected by light-transmitting elements and a sealed shell. Combined with a Bluetooth module, this enables interactive lighting and positioning functions, enhancing the fabric's appeal, interactivity, and nighttime visibility.
It enables the fabric to be clearly visually identified at night, enhances interaction between children and parents, provides a quick location function, and improves nighttime safety and parent-child communication experience.
Smart Images

Figure CN224084722U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model belongs to the field of fabric, especially relate to a fabric and clothes. BACKGROUND
[0002] The existing textile fabric printing technology mainly focuses on the beauty of the pattern and the comfort of the fabric, and lacks interactivity and functionality. The mainstream textile fabric printing technology, whether it is the widely used silk screen printing or the emerging digital direct jet printing, its main goal is to create beautiful patterns and ensure the comfort of the fabric. In the night environment, the limitations of these traditional printing technologies are exposed. The patterns printed by them mostly do not have the self-luminous feature, and in the case of weak light, the pattern is difficult to see, and cannot play the role of helping parents quickly identify the position of the child. For example, children wearing ordinary printed clothes go out at night, and from a distance, the clothes blend into the surrounding dark environment and cannot form a clear visual distinction, greatly increasing the difficulty of finding.
[0003] In addition to the problem of night recognition, the existing textile fabric printing technology is almost blank in terms of interactivity. There is a lack of effective interaction mechanism between children and the clothes they wear. For example, when children feel scared at night or encounter an emergency, they cannot send signals to parents through clothes. At the same time, parents also cannot remotely confirm the status of the child through interaction with the child's clothes. The lack of interactivity makes the textile product only exist as a static clothing, and fails to fully play its potential function in ensuring the safety of children and enhancing the parent-child relationship, which is contrary to the needs of modern consumers for intelligent and humanized products. SUMMARY
[0004] The utility model aims at providing a fabric and clothes to overcome at least one of the above-mentioned defects in the prior art.
[0005] To achieve this purpose, the utility model adopts the following technical solutions:
[0006] The utility model provides a fabric, which comprises an inner layer fabric, an outer layer fabric, a light assembly and a vibration sensor, the inner layer fabric and the outer layer fabric are connected, and the light assembly and the vibration sensor are covered in the inner layer fabric, the outer layer fabric has a light transmission position for the light emitted by the light assembly, and the vibration sensor is electrically connected with the light assembly.
[0007] Preferably, it further comprises a sealed shell and a water permeable part, the outer layer fabric and / or the inner layer fabric has a hole position, the hole position is provided with the water permeable part, and the pore of the water permeable part is larger than the pore of the outer layer fabric and / or the inner layer fabric.
[0008] Preferably, the light assembly and the vibration sensor are both arranged in the sealed shell, and the sealed shell is installed between the inner layer fabric and the outer layer fabric.
[0009] Preferably, the outer surface of the outer layer fabric has a printed area, and the light transmission position is located in the printed area.
[0010] Preferably, the inner layer fabric and the outer layer fabric are made of the same material, and are knitted by fine denier polyester filaments, with a needle count of ≥ 28G, a weft density of 60-100 threads / inch, a warp density of 50-80 threads / inch, and a total density of 3000-8000 threads / inch. 2 , a grammage of 180-300 g / m 2 .
[0011] Preferably, the sealing shell is made of transparent material.
[0012] Preferably, the light transmission position is a through hole, a transparent layer, or a translucent layer.
[0013] Preferably, the light assembly includes LED lamp beads, a circuit board, a power supply, and a control unit, the control unit is arranged on the circuit board, and the vibration sensor, the LED lamp beads, and the power supply are electrically connected to the control unit.
[0014] Preferably, the LED lamp beads are three in number, namely LED1, LED2, and LED3, the power supply includes a power input VCC, a ground GND, and a capacitor C4, the power input VCC is connected to the ground GND through the capacitor C4, the anodes of the LED1, the LED2, and the LED3 are connected to the power input VCC, the control unit includes current-limiting resistors R1 and R2, capacitors C1, C2, and C3, transistors Q1, Q2, and Q3, and a variable resistor RP1, the LED1 is connected to the collector of the transistor Q1 in series with the current-limiting resistor R3, the LED2 is connected to the collector of the transistor Q2 in series with the current-limiting resistor R4, the LED3 is connected to the collector of the transistor Q3 in series with the current-limiting resistor R5, one end of the current-limiting resistor R1 is connected to the power input VCC, and the other end is connected to the base electrode of the transistor Q2, one end of the current-limiting resistor R2 is connected to the power input VCC, and the other end is connected to the base electrode of the transistor Q3, the emitters of the transistors Q1, Q2, and Q3 are connected to the ground GND, the base electrode of the transistor Q1 is connected to the power input VCC through the variable resistor RP1, the collector of the transistor Q1 is connected to the base electrode of the transistor Q2 through the capacitor C1, the collector of the transistor Q2 is connected to the base electrode of the transistor Q3 through the capacitor C2, and the collector of the transistor Q3 is connected to the base electrode of the transistor Q1 through the capacitor C3.
[0015] Preferably, the LED lamp beads are fixed to the circuit board, the circuit board has a light guide channel, the LED lamp beads are located in the light guide channel, and the light guide channel is arranged opposite to the light transmission position.
[0016] Preferably, the device further includes a Bluetooth module, and the Bluetooth module is electrically connected to the control unit.
[0017] Preferably, the LED lamp bead is an RGB LED lamp bead, and the model of the vibration sensor is SW-18010P.
[0018] The utility model also provides a garment comprising the above-mentioned fabric.
[0019] The utility model discloses the beneficial effects are:
[0020] 1. By setting up light assembly and vibration sensor between inner fabric and outer fabric, the fabric has interesting, interactivity, night recognition and the convenience of parents finding children.
[0021] 2. The light-transmitting position is ingeniously arranged in the printing area, realizing the fusion of the printing pattern and the light effect.
[0022] 3. The fabric not only has good durability, but also has comfortable skin, good texture and moisture absorption and perspiration.
[0023] 4. The vibration sensor is combined with the light assembly to realize the flashing effect of colorful light and switch the light mode.
[0024] 5. The light guide channel plays a restraining and guiding role on the light emitted by the LED lamp bead.
[0025] 6. By means of the Bluetooth module, communication connection can be established with the mobile phone APP, instructions from the APP can be received, and position information obtained by itself can be sent to the APP, and then the precise positioning function is achieved.
[0026] 7. The setting of the water-permeable part prevents water accumulation between the inner fabric and the outer fabric.
[0027] 8. The sealing shell plays a protection role against collision for the light assembly and the vibration sensor, and plays a waterproof role, ensuring the normal operation of the light assembly and the vibration sensor. BRIEF DESCRIPTION OF DRAWINGS
[0028] Figure 1 It is the explosion structure schematic diagram of the utility model embodiment one.
[0029] Figure 2 It is the cooperation structure schematic diagram of the LED lamp bead, the circuit board and the light guide channel of the utility model embodiment one.
[0030] Figure 3 It is the cooperation structure schematic diagram of the inner fabric, the hole position and the water-permeable part of the utility model embodiment one.
[0031] Figure 4 It is the control block diagram of the utility model embodiment one.
[0032] Figure 5 is the circuit principle diagram of the light assembly of the embodiment one of the utility model.
[0033] The marks in the drawings are: 1-outer layer fabric, 2-inner layer fabric, 3-vibration sensor, 4-light assembly, 5-light transmission position, 6-printing area, 41-LED lamp bead, 42-circuit board, 43-power supply, 44-control unit, 7-Bluetooth module, 421-light transmission channel, 8-hole position, 9-water transmission part, 10-sealing shell. DETAILED DESCRIPTION
[0034] The utility model will be further described in combination with the drawings and specific embodiment.
[0035] The contents not described in detail in the specification belong to the prior art known to the person skilled in the art.In the description of the utility model, it is understood that the orientation or positional relationship indicated by the terms "center", "upper", "lower", "front", "rear", "left", "right", "vertical", "horizontal", "top", "bottom", "inner", "outer", "clockwise", "counterclockwise" and the like is based on the orientation or positional relationship shown in the drawings, and is only for the convenience of describing the utility model and simplifying the description, and cannot be understood as indicating or implying 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 limiting the utility model.In addition, the terms "first", "second", "third" and the like are only used for distinguishing description, and cannot be understood as indicating or implying relative importance.
[0036] As Figures 1 to 5As shown, the fabric provided in the embodiment includes an inner layer fabric 2, an outer layer fabric 1, a light assembly 4, a vibration sensor 3, a sealed shell 10, and a water-permeable part 9. The inner layer fabric 2 and the outer layer fabric 1 are connected, and the light assembly 4 and the vibration sensor 3 are covered inside. The outer layer fabric 1 has a light-transmitting position 5 for light emitted by the light assembly 4 to pass through, and the vibration sensor 3 is electrically connected to the light assembly 4. The inner layer fabric 2 has a hole position 8, which is provided with a water-permeable part 9. The porosity of the water-permeable part 9 is greater than that of the inner layer fabric. The water-permeable part 9 of the embodiment is a polyester woven fabric with a porosity greater than that of the inner layer fabric 2. The setting of the water-permeable part 9 prevents water accumulation between the inner layer fabric 2 and the outer layer fabric 1. The light assembly 4 and the vibration sensor 3 are fixedly arranged in the sealed shell 10, and the sealed shell 10 is fixedly installed between the inner layer fabric 2 and the outer layer fabric 1. The sealed shell 10 plays a role in protecting the light assembly 4 and the vibration sensor 3 from collision and water, ensuring the normal operation of the light assembly 4 and the vibration sensor 3. The outer surface of the outer layer fabric 1 has a printed area 6, and the light-transmitting position 5 is located in the printed area 6. The light-transmitting position 5 of the embodiment is a plurality of through holes distributed in the printed area 6. In other embodiments, it can also be a transparent layer or a translucent layer. The sealed shell 10 is made of transparent material, which is convenient for light to pass through. By arranging the light assembly 4 and the vibration sensor 3 between the inner layer fabric 2 and the outer layer fabric 1, the fabric has interestingness, interactivity, night recognition, and convenience for parents to find children.
[0037] In terms of interestingness, when the outer layer fabric 1 is pressed, the vibration sensor 3 quickly captures this physical change and triggers the light assembly 4 to emit colorful light immediately. This unique design brings children a new exploration of fun, stimulating their curiosity and creativity. For example, children inadvertently press the clothes during play, and the instant light-up light is like opening a wonderful light journey, adding rich interest to daily activities, so that wearing is no longer just a functional requirement, but a fun interactive experience.
[0038] From the perspective of interactivity, this technology builds a dynamic interaction bridge between children and clothes. Children actively press the fabric to trigger the light, realizing direct interaction from behavior to visual feedback, which enhances children's perception of the association between their behavior and the surrounding environment. At the same time, parents and children also have a new way of interaction. Parents can guide children to explore this function by interacting with children's clothes, enhancing parent-child communication and emotional connection, greatly enriching the interactive scene and form.
[0039] The technology is also of breakthrough significance in night recognition. The traditional textile fabric is often difficult to highlight in the environment with insufficient light at night, so that the child is easy to hide in the darkness. In the utility model, once the outer fabric 1 is pressed, the light assembly 4 is immediately turned on, and the cover of darkness is broken instantly. Even at a long distance or in a complex light night place, such as a night market, a park and the like, the flickering light can form an obvious visual identifier, and the child is clearly separated from the dark background, so that the recognition of the child at night is greatly improved.
[0040] For the parents, the function greatly facilitates the search for the child at night. In the emergency situation that the child and the parent are accidentally separated, the parent only needs to pay attention to the position where the light is triggered due to the activity of the child, so that the approximate direction of the child can be quickly locked, the search time is significantly shortened, the anxiety and uneasiness of the parent in searching for the child at night are effectively alleviated, the safe travel of the child at night is effectively ensured, and the urgent needs of the parent in the actual life scene are actually met.
[0041] The outer fabric 1 is arranged with the light transmission position 5 in the printing area 6, so that the printing pattern and the light effect are integrated. When the light assembly 4 emits light, the originally static printing pattern is endowed with dynamic light and shadow change through the light transmission of the through hole, the transparent layer or the translucent layer distributed in the printing area 6. For example, the printing area 6 is a starry sky pattern, the light transmission through the through hole is like the twinkling stars, so that the product is greatly enhanced in the ornamental and unique properties, and the product is improved in the appearance attraction, so that the pursuit of the consumer for the personalized and beautiful product is met.
[0042] The light transmission position 5 in various forms provides different functional characteristics. The through hole form can present the point-shaped light distribution, is suitable for creating the flickering and dynamic effect, and ensures the air permeability of the fabric to a certain extent, is suitable for the sports type children's clothing, and the child can enjoy the light interaction and keep the air permeability and comfort of the clothes during the activity. The transparent layer or the translucent layer can realize more uniform and soft light transmission, is suitable for the scene needing large-area light display, such as making stage performance clothes, and can make the overall light effect more gorgeous and stable.
[0043] The light transmission position 5 is arranged to enable the light of the light assembly 4 to smoothly transmit through the outer fabric 1, so that the light assembly 4 can play the role of improving the night recognition and enhancing the interactivity. No matter which form is adopted, the effective transmission of the light is ensured. In the night, the light transmits through the light transmission position 5, so that the clothes become an obvious visual identifier in the darkness, and the parent can quickly find the child. In the interactive scene, the child can more clearly feel the light change, the interactive experience is improved, the effective landing from the design to the function is realized, and the practicability and functionality of the product are enhanced.
[0044] The material of the inner layer fabric 2 and the outer layer fabric 1 is the same, and is made of fine denier polyester filament knitted, the needle number is greater than or equal to 28G, the weft density is 60-100 roots / inch, the warp density is 50-80 roots / inch, and the total density is 3000-8000 roots / inch 2 , the grammage is 180-300g / m 2 . The fabric has good durability, comfortable skin, good texture, and moisture absorption and sweat releasing effect.
[0045] The LED lamp beads 41 are three, respectively LED1, LED2 and LED3, the power supply 43 includes a power input VCC, a ground GND and a capacitor C4, the power input VCC is connected to the ground GND through the capacitor C4, the anodes of the LED1, the LED2 and the LED3 are connected to the power input VCC, the control unit 44 includes a current limiting resistor R1, a current limiting resistor R2, a capacitor C1, a capacitor C2, a capacitor C3, a transistor Q1, a transistor Q2, a transistor Q3 and a variable resistor RP1, the LED1 and the current limiting resistor R3 are connected in series and connected to the collector of the transistor Q1, the LED2 and the current limiting resistor R4 are connected in series and connected to the collector of the transistor Q2, the LED3 and the current limiting resistor R5 are connected in series and connected to the collector of the transistor Q3, one end of the current limiting resistor R1 is connected to the power input VCC, and the other end is connected to the base electrode of the transistor Q2, one end of the current limiting resistor R2 is connected to the power input VCC, and the other end is connected to the base electrode of the transistor Q3, the emitters of the transistor Q1, the transistor Q2 and the transistor Q3 are connected to the ground GND, the base of the transistor Q1 is connected to the power input VCC through the variable resistor RP1, the collector of the transistor Q1 is connected to the base electrode of the transistor Q2 through the capacitor C1, the collector of the transistor Q2 is connected to the base electrode of the transistor Q3 through the capacitor C2, and the collector of the transistor Q3 is connected to the base electrode of the transistor Q1 through the capacitor C3. The LED lamp beads 41 of the embodiment are RGB LED lamp beads 41, and the model of the vibration sensor 3 is SW-18010P.
[0046] The power input VCC, ground GND and capacitor C4 are used for filtering to reduce the power 43 noise and ensure the stable operation of the circuit. The current limiting resistors R3, R4 and R5 are used to limit the current and protect the LED lamp beads 41 from being damaged by overcurrent. The current limiting resistors R1 and R2 are used to protect the transistors. The transistors Q1, Q2 and Q3 control the on-off of the LEDs 1, 2 and 3 respectively to achieve the flickering effect. The capacitors C1, C2 and C3 form an oscillation circuit with the transistors Q1, Q2 and Q3 to control the flickering frequency. By setting the variable resistor RP1, the time constant of the oscillation circuit is adjusted to control the speed of the light flickering. When the power 43 is turned on, the capacitors C1, C2 and C3 start to charge, and the base voltage of the transistors gradually rises. When the base voltage reaches a certain value, the transistor turns on, and the capacitor discharges through the transistor. When the capacitor voltage drops to a certain level, the transistor turns off, and the capacitor charges again. This process is repeated continuously to form an oscillation signal. The on-off state of the transistor controls the on-off of the LED. When the transistor is on, the current flows through the current limiting resistor to the LED, making the LED light up. When the transistor is off, the LED is extinguished. Due to the slight parameter difference and the influence of circuit layout, the flickering of the three LED lights may be slightly out of sync, resulting in an alternating flickering effect. The variable resistor RP1 adjusts the time constant of the oscillation circuit by changing the resistance value, thereby changing the charging and discharging time of the capacitor, and controlling the speed of the light flickering.
[0047] The vibration sensor 3 converts different pressing intensities received into different digital signal outputs and transmits them to the control unit 44. The control unit 44 controls the color of the LED lamp beads according to the received signals, thereby realizing color change. At the same time, the vibration sensor 3 converts different pressing frequencies received into different digital signal outputs and transmits them to the control unit 44. The control unit 44 controls the light-emitting mode of the LED lamp beads according to such signals, thereby achieving switching of the light-emitting mode.
[0048] The vibration sensor 3 converts different pressing intensities received into different digital signal outputs and transmits them to the control unit 44. The control unit 44 controls the color of the LED lamp beads according to the received signals, thereby realizing color change. At the same time, the vibration sensor 3 converts different pressing frequencies received into different digital signal outputs and transmits them to the control unit 44. The control unit 44 controls the light-emitting mode of the LED lamp beads according to such signals, thereby achieving switching of the light-emitting mode.
[0049] The LED lamp bead 41 is fixed to the circuit board 42, the circuit board 42 has a light guide channel 421, the LED lamp bead 41 is located in the light guide channel 421, and the light guide channel 421 is arranged opposite to the light transmission position 5. The light guide channel 421 plays a role of constraint and guidance on the light emitted by the LED lamp bead. Generally, the LED lamp bead 41 has a scattering characteristic in light emission, and the light guide channel 421 can integrate the scattered light, so that the light can only be emitted along the direction of the light guide channel 421. Moreover, the emitted light further passes through the corresponding light transmission position 5 and is finally transmitted from the outer fabric 1. This design effectively avoids the disorderly scattering of light in the fabric, ensures that the light can be precisely emitted from the specific light transmission position 5, improves the utilization efficiency of the light, makes the light effect presented on the outer fabric 1 more concentrated, stable and controllable, and greatly enhances the visual display effect and functionality of the product.
[0050] The Bluetooth module 7 is further included, and the Bluetooth module 7 is electrically connected with the control unit 44. By means of the Bluetooth module 7, a communication connection can be established with a mobile phone APP, instructions from the APP can be received, and position information acquired by the Bluetooth module 7 can be sent to the APP, so that the precise positioning function is achieved. In daily life scenes, especially when children go out, parents can quickly lock the position of the children according to the feedback position information by means of the mobile phone APP, greatly improving the efficiency of finding the children and providing a reliable guarantee for the safety of the children.
[0051] Embodiment two:
[0052] The embodiment provides a garment including the fabric of the embodiment one.
[0053] The above embodiments are only used to illustrate the technical solutions of the utility model, and not to limit them; although the utility model has been described in detail with reference to the foregoing embodiments, those skilled in the art should understand that the technical solutions recorded in the foregoing embodiments can be modified or some technical features can be replaced equivalently; and these modifications or replacements do not make the essence of the corresponding technical solutions deviate from the spirit and scope of the technical solutions of the embodiments of the utility model.
Claims
1. A fabric, characterized in that: It includes an inner fabric (2), an outer fabric (1), a lighting assembly (4), and a vibration sensor (3); The inner fabric (2) is connected to the outer fabric (1) and covers the light assembly (4) and the vibration sensor (3); The outer fabric (1) has a light-transmitting part (5) through which light emitted by the light assembly (4) passes. The vibration sensor (3) is electrically connected to the lighting assembly (4).
2. The fabric according to claim 1, characterized in that: It also includes a sealing shell (10) and a water-permeable part (9); The outer fabric (1) and / or the inner fabric (2) have pores (8), the pores (8) are provided with water-permeable parts (9), and the pores of the water-permeable parts (9) are larger than the pores of the outer fabric (1) and / or the inner fabric (2). The lighting assembly (4) and the vibration sensor (3) are both disposed inside the sealing shell (10), which is installed between the inner fabric (2) and the outer fabric (1).
3. The fabric according to claim 1, characterized in that: The outer surface of the outer fabric (1) has a printed area (6), and the light-transmitting position (5) is located in the printed area (6).
4. The fabric according to claim 2, characterized in that: The inner fabric (2) and the outer fabric (1) are made of the same material, both of which are woven from fine denier polyester filaments with a needle count ≥28G, a weft density of 60-100 threads / inch, a warp density of 50-80 threads / inch, and a total density of 3000-8000 threads / inch. 2 Weight is 180-300g / m³ 2 ; The sealing shell (10) is made of transparent material; The light-transmitting position (5) is a through hole, a transparent layer, or a semi-transparent layer.
5. The fabric according to claim 1, characterized in that: The lighting assembly (4) includes LED beads (41), circuit board (42), power supply (43), and control unit (44). The control unit (44) is disposed on the circuit board (42). The vibration sensor (3), LED beads (41), and power supply (43) are all electrically connected to the control unit (44).
6. The fabric according to claim 5, characterized in that: There are three LED beads (41), namely LED1, LED2 and LED3; The power supply (43) includes a power input VCC, ground GND, and a capacitor C4; The power input VCC is connected to ground GND through capacitor C4; The anodes of LED1, LED2, and LED3 are all connected to the power input VCC; The control unit (44) includes a current-limiting resistor R1, a current-limiting resistor R2, a capacitor C1, a capacitor C2, a capacitor C3, a transistor Q1, a transistor Q2, a transistor Q3, and a variable resistor RP1; The LED1 is connected in series with the current-limiting resistor R3 and then connected to the collector of the transistor Q1; The LED2 is connected in series with the current-limiting resistor R4 and then connected to the collector of the transistor Q2; The LED3 is connected in series with the current-limiting resistor R5 and then connected to the collector of the transistor Q3; One end of the current-limiting resistor R1 is connected to the power input VCC, and the other end is connected to the base electrode of the transistor Q2. One end of the current-limiting resistor R2 is connected to the power input VCC, and the other end is connected to the base electrode of the transistor Q3. The emitters of transistors Q1, Q2, and Q3 are all connected to the ground GND. The base of transistor Q1 is connected to the power input VCC through the variable resistor RP1; The collector of transistor Q1 is connected to the base of transistor Q2 through capacitor C1; The collector of transistor Q2 is connected to the base of transistor Q3 through capacitor C2; The collector of transistor Q3 is connected to the base of transistor Q1 through capacitor C3.
7. The fabric according to claim 5, characterized in that: The LED beads (41) are fixed to the circuit board (42); The circuit board (42) has a light guide channel (421). The LED bead (41) is located within the light guide channel (421); The light guide channel (421) is positioned opposite to the light transmission position (5).
8. The fabric according to claim 5, characterized in that: It also includes a Bluetooth module (7); The Bluetooth module (7) is electrically connected to the control unit (44).
9. The fabric according to claim 5, characterized in that: The LED bead (41) is an RGB LED bead (41). The vibration sensor (3) is model SW-18010P.
10. A garment, characterized in that: Includes the fabric as described in any one of claims 1-9.