A high efficiency curtain ironing apparatus
Patent Information
- Application Number
- CN202522454773.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-11-19
- Publication Date
- 2026-09-22
- Estimated Expiration
- 2035-11-19
AI Technical Summary
[0002]窗帘作为家居及商用空间的常用装饰用品,其平整性直接影响美观度,因此熨烫是窗帘销售及安装前的关键工序,作为窗帘销售从业者,在日常熨烫作业中发现,现有常规窗帘熨烫设备存在显著不足,主要体现在熨烫效率低下,难以满足批量窗帘处理的需求
该高效窗帘熨烫设备,通过金属球型出气部件与周围均匀开孔设计,在蒸汽覆盖、喷射均匀性、热传导及操作便捷性等方面实现显著提升,蒸汽覆盖范围显著扩大,若干测试显示同样窗帘尺寸情况下,所需时间明显缩短,熨烫效率显著提升,蒸汽喷射均匀性显著提高,首次合格率与返工率大幅改善,窗帘各区域受热更均匀,质量稳定性明显增强;热传导效率提升,能耗显著降低,出气部件快速达温并保持稳定,蒸汽温度下降幅度更小,单位面积能耗显著降低,相较于普通熨斗要分成两三步完成熨烫过程,球形熨斗跟布料接触到窗帘布料皱褶被烫平和定型一步到位,另外,球形结构更易于操作与移动,边角与褶皱处理更高效,疲劳度降低且耐腐蚀性提升,部件使用寿命显著增加,降低了维护成本。
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Figure CN224784574U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of ironing equipment technology, specifically to a high-efficiency curtain ironing device. Background Technology
[0002] Curtains are a common decorative item in home and commercial spaces, and their flatness directly affects their aesthetics. Therefore, ironing is a key process before curtain sales and installation. As a curtain salesperson, I have found in my daily ironing work that the existing conventional curtain ironing equipment has significant shortcomings, mainly in terms of low ironing efficiency, which makes it difficult to meet the needs of bulk curtain processing.
[0003] Existing ironing equipment typically uses flat or narrow-slit steam outlets. Flat outlets concentrate steam in the central area, with significant steam reduction at the edges. Narrow-slit outlets only create a single linear steam band. Due to design flaws in the steam flow path, the steam pressure distribution is uneven. Some areas have excessively high steam pressure, which can damage the curtain fabric, while others have insufficient pressure, making it difficult to effectively soften the fabric fibers and affecting the smoothness. Existing equipment often uses plastic materials for its steam outlets, which have low thermal conductivity and rapid heat loss due to their design. The temperature drops significantly after steam is ejected, requiring continuous output of high-temperature, high-pressure steam to maintain the effect, resulting in significant energy waste. Furthermore, existing equipment is inefficient and has high labor costs. When handling larger curtains, it often requires multiple moves and rework, leading to low overall work efficiency. Therefore, we propose a high-efficiency curtain ironing device. Utility Model Content
[0004] In view of the shortcomings of the existing technology, this utility model provides a high-efficiency curtain ironing device, which solves the above-mentioned problems.
[0005] To achieve the above-mentioned objectives, this utility model provides the following technical solution: a high-efficiency curtain ironing device, comprising a steam generating module and a hose, wherein the steam outlet of the steam generating module is connected to the hose, and further comprising: A duct structure is provided at one end of the hose, and a metal ball-shaped air outlet component is connected to the other end of the duct structure. An air outlet is formed on the spherical surface of the metal spherical air outlet component, and the air outlet extends into the interior of the metal spherical air outlet component.
[0006] Preferably, the gas guide pipe structure includes a stainless steel pipe and a heat-insulating silicone sleeve. One end of the stainless steel pipe is fixedly connected to the end of the hose away from the steam generating module, and the heat-insulating silicone sleeve is sleeved on the outside of the stainless steel pipe.
[0007] Preferably, the bottom of the metal spherical air outlet component is provided with an air inlet pipe connector structure. The air inlet pipe connector structure includes a threaded connector assembly and an air guide pipe clamping assembly. The threaded connector assembly is located at the bottom of the metal spherical air outlet component, and the air guide pipe clamping assembly is on the side of the threaded connector assembly opposite to the metal spherical air outlet component and on the stainless steel pipe.
[0008] Preferably, the plurality of air outlets are evenly distributed around the top of the metal spherical air outlet component.
[0009] Preferably, the threaded connector assembly includes an air inlet pipe, an internally threaded pipe, a connecting pipe, and a sealing gasket. The bottom of the metal spherical air outlet component is connected to the air inlet pipe, the inner wall of the air inlet pipe has an internal thread, the internally threaded pipe is inserted into the air inlet pipe and threadedly connected to the internally threaded pipe, the end of the internally threaded pipe opposite to the air inlet pipe is fixedly connected to the connecting pipe, and a sealing gasket is fitted on the internally threaded pipe, the sealing gasket being tightly fitted to the connecting pipe.
[0010] Preferably, one end of the heat-insulating silicone sleeve is inserted into the end of the connecting pipe that is away from the internal threaded pipe, and a second sealing gasket is bonded to the end of the heat-insulating silicone sleeve inserted into the connecting pipe, with the second sealing gasket located between the heat-insulating silicone sleeve and the connecting pipe.
[0011] Preferably, four evenly distributed arc-shaped protrusions are connected to the outer cylindrical surface of the connector, and the inner arc surface of the arc-shaped protrusions is fixedly connected to the connector. The arc-shaped protrusions are located at the end of the connector away from the internal threaded pipe.
[0012] Preferably, the air guide tube clamping assembly includes a rotating ring and arc-shaped bending plates. The rotating ring is sleeved on the heat-insulating silicone sleeve. Four evenly distributed arc-shaped bending plates are fixedly connected to the side of the rotating ring opposite to the connecting pipe. One end of the arc-shaped bending plates is fixedly connected to the rotating ring, and the other ends of the four arc-shaped bending plates all face the heat-insulating silicone sleeve. The arc-shaped bending plates are close to the connecting pipe, and the arc-shaped bending plates are clamped and connected to the arc-shaped protrusions.
[0013] Preferably, the outer cylindrical surface of the heat-insulating silicone sleeve is fixedly connected to an annular locking block, and the inner annular surface of the rotating ring is provided with an annular groove, which is rotatably engaged with the annular locking block.
[0014] Preferably, the connecting pipe is provided with a locking assembly, which includes a metal ring and rubber protrusions. The metal ring is sleeved on the outside of the connecting pipe, and four circumferentially evenly distributed rubber protrusions are fixedly connected to the side of the metal ring opposite to the arc-shaped bending plate. The rubber protrusions are locked between two adjacent arc-shaped bending plates.
[0015] Compared with the prior art, this utility model provides a high-efficiency curtain ironing device with the following advantages: This high-efficiency curtain ironing equipment, through its metal spherical air outlet component and surrounding evenly spaced openings, achieves significant improvements in steam coverage, spray uniformity, heat conduction, and ease of operation. The steam coverage area is significantly expanded, and several tests show that for the same curtain size, the required time is significantly reduced, ironing efficiency is significantly improved, steam spray uniformity is significantly enhanced, and the first-pass yield and rework rate are greatly reduced. Heating is more even across all areas of the curtain, resulting in significantly enhanced quality stability. Improved heat conduction efficiency leads to significantly reduced energy consumption. The air outlet component quickly reaches and maintains stable temperature, with a smaller drop in steam temperature, resulting in significantly reduced energy consumption per unit area. Compared to ordinary irons that require two or three steps to complete the ironing process, the spherical iron smooths and shapes the curtain fabric in one step. Furthermore, the spherical structure makes it easier to operate and move, resulting in more efficient handling of edges and creases, reduced fatigue, and improved corrosion resistance. This significantly increases component lifespan and reduces maintenance costs. Attached Figure Description
[0016] Figure 1 This is a schematic diagram of the structure of this utility model; Figure 2 This is an exploded view of the structure of this utility model; Figure 3 This is a cross-sectional schematic diagram of the air guide tube clamping assembly of this utility model; Figure 4 for Figure 3 A magnified view of part A in the diagram; Figure 5 This is a cross-sectional schematic diagram of the locking and clamping assembly of this utility model; Figure 6 for Figure 5 A magnified view of part B in the diagram.
[0017] In the diagram: 1. Metal spherical air outlet component; 2. Air outlet; 3. Air inlet pipe; 4. Thermal insulation silicone sleeve; 5. Sealing gasket one; 6. Connecting pipe; 7. Metal ring; 8. Rubber protrusion; 9. Arc-shaped bending plate; 10. Rotating ring; 11. Internally threaded pipe; 12. Arc-shaped protrusion; 13. Annular groove; 14. Sealing gasket two; 15. Ring-shaped retaining block; 16. Stainless steel pipe. Detailed Implementation
[0018] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.
[0019] Please see Figure 1-6A high-efficiency curtain ironing device includes a steam generating module and a hose, wherein the steam generating module has a hose connected to its outlet end, and further includes: A duct structure is provided at one end of the hose, and a metal ball-shaped air outlet component 1 is connected to the other end of the duct structure. An air outlet 2 is provided on the spherical surface of the metal spherical air outlet component 1, and the air outlet 2 extends into the interior of the metal spherical air outlet component 1.
[0020] Furthermore, the air duct structure includes a stainless steel tube 16 and a heat-insulating silicone sleeve 4. One end of the stainless steel tube 16 is fixedly connected to the end of the hose away from the steam generating module. The heat-insulating silicone sleeve 4 is sleeved on the outside of the stainless steel tube 16. The stainless steel tube 16 is used to guide the hot steam required for ironing, and the heat-insulating silicone sleeve 4 is used for heat insulation to prevent the heat from the stainless steel tube 16 from burning the operator.
[0021] Furthermore, the bottom of the metal ball-shaped air outlet component 1 is provided with an air inlet pipe connector structure. The air inlet pipe connector structure includes a threaded connector assembly and an air guide pipe clamping assembly. The threaded connector assembly is located at the bottom of the metal ball-shaped air outlet component 1, and the air guide pipe clamping assembly is on the side of the threaded connector assembly away from the metal ball-shaped air outlet component 1 and on the stainless steel pipe 16. The air inlet pipe connector structure is used to connect the metal ball-shaped air outlet component 1 and the stainless steel pipe 16.
[0022] Furthermore, multiple air outlets 2 are evenly distributed around the top of the metal ball-shaped air outlet component 1. The distribution of the air outlets 2 facilitates the even distribution of hot steam from the metal ball-shaped air outlet component 1 onto the fabric to be ironed.
[0023] Furthermore, the threaded connector assembly includes an air inlet pipe 3, an internally threaded pipe 11, a connecting pipe 6, and a sealing gasket 5. The bottom of the metal spherical air outlet component 1 is connected to the air inlet pipe 3. The inner wall of the air inlet pipe 3 has an internal thread. The internally threaded pipe 11 is inserted into the air inlet pipe 3 and is threadedly connected to the internally threaded pipe 11. The end of the internally threaded pipe 11 facing away from the air inlet pipe 3 is fixedly connected to the connecting pipe 6. The sealing gasket 5 is fitted on the internally threaded pipe 11 and fits tightly with the connecting pipe 6. The air inlet pipe 3 is used to lead the hot steam in the stainless steel pipe 16 into the metal spherical air outlet component 1. The internally threaded pipe 11 is used to connect the air inlet pipe 3 and the threaded connector assembly. The connecting pipe 6 is used to connect the internally threaded pipe 11 and the stainless steel pipe 16. The sealing gasket 5 is used to seal the connection between the air inlet pipe 3 and the internally threaded pipe 11.
[0024] Furthermore, one end of the heat-insulating silicone sleeve 4 is inserted into the end of the connecting pipe 6 that is away from the internally threaded pipe 11. A sealing gasket 2 14 is bonded to the end of the heat-insulating silicone sleeve 4 inserted into the connecting pipe 6. The sealing gasket 2 14 is between the heat-insulating silicone sleeve 4 and the connecting pipe 6 and is used to seal the connection between the stainless steel pipe 16 and the connecting pipe 6.
[0025] Furthermore, four evenly distributed arc-shaped protrusions 12 are connected to the outer cylindrical surface of the connector 6. The inner arc surface of the arc-shaped protrusions 12 is fixedly connected to the connector 6. The arc-shaped protrusions 12 are located at the end of the connector 6 away from the internal threaded tube 11. The arc-shaped protrusions 12 are used to connect the connector 6 and the air guide tube clamping assembly.
[0026] Furthermore, the air duct clamping assembly includes a rotating ring 10 and an arc-shaped bending plate 9. The rotating ring 10 is sleeved on the heat-insulating silicone sleeve 4. Four evenly distributed arc-shaped bending plates 9 are fixedly connected to the side of the rotating ring 10 opposite to the connecting pipe 6. One end of the arc-shaped bending plate 9 is fixedly connected to the rotating ring 10, and the other ends of the four arc-shaped bending plates 9 all face the heat-insulating silicone sleeve 4. The arc-shaped bending plates 9 are close to the connecting pipe 6, and the arc-shaped bending plates 9 are engaged with the arc-shaped protrusion 12. The rotating ring 10 is used to connect the arc-shaped bending plates 9. The rotating ring 10 is rotatably connected to the heat-insulating silicone sleeve 4. The rotation of the rotating ring 10 causes the arc-shaped bending plates 9 to engage with the arc-shaped protrusion 12, thereby connecting the connecting pipe 6 and the heat-insulating silicone sleeve 4. The elasticity of the sealing gasket 2 14 makes the arc-shaped bending plates 9 and the arc-shaped protrusion 12 stably engaged, which facilitates the disassembly of the connecting pipe 6 and the heat-insulating silicone sleeve 4.
[0027] Furthermore, an annular locking block 15 is fixedly connected to the outer cylindrical surface of the heat-insulating silicone sleeve 4, and an annular groove 13 is opened on the inner annular surface of the rotating ring 10. The annular groove 13 is rotatably engaged with the annular locking block 15. The annular locking block 15 and the annular groove 13 are used to connect the rotating ring 10 and the heat-insulating silicone sleeve 4, and the rotating ring 10 rotates stably on the heat-insulating silicone sleeve 4.
[0028] Furthermore, the locking assembly includes a metal ring 7 and rubber protrusions 8. The metal ring 7 is sleeved on the outside of the tube 6. Four evenly distributed rubber protrusions 8 are fixedly connected to the side of the metal ring 7 opposite to the arc-shaped bending plate 9. The rubber protrusions 8 are engaged between two adjacent arc-shaped bending plates 9. The metal ring 7 is used to connect the rubber protrusions 8. The metal ring 7 slides on the tube 6. The sliding metal ring 7 pushes the rubber protrusions 8 between adjacent arc-shaped bending plates 9 to prevent the arc-shaped bending plates 9 and the arc-shaped protrusions 12 from shifting.
[0029] Structural Description: Metal spherical venting component 1: Spherical, with a polished surface, serving as the core component for steam venting. It contains steam, and the spherical surface has uniform openings to achieve 360° steam injection, reducing heat loss and providing resistance to steam corrosion. Air outlet 2: A circular through hole, evenly distributed around the top of the metal spherical air outlet component 1, used to spray steam and ensure uniform steam coverage; Inlet pipe 3: tubular structure with internal threads on the inner wall, one end of which is fixedly connected to the bottom of the metal ball-shaped air outlet component 1, used to introduce hot steam from the stainless steel pipe 16 into the metal ball-shaped air outlet component 1. Insulating silicone sleeve 4: tubular, sleeved on the outside of stainless steel tube 16, used for heat insulation to prevent the heat of stainless steel tube 16 from burning the operator. Sealing gasket 5: An annular sheet made of silicone rubber, fitted onto the internal threaded tube 11, located between the end of the air inlet pipe 3 away from the metal ball-shaped air outlet component 1 and the end of the connecting pipe 6 connected to the internal threaded tube 11, used to seal the connection between the air inlet pipe 3 and the internal threaded tube 11. Connector 6: Tubular structure, with four evenly distributed arc-shaped protrusions 12 on the outer cylindrical surface. One end is fixedly connected to the internal threaded tube 11, and the other end is for the heat-insulating silicone sleeve 4 to be inserted, used to connect the internal threaded tube 11 and the stainless steel tube 16. Metal ring 7: A ring structure, fitted onto the outside of the tube 6, with four evenly distributed rubber protrusions 8 fixedly connected to the side opposite to the arc-shaped bending plate 9. It can slide on the tube 6 and is used to connect and push the rubber protrusions 8. Rubber bump 8: Block structure, four pieces in total and evenly distributed around the circumference, fixed inside the metal ring 7, can be snapped between two adjacent arc-shaped bending plates 9 to prevent the arc-shaped bending plates 9 and arc-shaped bump 12 from shifting; Arc-shaped bending plate 9: Arc-shaped plate, four pieces in total and evenly distributed around the circumference, one end is fixedly connected to the rotating ring 10, and the other end faces the heat-insulating silicone sleeve 4, close to the connecting pipe 6 and snapped with the arc-shaped protrusion 12, used to cooperate with the arc-shaped protrusion 12 to realize the connection between the connecting pipe 6 and the heat-insulating silicone sleeve 4. Rotating ring 10: A ring structure, sleeved on the heat-insulating silicone sleeve 4, with an annular groove 13 on the inner ring surface, rotatably connected to the heat-insulating silicone sleeve 4, used to connect the arc-shaped bending plate 9, and when rotated, it can drive the arc-shaped bending plate 9 to engage or separate from the arc-shaped protrusion 12. Internal threaded tube 11: Tubular structure, the outer surface is adapted to the internal thread of the air intake pipe 3, one end is fixedly connected to the connecting pipe 6, and the other end is inserted into the air intake pipe 3 and threadedly connected to the air intake pipe 3, used to connect the air intake pipe 3 and the connecting pipe 6. Arc-shaped protrusion 12: Arc-shaped block, four in total and evenly distributed around the circumference, the inner arc surface is fixedly connected to the connector 6, located at the end of the connector 6 away from the internal threaded tube 11, used to cooperate with the arc-shaped bending plate 9 to realize the connection between the connector 6 and the air guide tube clamping assembly; Annular groove 13: An annular groove is formed on the inner ring surface of the rotating ring 10 and is rotatably engaged with the annular locking block 15 to ensure that the rotating ring 10 rotates stably on the heat-insulating silicone sleeve 4. Sealing gasket 2 14: Annular sheet, made of silicone rubber, is bonded to one end of the heat-insulating silicone sleeve 4 inserted into the connecting pipe 6, located between the heat-insulating silicone sleeve 4 and the connecting pipe 6, used to seal the connection between the stainless steel pipe 16 and the connecting pipe 6, and the elasticity can make the arc-shaped bending plate 9 and the arc-shaped protrusion 12 snap together stably. Annular locking block 15: Annular block shape, fixed to the outer cylindrical surface of the heat-insulating silicone sleeve 4, and rotatably engaged with the annular groove 13 of the rotating ring 10, used to connect the rotating ring 10 and the heat-insulating silicone sleeve 4, and to limit the axial displacement of the rotating ring 10. Stainless steel tube 16: tubular, with an outer heat-insulating silicone sleeve 4, one end of which corresponds to the bottom of the metal ball-shaped air outlet component 1, used to guide the hot steam required for ironing, and has the property of resisting steam corrosion.
[0030] Working principle: From the perspective of steam transmission path, after the equipment starts, the high-temperature steam generated by the steam generator first enters the stainless steel pipe 16 of the air guide pipe structure. The stainless steel pipe 16 has the property of resisting steam corrosion and can stably guide the steam to the metal ball-shaped air outlet component 1. The heat-insulating silicone sleeve 4 sleeved on its outside can block heat conduction, prevent burns to operators when in contact, and ensure operational safety. The steam is transmitted along the stainless steel pipe 16 to the connecting pipe 6. The connecting pipe 6 forms a sealed connection with the air inlet pipe 3 through the internally threaded pipe 11. The outer surface of the internally threaded pipe 11 is adapted to the internal thread of the inner wall of the air inlet pipe 3. The two are threadedly connected and sleeved on the internally threaded pipe 11. The sealing gasket 5 on the upper part is tightly fitted to the end face of the air inlet pipe 3 and the connecting pipe 6 to prevent steam leakage. Finally, the steam smoothly enters the interior of the metal spherical air outlet component 1 through the air inlet pipe 3. In the steam injection process, the metal spherical air outlet component 1, as the core air outlet component, is made of a high thermal conductivity material. It can hold a sufficient amount of steam and quickly conduct heat, reducing steam temperature loss. The air outlets 2, which are evenly distributed on the spherical surface of the metal spherical air outlet component 1, are distributed along the meridian and parallel directions of the spherical surface, which can achieve 360° spraying without dead angles. Before ironing, the operator lays the curtain flat and fixes it on the ironing board. When holding the device, the spherical structure of the metal spherical air outlet component 1 facilitates flexible movement. The movable design adapts to complex areas such as curtain edges and folds. The metal ball-shaped air outlet component 1 contacts the fabric, smoothing and shaping the curtain fabric folds in one step. The cooperation between the rotating ring 10, the annular locking block 15, and the annular groove 13 provides support for operation. The rotating ring 10 is sleeved on the heat-insulating silicone sleeve 4, and its inner annular groove 13 is rotatably engaged with the annular locking block 15 on the outer cylindrical surface of the heat-insulating silicone sleeve 4, which restricts the axial displacement of the rotating ring 10 while allowing it to rotate stably. When it is necessary to assemble or disassemble the connection structure between the air duct and the metal ball-shaped air outlet component, rotating the rotating ring 10 can drive the arc-shaped bending plate 9 and the arc-shaped protrusion 1 on the outside of the connecting pipe 6. 2. The sealing gasket 14 between the heat-insulating silicone sleeve 4 and the connecting pipe 6 uses elasticity to enhance the stability of the snap-fit and ensure that steam does not leak. The sliding metal ring 7 can embed the rubber protrusion 8 on its inner side between the adjacent arc-shaped bending plate 9 to prevent the arc-shaped bending plate 9 and the arc-shaped protrusion 12 from shifting, ensuring the stability of the connection structure during equipment operation. In actual ironing, the operator moves the equipment along the length of the curtain at a speed of 0.5m / minute. The weight of the metal ball-shaped air outlet component 1 and the slightly applied pressure (about 5N) allow the steam to fully act on the fabric, quickly softening the fibers to achieve a smooth effect, greatly improving ironing efficiency and quality.
[0031] Although embodiments of the present invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the present invention, the scope of which is defined by the appended claims and their equivalents.
Claims
1. A high-efficiency curtain ironing device, comprising a steam generating module and a hose, wherein the outlet end of the steam generating module is connected to the hose, characterized in that, Also includes: A gas duct structure is provided at one end of the hose, and a metal ball-shaped gas outlet component (1) is connected to the other end of the gas duct structure. An air outlet (2) is provided on the spherical surface of the metal spherical air outlet component (1), and the air outlet (2) extends into the interior of the metal spherical air outlet component (1).
2. The high-efficiency curtain ironing equipment according to claim 1, characterized in that, The gas duct structure includes a stainless steel pipe (16) and a heat-insulating silicone sleeve (4). One end of the stainless steel pipe (16) is fixedly connected to the end of the hose away from the steam generating module. The heat-insulating silicone sleeve (4) is sleeved on the outside of the stainless steel pipe (16).
3. The high-efficiency curtain ironing equipment according to claim 2, characterized in that, The bottom of the metal ball-shaped air outlet component (1) is provided with an air inlet pipe connector structure. The air inlet pipe connector structure includes a threaded connector assembly and an air guide pipe clamping assembly. The threaded connector assembly is located at the bottom of the metal ball-shaped air outlet component (1), and the air guide pipe clamping assembly is on the side of the threaded connector assembly away from the metal ball-shaped air outlet component (1) and on the stainless steel pipe (16).
4. The high-efficiency curtain ironing equipment according to claim 1, characterized in that, Multiple air outlets (2) are evenly distributed around the top of the metal spherical air outlet component (1).
5. The high-efficiency curtain ironing equipment according to claim 3, characterized in that, The threaded connector assembly includes an air inlet pipe (3), an internal threaded pipe (11), a connecting pipe (6), and a sealing gasket (5). The bottom of the metal ball-shaped air outlet component (1) is connected to the air inlet pipe (3). The inner wall of the air inlet pipe (3) is provided with an internal thread. The internal threaded pipe (11) is inserted into the air inlet pipe (3) and is threadedly connected to the internal threaded pipe (11). The end of the internal threaded pipe (11) facing away from the air inlet pipe (3) is fixedly connected to the connecting pipe (6). The sealing gasket (5) is fitted on the internal threaded pipe (11) and is tightly fitted to the connecting pipe (6).
6. The high-efficiency curtain ironing equipment according to claim 5, characterized in that, One end of the heat-insulating silicone sleeve (4) is inserted into the end of the connecting pipe (6) away from the internal threaded pipe (11). The end of the heat-insulating silicone sleeve (4) inserted into the connecting pipe (6) is bonded with a sealing gasket two (14). The sealing gasket two (14) is between the heat-insulating silicone sleeve (4) and the connecting pipe (6).
7. The high-efficiency curtain ironing equipment according to claim 5, characterized in that, Four evenly distributed arc-shaped protrusions (12) are connected to the outer cylindrical surface of the connector (6). The inner arc surface of the arc-shaped protrusions (12) is fixedly connected to the connector (6). The arc-shaped protrusions (12) are located at the end of the connector (6) away from the internal threaded pipe (11).
8. The high-efficiency curtain ironing equipment according to claim 7, characterized in that, The air guide tube clamping assembly includes a rotating ring (10) and an arc-shaped bending plate (9). The rotating ring (10) is sleeved on the heat-insulating silicone sleeve (4). Four evenly distributed arc-shaped bending plates (9) are fixedly connected to the side of the rotating ring (10) opposite to the connecting pipe (6). One end of the arc-shaped bending plate (9) is fixedly connected to the rotating ring (10), and the other ends of the four arc-shaped bending plates (9) are all facing the heat-insulating silicone sleeve (4). The arc-shaped bending plate (9) is close to the connecting pipe (6), and the arc-shaped bending plate (9) is clamped and connected to the arc-shaped protrusion (12).
9. The high-efficiency curtain ironing equipment according to claim 8, characterized in that, The outer cylindrical surface of the heat-insulating silicone sleeve (4) is fixedly connected to an annular locking block (15), and the inner annular surface of the rotating ring (10) is provided with an annular groove (13), which is rotatably engaged with the annular locking block (15).
10. The high-efficiency curtain ironing equipment according to claim 8, characterized in that, The connecting pipe (6) is provided with a locking assembly, which includes a metal ring (7) and rubber protrusions (8). The metal ring (7) is sleeved on the outside of the connecting pipe (6). Four evenly distributed rubber protrusions (8) are fixedly connected to the side of the metal ring (7) opposite to the arc-shaped bending plate (9). The rubber protrusions (8) are locked between two adjacent arc-shaped bending plates (9).