A steam station with a lifting mechanism
Patent Information
- Application Number
- CN202522100142.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-09-29
- Publication Date
- 2026-09-15
- Estimated Expiration
- 2035-09-29
AI Technical Summary
然而,在实际应用中发现存在以下技术缺陷:在放入/取出烫斗主体过程中,不可避免地与收纳仓内壁发生刚性接触,频繁碰撞可能导致:外壳变形,表面涂层磨损,内部元件松动等,既影响产品美观性,也可能缩短使用寿命
[0017] This invention achieves intelligent storage and retrieval of the iron by controlling a lifting mechanism to drive the vertical movement of the support platform. When storage is needed, the user simply places the iron on the support platform, and the lifting mechanism will smoothly lower the platform to the bottom of the storage compartment. When retrieval is needed, the lifting mechanism is controlled to rise, and the iron can be precisely raised to the preset height along with the support platform. This process is entirely automated by the mechanical structure, effectively avoiding the mechanical collision risks that may occur with traditional manual retrieval methods. This not only improves operational convenience but also extends the service life of the equipment.
Smart Images

Figure CN224754788U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of electric iron technology, and in particular to a steam station with a lifting mechanism. Background Technology
[0002] Compared to integrated steam station products, traditional electric irons are significantly larger in size due to their integrated design. To address the issue of ease of transport, existing technologies include a storage compartment within the steam station.
[0003] Taking Chinese utility model patent CN223268966U as an example, this patent discloses an automatic protective steam station electric iron. Its technical solution includes: a base, an iron body, a safety switch, and a switch control mechanism. The base has a dedicated storage compartment for storing the iron body. The iron body, safety switch, and base are electrically connected via wires. When the iron body is placed into the storage compartment, the switch control mechanism is directly triggered, thereby cutting off the power supply circuit through the safety switch. This technical solution has two advantages: first, it completely eliminates the risk of overheating caused by accidental activation of the heating switch while stored; second, it achieves integrated handling of the iron body and the steam station. However, in practical applications, the following technical defects have been found: during the process of placing / removing the iron body, rigid contact with the inner wall of the storage compartment is unavoidable. Frequent collisions may lead to: outer shell deformation, surface coating wear, and loosening of internal components, affecting both the product's aesthetics and potentially shortening its service life.
[0004] The above technical bottlenecks reveal the shortcomings of the current design in terms of operational protection, and there is an urgent need to solve the durability problem caused by frequent collisions through structural optimization. Utility Model Content
[0005] The purpose of this utility model is to provide a steam station with a lifting mechanism. By controlling the lifting mechanism, the iron body can be lowered and stored in the base storage compartment, or the iron body can be raised and sent out, thus avoiding collisions with the storage compartment when manually picking up or putting down the iron body.
[0006] This utility model provides a steam station with a lifting mechanism, including a base and an iron body. The base has a storage compartment for storing the iron body, and the storage compartment is equipped with a lifting mechanism connected to a support platform. The iron body is placed on the support platform, and the lifting mechanism drives the support platform to rise or fall vertically within the storage compartment. By controlling the lifting mechanism to drive the support platform to move vertically, the automatic storage and retrieval of the iron body can be achieved. When storing, the iron body is placed on the support platform, and the lifting mechanism drives the platform to descend smoothly to the bottom of the storage compartment. When retrieving, the lifting mechanism is controlled to rise, and the iron body is precisely raised to a preset height along with the support platform, with no risk of mechanical collision throughout the process.
[0007] According to the above scheme, this utility model also includes a control panel assembly. Specifically, the control panel assembly can be installed on a remote control, base, or other structure as needed. The control panel assembly is electrically connected to the lifting mechanism. The lifting mechanism can be raised or lowered by operating the control panel assembly.
[0008] According to the above scheme, the base is also equipped with a first limit switch and a second limit switch. The first limit switch and the second limit switch are electrically connected to the control panel assembly. When the lifting mechanism drives the carrying platform to rise to a preset position, the lifting mechanism triggers the first limit switch, and the control panel assembly receives the electrical signal and controls the drive motor to stop working. When the lifting mechanism drives the carrying platform to fall to a preset position, the lifting mechanism triggers the second limit switch, and the control panel assembly receives the electrical signal and controls the drive motor to stop working. It should be noted that components of the lifting mechanism that generate linear displacement during movement (such as the first and second sliders on the bidirectional worm gear) can be directly used to trigger the first limit switch and the second limit switch. As a backup triggering scheme, the first limit switch and the second limit switch can also be triggered through corresponding structures on the carrying platform. With the above structural settings, the rising or falling height of the carrying platform can be precisely set.
[0009] According to the above scheme, the lifting mechanism includes a drive motor and a transmission assembly. The transmission assembly includes a bidirectional worm gear, a first slider, a second slider, a first push rod, and a second push rod. The output end of the drive motor is connected to the first end of the bidirectional worm gear, and the drive motor drives the bidirectional worm gear to rotate forward or in reverse. The second end of the bidirectional worm gear is rotatably connected to the base. The first slider and the second slider are threaded into the forward and reverse thread sections of the bidirectional worm gear, respectively. The first push rod and the second push rod are arranged symmetrically in a V-shape. The upper ends of the first push rod and the second push rod are connected to the bearing platform. The first and second push rods are hinged, with their lower ends hinged to the first and second sliders, respectively. The control panel assembly is electrically connected to the drive motor. More specifically, when the drive motor rotates forward, the bidirectional worm gear drives the first and second sliders to move linearly in a direction away from each other. At this time, the lower ends of the first and second push rods move with the sliders, and the push rods gradually transition from an inclined state to an upright state, driving the support platform to rise. When the drive motor rotates in the reverse direction, the bidirectional worm gear reverses, and the two sliders move in a direction closer to each other. The push rods return from an upright state to an inclined state, completing the descent of the support platform. With the above structural design, only the forward and reverse rotation of the drive motor needs to be controlled to drive the support platform to achieve lifting and lowering movements, thereby completing the automatic storage and retrieval function of the iron body.
[0010] According to the above scheme, the control panel component is equipped with an up button, a down button, and a power button. Pressing the power button activates the device's power supply system. When the up button is pressed, the drive motor starts in forward rotation mode, driving the bidirectional worm gear to rotate synchronously in the forward direction, thereby driving the bearing platform to achieve upward displacement. When the down button is pressed, the drive motor switches to reverse state, and the bidirectional worm gear rotates in the reverse direction, ultimately causing the bearing platform to complete the downward movement.
[0011] According to the above scheme, the first limit switch is disposed near the first or second end of the bidirectional worm gear, and the second limit switch is disposed near the middle of the bidirectional worm gear. When the first slider and the second slider move outward along the bidirectional worm gear to a predetermined position, the outer side of the lower end of the first push rod or the second push rod contacts the sensing end of the first limit switch. When the first slider and the second slider move inward along the bidirectional worm gear to the middle position, the inner side of the lower end of the first push rod or the second push rod contacts the sensing end of the second limit switch. With the above structural configuration, when the bidirectional worm gear rotates in the forward or reverse direction, the lower ends of the first push rod and the second push rod will move linearly with the slider. By setting the lower end of the first push rod or the second push rod to trigger the first limit switch and the second limit switch, precise position control of the lifting stroke of the support platform can be achieved.
[0012] According to the above scheme, the transmission assembly further includes a first bearing housing, a second bearing housing, a first bearing, and a second bearing. Both the first and second bearing housings are fixed to the bottom of the storage compartment by fasteners. The inner ring of the first bearing is fixed to the middle of the bidirectional worm gear, and the outer ring of the first bearing is fixed to the first bearing housing. The inner ring of the second bearing is fixed to the second end of the bidirectional worm gear, and the outer ring of the second bearing is fixed to the second bearing housing. This structural design effectively improves the operational stability of the drive motor during transmission, while ensuring smoother and more reliable rotation of the bidirectional screw. Preferably, the output end of the drive motor is fitted with an anti-vibration pad.
[0013] According to the above scheme, a first slide and a second slide are respectively fixedly sleeved on the outer periphery of the first slider and the second slider. The lower end of the bearing platform is hinged to the upper ends of the first push rod and the second push rod via a pin. The lower ends of the first push rod and the second push rod are respectively hinged to the first slide and the second slide. More specifically, the first slide includes a first upper slide and a first lower slide, and the second slide includes a second upper slide and a second lower slide. The upper slide and the lower slide are fixed to the outer side of the slider. With this arrangement, the hinge between the lower end of the push rod and the slider can be realized, allowing the push rod to smoothly switch between tilted and upright states.
[0014] According to the above scheme, the two ends of the supporting platform are respectively provided with mutually cooperating limiting frames and locking structures. The iron body is placed on the supporting platform, the first end of the bottom of the iron body forms a limiting engagement with the limiting frame, and the second end of the bottom of the iron body forms a locking connection with the locking structure. In specific use, the first end of the bottom of the iron body is first placed in the limiting frame, and then the locking structure is opened to place the second end of the bottom of the iron body in the locking mechanism. Through the above structural design, the iron body can be accurately fixed on the supporting platform. During the lifting process, a safe distance is always maintained between the supporting platform and the storage compartment to avoid interference. In addition, when it is necessary to move this device, simply lift the iron body directly to achieve overall portable transfer.
[0015] According to the above scheme, the locking structure consists of a locking bracket, a lock, and a spring. The upper end of the lock extends to provide a handle. The locking bracket is fixed to the supporting platform. The locking bracket has a limiting opening for the handle to slide back and forth. The lock and the spring are both installed in the accommodating space between the locking bracket and the supporting platform. The first end of the spring abuts against the supporting platform, and the second end of the spring abuts against the lock. When the handle moves along the limiting opening, the lock moves synchronously. The second end of the bottom of the iron body forms a separable contact with the lower side of the lock.
[0016] The beneficial effects of this utility model are:
[0017] This invention achieves intelligent storage and retrieval of the iron by controlling a lifting mechanism to drive the vertical movement of the support platform. When storage is needed, the user simply places the iron on the support platform, and the lifting mechanism will smoothly lower the platform to the bottom of the storage compartment. When retrieval is needed, the lifting mechanism is controlled to rise, and the iron can be precisely raised to the preset height along with the support platform. This process is entirely automated by the mechanical structure, effectively avoiding the mechanical collision risks that may occur with traditional manual retrieval methods. This not only improves operational convenience but also extends the service life of the equipment. Attached Figure Description
[0018] Figure 1 This is a structural schematic diagram of the present invention during the ascending phase;
[0019] Figure 2 This is a schematic diagram of the structure of this utility model during the descent phase;
[0020] Figure 3 yes Figure 1 A schematic diagram of the cross-sectional structure;
[0021] Figure 4 This is an exploded structural diagram of the present invention;
[0022] Figure 5 This is a diagram showing the lifting mechanism of this utility model in the rising phase.
[0023] Figure 6 This is a diagram showing the state of the lifting mechanism of this utility model during the descent phase.
[0024] Figure 7 This is a simplified circuit diagram of this utility model.
[0025] In the diagram: 1. Base; 2. Iron body; 3. Lifting mechanism; 4. Support platform; 5. Control panel assembly; 6. First limit switch; 7. Second limit switch; 8. Limit frame; 9. Locking structure; 11. Storage compartment; 31. Drive motor; 32. Transmission assembly; 33. First slide; 34. Second slide; 35. Pin; 36. Anti-vibration pad; 37. Fixing component; 41. Heat insulation pad; 51. Up button; 52. Down button; 53. Power button; 91. Locking bracket; 92. Lock; 93. Spring; 321. Bidirectional worm gear; 322. First slider; 323. Second slider; 324. First push rod; 325. Second push rod; 326. First bearing seat; 327. Second bearing seat; 328. First bearing; 329. Second bearing; 331. First upper slide; 332. First lower slide; 341. Second upper slide; 342. Second lower slide; 911. Limiting opening; 921. Handle. Detailed Implementation
[0026] The technical solution of this utility model will be described below with reference to the accompanying drawings and embodiments.
[0027] Example 1
[0028] like Figure 1-6 As shown, this utility model provides a steam station with a lifting mechanism, including a base 1 and an iron body 2. The base 1 is provided with a storage compartment 11 for storing the iron body 2. The storage compartment 11 is provided with a lifting mechanism 3, which is connected to a support platform 4. The upper surface of the support platform 4 is provided with a heat insulation pad 41. The iron body 2 is placed on the support platform 4. The lifting mechanism 3 drives the support platform 4 to rise or fall vertically within the storage compartment 11. By controlling the lifting mechanism 3 to drive the support platform 4 to move vertically, the automatic storage and retrieval of the iron body 2 can be achieved. When storing, after placing the iron body 2 on the support platform 4, the lifting mechanism 3 drives the platform to descend smoothly to the bottom of the storage compartment 11. When retrieving, the lifting mechanism 3 is controlled to rise, and the iron body 2 is precisely raised to a preset height along with the support platform 4, with no risk of mechanical collision throughout the process.
[0029] Furthermore, the base 1 is equipped with a control panel assembly 5, which is electrically connected to the lifting mechanism 3. The lifting mechanism 3 can be raised or lowered by operating the control panel assembly 5.
[0030] Furthermore, the base 1 is also equipped with a first limit switch 6 and a second limit switch 7. The first limit switch 6 and the second limit switch 7 are electrically connected to the control panel assembly 5. When the lifting mechanism 3 drives the carrying platform 4 to rise to a preset position, the lifting mechanism 3 triggers the first limit switch 6, and the control panel assembly 5 receives the electrical signal and controls the drive motor 31 to stop working. When the lifting mechanism 3 drives the carrying platform 4 to fall to a preset position, the lifting mechanism 3 triggers the second limit switch 7, and the control panel assembly 5 receives the electrical signal and controls the drive motor 31 to stop working. Through the above structural arrangement, the rising or falling height of the carrying platform 4 can be precisely set.
[0031] Furthermore, the lifting mechanism 3 includes a drive motor 31 and a transmission assembly 32. The transmission assembly 32 includes a bidirectional worm gear 321, a first slider 322, a second slider 323, a first push rod 324, and a second push rod 325. The output end of the drive motor 31 is connected to the first end of the bidirectional worm gear 321, and the drive motor 31 drives the bidirectional worm gear 321 to rotate forward or in reverse. The second end of the bidirectional worm gear 321 is rotatably connected to the base 1. The first slider 322 and the second slider 323 are threadedly engaged with the forward thread section and the reverse thread section of the bidirectional worm gear 321, respectively. The first push rod 324 and the second push rod 325 are arranged symmetrically in a V-shape. The upper end is hinged to the support platform 4. The lower ends of the first push rod 324 and the second push rod 325 are respectively hinged to the first slider 322 and the second slider 323. The control panel assembly 5 is electrically connected to the drive motor 31. More specifically, when the drive motor 31 rotates in the forward direction, the bidirectional worm gear 321 drives the first slider 322 and the second slider 323 to move linearly in a direction away from each other. At this time, the lower ends of the first push rod 324 and the second push rod 325 move with the sliders, and the push rods gradually transition from an inclined state to an upright state, driving the support platform 4 to rise. When the drive motor 31 rotates in the reverse direction, the bidirectional worm gear 321 reverses, and the two sliders move in a direction closer to each other. The push rods return from an upright state to an inclined state, completing the descent of the support platform 4. With the above structural settings, only the forward and reverse rotation of the drive motor 31 needs to be controlled to drive the support platform 4 to achieve lifting and lowering movements, thereby completing the automatic storage and retrieval function of the iron body 2.
[0032] Furthermore, such as Figure 7As shown, the control panel component 5 is equipped with an up button 51, a down button 52, and a power button 53. Pressing the power button 53 activates the device's power supply system. When the up button 51 is pressed, the drive motor 31 starts in forward rotation mode, driving the bidirectional worm gear 321 to rotate synchronously in the forward direction, thereby driving the support platform 4 to achieve upward displacement. When the down button 52 is pressed, the drive motor 31 switches to reverse rotation mode, and the bidirectional worm gear 321 rotates in the reverse direction, ultimately causing the support platform 4 to complete the downward movement.
[0033] Furthermore, such as Figure 5-6 As shown, the first limit switch 6 is disposed near the second end of the bidirectional worm gear 321, and the second limit switch 7 is disposed near the middle of the bidirectional worm gear 321. When the first slider 322 and the second slider 323 move outward along the bidirectional worm gear 321 to a predetermined position, the outer side of the lower end of the second push rod 325 contacts the sensing end of the first limit switch 6. When the first slider 322 and the second slider 323 move inward along the bidirectional worm gear 321 to the middle position, the inner side of the lower end of the second push rod 325 contacts the sensing end of the second limit switch 7. With the above structural arrangement, when the bidirectional worm gear 321 rotates in the forward or reverse direction, the lower end of the second push rod 325 moves linearly with the slider. By setting the lower end of the second push rod 325 to trigger the first limit switch 6 and the second limit switch 7, precise position control of the lifting stroke of the support platform 4 can be achieved.
[0034] Furthermore, the transmission assembly 32 also includes a first bearing housing 326, a second bearing housing 327, a first bearing 328, and a second bearing 329. Both the first bearing housing 326 and the second bearing housing 327 are fixed to the bottom of the storage compartment 11 by fasteners 37. The inner ring of the first bearing 328 is fixed to the middle of the bidirectional worm gear 321, and the outer ring of the first bearing 328 is fixed to the first bearing housing 326. The inner ring of the second bearing 329 is fixed to the second end of the bidirectional worm gear 321, and the outer ring of the second bearing 329 is fixed to the second bearing housing 327. This structural arrangement effectively improves the operational stability of the drive motor 31 during transmission, while ensuring a smoother and more reliable rotational movement of the bidirectional worm gear 321. In this preferred embodiment, the output end of the drive motor 31 is fitted with an anti-vibration pad 36.
[0035] Furthermore, the first slider 322 and the second slider 323 are respectively fixedly fitted with a first carriage 33 and a second carriage 34 on their outer peripheries. The lower end of the bearing platform 4 is hinged to the upper ends of the first push rod 324 and the second push rod 325 respectively through pins 35. The lower ends of the first push rod 324 and the second push rod 325 are respectively hinged to the first carriage 33 and the second carriage 34. More specifically, the first carriage 33 includes a first upper carriage 331 and a first lower carriage 332, and the second carriage 34 includes a second upper carriage 341 and a second lower carriage 342. The upper carriage and the lower carriage are fixed to the outer side of the slider. With this arrangement, the hinge between the lower end of the push rod and the slider can be realized, allowing the push rod to smoothly switch between tilted and upright states.
[0036] Furthermore, the two ends of the supporting platform 4 are respectively provided with mutually cooperating limiting frames 8 and locking structures 92. The iron body 2 is placed on the supporting platform 4. The first end of the bottom of the iron body 2 forms a limiting engagement with the limiting frame 8, and the second end of the bottom of the iron body 2 forms a locking connection with the locking structure 92. In specific use, the first end of the bottom of the iron body 2 is first placed in the limiting frame 8, and then the locking structure 92 is opened, placing the second end of the bottom of the iron body 2 in the locking mechanism. Through the above structural design, the iron body 2 can be accurately fixed on the supporting platform 4. During the lifting process, a safe distance is always maintained between the supporting platform 4 and the storage compartment 11 to avoid interference. In addition, when it is necessary to move this device, simply lift the iron body 2 to achieve overall portable transfer.
[0037] Furthermore, the locking structure 9 consists of a locking bracket 91, a lock 92, and a spring 93. The upper end of the lock 92 extends to provide a handle 921. The locking bracket 91 is fixed to the support platform 4. The locking bracket 91 has a limiting opening 911 for the handle to slide back and forth. The lock 92 and the spring 93 are both installed in the accommodating space between the locking bracket 91 and the support platform 4. The first end of the spring 93 abuts against the support platform 4, and the second end of the spring 93 abuts against the lock 92. When the handle 921 moves along the limiting opening 911, the lock 92 moves synchronously. The second end of the bottom of the iron body 2 forms a separable contact with the lower side of the lock 92.
[0038] Actual usage process:
[0039] When storing, press the up button 51 on the control panel component 5. The drive motor 31 drives the bidirectional worm gear 321 to rotate in the forward direction, and the support platform 4 rises smoothly to the preset height. The iron body 2 is placed on the support platform 4 and double-fixed by the limit frame 8 and the locking structure 9. Press the down button 52. The drive motor 31 reverses and drives the platform to descend to the preset position. The iron body 2 is fully inserted into the storage compartment 11, completing the automatic storage.
[0040] When taking it out, press the up button 51, the lifting mechanism 3 will automatically operate and the carrying platform 4 will rise to the preset taking height, and the locking structure 9 will be released, so that the iron body 2 can be safely taken out.
[0041] The above description is only a preferred embodiment of the present utility model. Therefore, all equivalent changes or modifications made to the structure, features and principles described in the claims of the present utility model patent application are included in the scope of the present utility model patent application.
Claims
1. A steam station with a lifting mechanism, comprising a base (1) and an iron body (2), wherein the base (1) is provided with a storage compartment (11) for storing the iron body (2), characterized in that, The storage compartment (11) is equipped with a lifting mechanism (3), which is connected to a support platform (4). The iron body (2) is placed on the support platform (4), and the lifting mechanism (3) drives the support platform (4) to rise or fall vertically within the storage compartment (11).
2. The steam station with a lifting mechanism according to claim 1, characterized in that, It also includes a control panel assembly (5), which is electrically connected to the lifting mechanism (3).
3. The steam station with a lifting mechanism according to claim 2, characterized in that, The base (1) is also equipped with a first limit switch (6) and a second limit switch (7). The first limit switch (6) and the second limit switch (7) are electrically connected to the control panel assembly (5). When the lifting mechanism (3) drives the carrying platform (4) to rise to a preset position, the lifting mechanism (3) triggers the first limit switch (6), and the control panel assembly (5) receives the electrical signal and controls the drive motor (31) to stop working. When the lifting mechanism (3) drives the carrying platform (4) to fall to a preset position, the lifting mechanism (3) triggers the second limit switch (7), and the control panel assembly (5) receives the electrical signal and controls the drive motor (31) to stop working.
4. The steam station with a lifting mechanism according to claim 3, characterized in that, The lifting mechanism (3) includes a drive motor (31) and a transmission assembly (32). The transmission assembly (32) includes a bidirectional worm gear (321), a first slider (322), a second slider (323), a first push rod (324), and a second push rod (325). The output end of the drive motor (31) is connected to the first end of the bidirectional worm gear (321). The drive motor (31) drives the bidirectional worm gear (321) to rotate forward or in reverse. The second end of the bidirectional worm gear (321) is rotatably connected to the base (1). The first slider... (322) and the second slider (323) are respectively threaded into the forward thread section and the reverse thread section of the bidirectional worm gear (321). The first push rod (324) and the second push rod (325) are arranged in a V-shape symmetrically. The upper ends of the first push rod (324) and the second push rod (325) are hinged to the bearing platform (4). The lower ends of the first push rod (324) and the second push rod (325) are respectively hinged to the first slider (322) and the second slider (323). The control panel assembly (5) is electrically connected to the drive motor (31).
5. The steam station with a lifting mechanism according to claim 4, characterized in that, The control panel component (5) is provided with an up button (51), a down button (52) and a power button (53).
6. The steam station with a lifting mechanism according to claim 4, characterized in that, The first limit switch (6) is disposed near the first or second end of the bidirectional worm gear (321), and the second limit switch (7) is disposed near the middle of the bidirectional worm gear (321). When the first slider (322) and the second slider (323) move outward along the bidirectional worm gear (321) to a predetermined position, the outer side of the lower end of the first push rod (324) or the second push rod (325) contacts the sensing end of the first limit switch (6). When the first slider (322) and the second slider (323) move inward along the bidirectional worm gear (321) to the middle position, the inner side of the lower end of the first push rod (324) or the second push rod (325) contacts the sensing end of the second limit switch (7).
7. The steam station with a lifting mechanism according to claim 4, characterized in that, The transmission assembly (32) further includes a first bearing housing (326), a second bearing housing (327), a first bearing (328), and a second bearing (329). The inner ring of the first bearing (328) is fixed to the middle of the bidirectional worm gear (321), the outer ring of the first bearing (328) is fixed to the first bearing housing (326), the inner ring of the second bearing (329) is fixed to the second end of the bidirectional worm gear (321), and the outer ring of the second bearing (329) is fixed to the second bearing housing (327).
8. The steam station with a lifting mechanism according to claim 4, characterized in that, The first slider (322) and the second slider (323) are respectively fixedly sleeved with the first slide (33) and the second slide (34). The lower end of the bearing platform (4) is hinged to the upper end of the first push rod (324) and the second push rod (325) through a pin. The lower ends of the first push rod (324) and the second push rod (325) are respectively hinged to the first slide (33) and the second slide (34).
9. The steam station with a lifting mechanism according to claim 1, characterized in that, The two ends of the support platform (4) are respectively provided with mutually cooperating limiting frames (8) and locking structures (9). The iron body (2) is placed on the support platform (4). The first end of the bottom of the iron body (2) forms a limiting cooperation with the limiting frame (8), and the second end of the bottom of the iron body (2) forms a locking connection with the locking structure (9).
10. The steam station with a lifting mechanism according to claim 9, characterized in that, The locking structure (9) consists of a locking bracket (91), a lock (92), and a spring (93). The upper end of the lock (92) extends to provide a handle (921). The locking bracket (91) is fixed to the support platform (4). The locking bracket (91) has a limiting opening (911) for the handle (921) to slide back and forth. The lock (92) and the spring (93) are both installed in the accommodating space between the locking bracket (91) and the support platform (4). The first end of the spring (93) abuts against the support platform (4), and the second end of the spring (93) abuts against the lock (92). When the handle (921) moves along the limiting opening (911), the lock (92) moves synchronously. The second end of the bottom of the iron body (2) forms a separable contact with the lower side of the lock (92).
Citation Information
Patent Citations
Automatic protection type steam station electric iron
CN223268966U