Stackable stand and combined laundry treatment apparatus
By using a design that allows for switching between different splicing states with detachable panels, and by utilizing snap-fit lugs and grooves, the problem of poor adaptability of stacking brackets is solved, achieving compatibility with different garment processing devices and reducing costs.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- HISENSE(SHANDONG)REFRIGERATOR CO LTD
- Filing Date
- 2025-04-29
- Publication Date
- 2026-06-02
AI Technical Summary
Existing stacking racks have poor adaptability and cannot accommodate changes in the model or type of garment handling equipment.
A detachable panel is designed that can switch between a first splicing state and a second splicing state. Through the cooperation of snap-fit lugs and snap-fit grooves, it can be adapted to the top surface of different garment processing devices, thus achieving higher compatibility.
The compatibility of the stacking rack has been improved, enabling it to be adapted to different models or types of garment handling devices, thus reducing design difficulty and cost.
Smart Images

Figure CN224313902U_ABST
Abstract
Description
Technical Field
[0001] This application relates to the field of home appliance technology, and in particular to a stacking bracket and a combined clothing processing device. Background Technology
[0002] With the development of garment processing device technology, the need for stacking garment processing devices has emerged in recent years. To stably stack two garment processing devices, stacking brackets have been developed. Specifically, by placing a stacking bracket between two garment processing devices, the purpose of stacking them can be achieved. However, the stacking brackets in related technologies have poor versatility. For example, when the model or type of the garment processing device changes, the stacking bracket cannot be well adapted to the changed garment processing device, resulting in poor adaptability of the stacking bracket. Utility Model Content
[0003] This application discloses a stacking rack and a combined garment processing device, which can solve the problem of poor adaptability of the stacking rack.
[0004] To achieve the above objectives, in a first aspect, this application discloses a stacking support, comprising:
[0005] The motherboard body, wherein the motherboard body is provided with:
[0006] A placement surface, the placement surface being used to connect to a first garment handling device;
[0007] A bearing surface, which is disposed opposite to the placement surface, is used to support the second clothing processing device;
[0008] Detachable panel, wherein the detachable panel is provided with:
[0009] First panel;
[0010] The second plate surface is disposed opposite to the first plate surface;
[0011] The detachable panel is detachably spliced to the main panel, and the splicing of the detachable panel on the main panel has at least a first splicing state and a second splicing state.
[0012] When the detachable panel is in the first splicing state, the first panel surface and the placement surface face the same direction but are not coplanar; when the detachable panel is in the second splicing state, the second panel surface and the placement surface face the same direction and are coplanar.
[0013] Since the detachable panel is detachably spliced to the main panel and the splicing of the detachable panel on the main panel has at least a first splicing state and a second splicing state, and when the detachable panel is in the first splicing state, the first panel surface and the placement surface face the same direction but are not coplanar, thus enabling the stacking bracket to be adapted to the first clothing processing device with a stepped top surface. When the detachable panel is in the second splicing state, the second panel surface and the placement surface face the same direction and are coplanar, thus enabling the stacking bracket to be adapted to the first clothing processing device with a flat top surface.
[0014] In other words, by allowing the detachable panel to switch between the first splicing state and the second splicing state, the stacking bracket can be adapted to the top surface of different first garment processing devices, thus achieving higher compatibility.
[0015] Optionally, one of the main board body and the detachable board body is provided with a snap-fit lug and the other is provided with a snap-fit groove;
[0016] When the detachable panel is in the first splicing state or the second splicing state, the snap-fit lugs are snapped into the snap-fit grooves.
[0017] When the detachable board is in the first or second splicing state, the locking lugs are engaged in the locking grooves. That is, when it is necessary to splice the detachable board to the main board, it is only necessary to engage the locking lugs in the locking grooves. Through the engagement between the locking lugs and the locking grooves, the purpose of splicing the detachable board to the main board can be achieved. On the one hand, the principle is simple, which can reduce the design difficulty of the entire stacking bracket. On the other hand, since the structure of the locking lugs and locking grooves is very simple, the cost of the stacking bracket can be reduced to a certain extent.
[0018] Optionally, the snap-fit lug is disposed on the peripheral wall of the detachable plate, and the snap-fit groove is disposed on the placement surface and penetrates the peripheral wall of the main plate.
[0019] When the snap-fit lug is snapped into the snap-fit groove, the peripheral wall of the detachable plate with the snap-fit lug contacts the peripheral wall of the main plate with the snap-fit groove.
[0020] When the snap-fit lug engages with the snap-fit groove, the peripheral wall of the detachable plate with the snap-fit lug contacts the peripheral wall of the main plate with the snap-fit groove. This allows the detachable plate to fit snugly onto the main plate, eliminating gaps at the joint and improving the overall integrity of the two. Consequently, the stacking bracket can be placed more stably on the top surface of the first garment processing device, and the second garment processing device can also be placed more stably on the stacking bracket.
[0021] Optionally, the snap-fit lug is provided with a first abutting surface and a second abutting surface that are opposite to each other in the direction from the first plate surface to the second plate surface;
[0022] When the detachable panel is in the first splicing state, the second abutting surface abuts against the bottom of the snap-fit groove; when the detachable panel is in the second splicing state, the first abutting surface abuts against the bottom of the snap-fit groove.
[0023] When the detachable panel is in the first splicing state, the second abutting surface abuts against the bottom of the locking groove, and when the detachable panel is in the second splicing state, the first abutting surface abuts against the bottom of the locking groove. That is, when it is necessary to switch the detachable panel between the first splicing state and the second splicing state, it is only necessary to make the two surfaces of the locking lug, the second abutting surface and the first abutting surface, abut against the bottom of the locking groove respectively, so as to achieve the purpose of switching the detachable panel between the first splicing state and the second splicing state. The principle is very simple and the implementation structure is also very simple. Therefore, the cost of stacking brackets can be reduced.
[0024] Optionally, the distance between the first plate surface and the second abutting surface is [value], the distance between the second plate surface and the first abutting surface is [value], and the distance between the bottom of the groove of the snap-fit groove and the placement surface is [value].
[0025] Where L1 > L3, L2 = L3.
[0026] Since L1 > L3, when the detachable panel is in the first splicing state, and the second abutting surface abuts against the bottom of the snap-fit groove, the first panel surface will protrude from the placement surface, so that the first panel surface and the placement surface together form a stepped surface, thereby enabling the stacking bracket to be adapted to the first clothing processing device with a stepped top surface.
[0027] Since L2 = L3, when the detachable panel is in the second splicing state, such that the first contact surface abuts against the bottom of the snap-fit groove, the second panel surface will form a plane with the placement surface, thereby allowing the stacking bracket to be adapted to the first clothing processing device with a flat top surface.
[0028] As can be seen, by making L1 > L3 and L2 = L3, in layman's terms, by making the snap-fit lugs eccentrically positioned on the peripheral wall of the detachable plate along the direction from the first plate surface to the second plate surface, the shape of the bottom surface of the stacking bracket can be changed by making the first abutting surface abut against the bottom of the snap-fit groove or the second abutting surface abut against the bottom of the snap-fit groove. This is very convenient and the structural design is very ingenious.
[0029] Optionally, the number of the snap-fit lugs is multiple, and the multiple snap-fit lugs include at least a first snap-fit lug and a second snap-fit lug. The first snap-fit lug and the second snap-fit lug are respectively located at the first end and the second end of the detachable plate along a first direction, and the first direction is parallel to the first plate surface.
[0030] The number of the snap-fit grooves is multiple, and the multiple snap-fit grooves include at least a first snap-fit groove and a second snap-fit groove;
[0031] When the detachable panel is in the first splicing state, the first snap-fit lug snaps into the first snap-fit groove, and the second snap-fit lug snaps into the second snap-fit groove; when the detachable panel is in the second splicing state, the first snap-fit lug snaps into the second snap-fit groove, and the second snap-fit lug snaps into the first snap-fit groove.
[0032] Since there are multiple snap-fit lugs, including at least a first snap-fit lug and a second snap-fit lug, and multiple snap-fit grooves, including at least a first snap-fit groove and a second snap-fit groove, and when the detachable panel is in the first splicing state, the first snap-fit lug snaps into the first snap-fit groove, and the second snap-fit lug snaps into the second snap-fit groove; when the detachable panel is in the second splicing state, the first snap-fit lug snaps into the second snap-fit groove, and the second snap-fit lug snaps into the first snap-fit groove.
[0033] Therefore, when the detachable board is spliced to the main board, the detachable board can be tightly spliced to the main board through the cooperation between multiple snap-fit lugs and multiple snap-fit grooves. On the one hand, this can improve the splicing accuracy of the detachable board when splicing to the main board, and on the other hand, it can also improve the splicing reliability of the detachable board when splicing to the main board.
[0034] Optionally, a first anti-mistake protrusion is provided on the end face of the first end, the first anti-mistake protrusion is located on one side of the first snap-fit protrusion along the second direction, and a second anti-mistake protrusion is provided on the end face of the second end, the second anti-mistake protrusion is located on one side of the second snap-fit protrusion along the second direction, the second direction is perpendicular to the first direction and parallel to the first plate surface.
[0035] The placement surface is also provided with a first anti-mistake groove and a second anti-mistake groove, which penetrate the peripheral wall of the main board body;
[0036] When the detachable panel is in the first splicing state, the first anti-mistake lug is engaged in the first anti-mistake groove, and the second anti-mistake lug is engaged in the second anti-mistake groove; when the detachable panel is in the second splicing state, the first anti-mistake lug is engaged in the second anti-mistake groove, and the second anti-mistake lug is engaged in the first anti-mistake groove.
[0037] By providing a first anti-mistake protrusion on the end face of the first end, a second anti-mistake protrusion on the end face of the second end, and a first anti-mistake groove and a second anti-mistake groove on the placement surface, the first anti-mistake groove cooperates with the first anti-mistake protrusion and the second anti-mistake protrusion, and the second anti-mistake groove cooperates with the first anti-mistake protrusion and the second anti-mistake protrusion, respectively. On the one hand, the splicing accuracy of the detachable board body when spliced to the main board body can be further improved. On the other hand, the splicing reliability of the detachable board body when spliced to the main board body can also be further improved.
[0038] Optionally, a third anti-mistake lug is also provided on the end face of the first end, the third anti-mistake lug being located along the second direction on the side of the first locking lug away from the first anti-mistake lug; a fourth anti-mistake lug is also provided on the end face of the second end, the fourth anti-mistake lug being located along the second direction on the side of the second locking lug away from the second anti-mistake lug.
[0039] The placement surface is also provided with a third anti-mistake groove and a fourth anti-mistake groove, the third anti-mistake groove and the fourth anti-mistake groove penetrating the peripheral wall of the main board body;
[0040] When the detachable panel is in the first splicing state, the third anti-mistake lug is engaged in the third anti-mistake groove, and the fourth anti-mistake lug is engaged in the fourth anti-mistake groove; when the detachable panel is in the second splicing state, the third anti-mistake lug is engaged in the fourth anti-mistake groove, and the fourth anti-mistake lug is engaged in the third anti-mistake groove.
[0041] Since the third anti-misalignment lug is located on the side of the first locking lug away from the first anti-misalignment lug along the second direction, and the fourth anti-misalignment lug is located on the side of the second locking lug away from the second anti-misalignment lug along the second direction, that is, the third anti-misalignment lug and the first anti-misalignment lug are respectively located on both sides of the first locking lug along the second direction, and the fourth anti-misalignment lug and the second anti-misalignment lug are respectively located on both sides of the second locking lug along the second direction, this allows both sides of the first locking lug along the second direction to be fixed by the third anti-misalignment lug and the first anti-misalignment lug, and both sides of the second locking lug along the second direction to be fixed by the third anti-misalignment lug and the fourth anti-misalignment lug. On the one hand, this can further improve the splicing accuracy when the detachable board is spliced to the main board, and on the other hand, it can further improve the splicing reliability when the detachable board is spliced to the main board.
[0042] Optionally, the first anti-mistake lug has the same structure as the second anti-mistake lug, the third anti-mistake lug has the same structure as the fourth anti-mistake lug, and the first anti-mistake lug has a different structure from the third anti-mistake lug.
[0043] By making the first and second anti-mistake protrusions have the same structure, and the third and fourth anti-mistake protrusions have the same structure, while the first and third anti-mistake protrusions have different structures, the first and second anti-mistake protrusions can only match the first or second anti-mistake groove, respectively, and the third and fourth anti-mistake protrusions can also only match the third or fourth anti-mistake groove, respectively. Conversely, neither the first nor the second anti-mistake protrusion can match the third or fourth anti-mistake groove, and neither can the third or fourth anti-mistake groove.
[0044] In this way, when the detachable board is spliced to the main board, it can only be spliced in the first or second splicing state mentioned above. The different structures of the first and third anti-foolproof lugs can play a role in preventing mistakes, thereby avoiding splicing errors when the detachable board is spliced to the main board.
[0045] Secondly, this application discloses a combined garment processing device, comprising:
[0046] First garment processing device;
[0047] The stacking support described in any of the first aspects above; and,
[0048] The second garment processing device has a stacking bracket located between the first garment processing device and the second garment processing device along the direction from the placement surface to the bearing surface, and the stacking bracket is connected to the first garment processing device and the second garment processing device respectively.
[0049] Because the detachable panels of the stacking bracket can switch between the first splicing state and the second splicing state, when the stacking bracket is applied to the combined garment processing equipment, it can be adapted to the top surface of different first garment processing devices, thus achieving higher compatibility.
[0050] Compared with the prior art, the beneficial effects of this application are as follows:
[0051] In this application, since the detachable panel is detachably spliced to the main panel and the splicing of the detachable panel on the main panel has at least a first splicing state and a second splicing state, and when the detachable panel is in the first splicing state, the first panel surface and the placement surface face the same direction but are not coplanar, thereby enabling the stacking bracket to be adapted to the first clothing processing device with a stepped top surface. When the detachable panel is in the second splicing state, the second panel surface and the placement surface face the same direction and are coplanar, thereby enabling the stacking bracket to be adapted to the first clothing processing device with a flat top surface.
[0052] In other words, by allowing the detachable panel to switch between the first splicing state and the second splicing state, the stacking bracket can be adapted to the top surface of different first garment processing devices, thus achieving higher compatibility. Attached Figure Description
[0053] To more clearly illustrate the technical solutions in the embodiments of this application, the drawings used in the embodiments will be briefly introduced below. Obviously, the drawings described below are only some embodiments of this application. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.
[0054] Figure 1 This is a schematic diagram of a stacking support structure provided in one embodiment of this application;
[0055] Figure 2 yes Figure 1 A schematic diagram of the stacked support structure from another perspective;
[0056] Figure 3 yes Figure 2 An exploded view of a stacked support structure;
[0057] Figure 4 yes Figure 1 A schematic diagram of the stacking support structure when applied to a modular garment processing device;
[0058] Figure 5 yes Figure 4 An exploded view of a modular garment processing equipment;
[0059] Figure 6 yes Figure 3 The diagram shows the structure of the stacking bracket in the middle, where the detachable plate is rotated 180° as shown by the arrow and then spliced to the main plate.
[0060] Figure 7 yes Figure 2 A magnified view of the stacked support structure at position A;
[0061] Figure 8 yes Figure 6 A magnified view of the stacked support structure at position B;
[0062] Figure 9 This is a schematic diagram of the structure of a first garment processing device according to an embodiment of this application;
[0063] Figure 10 yes Figure 3 A magnified view of the stacked support structure at position C;
[0064] Figure 11 yes Figure 3 A magnified view of the stacked support structure at position D;
[0065] Figure 12 yes Figure 1 A schematic diagram of the stacked support structure from another perspective;
[0066] Figure 13 This is another exploded view of a stacking bracket provided in an embodiment of this application;
[0067] Figure 14 yes Figure 13 An exploded view of the stacked supports from another perspective;
[0068] Figure 15 yes Figure 3 A schematic diagram of the stacked support structure from another perspective.
[0069] Explanation of reference numerals in the attached figures:
[0070] 1-Main board body; 10-Jointing point; 11-Placement surface; 111-First anti-foolproof groove; 112-Second anti-foolproof groove; 113-Third anti-foolproof groove; 114-Fourth anti-foolproof groove; 12-Bearing surface; 13-Snap-fit groove; 131-Groove bottom; 132-First snap-fit groove; 133-Second snap-fit groove;
[0071] 2-Detachable panel; 21-First panel surface; 22-Second panel surface; 23-Snap-fit lug; 231-First abutting surface; 232-Second abutting surface; 233-First snap-fit lug; 234-Second snap-fit lug; 24-First end; 241-First foolproof lug; 242-Third foolproof lug; 25-Second end; 251-Second foolproof lug; 252-Fourth foolproof lug;
[0072] 3-Fasteners;
[0073] 100 - Stacking support; 200 - First garment processing device; 201 - Top surface; 300 - Second garment processing device; 300 - Second garment processing device;
[0074] 1000 - Modular garment processing equipment. Detailed Implementation
[0075] The technical solutions of the embodiments of this application will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of this application, and not all embodiments. Based on the embodiments of this application, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of this application.
[0076] In this application, the terms "upper," "lower," "left," "right," "front," "rear," "top," "bottom," "inner," "outer," "middle," "vertical," "horizontal," "lateral," and "longitudinal" indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings. These terms are primarily for the purpose of better describing this application and its embodiments, and are not intended to limit the indicated device, element, or component to having a specific orientation, or to be constructed and operated in a specific orientation.
[0077] Furthermore, in addition to indicating location or positional relationship, some of the aforementioned terms may also have other meanings. For example, the term "above" may also be used in some cases to indicate a certain dependency or connection relationship. Those skilled in the art can understand the specific meaning of these terms in this application based on the specific circumstances.
[0078] Furthermore, the terms "installation," "setup," "equipped with," "connection," and "linked" should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral structure; 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, or an internal connection between two devices, components, or parts. Those skilled in the art can understand the specific meaning of these terms in this application based on the specific circumstances.
[0079] Furthermore, the terms "first," "second," etc., are primarily used to distinguish different devices, elements, or components (which may be the same or different in specific type and construction), and are not intended to indicate or imply the relative importance or quantity of the indicated devices, elements, or components. Unless otherwise stated, "a plurality of" means two or more.
[0080] Before explaining the technical solution of this application, the background technology of this application shall be explained first.
[0081] With the development of garment processing device technology, the need for stacking garment processing devices has emerged in recent years. To stably stack two garment processing devices, stacking brackets have been developed. Specifically, by placing a stacking bracket between two garment processing devices, the purpose of stacking them can be achieved. However, the stacking brackets in related technologies have poor versatility. For example, when the model or type of the garment processing device changes, the stacking bracket cannot be well adapted to the changed garment processing device, resulting in poor adaptability. Based on this, this application provides a new stacking bracket to solve the above problems.
[0082] The technical solution of this application will be described below with reference to specific embodiments and accompanying drawings.
[0083] Figure 1 This is a schematic diagram of the structure of a stacking support 100 provided in one embodiment of this application. Figure 2 yes Figure 1 A structural schematic diagram of the stacked support 100 from another perspective. Figure 3 yes Figure 2 An exploded view of the stacked support 100. Figure 4 yes Figure 1 The stacking support 100 is a structural diagram of the combined garment processing equipment 1000.
[0084] See Figure 1 , Figure 2 and Figure 3 The stacking bracket 100 includes a motherboard body 1, on which a placement surface 11 is provided. Figure 2 (Bottom surface of the main board 1).
[0085] See Figure 2 and Figure 4 The placement surface 11 is used to connect to the first garment handling device 200.
[0086] The placement surface 11 can be a plane or any surface that can match the first clothing processing device 200; this embodiment does not limit this.
[0087] By setting the placement surface 11, it is beneficial for the stacking bracket 100 to be installed more stably on the first garment processing device 200 through the placement surface 11.
[0088] The stacking bracket 100 can be installed on the first garment processing device 200 by screws or any other possible means, and this embodiment does not limit this.
[0089] The aforementioned first garment handling device 200 can be a washing machine. Specifically, when the first garment handling device 200 is a washing machine, the first garment handling device 200 can be as follows: Figure 4 The single-drum washing machine shown is an example.
[0090] Of course, the first garment processing device 200 can also be a shoe washing machine or a dryer, etc., and this embodiment does not limit it.
[0091] In some embodiments, see Figure 2 , Figure 4 and Figure 5 , Figure 5 yes Figure 4 An exploded view of a combined clothing processing device 1000 shows that the main body 1 is also provided with a bearing surface 12, which is arranged opposite to the placement surface 11 and is used to support the second clothing processing device 300.
[0092] Since the bearing surface 12 and the placement surface 11 are arranged opposite to each other, when the bearing surface 12 carries the second clothing processing device 300, the second clothing processing device 300 and the first clothing processing device 200 can be stacked together by the stacking bracket 100. This allows the overall footprint of the second clothing processing device 300 and the first clothing processing device 200 to be smaller and make full use of the upper space, thereby achieving the purpose of saving floor space and making full use of the upper space.
[0093] The structure of the bearing surface 12 can be the same as or similar to that of the placement surface 11, which will not be described in detail here.
[0094] The aforementioned second garment handling device 300 can be a dryer or a washing machine, etc. When the second garment handling device 300 is a washing machine, specifically, the second garment handling device 300 can be as follows: Figure 3 The double-drum washing machine shown is of course a single-drum washing machine, etc., but this embodiment does not limit it.
[0095] In some embodiments, see Figure 1 and Figure 3 The stacking bracket 100 also includes a detachable plate 2, on which a first plate surface 21 and a second plate surface 22 are provided, with the second plate surface 22 being disposed opposite to the first plate surface 21.
[0096] The first plate surface 21 and the second plate surface 22 can be parallel to each other, and the first plate surface 21 and the second plate surface 22 can be parallel to the placement surface 11 respectively.
[0097] See Figure 2 , Figure 3 and Figure 6 , Figure 6 yes Figure 3 The stacking bracket 100 is shown in the schematic diagram of the structure of the detachable board 2 being spliced to the main board 1 after being rotated 180° as shown by the arrow. The detachable board 2 is detachably spliced to the main board 1, and the splicing of the detachable board 2 on the main board 1 has at least a first splicing state. Figure 2 (middle state) and second splicing state ( Figure 6 (Mid-state).
[0098] join Figure 2 and Figure 7 , Figure 7 yes Figure 2 The enlarged view of the stacking bracket 100 at position A shows that when the detachable plate 2 is in the first splicing state, the first plate surface 21 and the placement surface 11 face the same direction but are not coplanar.
[0099] Wherein, the first plate surface 21 and the placement surface 11 have the same orientation but are not coplanar, meaning that the first plate surface 21 has the same orientation as the placement surface 11 and protrudes from the placement surface 11. Figure 7 (in the middle state), or, the first plate surface 21 faces the same direction as the placement surface 11 and is recessed into the placement surface 11.
[0100] When the first plate surface 21 and the placement surface 11 face the same direction but are not coplanar, the first plate surface 21 and the placement surface 11 can together form a stepped surface with a height difference. See below. Figure 5 When the top surface 201 of the first garment processing device 200 is a stepped surface with a height difference ( Figure 5 When the top surface of the first garment processing device 200 is uneven and forms a stepped surface, the stepped surface formed by the first plate surface 21 and the placement surface 11 can fit well with the top surface 201 of the first garment processing device 200 without being suspended, so that the stacking bracket 100 can be stably installed on the top surface 201 of the first garment processing device 200.
[0101] See Figure 6 and Figure 8 , Figure 8 yes Figure 6 The enlarged view of the stacking bracket 100 at position B shows that when the detachable plate 2 is in the second splicing state, the second plate surface 22 and the placement surface 11 have the same orientation and are coplanar.
[0102] When the second plate surface 22 and the placement surface 11 face the same direction and are coplanar, the second plate surface 22 and the placement surface 11 can form a flat plane. See [link / reference needed]. Figure 9 , Figure 9This is a schematic diagram of the structure of a first clothing processing device 200 provided in an embodiment of this application. When the top surface 201 of the first clothing processing device 200 is a flat plane, the plane formed by the second plate surface 22 and the placement surface 11 can fit well with the top surface 201 without being suspended. This allows the stacking bracket 100 to be stably installed on the top surface 201 of the first clothing processing device 200.
[0103] As can be seen, since the detachable plate 2 is detachably spliced to the main plate 1 and the splicing of the detachable plate 2 on the main plate 1 has at least a first splicing state and a second splicing state, and when the detachable plate 2 is in the first splicing state, the first plate surface 21 and the placement surface 11 face the same direction but are not coplanar, thereby enabling the stacking bracket 100 to be adapted to the first clothing processing device 200 with a stepped top surface 201. When the detachable plate 2 is in the second splicing state, the second plate surface 22 and the placement surface 11 face the same direction and are coplanar, thereby enabling the stacking bracket 100 to be adapted to the first clothing processing device 200 with a flat top surface 201.
[0104] That is, by switching the detachable panel 2 between the first splicing state and the second splicing state, the stacking bracket 100 can be adapted to the top surface of different first clothing processing devices 200, thus achieving higher compatibility.
[0105] For example, see Figure 5 In some scenarios, the circumference of the top surface 201 of the first garment processing device 200 protrudes from the center. In such scenarios, the detachable plate 2 can be in a second splicing state with the first plate surface 21 protruding from the placement surface 11. In this way, when the stacking bracket 100 is installed on the top surface of the first garment processing device 200, the placement surface 11 of the main plate 1 can be set to correspond to the circumference of the top surface 201, and the first plate surface 21 of the detachable plate 2 can correspond to the center of the first garment processing device 200. In this way, the placement surface 11 of the main plate 1 can fit with the circumference of the top surface 201 of the first garment processing device 200, and the first plate surface 21 of the detachable plate 2 can fit with the center of the first garment processing device 200, without any suspension. This allows the stacking bracket 100 to be stably installed on the top surface 201 of the first garment processing device 200.
[0106] In some embodiments, see Figure 1 , Figure 2 and Figure 3 The stacking support 100 includes a main board body 1 and a detachable board body 2. The main board body 1 is provided with a placement surface 11 and a bearing surface 12. The placement surface 11 is used to connect to the first clothing processing device 200, and the bearing surface 12 is disposed opposite to the placement surface 11 and is used to support the second clothing processing device 300.
[0107] See Figure 1 and Figure 2 The detachable plate 2 is provided with a first plate surface 21 and a second plate surface 22, with the second plate surface 22 being disposed opposite to the first plate surface 21.
[0108] See Figure 2 and Figure 6 The detachable board 2 is detachably spliced to the main board 1, and the splicing of the detachable board 2 on the main board 1 exists in at least a first splicing state. Figure 2 (middle state) and second splicing state ( Figure 6 (Mid-state).
[0109] When the detachable panel 2 is in the first splicing state, the first panel surface 21 and the placement surface 11 face the same direction and are coplanar; when the detachable panel 2 is in the second splicing state, the second panel surface 22 and the placement surface 11 face the same direction but are not coplanar.
[0110] In this embodiment, since the detachable plate 2 is detachably spliced to the main plate 1 and the splicing of the detachable plate 2 on the main plate 1 has at least a first splicing state and a second splicing state, and when the detachable plate 2 is in the first splicing state, the first plate surface 21 and the placement surface 11 face the same direction but are not coplanar, thereby enabling the stacking bracket 100 to be adapted to the first clothing processing device 200 whose top surface 201 is a stepped surface. When the detachable plate 2 is in the second splicing state, the second plate surface 22 and the placement surface 11 face the same direction and are coplanar, thereby enabling the stacking bracket 100 to be adapted to the first clothing processing device 200 whose top surface 201 is a flat surface.
[0111] That is, by switching the detachable panel 2 between the first splicing state and the second splicing state, the stacking bracket 100 can be adapted to the top surface of different first clothing processing devices 200, thus achieving higher compatibility.
[0112] There are multiple ways to achieve the detachable board 2 being detachably spliced to the main board 1. In one possible implementation, see [link to relevant documentation]. Figure 3 , Figure 10 and Figure 11 , Figure 10 yes Figure 3 A magnified view of the stacked support structure at position C. Figure 11 yes Figure 3 The enlarged view of the stacking bracket at position D shows that one of the main board body 1 and the detachable board body 2 is provided with a snap-fit lug 23 and the other is provided with a snap-fit groove 13.
[0113] See Figure 2 and Figure 7When the detachable panel 2 is in the first splicing state or the second splicing state, the snap-fit lugs 23 are snapped into the snap-fit grooves 13.
[0114] Since the snap-fit lug 23 is snapped into the snap-fit groove 13 when the detachable board 2 is in the first splicing state or the second splicing state, that is, when it is necessary to splice the detachable board 2 to the main board 1, it is only necessary to snap the snap-fit lug 23 into the snap-fit groove 13. Through the snap-fit cooperation between the snap-fit lug 23 and the snap-fit groove 13, the purpose of splicing the detachable board 2 to the main board 1 can be achieved. On the one hand, the implementation principle is simple, which can reduce the design difficulty of the entire stacking bracket 100. On the other hand, since the structure of the snap-fit lug 23 and the snap-fit groove 13 is very simple, the cost of the stacking bracket 100 can be reduced to a certain extent.
[0115] The phrase "one of the main board body 1 and the detachable board body 2 is provided with a snap-fit lug 23 and the other is provided with a snap-fit groove 13" means that the main board body 1 is provided with a snap-fit lug 23 and the detachable board body 2 is provided with a snap-fit groove 13, or the main board body 1 is provided with a snap-fit groove 13 and the detachable board body 2 is provided with a snap-fit lug 23.
[0116] The shape of the aforementioned snap-fit lug 23 can be as follows: Figure 10 The semi-circle shown is not limited to any other possible shape, such as the snap-fit lug 23. The shape of the snap-fit groove 13 only needs to match the shape of the snap-fit lug 23; this embodiment does not limit this as well.
[0117] In some embodiments, see Figure 3 , Figure 10 and Figure 11 The snap-fit lug 23 is provided on the peripheral wall of the detachable plate 2. Figure 10 The end face of the detachable plate 2), the snap-fit groove 13 is provided on the placement surface 11 and penetrates the peripheral wall of the main plate 1 (the inner side wall of the main plate 1 in 11).
[0118] See Figure 12 , Figure 12 yes Figure 1 The stacking bracket 100 is shown in a structural diagram from another perspective. When the snap-fit lug 23 is snapped into the snap-fit groove 13, the peripheral wall of the detachable plate 2 with the snap-fit lug 23 contacts the peripheral wall of the main plate 1 with the snap-fit groove 13.
[0119] When the snap-fit lug 23 snaps into the snap-fit groove 13, the peripheral wall of the detachable plate 2 with the snap-fit lug 23 contacts the peripheral wall of the main plate 1 with the snap-fit groove 13. This allows the detachable plate 2 to fit snugly into the main plate 1, preventing gaps at the joint 10 between the detachable plate 2 and the main plate 1. This improves the integrity of the detachable plate 2 and the main plate 1. Consequently, the stacking bracket 100 can be placed more stably on the top surface of the first garment processing device 200, and the second garment processing device 300 can be placed more stably on the stacking bracket 100.
[0120] In some embodiments, see Figure 13 and Figure 14 , Figure 13 This is another exploded view of the stacking support 100 provided in one embodiment of this application. Figure 14 yes Figure 13 The exploded view of the stacking bracket 100 from another perspective shows that the stacking bracket 100 also includes a fastener 3, which is located on the side of the bearing surface 12 away from the placement surface 11. A portion of the fastener 3 passes through the bottom 131 of the snap-fit groove 13 and is locked to the snap-fit lug 23.
[0121] Since the fastener 3 is located on the side of the bearing surface 12 away from the placement surface 11, part of the structure of the fastener 3 passes through the bottom 131 of the snap-fit groove 13 and locks to the snap-fit lug 23. Therefore, the fastener 3 can tightly fix the detachable plate 2 to the main plate 1, thereby preventing the detachable plate 2 from falling off the main plate 1 after it is spliced to the main plate 1.
[0122] The fastener 3 can be a screw or any other possible component, as long as it can lock the bottom 131 of the locking groove 13 to the locking lug 23. This embodiment does not limit the fastener 3.
[0123] In some embodiments, see Figure 13 and Figure 14 The snap-fit lug 23 is provided with a first abutting surface 231 and a second abutting surface 232 that are opposite to each other in the direction from the first plate surface 21 to the second plate surface 22.
[0124] When the detachable panel 2 is in the first splicing state, the second abutting surface 232 abuts against the bottom 131 of the locking groove 13. When the detachable panel 2 is in the second splicing state, the first abutting surface 231 abuts against the bottom 131 of the locking groove 13.
[0125] When the detachable plate 2 is in the first splicing state, the second abutting surface 232 abuts against the bottom 131 of the locking groove 13, and when the detachable plate 2 is in the second splicing state, the first abutting surface 231 abuts against the bottom 131 of the locking groove 13. That is, when it is necessary to switch the detachable plate 2 between the first splicing state and the second splicing state, it is only necessary to make the two surfaces of the locking lug 23: the second abutting surface 232 and the first abutting surface 231 abut against the bottom 131 of the locking groove 13 respectively, so as to achieve the purpose of switching the detachable plate 2 between the first splicing state and the second splicing state. The principle is very simple and the implementation structure is also very simple. Therefore, the cost of the stacking bracket 100 can be reduced.
[0126] The second abutment surface 232 and the first abutment surface 231 can both be approximately parallel to the first plate surface 21.
[0127] In some embodiments, see Figure 15 , Figure 15 yes Figure 3 The stacking bracket 100 is shown in a structural schematic diagram from another perspective. The distance between the first plate surface 21 and the second abutment surface 232 is L1, the distance between the second plate surface 22 and the first abutment surface 231 is L2, and the distance between the bottom 131 of the snap-fit groove 13 and the placement surface 11 is L3.
[0128] Where L1 > L3, L2 = L3.
[0129] Since L1 > L3, when the detachable plate 2 is in the first splicing state, and the second abutting surface 232 abuts against the bottom 131 of the snap-fit groove 13, the first plate surface 21 will protrude from the placement surface 11, so that the first plate surface 21 and the placement surface 11 together form a stepped surface, thereby enabling the stacking bracket 100 to be adapted to the first clothing processing device 200 whose top surface 201 is a stepped surface.
[0130] Since L2 = L3, when the detachable plate 2 is in the second splicing state, such that the first abutting surface 231 abuts against the bottom 131 of the snap-fit groove 13, the second plate surface 22 will form a plane with the placement surface 11, thereby enabling the stacking bracket 100 to be adapted to the first clothing processing device 200 with the top surface 201 being a plane.
[0131] As can be seen, by making L1 > L3 and L2 = L3, in layman's terms, by making the snap-fit lug 23 eccentrically positioned on the peripheral wall of the detachable plate 2 along the direction from the first plate surface 21 to the second plate surface 22, the shape of the bottom surface of the stacking bracket 100 can be changed by making the first abutting surface 231 abut against the bottom 131 of the snap-fit groove 13 or the second abutting surface 232 abut against the bottom 131 of the snap-fit groove 13. This is very convenient and the structural design is very ingenious.
[0132] In some embodiments, see Figure 14 The number of snap-fit lugs 23 is multiple, and the multiple snap-fit lugs 23 include at least a first snap-fit lug 233 and a second snap-fit lug 234, the first snap-fit lug 233 and the second snap-fit lug 234 are along the first direction ( Figure 14 The X-axis direction is located at the first end 24 and the second end 25 of the detachable plate 2, respectively, and the first direction is parallel to the first plate surface 21.
[0133] The number of snap-fit grooves 13 is multiple, and the multiple snap-fit grooves 13 include at least a first snap-fit groove 132 and a second snap-fit groove 133.
[0134] When the detachable panel 2 is in the first splicing state, the first snap-fit lug 233 snaps into the first snap-fit groove 132, and the second snap-fit lug 234 snaps into the second snap-fit groove 133; when the detachable panel 2 is in the second splicing state, the first snap-fit lug 233 snaps into the second snap-fit groove 133, and the second snap-fit lug 234 snaps into the first snap-fit groove 132.
[0135] Since there are multiple snap-fit lugs 23, each snap-fit lug 23 includes at least a first snap-fit lug 233 and a second snap-fit lug 234, and there are multiple snap-fit grooves 13, each snap-fit groove 13 includes at least a first snap-fit groove 132 and a second snap-fit groove 133, and when the detachable plate 2 is in the first splicing state, the first snap-fit lug 233 snaps into the first snap-fit groove 132, and the second snap-fit lug 234 snaps into the second snap-fit groove 133; when the detachable plate 2 is in the second splicing state, the first snap-fit lug 233 snaps into the second snap-fit groove 133, and the second snap-fit lug 234 snaps into the first snap-fit groove 132.
[0136] Therefore, when the detachable board 2 is spliced to the main board 1, the detachable board 2 can be tightly spliced to the main board 1 through the cooperation between the multiple snap-fit lugs 23 and the multiple snap-fit grooves 13. On the one hand, it can improve the splicing accuracy of the detachable board 2 when spliced to the main board 1, and on the other hand, it can also improve the splicing reliability of the detachable board 2 when spliced to the main board 1.
[0137] In some embodiments, see Figure 14 A first anti-fooling lug 241 is provided on the end face of the first end 24, and the first anti-fooling lug 241 is along the second direction ( Figure 14 The second end 25 is provided with a second anti-fooling lug 251 on the end face of the second end 25 (in the Y-axis direction). The second anti-fooling lug 251 is located on one side of the second latching lug 234 along the second direction. The second direction is perpendicular to the first direction and parallel to the first plate surface 21.
[0138] The placement surface 11 is also provided with a first anti-foolproof groove 111 and a second anti-foolproof groove 112, which penetrate the peripheral wall of the main board body 1.
[0139] When the detachable panel 2 is in the first splicing state, the first anti-mistake lug 241 is engaged in the first anti-mistake groove 111, and the second anti-mistake lug 251 is engaged in the second anti-mistake groove 112; when the detachable panel 2 is in the second splicing state, the first anti-mistake lug 241 is engaged in the second anti-mistake groove 112, and the second anti-mistake lug 251 is engaged in the first anti-mistake groove 111.
[0140] By providing a first anti-mistake protrusion 241 on the end face of the first end 24, a second anti-mistake protrusion 251 on the end face of the second end 25, and providing a first anti-mistake groove 111 and a second anti-mistake groove 112 on the placement surface 11, the first anti-mistake groove 111 cooperates with the first anti-mistake protrusion 241 and the second anti-mistake protrusion 251, and the second anti-mistake groove 112 cooperates with the first anti-mistake protrusion 241 and the second anti-mistake protrusion 251, respectively. On the one hand, the splicing accuracy of the detachable plate 2 when spliced to the main plate 1 can be further improved. On the other hand, the splicing reliability of the detachable plate 2 when spliced to the main plate 1 can also be further improved.
[0141] Since the first anti-mistake groove 111 can cooperate with the first anti-mistake lug 241 and the second anti-mistake lug 251 respectively, and the second anti-mistake groove 112 can also cooperate with the first anti-mistake lug 241 and the second anti-mistake lug 251 respectively, the structures of the first anti-mistake groove 111 and the second anti-mistake groove 112 can be the same, and the structures of the first anti-mistake lug 241 and the second anti-mistake lug 251 can be the same. In this way, it can be ensured that the first anti-mistake groove 111 can cooperate with both the first anti-mistake lug 241 and the second anti-mistake lug 251. Similarly, it can be ensured that the second anti-mistake groove 112 can cooperate with both the first anti-mistake lug 241 and the second anti-mistake lug 251.
[0142] Among them, see Figure 14 The first anti-fooling lug 241 and the second anti-fooling lug 251 can both be L-shaped hook structures. Of course, in other embodiments, the first anti-fooling lug 241 and the second anti-fooling lug 251 can also be other shapes. This embodiment does not limit this.
[0143] In some embodiments, see Figure 14 A third anti-fooling lug 242 is also provided on the end face of the first end 24, and the third anti-fooling lug 242 is along the second direction ( Figure 14The first locking lug 233 is located on the side opposite to the first anti-mistake lug 241 in the Y-axis direction. A fourth anti-mistake lug 252 is also provided on the end face of the second end 25, and the fourth anti-mistake lug 252 is located on the side opposite to the second locking lug 234 in the second direction.
[0144] The placement surface 11 is also provided with a third anti-foolproof groove 113 and a fourth anti-foolproof groove 114, which penetrate the peripheral wall of the main board body 1.
[0145] When the detachable panel 2 is in the first splicing state, the third anti-mistake lug 242 is engaged in the third anti-mistake groove 113, and the fourth anti-mistake lug 252 is engaged in the fourth anti-mistake groove 114; when the detachable panel 2 is in the second splicing state, the third anti-mistake lug 242 is engaged in the fourth anti-mistake groove 114, and the fourth anti-mistake lug 252 is engaged in the third anti-mistake groove 113.
[0146] Since the third anti-mistake lug 242 is located along the second direction on the side of the first locking lug 233 opposite to the first anti-mistake lug 241, and the fourth anti-mistake lug 252 is located along the second direction on the side of the second locking lug 234 opposite to the second anti-mistake lug 251, that is, the third anti-mistake lug 242 and the first anti-mistake lug 241 are respectively located on both sides of the first locking lug 233 along the second direction, and the fourth anti-mistake lug 252 and the second anti-mistake lug 251 are respectively located on both sides of the second locking lug 234 along the second direction, thus... This allows the first locking lug 233 to be fixed on both sides along the second direction by the third anti-fooling lug 242 and the first anti-fooling lug 241, and the second locking lug 234 to be fixed on both sides along the second direction by the third anti-fooling lug 242 and the fourth anti-fooling lug 252. On the one hand, this can further improve the splicing accuracy when the detachable plate 2 is spliced to the main plate 1, and on the other hand, it can further improve the splicing reliability when the detachable plate 2 is spliced to the main plate 1.
[0147] In this embodiment, both the third anti-fooling lug 242 and the fourth anti-fooling lug 252 can be L-shaped hook structures. Of course, in other embodiments, the third anti-fooling lug 242 and the fourth anti-fooling lug 252 can also be other shapes. This embodiment does not limit this.
[0148] In some embodiments, see Figure 14 The first anti-mistake lug 241 and the second anti-mistake lug 251 have the same structure, the third anti-mistake lug 242 and the fourth anti-mistake lug 252 have the same structure, and the first anti-mistake lug 241 and the third anti-mistake lug 242 have different structures.
[0149] By making the first anti-mistake protrusion 241 and the second anti-mistake protrusion 251 have the same structure, and the third anti-mistake protrusion 242 and the fourth anti-mistake protrusion 252 have the same structure, while making the first anti-mistake protrusion 241 and the third anti-mistake protrusion 242 have different structures, the first anti-mistake protrusion 241 and the second anti-mistake protrusion 251 can only match the first anti-mistake groove 111 or the second anti-mistake groove 112 respectively, and the third anti-mistake protrusion 242 and the fourth anti-mistake protrusion 252 can only match the third anti-mistake groove 113 or the fourth anti-mistake groove 114 respectively. Neither the first anti-mistake protrusion 241 nor the second anti-mistake protrusion 251 can match the third anti-mistake groove 113 or the fourth anti-mistake groove 114, and neither the third anti-mistake protrusion 242 nor the fourth anti-mistake protrusion 252 can match the first anti-mistake groove 111 or the second anti-mistake groove 112.
[0150] In this way, when the detachable board 2 is spliced to the main board 1, it can only be spliced in the first splicing state or the second splicing state. The different structures of the first anti-foolproof lug 241 and the third anti-foolproof lug 242 can play a role in preventing mistakes, thereby avoiding splicing errors when the detachable board 2 is spliced to the main board 1.
[0151] One embodiment of this application also provides a combined garment processing device 1000, see [link to relevant documentation]. Figure 4 The combined garment processing equipment 1000 includes a first garment processing device 200, a stacking support 100, and a second garment processing device 300, wherein the stacking support 100 is positioned along the placement surface 11 towards the bearing surface 12. Figure 4 The stacking bracket 100 is located between the first garment processing device 200 and the second garment processing device 300 in the Z-axis direction, and is connected to the first garment processing device 200 and the second garment processing device 300 respectively.
[0152] The structure of the stacking bracket 100 can be the same as that of any of the stacking brackets 100 described in the above embodiments, and can bring the same or similar beneficial effects. For details, please refer to the description in the above embodiments. This embodiment will not repeat the description here.
[0153] In this embodiment, since the detachable plate 2 of the stacking bracket 100 can switch between the first splicing state and the second splicing state, when the stacking bracket 100 is applied to the combined clothing processing device 1000, the stacking bracket 100 can be adapted to the top surface of different first clothing processing devices 200, thus achieving higher compatibility.
[0154] In some embodiments, the first clothing processing device 200 may be a single-drum washing machine and the second clothing processing device 300 may be a twin-drum washing machine. Of course, the first clothing processing device 200 and the second clothing processing device 300 may also be other possible clothing processing devices, and this embodiment does not limit them.
[0155] Finally, it should be noted that the above embodiments are only used to illustrate the technical solutions of this application, and are not intended to limit them. Although this application has been described in detail with reference to the foregoing embodiments, those skilled in the art should understand that modifications can still be made to the technical solutions described in the foregoing embodiments, or equivalent substitutions can be made to some or all of the technical features therein. Such modifications or substitutions do not cause the essence of the corresponding technical solutions to deviate from the scope of the technical solutions of the embodiments of this application.
Claims
1. A stacking support (100), characterized in that, include: A motherboard body (1), wherein the motherboard body (1) is provided with: Placement surface (11), the placement surface (11) is used to connect to the first garment handling device (200); The bearing surface (12) is arranged opposite to the placement surface (11) and is used to support the second clothing processing device (300); A detachable plate (2), wherein the detachable plate (2) is provided with: First panel (21); The second plate surface (22) is disposed opposite to the first plate surface (21); The detachable plate (2) is detachably spliced to the main plate (1), and the splicing of the detachable plate (2) on the main plate (1) has at least a first splicing state and a second splicing state; When the detachable panel (2) is in the first splicing state, the first panel surface (21) and the placement surface (11) face the same direction but are not coplanar; when the detachable panel (2) is in the second splicing state, the second panel surface (22) and the placement surface (11) face the same direction and are coplanar.
2. The stacking support (100) according to claim 1, characterized in that, One of the main board body (1) and the detachable board body (2) is provided with a snap-fit lug (23), and the other is provided with a snap-fit groove (13); When the detachable plate (2) is in the first splicing state or the second splicing state, the snap-fit lugs (23) are snapped into the snap-fit grooves (13).
3. The stacking support (100) according to claim 2, characterized in that, The snap-fit lug (23) is disposed on the peripheral wall of the detachable plate (2), and the snap-fit groove (13) is disposed on the placement surface (11) and penetrates the peripheral wall of the main plate (1); When the snap-fit lug (23) is snapped into the snap-fit groove (13), the peripheral wall of the detachable plate (2) with the snap-fit lug (23) is in contact with the peripheral wall of the main plate (1) with the snap-fit groove (13).
4. The stacking support (100) according to claim 3, characterized in that, The snap-fit lug (23) is provided with a first abutting surface (231) and a second abutting surface (232) that are opposite to each other in the direction from the first plate surface (21) to the second plate surface (22); When the detachable plate (2) is in the first splicing state, the second abutting surface (232) abuts against the bottom (131) of the snap-fit groove (13); when the detachable plate (2) is in the second splicing state, the first abutting surface (231) abuts against the bottom (131) of the snap-fit groove (13).
5. The stacking support (100) according to claim 4, characterized in that, The distance between the first plate surface (21) and the second abutting surface (232) is L1, the distance between the second plate surface (22) and the first abutting surface (231) is L2, and the distance between the bottom (131) of the snap-fit groove (13) and the placement surface (11) is L3. Where L1 > L3, L2 = L3.
6. The stacking support (100) according to claim 4, characterized in that, The number of the snap-fit lugs (23) is multiple, and the multiple snap-fit lugs (23) include at least a first snap-fit lug (233) and a second snap-fit lug (234). The first snap-fit lug (233) and the second snap-fit lug (234) are located at the first end (24) and the second end (25) of the detachable plate (2) respectively along a first direction. The first direction is parallel to the first plate surface (21). The number of the snap-fit grooves (13) is multiple, and the multiple snap-fit grooves (13) include at least a first snap-fit groove (132) and a second snap-fit groove (133); When the detachable plate (2) is in the first splicing state, the first snap-fit lug (233) snaps into the first snap-fit groove (132), and the second snap-fit lug (234) snaps into the second snap-fit groove (133); when the detachable plate (2) is in the second splicing state, the first snap-fit lug (233) snaps into the second snap-fit groove (133), and the second snap-fit lug (234) snaps into the first snap-fit groove (132).
7. The stacking support (100) according to claim 6, characterized in that, A first anti-mistake lug (241) is provided on the end face of the first end (24), and the first anti-mistake lug (241) is located on one side of the first snap-fit lug (233) along the second direction. A second anti-mistake lug (251) is provided on the end face of the second end (25), and the second anti-mistake lug (251) is located on one side of the second snap-fit lug (234) along the second direction. The second direction is perpendicular to the first direction and parallel to the first plate surface (21). The placement surface (11) is also provided with a first anti-fooling groove (111) and a second anti-fooling groove (112), the first anti-fooling groove (111) and the second anti-fooling groove (112) penetrating the peripheral wall of the main body (1); When the detachable panel (2) is in the first splicing state, the first anti-fooling lug (241) is engaged in the first anti-fooling groove (111), and the second anti-fooling lug (251) is engaged in the second anti-fooling groove (112); when the detachable panel (2) is in the second splicing state, the first anti-fooling lug (241) is engaged in the second anti-fooling groove (112), and the second anti-fooling lug (251) is engaged in the first anti-fooling groove (111).
8. The stacking support (100) according to claim 7, characterized in that, A third anti-mistake lug (242) is also provided on the end face of the first end (24), and the third anti-mistake lug (242) is located on the side of the first locking lug (233) away from the first anti-mistake lug (241) along the second direction; a fourth anti-mistake lug (252) is also provided on the end face of the second end (25), and the fourth anti-mistake lug (252) is located on the side of the second locking lug (234) away from the second anti-mistake lug (251) along the second direction; The placement surface (11) is also provided with a third anti-mistake groove (113) and a fourth anti-mistake groove (114), which penetrate the peripheral wall of the main body (1); When the detachable panel (2) is in the first splicing state, the third anti-mistake lug (242) is engaged in the third anti-mistake groove (113), and the fourth anti-mistake lug (252) is engaged in the fourth anti-mistake groove (114); when the detachable panel (2) is in the second splicing state, the third anti-mistake lug (242) is engaged in the fourth anti-mistake groove (114), and the fourth anti-mistake lug (252) is engaged in the third anti-mistake groove (113).
9. The stacking support (100) according to claim 8, characterized in that, The first anti-mistake lug (241) has the same structure as the second anti-mistake lug (251), the third anti-mistake lug (242) has the same structure as the fourth anti-mistake lug (252), and the first anti-mistake lug (241) has a different structure from the third anti-mistake lug (242).
10. A combined garment processing device (1000), characterized in that, include: First garment processing device (200); Stacking support (100) as described in any one of claims 1-9; as well as, The second garment processing device (300) has a stacking bracket (100) located between the first garment processing device (200) and the second garment processing device (300) along the direction from the placement surface (11) to the bearing surface (12), and the stacking bracket (100) is connected to the first garment processing device (200) and the second garment processing device (300) respectively.