A laundry treating apparatus
Patent Information
- Application Number
- CN202510327198.2
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-03-19
- Publication Date
- 2026-09-29
AI Technical Summary
由于小型洗衣机的体积小重量轻,在运输过程中可能在任何方向发生倒置、冲击或跌落,导致现有的包装固定方式不能满足小型衣物处理设备的实际需求
[0043]本发明中,衣物处理设备设置有可以从不同方向对筒模块进行固定的第一包装组件和第二包装组件,在运输过程中,可以防止筒模块在多个方向上的晃动,从而避免筒模块撞击框架组件造成损坏的问题。
Smart Images

Figure CN122833822A_ABST
Abstract
Description
Technical Field
[0001] This invention belongs to the technical field of clothing processing equipment, specifically, it relates to a clothing processing device. Background Technology
[0002] Garment handling equipment, especially drum-type garment handling equipment, needs to address the issue of the drum assembly swaying and impacting the housing during transportation. To address this, existing technologies use packaging bolts to connect the drum assembly and the housing, fixing the drum assembly's position. However, packaging bolts alone often only achieve a fixed position in a specific direction. For large garment handling equipment in existing technologies, due to their significant weight, they are not easily inverted during transportation; therefore, fixing the drum assembly in a specific direction is sufficient to prevent it from impacting the housing during transport.
[0003] However, as users' laundry needs become increasingly diverse, small-scale garment handling equipment is becoming more prevalent. Because small washing machines are small and lightweight, they may be inverted, impacted, or dropped during transportation, rendering existing packaging and securing methods inadequate for their practical needs. Similarly, packaging and securing methods for other types of garment handling equipment that may be inverted during transportation also need to be redesigned.
[0004] In view of this, the present invention is hereby proposed. Summary of the Invention
[0005] The technical problem to be solved by the present invention is to overcome the shortcomings of the prior art and provide a garment processing device that can package and fix the tubular modules from different directions, thereby avoiding the problem of the tubular modules hitting the frame or shell during transportation.
[0006] To solve the above-mentioned technical problems, the basic concept of the technical solution adopted by the present invention is as follows:
[0007] A garment processing device, comprising:
[0008] Framework components;
[0009] The cylindrical module is disposed inside the frame component;
[0010] A first packaging assembly is mounted on the frame assembly, and the cylindrical module is supported on the first packaging assembly for fixing the cylindrical module in the direction perpendicular to the axial direction;
[0011] The second packaging component connects the cylindrical module to the frame component and is used to axially fix the cylindrical module.
[0012] Furthermore, the first packaging component extends axially along the cylindrical module and passes through the second connecting structure provided on the cylindrical module; at least one end of the first packaging component is connected to the frame component;
[0013] Preferably, the frame assembly includes a plurality of vertically arranged side plates, which are connected in sequence to form a space for accommodating the cylindrical module;
[0014] The two ends of the first packaging component are respectively connected to two side plates disposed opposite each other.
[0015] Further, the first packaging component includes:
[0016] A support rod extends axially along the cylindrical module, passes through the second connecting structure, and its end passes through a connecting hole in the frame assembly;
[0017] The vibration damper is fitted onto the end region of the support rod and contacts the frame assembly.
[0018] Furthermore, one side plate of the frame assembly is provided with a first connection hole, and the opposite side plate is provided with a second connection hole;
[0019] One end of the support rod is fitted with a first damping element, which is inserted into the first connecting hole;
[0020] The other end of the support rod is fitted with a second damping component, the outer peripheral wall of which has a circumferentially extending groove; the outer peripheral area of the second connecting hole is embedded in the groove;
[0021] Preferably, one end of the support rod has a limiting protrusion with an outer diameter larger than the outer diameter of the main body of the support rod, and the first damping member is sleeved on the main body of the support rod, with its end face abutting against the limiting protrusion;
[0022] And / or, the other end of the support rod has a reduced diameter portion with an outer diameter smaller than the outer diameter of the main body portion of the support rod, and the second damping member is sleeved on the reduced diameter portion, with its end face abutting against the end face of the main body portion of the support rod.
[0023] Furthermore, the second connecting structure is disposed near one end of the cylindrical module, and a counterweight component is provided at the other end of the cylindrical module;
[0024] The counterweight component has perforations through which the first packaging component passes.
[0025] Furthermore, the second connection structure includes a second connecting portion and a second hinge portion connected together;
[0026] The second connecting part is provided with a through hole for the first packaging component to pass through, and the second hinge part is used to connect the vibration damping support component that supports the cylindrical module;
[0027] Preferably, one end of the vibration damping support assembly is rotatably connected to the second hinge portion, and the other end is connected to the frame assembly.
[0028] Furthermore, the second connecting portion protrudes from the cylindrical peripheral wall of the cylindrical module;
[0029] The second hinge portion includes a second connecting piece protruding from the cylindrical peripheral wall. Two second connecting pieces are spaced apart along the axial direction of the cylindrical module, and one of the second connecting pieces is connected to the second connecting portion.
[0030] Furthermore, one end of the second packaging component is connected to the frame component, and the other end is connected to one end of the tube module;
[0031] Preferably, the second packaging component is connected to the bottom end of the cylindrical module.
[0032] Further, the second packaging component includes:
[0033] Bolts pass through the frame assembly and are connected to the cylinder module;
[0034] A support sleeve is fitted onto the bolt, with one end abutting against the cylindrical module;
[0035] The third vibration damping component is sleeved on the bolt and makes contact with the support sleeve and the frame assembly respectively.
[0036] Preferably, a washer is fitted onto the bolt, and the washer, the third damping element, and the support sleeve are arranged sequentially along the axial direction of the bolt;
[0037] The frame assembly is provided with a third connection hole through which the second packaging assembly passes, and the third damping element is partially inserted into the third connection hole and partially clamped between the frame assembly and the gasket.
[0038] Furthermore, the first packaging component is provided to extend axially at the lower part of the cylindrical module;
[0039] The second packaging component is connected to the upper region of one end of the cylindrical module;
[0040] Preferably, the frame assembly includes a plurality of vertically arranged side plates, which are connected in sequence to form a space for accommodating the cylindrical module;
[0041] One of the side panels has a third connection hole in the upper region for mounting the second packaging component, and a first connection hole in the lower region for mounting the first packaging component.
[0042] By adopting the above technical solution, the present invention has the following beneficial effects compared with the prior art.
[0043] In this invention, the garment processing equipment is equipped with a first packaging component and a second packaging component that can fix the tube module from different directions. During transportation, the tube module can be prevented from shaking in multiple directions, thereby avoiding the problem of the tube module hitting the frame component and causing damage.
[0044] In this invention, the first packaging assembly is connected to two opposite side plates of the frame assembly, which not only fix the cylindrical module but also strengthen the frame assembly and prevent deformation. A vibration damping element is fitted to the end of the support rod of the first packaging assembly. This damping element contacts the frame structure, providing a buffering effect and preventing damage caused by rigid contact between the support rod and the frame assembly.
[0045] In this invention, the second connecting structure for connecting the first packaging component has a connected second connecting part and a second hinge part. The second hinge part is used to connect the vibration damping support component. In this way, the second connecting part and the second hinge part can reinforce each other, ensuring that the vibration damping support component is stably connected to the cylinder module, thereby ensuring the support effect of the vibration damping support component on the cylinder module.
[0046] In this invention, the first packaging component provides support at the bottom of the tube module, at least limiting the vertical displacement of the tube module. The second packaging component is connected to the upper area of one end of the tube module, at least limiting the front-to-back displacement of the tube module. The two components work together to reliably fix the tube module, so that even if the placement direction of the clothing processing equipment changes during transportation, the tube module will not collide with the frame component.
[0047] The specific embodiments of the present invention will now be described in further detail with reference to the accompanying drawings. Attached Figure Description
[0048] The accompanying drawings, as part of this invention, are used to provide a further understanding of the invention. The illustrative embodiments and descriptions of the invention are used to explain the invention, but do not constitute an undue limitation of the invention. Obviously, the drawings described below are merely some embodiments, and those skilled in the art can obtain other drawings based on these drawings without creative effort. In the drawings:
[0049] Figure 1 This is a schematic diagram of the clothing processing device in an embodiment of the present invention;
[0050] Figure 2 This is a schematic diagram of the clothing processing device without the housing assembly in an embodiment of the present invention;
[0051] Figure 3 This is the present invention. Figure 2 A structural schematic diagram from another perspective of the structure shown;
[0052] Figure 4 This is the present invention. Figure 2 The diagram shown is a structural representation of the structure without the frame components.
[0053] Figure 5 This is the present invention. Figure 2 The diagram shown is a structural schematic with the first support member removed.
[0054] Figure 6 This is a schematic diagram of the structure of the first support member in an embodiment of the present invention;
[0055] Figure 7 This is a schematic diagram of the structure of the second support member in an embodiment of the present invention;
[0056] Figure 8 This is an exploded view of the first packaging component in an embodiment of the present invention;
[0057] Figure 9 This is an exploded view of the second packaging component in an embodiment of the present invention;
[0058] Figure 10 This is an enlarged schematic diagram of the first connection structure in an embodiment of the present invention;
[0059] Figure 11 This is an enlarged schematic diagram of the first connection structure from another perspective in an embodiment of the present invention;
[0060] Figure 12 This is an enlarged schematic diagram of the second connection structure in an embodiment of the present invention;
[0061] Figure 13 This is an enlarged schematic diagram of the second connection structure from another perspective in an embodiment of the present invention;
[0062] Figure 14 This is a schematic diagram of the bottom structure of the frame component in an embodiment of the present invention;
[0063] Figure 15 This is a schematic diagram of the structure of the first support member in an embodiment of the present invention;
[0064] Figure 16 This is a structural schematic diagram of the first support member from another angle in an embodiment of the present invention;
[0065] Figure 17 This is a schematic diagram of the structure of the first support member and the base in an embodiment of the present invention;
[0066] Figure 18 This is a schematic diagram of the base structure in an embodiment of the present invention.
[0067] In the diagram: 100, cylindrical module; 101, cylindrical peripheral wall; 1011, extension; 102, cylindrical bottom; 110, outer cylinder; 111, drain outlet; 116, first connecting structure; 1161, first connecting part; 1162, first protrusion; 11621, first side wall; 11622, second side wall; 1163, second protrusion; 1164, reinforcing structure; 1165, first hinge part; 1166, first connecting piece; 117, second connecting structure; 1171, second connecting part; 1172, through hole; 1173 1174. Second hinge; 118. Screw post; 120. Counterweight assembly; 121. Counterweight block; 122. Mounting hole; 123. Through hole; 130. Vibration damping support assembly; 400. Frame assembly; 401. First support member; 402. Second support member; 420. Front side plate; 4201. Second connecting hole; 421. Rear side plate; 4211. First connecting hole; 4212. Third connecting hole; 422. Left side plate; 423. Right side plate; 430. Reinforcing beam; 440. Upper crossbeam; 4 51. First bending section; 4512. Mounting mating section; 452. Second bending section; 453. Third bending section; 4611. First mounting section; 480. Shock absorber bracket; 500. Door body; 700. Housing assembly; 701. First housing component; 702. Second housing component; 703. Base; 7031. Screw post; 7032. Support rib; 716. Lower outer surface; 731. Support protrusion; 770. First packaging assembly; 771. Support rod; 7711. Limiting protrusion; 7712. Diameter reduction section; 77 2. First damping component; 7721. First insertion part; 7722. First buffer part; 773. Second damping component; 7731. Fitting part; 7732. Second buffer part; 7733. Groove; 780. Second packaging component; 781. Bolt; 7811. Head; 7812. Screw; 782. Washer; 783. Third damping component; 7831. Second insertion part; 7832. Third buffer part; 784. Support sleeve; 7841. Outer peripheral mating part; 7842. Mating groove; 7843. Third insertion part.
[0068] It should be noted that these accompanying drawings and textual descriptions are not intended to limit the scope of the invention in any way, but rather to illustrate the concept of the invention to those skilled in the art by referring to specific embodiments. Detailed Implementation
[0069] To make the objectives, technical solutions, and advantages of the embodiments of the present invention clearer, the technical solutions in the embodiments will be clearly and completely described below with reference to the accompanying drawings. The following embodiments are used to illustrate the present invention, but are not intended to limit the scope of the present invention.
[0070] In the description of this invention, it should be noted that the terms "upper", "lower", "front", "rear", "left", "right", "vertical", "inner", "outer", etc., indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings. They are only for the convenience of describing this invention and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation. Therefore, they should not be construed as limiting this invention.
[0071] In the description of this invention, it should be noted that, unless otherwise explicitly specified and limited, the terms "installation," "connection," and "linking" should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral connection; they can refer to a mechanical connection or an electrical connection; they can refer to a direct connection or an indirect connection through an intermediate medium. Those skilled in the art can understand the specific meaning of the above terms in this invention based on the specific circumstances.
[0072] like Figures 1 to 18 As shown, an embodiment of the present invention provides a garment processing device. Specifically, the garment processing device is a drum-type garment processing device, having a drum module 100 whose axis is arranged substantially horizontally.
[0073] More specifically, the garment handling device has a housing assembly 700 forming its exterior, with a cylindrical module 100 disposed inside the housing assembly 700. The front of the housing assembly 700 has a garment inlet that matches the opening of the cylindrical module 100, allowing the user to add or remove garments from the cylindrical module 100. The front of the housing assembly 700 also has an openable and closable door 500, which covers the garment inlet when closed.
[0074] In one specific implementation, the housing assembly 700 has a supporting frame assembly 400 inside, and the tubular module 100 is installed inside the frame assembly 400 through the vibration damping support assembly 130, so that the tubular module 100 can generate a certain displacement relative to the frame assembly 400, thereby preventing the vibration of the tubular module 100 from being transmitted to the frame assembly 400 and the housing assembly 700 when the clothing processing equipment is running.
[0075] Since the tubular module 100 and the frame assembly 400 can move relative to each other, in order to prevent the tubular module 100 from shaking and hitting the frame assembly 400 or the housing assembly 700 during the transportation of the garment processing equipment and causing damage, this embodiment further adopts the following technical solution.
[0076] In this embodiment, the garment processing equipment includes a first packaging component 770 and a second packaging component 780. The first packaging component 770 is mounted on the frame assembly 400, and the tubular module 100 is supported on the first packaging component 770 for fixing the tubular module 100 in the vertical axial direction. The second packaging component 780 connects the tubular module 100 to the frame assembly 400 for axial fixing of the tubular module 100.
[0077] With the above solution, the cylindrical module 100 is fixed in both the axial and vertical directions. Regardless of the placement orientation of the garment processing equipment during transportation, the cylindrical module 100 can be prevented from shaking inside the frame assembly 400, resulting in a more reliable fixation effect. In particular, when the garment processing equipment is a small device suitable for placement on a desktop or similar location, it is prone to inversion during transportation. The solution in this embodiment prevents the cylindrical module 100 from shaking in any direction, minimizing the risk of the cylindrical module 100 impacting the frame assembly 400 or the housing assembly 700.
[0078] It is understood that in this embodiment, the first packaging component 770 and the second packaging component 780 are detachably connected to the tube module 100. After the user purchases the garment processing equipment, before using it for the first time, the first packaging component 770 and the second packaging component 780 need to be removed respectively. In this way, when the tube module 100 vibrates during the operation of the garment processing equipment, it can generate relative displacement with the frame assembly 400, avoiding causing the frame assembly 400 and the housing assembly 700 to vibrate together.
[0079] In a further embodiment, the first packaging component 770 extends axially along the cylindrical module 100 and passes through the second connecting structure 117 provided on the cylindrical module 100. At least one end of the first packaging component 770 is connected to the frame component 400, supporting the cylindrical module 100 inside the frame component 400, thereby achieving a fixing effect on the cylindrical module 100 in the vertical axial direction.
[0080] Preferably, both ends of the first packaging component 770 are connected to the frame component 400, and the cylindrical module 100 is connected to the area before both ends of the first packaging component 770 via the second connecting structure 117. The two ends of the first packaging component 770 are fixed, which avoids the problem of bending due to the long length of the first packaging component 770, and makes the fixing effect more reliable.
[0081] In one specific implementation, the frame assembly 400 of this embodiment includes several vertically arranged sidewalls, with each sidewall connected in sequence to form a space for accommodating the cylindrical module 100. The two ends of the first packaging assembly 770 are respectively connected to two oppositely arranged sidewalls.
[0082] In one specific structure, the frame assembly 400 includes four side plates, with adjacent side plates perpendicular to each other. Three of the side plates, connected sequentially, form a single U-shaped structure, constituting the first support member 401 of the frame assembly 400. The remaining side plate is connected to the open end of the first support member 401, serving as the second support member 401 of the frame assembly 400. One end of the first packaging assembly 770 is connected to the second support member 402, and the other end is connected to the side plate of the first support member 401 opposite to the second support member 402.
[0083] With the above solution, the first packaging component 770 is connected to the first support 401 and the second support 402 respectively, and also plays a role in structural reinforcement of the two, preventing the frame component 400 from being deformed or damaged during transportation.
[0084] In one specific embodiment, the front panel 420 of the frame assembly 400 constitutes the second support member 402, and its left side panel 422, rear side panel 421, and right side panel 423 are integrally connected to form a U-shaped first support member 401. The front end of the first packaging assembly 770 is connected to the front panel 420, and the rear end is connected to the rear side panel 421.
[0085] In a further embodiment, the first packaging assembly 770 includes a support rod 771 extending axially along the cylindrical module 100, and a damping element sleeved on the end region of the support rod 771. The support rod 771 passes through a second connecting structure 117 on the cylindrical module 100, and contacts the frame assembly 400 at its end region via the damping element.
[0086] The vibration damping component is made of rubber or a similar elastic material, which can effectively support the support rod 771 and prevent it from swaying easily. At the same time, the vibration damping component 771 can undergo elastic deformation, and when subjected to a large external force, it can use its own deformation to buffer the impact, avoiding the problem that the rigid connection between the support rod 771 and the frame assembly 400 is prone to damage under large impacts.
[0087] Furthermore, in this embodiment, the rear side plate 421 of the frame structure is provided with a first connecting hole 4211, the front side plate 420 is provided with a second connecting hole 4201, and the two ends of the support rod 771 pass through the first connecting hole 4211 and the second connecting hole 4201 respectively.
[0088] A first damping element 772 is fitted onto the rear end of the support rod 771. The first damping element 772 is inserted into the first connecting hole 4211 to prevent the support rod 771 from directly contacting the rear side plate 421, thus providing a damping and buffering effect. A second damping element 773 is fitted onto the front end of the support rod 771. The outer peripheral wall of the second damping element 773 has a circumferentially extending groove 7733. The outer peripheral area of the second connecting hole 4201 is embedded in the groove 7733 to fix the front end of the support rod 771.
[0089] In one specific embodiment, the rear end of the support rod 771 has a limiting protrusion 7711 with an outer diameter larger than the outer diameter of the main body of the support rod 771. The first damping member 772 is sleeved on the main body of the support rod 771, and its rear end face abuts against the limiting protrusion 7711. The front end of the support rod 771 has a reduced diameter portion 7712 with an outer diameter smaller than the outer diameter of the main body of the support rod 771. The second damping member 773 is sleeved on the reduced diameter portion 7712, and its end face abuts against the front end face of the main body of the support rod 771.
[0090] By setting the support rod 771 to have stepped structures at both ends, the installation and positioning of the first damping element 772 and the second damping element 773 can be achieved.
[0091] Furthermore, the first damping component 772 specifically includes a first insertion portion 7721 and a first buffer portion 7722 with different outer diameters, the first buffer portion 7722 having a larger outer diameter. During assembly, the first insertion portion 7721 is inserted into the first connecting hole 4211, and the first buffer portion 7722 is pressed against the surface of the rear side plate 421 by the limiting protrusion 7711.
[0092] The second damping member 773 has a relatively small outer diameter fitting portion 7731 and a larger outer diameter second buffer portion 7732. A groove 7733 is provided on the outer periphery of the second buffer portion 7732. The second damping member 773 is fitted onto the reduced diameter portion 7712 through the fitting portion 7731, and the second buffer portion 7732 is inserted into the second connecting hole 4201, so that the outer periphery of the second connecting hole 4201 is embedded in the groove 7733.
[0093] In one specific implementation, the first damping member 772 and the second damping member 773 are respectively interference-fitted with the support rod 771, which can prevent the first damping member 772 and the second damping member 773 from sliding along the axial direction of the support rod 771, thus affecting the fixing effect of the first packaging component 770 on the cylindrical module 100.
[0094] In a further embodiment, the second connecting structure 117 is disposed near one end of the cylindrical module 100, and a counterweight assembly 120 is disposed at the other end of the cylindrical module 100. The counterweight assembly 120 is provided with a through hole 123 for the first packaging assembly 770 to pass through, and the first packaging assembly 770 is disposed in the through hole 123.
[0095] In one specific implementation, the second connecting structure 117 is positioned near the rear end of the cylinder bottom 102, while the counterweight component 120 is fixedly positioned relative to the cylinder module 100 in the front end region near the cylinder opening. Thus, the cylinder module 100 is connected to the first packaging component 770 at both its front and rear ends, resulting in better fixation of the cylinder module 100.
[0096] In the specific structure, the cylinder module 100 of this embodiment includes an outer cylinder 110 and an inner cylinder (not shown in the figure) arranged coaxially. The counterweight assembly 120 includes two counterweight blocks 121 arranged symmetrically. The inner side of the counterweight block 121 is an arc surface structure that matches the outer cylinder 110. Using a connector, such as a screw passing through the mounting hole 122 on the counterweight block 121, the counterweight block 121 is fixed to the outer periphery of the cylinder opening of the outer cylinder 110.
[0097] In a preferred embodiment, the counterweight 121 and the outer cylinder 110 have overlapping areas in both the radial and axial directions, which can reduce the installation space occupied by the counterweight 121 on the outer periphery of the outer cylinder 110 and avoid reducing the volume of the outer cylinder 110 due to the setting of the counterweight 121.
[0098] Using the above scheme, during assembly, the second damper 773 is installed in the second connecting hole 4201 of the front side plate 420. The first damper 772 is installed from the front end of the support rod 771. Then, the support rod 771 is inserted from the rear side of the first support member 402 through the first connecting hole 4211 until its front end protrudes from the through hole 123 on the counterweight block 121 and is inserted into the second damper 773. When the user disassembles the first packaging assembly 770, the first damper 772 and the support rod 771 are removed from the rear side, and the second damper 773 can be left on the front side plate 420.
[0099] In a further embodiment, the second connecting structure 117 protrudes from the circumferential wall 101 of the outer cylinder 110 and includes a connected second connecting portion 1171 and a connected second hinge portion 1173. Specifically, the second connecting structure 117 is integrally formed with the outer cylinder 110, and the second connecting portion 1171 and the second hinge portion 1173 are integrally connected.
[0100] The second connecting part 1171 is provided with a through hole 1172 for the first packaging assembly 770 to pass through, and the second hinge part 1173 is used to connect the vibration damping support assembly 130.
[0101] More specifically, the vibration damping support assembly 130 is a damper, with its upper end rotatably connected to the second hinge portion 1173 and its lower end connected to the frame assembly 400. A vibration damper bracket 480 is mounted on the frame assembly 400, and the lower end of the vibration damping support assembly 130 is rotatably mounted on the vibration damper bracket 480.
[0102] As a specific structure, the second connecting portion 1171 protrudes from the cylindrical peripheral wall 101, and has a through hole 1172 with its axis parallel to the axis of the outer cylinder 110, through which the first packaging assembly 770 passes. The second hinge portion 1173 is staggered with the second connecting portion 1171 along the circumference of the outer cylinder 110 to avoid the first packaging assembly 770. The outer peripheral surface of the second connecting portion 1171 is connected to one side of the second hinge portion 1173 along the circumference of the cylindrical module 100.
[0103] More specifically, the second hinge portion 1173 includes a second connecting piece 1174 protruding from the cylindrical peripheral wall 101. Two second connecting pieces 1174 are spaced apart along the axial direction of the outer cylinder 110, and each has a hinge hole with its axis parallel to the axis of the outer cylinder 110. The upper end of the vibration damping support assembly 130 is limited between the two second connecting pieces 1174, and the vibration damping support assembly 130 is rotatably connected to the second hinge portion 1173 by a pin passing through the hinge hole and the upper end of the vibration damping support assembly 130.
[0104] Of the two second connecting pieces 1174 in the second hinge portion 1173, one of the second connecting pieces 1174 is connected to the outer peripheral side of the second connecting portion 1171. Specifically, the second connecting piece 1174 is partially connected to the cylindrical peripheral wall 101 and partially connected to the outer peripheral side of the second connecting portion 1171.
[0105] Preferably, the thickness of the second connecting portion 1171 along the axial direction of the outer cylinder 110 is greater than the thickness of the second connecting piece 1174 in the same direction, and the second connecting piece 1174 is disposed near the rear side of the second connecting portion 1171.
[0106] In one specific structure, the rear end of the cylindrical peripheral wall 101 connected to the cylindrical bottom 102 partially protrudes rearward to form an extension 1011. Another second connecting piece 1174 in the second hinge portion 1173 is disposed on the extension 1011, forming a distribution pattern in which the second hinge portion 1173 and the second connecting portion 1171, which is entirely disposed on the cylindrical peripheral wall 101, are partially staggered along the axial direction of the outer cylinder 110.
[0107] With the above structure, since the second connecting piece 1174 is relatively thin, its connection to the second connecting part 1171 can achieve a structural reinforcement effect, preventing deformation and damage to the second connecting piece 1174 and affecting the support effect of the vibration damping support assembly 130 on the outer cylinder 110. The second connecting part 1171 and the second hinge part 1173 are partially staggered along the axial direction of the outer cylinder 110, which can prevent the second connecting part 1171 from interfering with the relative rotation of the vibration damping support assembly 130 and the cylinder module 100.
[0108] In a further embodiment, one end of the second packaging component 780 is connected to the frame component 400, and the other end is connected to one end of the cylindrical module 100, thereby providing a fixing function along the axial direction of the cylindrical module 100.
[0109] In one specific embodiment, the second packaging component 780 passes through the rear side of the frame component 400 and is connected to the end of the cylinder bottom 102 of the cylinder module 100. More specifically, the rear side of the frame component 400 is provided with a third connecting hole 4212, through which the second packaging component 780 passes and is connected to the cylinder bottom 102 of the outer cylinder 110.
[0110] With the above scheme, the first packaging component 770 and the second packaging component 780 are installed from the rear side of the frame component 400, which facilitates assembly before transportation and disassembly before use.
[0111] In one specific implementation, the first packaging component 770 is disposed at the lower part of the cylindrical module 100 and extends axially, thereby providing support from below the cylindrical module 100 and fixing the cylindrical module 100 vertically. The second packaging component 780 is connected to the upper region of the rear end of the cylindrical module 100 and provides front-back fixing for the cylindrical module 100.
[0112] More specifically, two sets of first packaging components 770 are symmetrically arranged below the cylindrical module 100, and two sets of second packaging components 780 are symmetrically arranged in the upper rear region of the cylindrical module 100. Through the cooperation of the two sets of first packaging components 770 and the two sets of second packaging components 780, the cylindrical module 100 can be fixed in various directions.
[0113] In the specific structure of this embodiment, the rear side plate 421 of the first support member 401 has two third connecting holes 4212 in the upper region for installing the second packaging assembly 780. The lower region of the rear side plate 421 has two first connecting holes 4211 for installing the first packaging assembly 770.
[0114] In a preferred structure, the two third connecting holes 4212 and the two first connecting holes 4211 are respectively located at the four vertices of the same rectangle, which makes the fixing effect of the cylindrical module 100 more reliable.
[0115] In a further embodiment, the second packaging component 780 is a packaging bolt, comprising a bolt 781, a support sleeve 784, and a third vibration damper 783. The bolt 781 passes through the frame assembly 400 and connects to the cylindrical module 100. The support sleeve 784 is fitted onto the bolt 781, with its front end abutting against the cylindrical module 100. The third vibration damper 783 is fitted onto the bolt 781, providing support and cooperation with both the support sleeve 784 and the frame assembly 400, thus preventing rigid contact between the support sleeve 784 or the bolt 781 and the frame assembly 400, which could pose a risk of damage.
[0116] Specifically, the third damping element 783 is sleeved on the outside of the bolt 781 at intervals, and the inner wall of the third damping element 783 is spaced apart from the outer peripheral wall of the bolt 781. The support sleeve 784 is sleeved on the front end area of the bolt 781, and the rear end of the support sleeve 784 is inserted between the third damping element 783 and the bolt 781.
[0117] In the above scheme, the support sleeve 784 is made of rigid material to provide structural rigidity and ensure that the bolt 781 will not deform or fail during transportation. The support sleeve 784 cooperates with the third vibration damper 783 to support the cylindrical module 100 at a certain distance from the frame assembly 400, preventing the cylindrical module 100 from impacting the frame assembly 400. The third vibration damper 783 is made of flexible material capable of elastic deformation, avoiding purely rigid contact between the second packaging component 780 and the frame assembly 400, which could pose a risk of damage to the frame assembly 400 during transportation.
[0118] In one specific implementation, the support sleeve 784 is a hollow plastic support rod, and the third damping component 783 is made of rubber.
[0119] Furthermore, a washer 782 is fitted onto the bolt 781, and the washer 782, the third damping member 783, and the support sleeve 784 are arranged sequentially along the axial direction of the bolt 781. The third damping member 783 is partially inserted into the third connecting hole 4212 on the rear side plate 421, and partially clamped between the rear side plate 421 of the frame assembly 400 and the washer 782.
[0120] Specifically, in this embodiment, the third damping member 783 has a second insertion portion 7831 and a third buffer portion 7832 extending outward from the rear end of the second insertion portion 7831. The third damping member 783 is sleeved on the threaded rod 7812 of the bolt 781. During assembly, the second insertion portion 7831 is inserted into the third connecting hole 4212, and the third buffer portion 7832 is in contact with the outer side of the rear side plate 421. When installed in place, the head 7811 of the bolt 781 presses against the washer 782, thereby pressing the third buffer portion 7832 onto the rear side plate 421 through the washer 782.
[0121] The area of the gasket 782 is larger than the cross-sectional area of the bolt head 7811, which can more effectively compress and fix the third buffer part 7832 of the third damping member 783.
[0122] Furthermore, in this embodiment, the right end of the support sleeve 784 has a third insertion part 7843, which is inserted between the third damping member 783 and the bolt 781.
[0123] The outer peripheral wall of the support sleeve 784 is provided with a protruding outer peripheral mating part 7841, which extends towards the third damping member 783. The inner side of the outer peripheral mating part 7841 is spaced from the outer peripheral wall of the third insertion part 7843, thereby forming a mating groove 7842 between them. The front end of the second insertion part 7831 of the third damping member 783 is inserted into the mating groove 7842, which can realize the limiting fit between the third damping member 783 and the support sleeve 784 in the axial direction of the bolt 781.
[0124] In the preferred embodiment, the support sleeve 784 extends from the end furthest from the third damper 783 to the outer peripheral mating part 7841, and its outer peripheral wall has an alternating concave-convex structure along the circumference. This structure provides greater structural strength, thereby offering more reliable support.
[0125] More specifically, the outer peripheral mating portion 7841 extends obliquely away from the outer peripheral wall of the third insertion portion 7843, causing the width of the mating groove 7842 to gradually increase towards the groove opening. The front end of the second insertion portion 7831 has a tapered structure with an outer diameter that gradually decreases from back to front, matching the mating groove 7842.
[0126] With the above structure, as the front end of the second insertion part 7831 extends into the mating groove 7842, the inner wall of the mating groove 7842 gradually squeezes the tapered structure at the front end of the second insertion part 7831, which can ensure the mating effect between the support sleeve rod 784 and the third damping member 783.
[0127] In one specific embodiment, the bottom 102 of the outer cylinder 110 is provided with a rearwardly protruding screw post 118. The bolt 781 of the second packaging component 780 passes through the third connecting hole 4212 on the rear side plate 421 and is screwed into the screw post 118. When assembled, the front end of the support sleeve 784 abuts against the rear end of the screw post 118, and the front end of the second insertion part 7831 of the third damping member 783 extends into the mating groove 7842 of the support sleeve 784. Due to the collision and tightening, the second insertion part 7831 automatically expands and fits tightly with the third connecting hole 4212. The head 7811 of the mating bolt 781 presses the third buffer part 7832 of the third damping member 783 through the washer 782, which can achieve a tight fit between the third damping member 783 and the rear side plate 421, ensuring the fixing effect of the cylinder module 100.
[0128] In the preferred embodiment, the mating groove 7842 of the support sleeve 784 and the front end of the second insertion part 7831 of the third damping member 783 are interference-fitted, resulting in a more obvious effect of collision tightening.
[0129] When the user removes the second packaging component 780, the rotating bolt 781 is unscrewed from the screw post 118, and the second packaging component 780 can be removed from the rear.
[0130] In this embodiment, the frame assembly 400 of the garment processing device is enclosed within the housing assembly 700. The housing assembly 700 includes a first housing member 701, a second housing member 702, and a base 703, which are separately configured. The second support member 402 of the frame assembly 400 is connected to the first support member 401, and the first support member 401 is connected to the base 703, fixing the frame assembly 400 to the base 703. The first housing member 701 has an inverted U-shaped structure, fastens onto the frame assembly 400, and covers the left, right, and top sides of the frame assembly 400. Two second housing members 702 are included, respectively disposed on the front and rear sides.
[0131] When a user disassembles the first packaging assembly 770 and the second packaging assembly 780, the housing assembly 700 must first be opened to expose the first packaging assembly 770 and the second packaging assembly 780 mounted on the frame assembly 400. At this point, the user can remove the first packaging assembly 770 and the second packaging assembly 780 respectively.
[0132] In a further embodiment, the top of the frame assembly 400 is provided with a front-to-back extending reinforcing beam 430 and a left-to-right extending upper crossbeam 440 perpendicular to the reinforcing beam 430. The front end of the reinforcing beam 430 is connected to the front side plate 420, and the rear end is connected to the rear side plate 421, providing support in the front-to-back direction, making the structure formed by the first support member 401 and the second support member 402 more stable. The left end of the upper crossbeam 440 is connected to the left side plate 422, and the right end is connected to the right side plate 423, providing support between the left and right side plates 422 and 423, making the U-shaped structure of the first support member 401 more stable and less prone to deformation.
[0133] In one specific embodiment, the garment processing equipment is a washer-dryer combo that combines washing and drying functions. Above the drum module 100, on the right side, is a front-to-back extending air inlet module (not shown in the figure), used to introduce dry, hot air into the drum module 100 to dry the garments. In the space on the left side above the drum module 100, on the left side, is a front-to-back extending circuit board assembly (not shown in the figure), used to control the operation of the garment processing equipment.
[0134] More specifically, in this embodiment, during the washing process, the outer drum 110 holds washing water, the inner drum holds clothes, and the door 500 is closed to seal the opening of the outer drum 110, preventing washing water from overflowing. During the drying process, the air inlet module introduces dry hot air through the opening of the outer drum 110, which then enters the inner drum through the opening of the inner drum and comes into contact with the wet clothes. An exhaust module (not shown in the figure) is also connected to one end of the bottom 102 of the outer drum 110; the hot air carries the moisture from the clothes out and into the exhaust module.
[0135] Preferably, the exhaust module is equipped with a condensation mechanism, which allows water to enter the exhaust duct of the exhaust module to cool the hot and humid air entering the exhaust duct, causing the water vapor in it to condense. The exhaust duct is directly connected to the external space of the clothing processing equipment, thus reducing the exhaust temperature and humidity of the exhaust duct and avoiding impact on the surrounding environment. The condensate that precipitates after the hot and humid air cools can flow back into the outer cylinder 110 along the exhaust duct and finally be discharged from the drain outlet 111 at the bottom of the outer cylinder 110.
[0136] Furthermore, the left side of the air intake module is connected to the reinforcing beam 430, and the right side is connected to the top of the right side plate 423. The left side of the circuit board assembly is connected to the top of the left side plate 422, and the right side is connected to the reinforcing beam 430.
[0137] With the above structure, the air intake module and circuit board assembly can be fixed by the reinforcing beam 430. At the same time, the air intake module and circuit board assembly also provide further structural reinforcement to the frame assembly 400.
[0138] In this embodiment, four vibration damping support assemblies 130 are arranged below the cylindrical module 100. Two of the vibration damping support assemblies 130 are located near the bottom 102 of the outer cylinder 110 in the cylindrical module 100 and are connected to the cylindrical module 100 through the second hinge portion 1173 of the second connecting structure 117. The other two vibration damping support assemblies 130 are located near the opening of the cylinder, and a first connecting structure 116 is provided at the corresponding position in the cylindrical module 100 for connecting the front vibration damping support assemblies 130.
[0139] In a further embodiment, the first connecting structure 116 protrudes from the circumferential wall 101 of the outer cylinder 110 and includes an integrally formed first connecting portion 1161 and a first hinge portion 1165. Specifically, the first connecting structure 116 is integrally formed with the outer cylinder 110.
[0140] The first connecting part 1161 is used to connect the counterweight assembly 120, and the first hinge part 1165 is used to connect the vibration damping support assembly 130.
[0141] More specifically, similar to the vibration damping support assembly 130 at the rear end of the cylindrical module 100, at the front end of the cylindrical module 100, the upper end of the vibration damping support assembly 130 is rotatably connected to the first hinge portion 1165, and the lower end is rotatably connected to the vibration damper bracket 480, which is fixedly mounted on the frame assembly 400.
[0142] The first hinge portion 1165 is staggered with the first connecting portion 1161 along the circumference of the outer cylinder 110, so that the first hinge portion 1165 and the first connecting portion 1161 are concentrated in a close position on the cylinder circumferential wall 101, while the assembly of the counterweight assembly 120 and the vibration damping support assembly 130 does not interfere with each other.
[0143] As a specific structure, the first connecting part 1161 has a first protrusion 1162 protruding from the cylindrical peripheral wall 101, and the front side of the first protrusion 1162 has a second protrusion 1163 protruding towards the cylinder opening, that is, forward. The counterweight assembly 120 is connected to the second protrusion 1163, and the first protrusion 1162 is connected to the first hinge part 1165.
[0144] More specifically, the first hinge portion 1165 includes a first connecting piece 1166 protruding from the cylindrical peripheral wall 101, having a hinge hole with an axis parallel to the axis of the outer cylinder 110 for connecting the vibration damping support assembly 130. The first connecting piece 1166 is connected to the first protrusion 1162 and the cylindrical peripheral wall 101, respectively.
[0145] Because the thickness of the first connecting piece 1166 is relatively small, if it is set alone on the cylindrical peripheral wall 101, the structural strength is low and it is easy to deform and be damaged. However, by setting the first connecting piece 1166 to be connected to both the first protrusion 1162 and the cylindrical peripheral wall 101, the structure can be strengthened, and the deformation of the first connecting piece 1166 can be avoided, which would affect the support effect of the vibration damping support assembly 130 on the outer cylinder 110.
[0146] Furthermore, the first protrusion 1162 has a first sidewall 11621 facing forward and a second sidewall 11622 opposite to the first sidewall 11621, and a second protrusion 1163 is disposed on the first sidewall 11621. The second sidewall 11622 is provided with a reinforcing structure 1164 extending rearward at an incline and connected to the cylindrical peripheral wall 101. The first hinge portion 1165 has two first connecting pieces 1166 disposed axially spaced apart, the first connecting piece 1166 near the front side being connected to the first sidewall 11621 of the first protrusion 1162, and the first connecting piece 1166 near the rear side being connected to the reinforcing structure 1164.
[0147] The vibration damping support assembly 130 installed at the front end of the outer cylinder 110 has its upper end limited between two first connecting pieces 1166. The vibration damping support assembly 130 is rotatably connected to the first hinge part 1165 by a pin passing through the hinge hole and the upper end of the vibration damping support assembly 130.
[0148] In one detailed structure, the first protrusion 1162 is hollow, and the rear end of the second protrusion 1163 extends between the first sidewall 11621 and the second sidewall 11622, connecting to the inner side of the second sidewall 11622. The reinforcing structure 1164 includes a plurality of horizontally arranged reinforcing ribs spaced apart in the height direction. One side of each reinforcing rib is connected to the second sidewall 11622, and the other side is connected to the cylindrical peripheral wall 101, thereby providing structural reinforcement to the first protrusion 1162.
[0149] The first hinge portion 1165 is disposed on the lower side of the first connecting portion 1161, the first connecting piece 1166 near the front side is connected to the inner side of the first sidewall 11621, and the first connecting piece 1166 near the rear side is connected to the lowest reinforcing rib.
[0150] In the above scheme, the first connecting part 1161 and the first hinge part 1165 reinforce each other, making the structure more stable, thereby enabling the counterweight assembly 120 to be fixed more stably and reliably, and the vibration damping support assembly 130 to be connected.
[0151] In a further embodiment, the counterweight assembly 120 has mounting holes 122 for connecting the first connecting portion 1161. The inner diameters of the front and rear ends of the mounting hole 122 are larger than the inner diameter of its central region, thereby forming a recess on the front and rear sides of the counterweight assembly 120. The second protrusion 1163 of the first connecting portion 1161 extends into the recess at the rear end of the mounting hole 122. A screw passes through the mounting hole 122 from the front and is screwed into the threaded hole at the center of the second protrusion 1163. The head of the screw enters the recess at the front end of the mounting hole 122, preventing a protrusion from forming on the front side of the counterweight assembly 120.
[0152] In this embodiment, the counterweight assembly 120 includes two counterweight blocks 121 arranged symmetrically on the left and right sides, and each counterweight block 121 has a mounting hole 122 at its upper and lower parts. The lower mounting hole 122 is fixed to the first connecting part 1161 by screws, and the upper mounting hole 122 is fixed to the counterweight fixing structure provided on the upper part of the outer cylinder 110.
[0153] Specifically, the counterweight fixing structure has a similar structure to the first connecting part 1161, including a third protrusion protruding from the cylindrical peripheral wall 101, and a fourth protrusion protruding forward from the front side of the third protrusion. A reinforcing rib connected to the cylindrical peripheral wall 101 is provided on the rear side of the third protrusion. The fourth protrusion extends into the recessed groove at the rear end of the mounting hole 122, and a screw is screwed from the front side through the mounting hole 122 into the threaded hole at the center of the fourth protrusion, with the screw head entering the recessed groove at the front end of the mounting hole 122.
[0154] In a further embodiment, on the same side of the outer cylinder 110, the first hinge portion 1165 and the second hinge portion 1173 coincide in the circumferential position of the outer cylinder 110. Thus, the vibration damping support assemblies 130 at both ends are positioned at the same circumferential location, providing more stable and reliable support for the cylinder module 100.
[0155] Preferably, the first connecting portion 1161 is disposed on one side of the first hinge portion 1165 along the first circumferential direction, and the second connecting portion 1171 is disposed on one side of the second hinge portion 1173 along the second circumferential direction. The first direction and the second direction are opposite.
[0156] In the above scheme, the first direction and the second direction are defined for the first hinge portion 1165 and the second hinge portion 1173 on the same side of the outer cylinder 110. However, the definitions of the first direction and the second direction are different for the first hinge portion 1165 and the second hinge portion 1173 on the left and right sides.
[0157] For example, regarding the first hinge portion 1165 and the second hinge portion 1173 on the left side of the outer cylinder 110, with the end facing the cylinder opening as a reference, the first direction is counterclockwise and the second direction is clockwise. Conversely, regarding the first hinge portion 1165 and the second hinge portion 1173 on the right side of the outer cylinder 110, with the end facing the cylinder opening as a reference, the first direction is clockwise and the second direction is counterclockwise.
[0158] That is, the first connecting part 1161 is disposed on the upper side of the first hinge part 1165, and the second connecting part 1171 is disposed on the lower side of the second hinge part 1173.
[0159] With the above structure, on the one hand, the first hinge portion 1165 and the second hinge portion 1173 are respectively connected to the first connecting portion 1161 or the second connecting portion 1171 in different directions, which enhances the structural strength from different directions, making the connection between the vibration damping support assembly 130 and the outer cylinder 110 more reliable overall. On the other hand, the first connecting portion 1161 and the second connecting portion 1171 are staggered in the circumferential direction of the outer cylinder 110, which does not affect the connection between the first packaging assembly 770 and the front side plate 420 through the counterweight assembly 120.
[0160] The garment processing equipment provided in this embodiment has a first packaging component 770 and a second packaging component 780 that fix the tube module 100 in different directions. During transportation, it can prevent the tube module 100 from shaking in different directions, and the fixing effect is more reliable. Specifically, the first packaging component 770 supports the tube module 100 from below, restricting its vertical displacement, and the second packaging component 780 fixes the tube module 100 from above, restricting its front-to-back displacement. Two sets of the first packaging component 770 and the second packaging component 780 are respectively provided, which can also more reliably restrict the lateral displacement of the tube module 100. Especially for small garment processing equipment that may change its placement orientation during transportation, since the shaking of the tube module 100 in all directions is restricted, it can better avoid the tube module 100 from hitting the frame component 400 and being damaged.
[0161] The first hinge portion 1165 on the cylindrical module 100 for connecting the front vibration damping support assembly 130 is integrally connected with the first connecting portion 1161 for installing the counterweight assembly 120, and the second hinge portion 1173 for connecting the rear vibration damping support assembly 130 is integrally connected with the second connecting portion 1171 for installing the first packaging assembly 770. This can play a mutually reinforcing role, especially improving the connection stability between the cylindrical module 100 and the vibration damping support assembly 130, and ensuring the stable support of the vibration damping support assembly 130 for the cylindrical module 100.
[0162] In a further embodiment, the bottom of two opposite side plates of the frame assembly 400 is provided with a first bent portion 451 that bends inward and extends downward at an incline. The frame assembly 400 is supported as a whole on the base 703 of the housing assembly 700, and the outer wall of the first bent portion 451 is in contact with the base 703.
[0163] In one specific embodiment, a first bending portion 451 is provided at the bottom of the left side plate 422 and the right side plate 423 of the frame assembly 400, respectively.
[0164] The first bend 451 helps to strengthen the structural strength of the side plate of the frame assembly 400, thereby improving the structural stability of the frame assembly 400 and providing more reliable support for the internal cylindrical module 100. On the other hand, the first bend 451 is in direct contact with the base 703, which increases the contact area compared to a structure that contacts the base 703 through the edge of the side plate, and can disperse the contact pressure between the frame assembly 400 and the base 703.
[0165] In one specific embodiment, the base 703 forms the lower outer surface 716 of the garment processing device. The left and right sides of the base 703 have curved sides that bend from top to bottom towards the center, that is, the left and right sides of the lower outer surface 716 are curved surface structures that bend from top to bottom towards the center. The first bending portion 451 is disposed on the inner side of the curved side and is connected to the base 703.
[0166] Two of the opposing side panels of the frame assembly 400 have a first bend 451 that slopes downward and narrows at the bottom, which can better fit the curved sides of the base 703.
[0167] Furthermore, in this embodiment, the first bent portion 451 is provided with a protruding or recessed mounting fitting portion 4512, which is connected to the base 703 of the housing assembly 700 through the mounting fitting portion 4512.
[0168] Specifically, the first bent portion 451 is supported on the internal structure of the bent side of the base 703, wherein the mounting fitting portion 4512 is in contact with and supported by the internal structure of the bent side. Multiple mounting fitting portions 4512 are provided at intervals along the setting direction of the first bent portion 451, that is, in the front-to-back direction.
[0169] In the above scheme, the first bent portions 451 on both sides of the frame assembly 400 cooperate with the bent sides on both sides of the base 703, which can limit the frame assembly 400 in the left and right directions. Multiple mounting and fitting portions 4512 are provided at intervals in the front and back directions, and an alternating concave and convex structure is formed on the first bent portions 451 in the front and back directions, thereby limiting the frame assembly 400 in the front and back directions.
[0170] In one specific embodiment, the mounting mating portion 4512 is formed by a partial upward protrusion of the first bent portion 451, and the top surface of the protrusion of the mounting mating portion 4512 is a horizontal surface. Correspondingly, a groove is formed on the outer side of the first bent portion 451 at the position of the mounting mating portion 4512.
[0171] The base 703 is provided with a screw post 7031, and a connecting hole is provided in the area of the mounting mating part 4512. The top of the screw post 7031 contacts and supports the outer wall of the first bent part 451 at the position of the mounting mating part 4512. The screw passes through the connecting hole and is screwed into the screw post 7031 on the base 703, thereby fixing the first bent part 451 to the base 703.
[0172] By adopting the above solution, the frame component 400 can better fit with the base 703, resulting in a more stable structure after installation and fixation. At the same time, this structure also facilitates the assembly of the frame component 400 onto the base 703 via hoisting.
[0173] In one detailed structure, the base 703 is square in the horizontal direction, and each of the four corners of the square base 703 is provided with a downwardly protruding support protrusion 731 for supporting the garment processing equipment. The support protrusion 731 forms a recessed structure on the inner side of the base 703, and the screw post 7031 is located within the range of the recessed structure.
[0174] The screw post 7031 has radial reinforcing ribs on its sidewalls to enhance its structural strength. In a preferred configuration, when the frame assembly 400 and the base 703 are assembled, the outer periphery of the radial reinforcing ribs abuts against the groove formed on the outside of the first bend 451 in the mounting mating part 4512, providing support and preventing deformation of the mounting mating part 4512.
[0175] Furthermore, a damper bracket 480 for mounting the vibration damping support assembly 130 is provided on the first bend 451. The damper bracket 480 and the first bend 451 can also reinforce each other, further improving the structural stability of the frame assembly 400.
[0176] Preferably, the base 703 has support ribs 7032 with inclined tops inside the curved sides on both the left and right sides, and the first bent portion 451 is supported on the support ribs 7032. Specifically, the support ribs 7032 are arranged in the area on the first bent portion 451 for mounting the shock absorber bracket 480, to avoid insufficient strength in this area after drilling holes for mounting the shock absorber bracket 480, which would be insufficient to support the shock absorber bracket 480.
[0177] In a further embodiment, the bottom of the rear panel 421 has a second bend 452 that bends inward, and the rear end of the first bend 451 covers the outside of the second bend 452.
[0178] The second bend 452 enhances the structural strength of the rear side plate 421. Furthermore, by partially wrapping the second bend 452 with the first bend 451, the connection strength between the left side plate 422, the right side plate 423, and the rear side plate 421 is enhanced, making the connection structure more stable and less prone to deformation.
[0179] Preferably, the first bend 451 and the second bend 452 are connected in the overlapping area by a connector, for example, by screws. This further enhances the connection strength between the first bend 451 and the second bend 452.
[0180] In one specific structure, the bottom edge of the rear panel 421 extends horizontally as a whole, with an upward slope at both ends. Thus, the second bend 452 can form an inclined structure at both ends that matches the first bend 451, thereby better fitting the inner surface of the first bend 451.
[0181] More specifically, the second bend 452 is a double-bend structure, which better reinforces the structure of the rear side plate 421 itself. Specifically, the first bend at the bottom of the rear side plate 421 has an angle of less than 90°, forming a downwardly extending structure. Then it is bent again, so that the sum of the two bend angles is approximately 90°, which can achieve a close fit with the inner surface of the first bend 451.
[0182] In a further embodiment, the lower end of the first bending portion 451 is provided with a third bending portion 453 extending into the frame assembly 400, and the third bending portion 453 and the first bending portion 451 are at a certain bending angle.
[0183] Specifically, the third bend 453 extends horizontally and forms an angle greater than 90° with the first bend 451.
[0184] In the above scheme, the bottom of the left side plate 422 / right side plate 423 is bent twice to form a first bend 451 and a third bend 453 with a certain angle, which makes the structural strength of the left side plate 422 / right side plate 423 greater and the structure more stable.
[0185] On the other hand, the third bend 453 extends horizontally, so that its rear end can also fit against the second bend 452 at the bottom of the rear side panel 421, covering the outside of the second bend 452. By connecting the third bend 453 to the second bend 452 with a connector, the connection strength between the left side panel 422 / right side panel 423 and the rear side panel 421 can be further enhanced.
[0186] In one specific embodiment, screws are used to fix the third bend 453 and the second bend 452 sequentially from the bottom.
[0187] Furthermore, in this embodiment, the area on the third bend 453 that does not overlap with the second bend 452 is provided with at least one through hole, and the base 703 is provided with a positioning protrusion corresponding to the through hole. During assembly, the positioning protrusion is first inserted into the through hole on the third bend 453 to achieve pre-positioning of the frame assembly 400, and then screws are installed at the connecting hole of the first bend 451 to fix the frame assembly 400 on the base 703.
[0188] In a further embodiment, the front end of the first bending portion 451 is bent upward to form a first mounting portion 4611, which is connected to the second support member 402.
[0189] Furthermore, the front end of the third bend 453 is flush with the front end of the first bend 451, and the front ends of the first bend 451 and the third bend 453 bend upward together to form the first mounting part 4611.
[0190] In one specific structure, the width of the front region of the third bend 453 is smaller than the width of its middle and rear regions.
[0191] In this embodiment, the second support member 402 covers the outside of the first mounting portion 4611 and is fixed by a connector. In a detailed embodiment, the first support member 401 and the second support member 402 can be fixed by screws passing sequentially through the second support member 402 and the first mounting portion 4611 from the outside.
[0192] In the specific embodiment, the bottom edge of the second support member 402 is inclined in the left and right sides, so as to match the shape of the first bent part 451.
[0193] The lowest point of the second support member 402 is not lower than the lowest point of the first bend 451. The third bend 453 is horizontally positioned and flush with the lowest point of the first bend 451. Thus, the lowest point of the first bend 451 is also the lowest point of the overall structure of the frame assembly 400, and there will be no interference with other structures of the frame assembly 400 when the first bend 451 is assembled with the base 703.
[0194] The garment processing equipment provided in this embodiment has a first bending portion 451 at the bottom of the frame assembly 400, which strengthens its own structure and improves the connection stability with the base 703, making the overall structure of the machine more stable and reliable. The overlapping and fixing structure of the first bending portion 451 and the second bending portion 452 can enhance the structural stability of the first support member 401.
[0195] The above description is merely a preferred embodiment of the present invention and is not intended to limit the present invention in any way. Although the present invention has been disclosed above with reference to preferred embodiments, it is not intended to limit the present invention. Any person skilled in the art can make some modifications or alterations to the above-described technical content to create equivalent embodiments without departing from the scope of the present invention. Any simple modifications, equivalent changes, and alterations made to the above embodiments based on the technical essence of the present invention without departing from the scope of the present invention shall still fall within the scope of the present invention.
Claims
1. A garment processing device, characterized in that, include: Frame components (400); A cylindrical module (100) is disposed inside the frame assembly (400); A first packaging assembly (770) is mounted on the frame assembly (400), and the cylindrical module (100) is supported on the first packaging assembly (770) for fixing the cylindrical module (100) in the direction perpendicular to the axial direction; The second packaging assembly (780) connects the cylindrical module (100) to the frame assembly (400) for axial fixation of the cylindrical module (100).
2. The garment processing equipment according to claim 1, characterized in that, The first packaging component (770) extends axially along the cylindrical module (100) and passes through the second connecting structure (117) provided on the cylindrical module (100); at least one end of the first packaging component (770) is connected to the frame component (400); Preferably, the frame assembly (400) includes a plurality of vertically arranged side plates, which are connected in sequence to form a space for accommodating the cylindrical module (100); The two ends of the first packaging component (770) are respectively connected to two side plates disposed opposite each other.
3. The garment processing equipment according to claim 2, characterized in that, The first packaging component (770) includes: A support rod (771) extends axially along the cylindrical module (100), passes through the second connecting structure (117), and the end of the support rod (771) passes through a connecting hole on the frame assembly (400); The damping element is sleeved on the end region of the support rod (771) and contacts the frame assembly (400).
4. The garment processing equipment according to claim 3, characterized in that, One side plate of the frame assembly (400) is provided with a first connecting hole (4211), and the opposite side plate is provided with a second connecting hole (4201); One end of the support rod (771) is fitted with a first damping member (772), which is inserted into the first connecting hole (4211). The other end of the support rod (771) is fitted with a second damping member (773), the outer peripheral wall of the second damping member (773) has a circumferentially extending groove (7733); the outer peripheral area of the second connecting hole (4201) is embedded in the groove (7733); Preferably, one end of the support rod (771) has a limiting protrusion (7711) with an outer diameter larger than the outer diameter of the main body of the support rod (771), and the first damping member (772) is sleeved on the main body of the support rod (771), with its end face abutting against the limiting protrusion (7711). And / or, the other end of the support rod (771) has a reduced diameter portion (7712) with an outer diameter smaller than the outer diameter of the main body portion of the support rod (771), and the second damping member (773) is sleeved on the reduced diameter portion (7712), with its end face abutting against the end face of the main body portion of the support rod (771).
5. The garment processing equipment according to any one of claims 2-4, characterized in that, The second connection structure (117) is disposed near one end of the cylindrical module (100), and a counterweight assembly (120) is disposed at the other end of the cylindrical module (100); The counterweight assembly (120) has a perforation (123) through which the first packaging assembly (770) passes.
6. The garment processing equipment according to any one of claims 2-5, characterized in that, The second connection structure (117) includes a second connecting part (1171) and a second hinge part (1173) connected together; The second connecting part (1171) is provided with a through hole (1172) through which the first packaging assembly (770) passes, and the second hinge part (1173) is used to connect the vibration damping support assembly (130) that supports the cylindrical module (100); Preferably, one end of the vibration damping support assembly (130) is rotatably connected to the second hinge (1173), and the other end is connected to the frame assembly (400).
7. The garment processing equipment according to claim 6, characterized in that, The second connecting part (1171) protrudes from the cylindrical peripheral wall (101) of the cylindrical module (100); The second hinge portion (1173) includes a second connecting piece (1174) protruding from the cylindrical peripheral wall (101). Two second connecting pieces (1174) are spaced apart along the axial direction of the cylindrical module (100), and one of the second connecting pieces (1174) is connected to the second connecting portion (1171).
8. The garment processing equipment according to any one of claims 1-7, characterized in that, One end of the second packaging component (780) is connected to the frame component (400), and the other end is connected to one end of the cylindrical module (100); Preferably, the second packaging component (780) is connected to the end of the tube module (100) where the tube bottom (102) is located.
9. The garment processing equipment according to claim 8, characterized in that, The second packaging component (780) includes: Bolt (781) passes through the frame assembly (400) and connects to the cylindrical module (100); A support sleeve (784) is sleeved on the bolt (781), and one end abuts against the cylindrical module (100); The third damping component (783) is sleeved on the bolt (781) and makes contact with the support sleeve (784) and the frame assembly (400) respectively; Preferably, a washer (782) is fitted on the bolt (781), and the washer (782), the third damping member (783), and the support sleeve (784) are arranged sequentially along the axial direction of the bolt (781); The frame assembly (400) is provided with a third connection hole (4212) through which the second packaging assembly (780) passes. The third damping member (783) is partially inserted into the third connection hole (4212) and partially clamped between the frame assembly (400) and the gasket (782).
10. The garment processing apparatus according to any one of claims 1-9, characterized in that, The first packaging assembly (770) is disposed axially at the lower part of the cylindrical module (100); The second packaging component (780) is connected to the upper region of one end of the cylindrical module (100); Preferably, the frame assembly (400) includes a plurality of vertically arranged side plates, which are connected in sequence to form a space for accommodating the cylindrical module (100); One of the side panels has a third connection hole (4212) in the upper region for mounting the second packaging assembly (780) and a first connection hole (4211) in the lower region for mounting the first packaging assembly (770).