Garment drying production device and garment drying method

By combining the extended structure and the surrounding structure, the posture of the garment is dynamically adjusted, solving the problems of uneven drying and low efficiency in traditional garment drying devices. This achieves uniform contact and rapid moisture evaporation of the garment in high-temperature air, thus improving the drying effect.

CN121655247APending Publication Date: 2026-03-13PUJIANG BAIRUNLIAN GARMENT CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-12-04
Publication Date
2026-03-13

AI Technical Summary

Technical Problem

In traditional garment drying equipment, the stacking of garments prevents high-temperature air from evenly contacting all parts, resulting in uneven drying and low efficiency.

Method used

By combining an expansion structure and a rotation structure, the garment's posture is dynamically adjusted to ensure that it remains dispersed during the drying process, increasing the contact area and frequency with hot air. The slow-evaporating liquid drives the dynamic expansion and angle adjustment of the garment, promoting airflow through the gaps between the garments.

Benefits of technology

It significantly improves the uniformity and efficiency of garment drying, ensuring that garments adjust their posture and position autonomously during the drying process, promoting airflow to penetrate the gaps between garments, accelerating moisture evaporation, and achieving a more thorough and efficient drying effect.

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Abstract

The invention discloses a garment drying production device and a garment drying method, and relates to the technical field of garment drying production devices.The garment drying production device comprises a box body, and a top cover is fixed to the surface of the box body; the expansion structure comprises a mounting bottom plate fixed on the surface of the top cover, a supporting frame fixed on the surface of the mounting bottom plate, an outer fixing ring fixed on the surface of the supporting frame, an inner fixing ring fixed on the surface of the supporting frame and located on the side edge of the outer fixing ring, and an outer sliding groove formed in the surface of the outer fixing ring; the outer sliding groove is formed in the surface of the outer fixing ring, the inner sliding groove is formed in the surface of the inner fixing ring, the expansion assembly slides on the surface of the outer sliding groove and the surface of the inner sliding groove, and the adjusting assembly is fixed to the expansion assembly. The surrounding and rotating structure comprises a rotating base rotating on the side edge of the extension assembly and an inclined rod fixed to the surface of the rotating base. Air flow is promoted to penetrate through gaps of clothes, water evaporation is accelerated, the drying uniformity and the overall efficiency are greatly improved, and the more thorough and efficient drying effect is achieved.
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Description

Technical Field

[0001] This invention relates to the field of garment drying technology, specifically to a garment drying production device and a garment drying method. Background Technology

[0002] Garment production is the process of turning fabrics into finished garments through multiple steps, including design, cutting, sewing, dyeing, finishing, and finishing.

[0003] Drying is one of the core steps in garment production, usually carried out after washing, dyeing or functional finishing. It aims to quickly remove moisture from inside the garment through garment drying equipment, while simultaneously achieving fiber setting and quality optimization.

[0004] Traditional garment drying involves placing clothes directly into a drying device and drying them with high-temperature air. This method causes most garments to be piled together, and the piled-up garments block each other, preventing the high-temperature air from evenly contacting all parts of each garment. As a result, some areas cannot evaporate moisture, leading to uneven drying. At the same time, the contact efficiency between the high-temperature air and the garment is reduced, and the overall moisture evaporation rate is slower, requiring more time to dry. This results in low efficiency, and ultimately, due to uneven drying and low efficiency, some garments cannot reach the ideal drying state, resulting in poor drying effect. Summary of the Invention

[0005] The purpose of this invention is to provide a garment drying production apparatus and a garment drying method to solve the problems mentioned in the background art.

[0006] To solve the above-mentioned technical problems, the present invention provides the following technical solution: According to a first aspect of the present invention, a garment drying production apparatus is provided, comprising a housing, wherein a top cover is fixed to the surface of the housing; and further comprising: The extension structure includes a mounting base plate fixed to the surface of the top cover, a support frame fixed to the surface of the mounting base plate, an outer retaining ring fixed to the surface of the support frame, an inner retaining ring fixed to the surface of the support frame and located on the side of the outer retaining ring, an outer sliding groove formed on the surface of the outer retaining ring, an inner sliding groove formed on the surface of the inner retaining ring, an extension component sliding on the surfaces of the outer sliding groove and the inner sliding groove, and an adjustment component fixed to the extension component; The circumferential structure includes a rotating base that rotates on the side of the extension component, an inclined rod fixed to the surface of the rotating base, a straight rod fixed to the surface of the inclined rod, a circumferential component fixed to the surface of the straight rod, and a gap-expanding component fixed to the surface of the circumferential component.

[0007] In a preferred embodiment of the garment drying production device of the present invention, a bottom cover is fixedly connected to the surface of the box body, a first positioning groove is provided on the surface of the outer sliding groove, a second positioning groove is provided on the surface of the inner sliding groove, the bottom wall of the first positioning groove and the bottom wall of the second positioning groove are located on the same plane, and a liquid injection pipe is rotatably connected to the surface of the top cover, the liquid injection pipe passing through the support frame.

[0008] In a preferred embodiment of the garment drying production device of the present invention, the extended component includes an outer slider slidably connected to the surface of the outer slide groove, a support bar fixedly connected to the surface of the outer slider, and an elastic piece fixedly connected between the support bar and the outer slider, wherein the support bar is slidably connected to the surface of the first positioning groove.

[0009] In a preferred embodiment of the garment drying production device of the present invention, an inner slider is fixedly connected to the surface of the outer slider, a positioning strip is fixedly connected to the surface of the inner slider, the positioning strip is slidably connected to the surface of the second positioning groove, a vertical arc plate is fixedly connected to the top of the inner slider, a top hole is opened on the surface of the vertical arc plate, and a mutually symmetrical limiting plate is fixedly connected to the surface of the outer fixed ring and located on the side of the outer slider.

[0010] In a preferred embodiment of the garment drying production device of the present invention, the adjusting component includes: a groove formed on the surface of the outer slider, a locking post slidably connected to the surface of the groove, a connecting plate fixedly connected to the top of the locking post, a pressing rod fixedly connected to the connecting plate, a fixing cylinder slidably connected to the surface of the pressing rod, a first spring fixedly connected between the pressing rod and the fixing cylinder, a positioning ring fixedly connected to the surface of the connecting plate, a pull rod fixedly connected to the surface of the positioning ring, and a hook fixedly connected to the surface of the pull rod.

[0011] In a preferred embodiment of the garment drying production device of the present invention, the outer slide groove surface is provided with a locking groove, the connecting plate surface is fixedly connected with a pressing column, the pressing column surface is slidably connected with a connecting cylinder, one end of the connecting cylinder is fixedly connected with an expansion cylinder, the expansion cylinder is movably connected with an air bladder, the pull rod surface is fixedly connected with a cross plate located on the side of the expansion cylinder, the cross plate surface is slidably connected with a connecting strip, the connecting strip surface is fixedly connected with a second spring, and the concealed groove surface is fixedly connected with a cover plate.

[0012] As a preferred embodiment of the garment drying production device of the present invention, the rotating assembly includes a swivel groove formed on the surface of the bottom cover, a swivel cone rotatably connected to the surface of the swivel groove, a first connecting rod fixedly connected to the surface of the swivel cone, a second connecting rod movably connected to the surface of the first connecting rod, a top ball fixedly connected to the surface of the second connecting rod, and protrusions fixedly connected to the surface of the top ball and distributed in a circular pattern. The top ball is fixedly connected to the straight rod, and an injection tube is fixedly connected to the surface of the top ball.

[0013] In a preferred embodiment of the garment drying production device of the present invention, the gap widening component includes a connecting sleeve fixedly connected to the top end of the first connecting rod, a plurality of swing rods fixedly connected to the surface of the connecting sleeve, a swing paddle fixedly connected to the top end of the swing rod, and a drag-reducing hole formed on the surface of the swing paddle.

[0014] In a preferred embodiment of the garment drying production device of the present invention, a gas generator is fixedly connected to the side of the box, a chimney is fixedly connected to the surface of the gas generator, and an exhaust hole is fixedly connected to the surface of the top cover.

[0015] According to a second aspect of the present invention, a garment drying method for a garment drying production apparatus is provided, implemented based on any of the garment drying production apparatuses described above, the method comprising the steps of: Step 1: The garment is hung on the hook. The weight of the garment pulls the lever vertically downward, causing the connecting plate to move downward. This causes the locking pin to move along the outer slider and away from the locking groove, unlocking the movement of the outer slider and the inner slider on the outer and inner retaining rings. Step 2: Slow-evaporating liquid is added into the top ball along the injection tube. The weight of the top ball and the second connecting rod is greater than the weight of the first connecting rod and the spiral cone. The spiral cone drives the top ball to rotate in the spiral groove. The protrusion on the surface of the top ball acts in the top hole of the vertical arc plate, driving the outer slider and the inner slider to slide back and forth under the elastic support of the support bar and the elastic sheet, forming an outwardly expanding dynamic structure. Step 3: When the pull rod descends, the downward pressure column squeezes the air bladder inside the connecting cylinder and the expansion cylinder, causing the expansion cylinder to expand and drive the cross plate to deflect, thereby adjusting the angle of the hook and causing the garment to adjust to the corresponding angle. Step four: After the weight of the garment decreases during drying, the pull rod rises, the expansion cylinder expands less, and the cross plate resets under the action of the insert strip and the second spring, causing the hook angle to adjust accordingly, which in turn causes the garment to adjust to the corresponding angle. At the same time, when the first connecting rod rotates, it drives the swing rod and the swing paddle to gently stroke the lower part of the garment through the connecting sleeve, changing the state of the lower part of the garment.

[0016] The beneficial effects of this invention are as follows: Through the synergistic effect of the extended structure and the surrounding structure, the suspended garments are kept in a dynamically dispersed state during the drying process, effectively avoiding the problem of stacking and blocking, significantly increasing the contact area and contact frequency between the garments and the hot air, and enabling the garments to adjust their posture and position autonomously during drying, promoting airflow to penetrate the gaps between the garments, accelerating moisture evaporation, thereby greatly improving the uniformity and overall efficiency of drying, and ultimately achieving a more thorough and efficient drying effect. Attached Figure Description

[0017] To more clearly illustrate the technical solutions of the embodiments of the present invention, the accompanying drawings used in the description of the embodiments will be briefly introduced below. Obviously, the accompanying drawings described below are only some embodiments of the present invention. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.

[0018] Figure 1 This is a schematic diagram of the box structure of the garment drying production device of the present invention.

[0019] Figure 2 This is a schematic plan view of the box structure of the garment drying production device of the present invention.

[0020] Figure 3 This is a schematic diagram of the extended structure of the garment drying production device of the present invention.

[0021] Figure 4 This is a cross-sectional view of the extended component of the garment drying production device of the present invention.

[0022] Figure 5 This is a plan view of the extended components of the garment drying production device of the present invention.

[0023] Figure 6 This is a schematic diagram of the outer fixed ring structure of the garment drying production device of the present invention.

[0024] Figure 7 for Figure 6 Enlarged diagram of point B in the middle.

[0025] Figure 8 This is a schematic diagram of the outer slider of the garment drying production device of the present invention.

[0026] Figure 9This is a cross-sectional schematic diagram of the outer slider of the garment drying production device of the present invention.

[0027] Figure 10 for Figure 9 Enlarged diagram of point C in the middle.

[0028] Figure 11 This is a cross-sectional plan view of an extended component of the garment drying production device of the present invention.

[0029] Figure 12 for Figure 11 Enlarged diagram of point A in the middle.

[0030] Figure 13 This is a schematic diagram of the rotating structure of the garment drying production device of the present invention.

[0031] Figure 14 This is a schematic diagram of the overall structure of the garment drying production device of the present invention.

[0032] In the diagram: 101, housing; 102, top cover; 103, bottom cover; 104, exhaust port; 105, gas generator; 106, chimney; 200, extension structure; 201, mounting base plate; 202, support frame; 203, outer retaining ring; 204, inner retaining ring; 205, outer sliding groove; 206, inner sliding groove; 207, extension assembly; 208, adjustment assembly; 209, first positioning groove; 210, second positioning groove; 2071, outer slider; 2072, support bar; 2073, elastic plate; 2074, inner slider; 2075, positioning bar; 2076, vertical arc plate; 2077, top hole; 2078, limiting plate; 2081, concealed groove; 2082, locking post; 2083, connecting plate; 2084, fixing cylinder; 2085, extrusion rod; 2 086, First Spring; 2088, Connecting Strip; 2089, Positioning Ring; 2090, Pull Rod; 2091, Pressing Column; 2092, Connecting Cylinder; 2093, Expansion Cylinder; 2094, Airbag; 2095, Cross Plate; 2096, Second Spring; 2097, Hook; 2098, Cover Plate; 2099, Locking Groove; 300, Encircling Structure; 301, Rotating Base; 302, Diagonal Rod; 303, Straight Rod; 304, Encircling Assembly; 305, Gap Expanding Assembly; 306, Injection Tube; 3041, Swirl Groove; 3042, Swirl Cone; 3043, First Connecting Rod; 3044, Second Connecting Rod; 3045, Top Ball; 3046, Protrusion; 3051, Connecting Sleeve; 3052, Swing Rod; 3053, Swing Paddle; 3054, Drag Reduction Hole. Detailed Implementation

[0033] To make the above-mentioned objects, features and advantages of the present invention more apparent and understandable, the specific embodiments of the present invention will be described in detail below with reference to the accompanying drawings.

[0034] Many specific details are set forth in the following description in order to provide a full understanding of the invention. However, the invention may also be practiced in other ways different from those described herein, and those skilled in the art can make similar extensions without departing from the spirit of the invention. Therefore, the invention is not limited to the specific embodiments disclosed below.

[0035] Secondly, the term "an embodiment" or "embodiment" as used herein refers to a specific feature, structure, or characteristic that may be included in at least one implementation of the present invention. The phrase "in one embodiment" appearing in different places throughout this specification does not necessarily refer to the same embodiment, nor is it an embodiment that is mutually exclusive, either alone or selectively, with other embodiments.

[0036] Secondly, the present invention is described in detail with reference to the schematic diagrams. When detailing the embodiments of the present invention, for ease of explanation, the cross-sectional views illustrating the device structure may be partially enlarged, not according to the usual scale. Furthermore, the schematic diagrams are merely examples and should not limit the scope of protection of the present invention. In addition, actual fabrication should include three-dimensional spatial dimensions of length, width, and depth.

[0037] Example 1, referring to Figure 1 - Figure 8 This is the first embodiment of the present invention, providing a garment drying production device. This device includes a housing 101, with a top cover 106 fixed to its surface. The housing 101 provides a stable, enclosed chamber for the entire drying process, effectively concentrating hot air, preventing heat loss, and improving heat energy utilization. It also includes: The extension structure 200 includes a mounting base plate 201 fixed to the surface of the top cover 106, a support frame 202 fixed to the surface of the mounting base plate 201, an outer retaining ring 203 fixed to the surface of the support frame 202, an inner retaining ring 204 fixed to the surface of the support frame 202 and located on the side of the outer retaining ring 203, an outer sliding groove 205 formed on the surface of the outer retaining ring 203, an inner sliding groove 206 formed on the surface of the inner retaining ring 204, an extension component 207 sliding on the surfaces of the outer sliding groove 205 and the inner sliding groove 206, and an adjustment component 208 fixed to the extension component 207; thereby constructing a stable extension frame, reducing clothing stacking, and increasing the contact area with high-temperature air.

[0038] The circumferential structure 300 includes a rotating base 301 rotatable on the side of the extension component 207, an inclined rod 302 fixed to the surface of the rotating base 301, a straight rod 303 fixed to the surface of the inclined rod 302, a circumferential assembly 304 fixed to the surface of the straight rod 303, and a gap-expanding assembly 305 fixed to the surface of the circumferential assembly 304. It provides power for the reciprocating movement of the extension component 207, adjusts the state of the lower part of the garment, and promotes uniform contact of high-temperature air.

[0039] The housing 101 has a bottom cover 103 fixedly connected to its surface. The outer sliding groove 205 has a first positioning groove 209, and the inner sliding groove 206 has a second positioning groove 210. The bottom walls of the first positioning groove 209 and the second positioning groove 210 are on the same plane. A liquid injection pipe 306 is rotatably connected to the top cover 106, passing through the support frame 202. The coplanar design of the first positioning groove 209 and the second positioning groove 210 ensures the horizontal alignment of the expansion component 207 during sliding. The liquid injection pipe 306, passing through the support frame 202, provides a liquid input channel for the rotating structure 300, improving the stability of the sliding of the expansion component 207 and preventing deviation or jamming. Simultaneously, the injection pipe 306 injects slowly evaporating liquid, driving the rotating structure 300 to operate continuously and ensuring power supply.

[0040] The expansion component 207 includes an outer slider 2071 slidably connected to the surface of the outer slide groove 205, a support bar 2072 fixedly connected to the surface of the outer slider 2071, and an elastic piece 2073 fixedly connected between the support bar 2072 and the outer slider 2071. The support bar 2072 is slidably connected to the surface of the first positioning groove 209. This elastic support enables automatic reset and continuous sliding of the outwardly expanding dynamic structure, reducing mechanical resistance, improving operational smoothness, and maintaining stability in the expanded state.

[0041] The outer slider 2071 has an inner slider 2074 fixedly connected to its surface. A positioning strip 2075 is fixedly connected to the surface of the inner slider 2074 and slidably connected to the surface of the second positioning groove 210. A vertical arc plate 2076 is fixedly connected to the top of the inner slider 2074, and a top hole 2077 is formed on the surface of the vertical arc plate 2076. A symmetrical limiting plate 2078 is fixedly connected to the surface of the outer retaining ring 203, located on the side of the outer slider 2071. The positioning strip 2075 limits the sliding of the inner slider 2074 within the inner groove 206. The top hole 2077 cooperates with the protrusion 3046 to transmit power, driving the extension component 207 to slide reciprocally. The limiting plate 2078 restricts the position of the garment, prevents stacking, maintains the garment in its unfolded state, and promotes uniform airflow.

[0042] During use, the operator hangs the garment to be dried on the hook 2097. The center point of the hook 2097 is collinear with the center points of the outer retaining ring 203 and the inner retaining ring 204. This line is called the reference axis. After the garment and hanger are hung on the hook 2097, the hanger and the reference axis are parallel to each other. The part of the garment and hanger in contact is limited by the limiting plate 2078. Under the condition that the garment is allowed to sway slightly due to the airflow, the contact part of the garment and the hanger is circumferentially constrained to prevent the garment from sliding, twisting or stacking along the hanger due to wet weight or subsequent movement. This ensures that the garment surface is always fully spread out and does not block each other, creating a stable posture for uniform air delivery.

[0043] The outer slider 2071 and the inner slider 2074 move on the outer groove 205 on the surface of the outer fixed ring 203 and the inner groove 206 on the surface of the inner fixed ring 204, respectively. The surfaces of the outer fixed ring 203 and the inner fixed ring 204 are respectively provided with a number of outer grooves 205 and a number of inner grooves 206, forming an outward expansion dynamic structure in the direction away from the inner fixed ring 204. This allows each garment to periodically expand and contract in the radial direction, and the gap between the fabric surfaces increases and recovers accordingly. Moist and hot air can repeatedly penetrate the fiber gaps and be replaced by fresh hot air, avoiding the dead corners caused by traditional stacking. The evaporation area continues to increase, the moisture discharge path is shortened, and the drying uniformity and speed are improved simultaneously.

[0044] To form this outwardly expanding dynamic structure, a power source is first needed to enable the outer slider 2071 and inner slider 2074 to continuously reciprocate. This power source is the circumferential rotation structure 300. The power is generated when an operator adds a slowly evaporating liquid, such as purified or deionized water, along the injection pipe 306 on the surface of the top cover 106. The liquid enters the circumferential rotation component 304 along the injection pipe 306. The circumferential rotation component 304 acts on the surface of each vertical arc plate 2076, causing the entire assembly of the outer slider 2071 and inner slider 2074 to slide on the outer and inner fixed rings 203 and 204. Under the elastic support of the support strip 2072 and the elastic strip, the entire assembly of the outer slider 2071 and inner slider 2074 can reciprocate on the outer and inner fixed rings 203 and 204, forming the outwardly expanding dynamic structure. When the outer slider 2071... After the entire assembly consisting of 071 and inner slider 2074 comes to rest, and the slowly evaporating liquid injected by injection tube 306 completely evaporates in the rotating assembly 304, the top ball 3045 in the rotating assembly 304 loses its extra weight, the center of gravity of the entire rotating structure 300 returns to balance, and the rotation stops. At the same time, the moisture content of the garment has been significantly reduced, and the weight is reduced to an insufficient level to continue pulling down the pull rod 2090. The pull rod 2090 moves upward and resets under the elastic recovery action of the fixed cylinder 2084, the squeezing rod 2085, and the first spring 2086, driving the locking pin 2082 to re-insert into the locking groove 2099. The outer slider 2071 and inner slider 2074 are locked, and the outward expansion dynamic structure is terminated. Under the elastic support of the fixed cylinder 2084, the squeezing rod 2085, and the first spring 2086, the locking pin 2082 returns to the locking groove 2099.

[0045] During the dynamic expansion and adjustment process of clothing, the repeated opening and closing of the fiber gaps can reduce wrinkles, while the slight swaying promotes the even evaporation of moisture and avoids local overheating.

[0046] Example 2, refer to Figure 1 - Figure 10This is the second embodiment of the present invention, which differs from the first embodiment in that: the adjusting component 208 includes a groove 2081 formed on the surface of the outer slider 2071, a locking post 2082 slidably connected to the surface of the groove 2081, a connecting plate 2083 fixedly connected to the top of the locking post 2082, a pressing rod 2085 fixedly connected to the connecting plate 2083, a fixing cylinder 2084 slidably connected to the surface of the pressing rod 2085, a first spring 2086 fixedly connected between the pressing rod 2085 and the fixing cylinder 2084, a positioning ring 2089 fixedly connected to the surface of the connecting plate 2083, a pull rod 2090 fixedly connected to the surface of the positioning ring 2089, and a hook 2097 fixedly connected to the surface of the pull rod 2090.

[0047] The concealed groove 2081 acts like a small compartment, allowing the internal parts to work stably. The locking pin 2082 and the locking slot 2099 work together to fix or release the outer slider 2071, controlling its movement. The connecting plate 2083 connects all the parts, allowing the action to be transmitted smoothly. The pressing rod 2085 and the first spring 2086 can automatically push the locking pin 2082 back to its original position and lock it, eliminating the need for manual operation and making it more convenient. The positioning ring 2089 can fix the pull rod 2090 in place to prevent it from wobbling. The pull rod 2090 can convert the weight of the garment into the force for unlocking, making it very easy to use.

[0048] Compared to Embodiment 1, the outer slide groove 205 is further provided with a locking groove 2099, a pressing column 2091 is fixedly connected to the surface of the connecting plate 2083, a connecting cylinder 2092 is slidably connected to the surface of the pressing column 2091, an expansion cylinder 2093 is fixedly connected to one end of the connecting cylinder 2092, an airbag 2094 is movably connected inside the expansion cylinder 2093, a cross plate 2095 located on the side of the expansion cylinder 2093 is fixedly connected to the surface of the pull rod 2090, a plug strip 2088 is slidably connected to the surface of the cross plate 2095, a second spring 2096 is fixedly connected to the surface of the plug strip 2088, and a cover plate 2098 is fixedly connected to the surface of the hidden groove 2081. The downward pressure column 2091 compresses the airbag 2094, causing the expansion cylinder 2093 to expand and push the cross plate 2095 to deflect. The plug bar 2088 and the second spring 2096 assist in the reset, and adjust the angle of the hook 2097. The flexible power avoids damage to the clothing. The change in the angle of the hook 2097 promotes uniform airflow. The reset is accurate and the adjustment is flexible. The cover plate 2098 can protect the internal parts and prevent dust from getting in.

[0049] During use, since the garment is dried after washing, the weight of the garment hanging on the hook 2097 will pull the lever 2090. The lever 2090 moves downward vertically under the fixation of the cover plate 2098. The downward movement of the lever 2090 will pull the entire connecting plate 2083 downward, thereby causing the locking pin 2082 to move along the outer slider 2071 and away from the locking groove 2099, thus unlocking the sliding of the outer slider 2071 and the inner slider 2074.

[0050] When the garment is first hung, as the pull rod 2090 descends, the downward pressure column 2091 compresses the air bladder 2094 in the connecting cylinder 2092 and the expansion cylinder 2093. The pressure and the compressed air bladder 2094 cause the expansion cylinder 2093 to expand, which in turn causes the cross plate 2095 on the surface of the pull rod 2090 to deflect at an angle. The angle of deflection causes the hook 2097 to deflect at a corresponding angle. As the garment is dried, its weight decreases, and the locking column 2082 causes the pull rod 2090 to rise. The expansion column expands less and less. Under the action of the insert strip 2088 and the second spring 2096, which are respectively slidably connected to the hidden groove 2081 and the cross plate 2095, the cross plate 2095 deflects at an angle, returning to its original position. The angle of deflection causes the hook 2097 to deflect at a corresponding angle, so that the garment does not always maintain a fixed posture during the drying process and can deflect at an angle, but it will not disengage from the limiting plates 2078 on both sides of the garment.

[0051] As the hook 2097 causes the garment to deflect slightly, the angle of attack between the fabric surface and the hot airflow changes continuously. The originally stable boundary layer is periodically disturbed, allowing the hot air to cut into the fiber gaps from a new direction. Locally trapped moisture is quickly carried away. At the same time, the instantaneous low-pressure zone formed by the deflection induces the surrounding airflow to form micro-vortices, enhancing the air exchange rate and preventing the long-term retention of hot and humid air. This dynamic angle adjustment ensures that the garment is always in the optimal windward position at different stages, eliminating the local over-drying or under-drying caused by traditional fixed hanging, and significantly improving the drying uniformity. With the improved heat and moisture exchange efficiency, the total drying time is shortened, energy consumption is reduced, and the fabric remains soft and not stiff due to uniform heating, ultimately achieving a gentle, comprehensive, and efficient drying effect.

[0052] Moreover, the 2097 hook angle slowly returns to its original position as the weight decreases, and the stress point on the shoulder continuously shifts, avoiding neckline deformation caused by prolonged single-point stretching and maintaining the integrity of the garment's shape.

[0053] The remaining structure is the same as that in Example 1.

[0054] Example 3, referring to Figure 1 - Figure 13This is the third embodiment of the present invention, which differs from the second embodiment in that: the rotating assembly 304 includes a swirl groove 3041 formed on the surface of the bottom cover 103, a swirl cone 3042 rotatably connected to the surface of the swirl groove 3041, a first connecting rod 3043 fixedly connected to the surface of the swirl cone 3042, a second connecting rod 3044 movably connected to the surface of the first connecting rod 3043, a top ball 3045 fixedly connected to the surface of the second connecting rod 3044, and protrusions 3046 fixedly connected to the surface of the top ball 3045 and distributed circumferentially. The top ball 3045 is fixedly connected to the straight rod 303, and a liquid injection pipe 306 is fixedly connected to the surface of the top ball 3045. The swirl groove 3041 ensures the stable rotation of the swirl cone 3042, the assembly rotation after liquid injection provides power, the protrusions 3046 assist in dynamic expansion, and the liquid injection pipe 306 allows for controllable rotation time, improving drying uniformity.

[0055] Compared to Embodiment 2, the further expansion assembly 305 includes a connecting sleeve 3051 fixedly connected to the top of the first connecting rod 3043, a plurality of swing rods 3052 fixedly connected to the surface of the connecting sleeve 3051, a paddle 3053 fixedly connected to the top of the swing rods 3052, and a drag-reducing hole 3054 formed on the surface of the paddle 3053. The swing rods 3052 and the paddle 3053 rotate with the connecting rod, which actuates the lower part of the garment to prevent sticking. The drag-reducing hole 3054 reduces drag and turbulence, improving the hot air contact efficiency.

[0056] Furthermore, a gas generator 105 is fixedly connected to the side of the chamber 101, and an air chimney 106 is fixedly connected to the surface of the gas generator 105. An exhaust port 104 is fixedly connected to the surface of the top cover 106. The gas generator 105 on the side of the chamber 101 continuously provides hot air through the air chimney 106, providing a sufficient heat source for drying. The exhaust port 104 on the top cover 106 can promptly discharge the water vapor generated during drying, keeping the air inside the chamber 101 dry, accelerating the evaporation of moisture from the clothing, ensuring drying efficiency and effect, and forming a complete and efficient hot air circulation system. The working principle of this part is existing technology, which can be clearly understood by those skilled in the art, and will not be described in detail here.

[0057] During use, the operator adds a slowly evaporating liquid along the injection pipe 306 on the surface of the top cover 106. The liquid enters the top ball 3045 in the cavity along the injection pipe 306. The added liquid weighs the entire top ball 3045. Since the weight of the second connecting rod 3044 is greater than the weight of the first connecting rod 3043 and the spiral cone 3042, the connecting sleeve 3051 makes the spiral cone 3042, the first connecting rod 3043, the second connecting rod 3044, and the top ball 3045 form a top-heavy unit. Because the top ball 3045 is connected to the center of the support frame 202 through the straight rod 303, the inclined rod 302, and the rotating base 301, the garment is dried in the drying chamber 101. During the process, the top ball 3045, supported by the second connecting rod 3044, the first connecting rod 3043, and the rotating cone 3042, rotates continuously around the axis of the cone surface in the rotating groove 3041 until the liquid in the chamber of the top ball 3045 evaporates completely. The protrusions 3046 on the surface of the rotating ball act on the top holes 2077 on the surface of each vertical arc plate 2076, causing the whole composed of the outer slider 2071 and the inner slider 2074 to slide on the outer fixed ring 203 and the inner fixed ring 204. When the first connecting rod 3043 rotates, it can drive the swing rod 3052 and the paddle 3053 on the surface of the connecting sleeve 3051 to gently stroke the lower part of the garment without damaging the surface material of the garment, thus changing the state of the lower part of the garment.

[0058] The rotation of the first connecting rod 3043 drives the swing rod 3052 and the oscillating paddle 3053 to rotate, which agitates the airflow around the lower part of the garment, accelerates the flow of high-temperature air, and circulates the air that might otherwise stagnate around the garment. At the same time, the oscillating paddle 3053 gently strokes the lower part of the garment, changing its state and opening up the folds or fitted areas, making it easier for high-temperature air to enter these gaps and breaking the obstruction of airflow. On the one hand, the flowing high-temperature air can more evenly contact all areas of the lower part of the garment, avoiding localized insufficient drying caused by poor airflow and improving the problem of uneven drying. On the other hand, the increased airflow speed and the opening of the gaps in the garment improve the contact efficiency between the high-temperature air and the garment, which can accelerate moisture evaporation, shorten drying time, improve overall drying efficiency, and thus optimize the drying effect, making it easier for the garment to reach the ideal drying state.

[0059] The remaining structure is the same as that in Example 2.

[0060] Example 4, refer to Figure 1 - Figure 14 This is the third embodiment of the present invention. This embodiment provides a garment drying method for a garment drying production device, implemented based on the garment drying production device in any of the foregoing embodiments, and includes the following steps: Step 1: The operator hangs the garment to be dried on hook 2097, with the hanger parallel to the reference axis. The contact area between the garment and the hanger is limited by the limiting plate 2078. The weight of the garment pulls the pull rod 2090 vertically downward, causing the connecting plate 2083 to move downward. This moves the locking pin 2082 along the outer slider 2071 and away from the locking groove 2099, unlocking the outer slider 2071 and the inner slider 2074, allowing them to slide on the outer retaining ring 203 and the inner retaining ring 204, preparing for adjusting the spacing between the garments. Step two: The operator adds slow-evaporating liquid to the top ball 3045 along the injection tube 306, so that the total weight of the top ball 3045 and the second connecting rod 3044 exceeds that of the first connecting rod 3043 and the rotating cone 3042, forming a top-heavy whole. Under the action of gravity, the rotating cone 3042 drives the top ball 3045 to rotate in the rotating groove 3041. The protrusions 3046 on the surface of the top ball 3045 act on the top hole 2077 of the vertical arc plate 2076. With the elastic support of the support strip 2072 and the elastic sheet 2073, the outer slider 2071 and the inner slider 2074 slide back and forth as a whole, forming an outward expansion dynamic structure to increase the spacing between garments. Step 3: As the pull rod 2090 descends due to the weight of the garment, the downward pressure column 2091 on the surface of the connecting plate 2083 moves downward, thereby squeezing the air bladder 2094 inside the connecting cylinder 2092 and the expansion cylinder 2093. The pressure generated by the compression of the air bladder 2094 causes the expansion cylinder 2093 to expand. The expanded expansion cylinder 2093 pushes the cross plate 2095 located on its side, causing the cross plate 2095 to deflect at an angle around the connection point. The cross plate 2095 is fixedly connected to the pull rod 2090. Its deflection causes the hook 2097 to deflect at a corresponding angle. The change in the angle of the hook 2097 further causes the garment hanging on it to adjust its angle, allowing more areas of the garment surface to come into contact with the high-temperature air. Step four: As the drying process proceeds, the moisture in the garment evaporates continuously, its weight gradually decreases, and the pulling force on the pull rod 2090 weakens accordingly. Under the elastic reset action of the fixed cylinder 2084, the compression rod 2085, and the first spring 2086, the locking column 2082 drives the pull rod 2090 to move upward. At this time, the compressive force of the lower pressure column 2091 on the airbag 2094 decreases, and the expansion degree of the expansion cylinder 2093 gradually decreases. Under the elastic force of the insert strip 2088, which is slidably connected to the concealed groove 2081 and the cross plate 2095 respectively, and the second spring 2096, the cross plate 2095 deflects in the opposite direction to achieve reset, thereby causing the angle of the hook 2097 to be adjusted accordingly, and the garment also changes angle accordingly. At the same time, when the first connecting rod 3043 rotates with the rotating cone 3042, it drives several swing rods 3052 on the surface to rotate synchronously through the connecting sleeve 3051. The oscillating paddle 3053 at the top of the swing rod 3052 moves around the lower part of the garment, gently touching the lower part of the garment without damaging the surface material, and separating the attached fabric to change its state, so that the high-temperature air can enter the gap in the lower part of the garment more smoothly.

[0061] It should be noted that the above embodiments are only used to illustrate the technical solutions of the present invention and are not intended to limit it. Although the present invention has been described in detail with reference to preferred embodiments, those skilled in the art should understand that modifications or equivalent substitutions can be made to the technical solutions of the present invention without departing from the spirit and scope of the technical solutions of the present invention, and all such modifications or substitutions should be covered within the scope of the claims of the present invention.

Claims

1. A garment drying production device, comprising a housing (101), wherein a top cover (102) is fixed to the surface of the housing (101); characterized in that: Also includes: The extension structure (200) includes a mounting base plate (201) fixed to the surface of the top cover (102), a support frame (202) fixed to the surface of the mounting base plate (201), an outer retaining ring (203) fixed to the surface of the support frame (202), an inner retaining ring (204) fixed to the surface of the support frame (202) and located on the side of the outer retaining ring (203), an outer sliding groove (205) opened on the surface of the outer retaining ring (203), an inner sliding groove (206) opened on the surface of the inner retaining ring (204), an extension component (207) sliding on the surfaces of the outer sliding groove (205) and the inner sliding groove (206), and an adjustment component (208) fixed to the extension component (207). The circumferential structure (300) includes a rotating base (301) rotating on the side of the extension component (207), an inclined rod (302) fixed to the surface of the rotating base (301), a straight rod (303) fixed to the surface of the inclined rod (302), a circumferential component (304) fixed to the surface of the straight rod (303), and a gap-expanding component (305) fixed to the surface of the circumferential component (304).

2. The garment drying production device according to claim 1, characterized in that: The box body (101) is fixedly connected to the bottom cover (103), the outer slide groove (205) is provided with a first positioning groove (209), the inner slide groove (206) is provided with a second positioning groove (210), the bottom wall of the first positioning groove (209) and the bottom wall of the second positioning groove (210) are located on the same plane, and the top cover (102) is rotatably connected to the surface of the liquid injection pipe (306), the liquid injection pipe (306) passes through the support frame (202).

3. The garment drying production device according to claim 2, characterized in that: The extension component (207) includes an outer slider (2071) slidably connected to the surface of the outer slide groove (205), a support bar (2072) fixedly connected to the surface of the outer slider (2071), and an elastic piece (2073) fixedly connected between the support bar (2072) and the outer slider (2071). The support bar (2072) is slidably connected to the surface of the first positioning groove (209).

4. The garment drying production apparatus according to claim 3, characterized in that: An inner slider (2074) is fixedly connected to the surface of the outer slider (2071). A positioning strip (2075) is fixedly connected to the surface of the inner slider (2074). The positioning strip (2075) is slidably connected to the surface of the second positioning groove (210). A vertical arc plate (2076) is fixedly connected to the top of the inner slider (2074). A top hole (2077) is opened on the surface of the vertical arc plate (2076). A limiting plate (2078) that is symmetrical to each other is fixedly connected to the surface of the outer ring (203) and located on the side of the outer slider (2071).

5. A garment drying production apparatus according to claim 4, characterized in that: The adjustment assembly (208) includes a groove (2081) formed on the surface of the outer slider (2071), a locking post (2082) slidably connected to the surface of the groove (2081), a connecting plate (2083) fixedly connected to the top of the locking post (2082), a pressing rod (2085) fixedly connected to the connecting plate (2083), a fixing cylinder (2084) slidably connected to the surface of the pressing rod (2085), a first spring (2086) fixedly connected between the pressing rod (2085) and the fixing cylinder (2084), a positioning ring (2089) fixedly connected to the surface of the connecting plate (2083), a pull rod (2090) fixedly connected to the surface of the positioning ring (2089), and a hook (2097) fixedly connected to the surface of the pull rod (2090).

6. A garment drying production apparatus according to claim 5, characterized in that: The outer slide groove (205) has a locking groove (2099) on its surface. The connecting plate (2083) is fixedly connected to a pressing column (2091). The pressing column (2091) is slidably connected to a connecting cylinder (2092). One end of the connecting cylinder (2092) is fixedly connected to an expansion cylinder (2093). An airbag (2094) is movably connected inside the expansion cylinder (2093). The pull rod (2090) is fixedly connected to a cross plate (2095) located on the side of the expansion cylinder (2093). The cross plate (2095) is slidably connected to a connecting strip (2088). The connecting strip (2088) is fixedly connected to a second spring (2096). The dark groove (2081) is fixedly connected to a cover plate (2098).

7. A garment drying production apparatus according to claim 6, characterized in that: The rotating assembly (304) includes a swivel groove (3041) formed on the surface of the bottom cover (103), a swivel cone (3042) rotatably connected to the surface of the swivel groove (3041), a first connecting rod (3043) fixedly connected to the surface of the swivel cone (3042), a second connecting rod (3044) movably connected to the surface of the first connecting rod (3043), a top ball (3045) fixedly connected to the surface of the second connecting rod (3044), and protrusions (3046) fixedly connected to the surface of the top ball (3045) and distributed in a circular pattern. The top ball (3045) is fixedly connected to the straight rod (303), and an injection tube (306) is fixedly connected to the surface of the top ball (3045).

8. A garment drying production apparatus according to claim 7, characterized in that: The expansion assembly (305) includes a connecting sleeve (3051) fixedly connected to the top of the first connecting rod (3043), a plurality of pendulum rods (3052) fixedly connected to the surface of the connecting sleeve (3051), a pendulum (3053) fixedly connected to the top of the pendulum rods (3052), and a drag-reducing hole (3054) opened on the surface of the pendulum (3053).

9. A garment drying production apparatus according to claim 8, characterized in that: A gas generator (105) is fixedly connected to the side of the housing (101), a chimney (106) is fixedly connected to the surface of the gas generator (105), and an exhaust port (104) is fixedly connected to the surface of the top cover (102).

10. A garment drying method based on the garment drying production apparatus of claim 9, characterized in that: Includes the following steps: Step 1: The garment is hung on the hook (2097). The weight of the garment pulls the pull rod (2090) vertically downward, causing the connecting plate (2083) to move downward. This causes the locking pin (2082) to move along the outer slider (2071) and away from the locking groove (2099), thus unlocking the movement of the outer slider (2071) and the inner slider (2074) on the outer retaining ring (203) and the inner retaining ring (204). Step 2: Slow-evaporating liquid is added into the top ball (3045) along the injection tube (306). The weight of the top ball (3045) and the second connecting rod (3044) is greater than the weight of the first connecting rod (3043) and the spiral cone (3042). The spiral cone (3042) drives the top ball (3045) to rotate in the spiral groove (3041). The protrusion (3046) on the surface of the top ball (3045) acts in the top hole (2077) of the vertical arc plate (2076), driving the outer slider (2071) and the inner slider (2074) to slide back and forth under the elastic support of the support bar (2072) and the elastic sheet (2073), forming an outwardly expanding dynamic structure. Step 3: When the pull rod (2090) descends, the pressing column (2091) squeezes the airbag (2094) inside the connecting cylinder (2092) and the expansion cylinder (2093), causing the expansion cylinder (2093) to expand and drive the cross plate (2095) to deflect, thereby adjusting the angle of the hook (2097) and driving the garment to adjust the corresponding angle. Step four: After the garment's drying weight decreases, the pull rod (2090) rises, the expansion cylinder (2093) expands less, and the cross plate (2095) resets under the action of the insert strip (2088) and the second spring (2096), causing the hook (2097) to adjust its angle accordingly, thus adjusting the garment's angle accordingly. At the same time, when the first connecting rod (3043) rotates, it drives the swing rod (3052) and the paddle (3053) to gently stroke the lower part of the garment through the connecting sleeve (3051), changing the state of the lower part of the garment.