Laundry treating apparatus
By adopting a triangular distribution design with three-point support connecting the motor and the outer cylinder in the garment processing equipment, the problem of poor stability after motor assembly is solved, achieving higher assembly efficiency and stability while reducing costs.
Patent Information
- Application Number
- CN202520499583.0
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-03-20
- Publication Date
- 2026-02-10
- Estimated Expiration
- 2035-03-20
AI Technical Summary
In existing garment processing equipment, the motor assembly is unstable and inconvenient, especially the two-point support structure design which has large vibration, and the four-point support structure design which has many installation points and high cost, and unreasonable spatial layout.
The motor and outer cylinder are connected by a three-point support system. The three mounting points are distributed in a triangle and connected to the outer cylinder through a support structure, which enhances the stability between the motor and the outer cylinder, reduces the number of mounting points to save costs and improve assembly efficiency.
It improves the stability of the motor after assembly, reduces vibration, optimizes the spatial layout, and reduces assembly difficulty and cost.
Smart Images

Figure CN223893076U_ABST
Abstract
Description
Technical Field
[0001] This disclosure relates to the field of household appliance technology, and in particular to a garment processing device. Background Technology
[0002] Clothing processing equipment is a device that converts electrical energy into mechanical energy to wash or dry clothes. It has now entered thousands of households and is very common.
[0003] Currently, garment processing equipment uses electric motors as the driving component. The motors are typically mounted on the outer drum of the garment processing equipment. Due to space constraints, motor assembly is inconvenient, and the assembled motor has poor stability, increasing vibration due to unstable support. Utility Model Content
[0004] In view of this, the purpose of this disclosure is to provide a garment processing device to improve the technical problems of poor stability and inconvenience of motor assembly in the prior art.
[0005] To achieve at least one of the above objectives, this disclosure provides the following technical solutions:
[0006] In a first aspect, a garment processing device is provided, comprising:
[0007] The enclosure, the cylindrical assembly and the motor housed inside the enclosure;
[0008] The cylinder assembly includes:
[0009] outer cylinder;
[0010] The inner cylinder is rotatably disposed inside the outer cylinder via a rotating shaft;
[0011] The motor is located on the outer periphery of the outer cylinder and is configured to drive the inner cylinder to rotate;
[0012] Garment processing equipment also includes:
[0013] The connecting component is configured to connect the cylinder assembly and the motor;
[0014] The connection components include:
[0015] The support arm is mounted on the motor housing;
[0016] The connecting part is located on the support arm;
[0017] The mating part is connected to the outer cylinder, and the mating part is adapted to connect with the connecting part;
[0018] The number of connecting components is three, thus the number of connecting parts is three.
[0019] The orthogonal projections of the three connecting parts onto the first plane form a triangular distribution.
[0020] Wherein, the first plane is a plane perpendicular to the first direction, and the first direction is the axial direction of the motor's output shaft.
[0021] In the above technical solution, three connecting components are used to connect the motor and the outer cylinder. The motor is mounted on the outer cylinder with three supports. Compared to a two-point support structure, this design provides greater stability after motor assembly. Compared to a four-point support structure, fewer mounting points are needed between the motor and the outer cylinder, allowing for a more rational layout of these points within a limited space, improving assembly efficiency, and saving costs. Furthermore, since the transmission between the motor's output shaft and rotating shaft typically uses a belt, after assembly, the belt will exert significant tension on the output shaft and motor, at least in the direction of the output shaft and rotating shaft arrangement, affecting the stability of the assembled motor. Therefore, the orthogonal projections of the three connecting parts on the first plane are designed to form a triangular distribution. The lines connecting the orthogonal projections of the three mounting points between the motor and the outer cylinder on the first plane can form a triangular structure. Since the first plane is perpendicular to the axial direction of the motor's output shaft, the three mounting points can form a triangular structure, at least in the direction of the output shaft and rotating shaft arrangement. Utilizing the stability of the triangle, the stability of the assembled motor can be enhanced, thereby mitigating the problem of increased motor vibration due to unstable support configuration.
[0022] In some embodiments, in the orthogonal projections of the three connecting parts onto the first plane, the distance between any two orthogonal projections is a;
[0023] Where a satisfies: 80 mm < a < 200 mm.
[0024] In the above technical solution, by limiting the range of the distance 'a' between any two of the three orthogonal projections projected by the three connecting parts on the first plane, the distance between the three mounting points between the motor and the outer cylinder can be made appropriate in the axial direction perpendicular to the output shaft of the motor. The appropriate distance helps to improve the stability of the triangular structure formed by the three mounting points, and also leaves enough installation space for the assembly of the three mounting points, which is convenient for assembly.
[0025] In some embodiments, the orthogonal projections of the three connecting parts onto the second plane are distributed in a triangular pattern;
[0026] The second plane is a plane perpendicular to the second direction, which is the arrangement direction of the motor's output shaft and rotation shaft.
[0027] In the above technical solution, since the motor is located on the outer periphery of the outer cylinder, the three mounting points between the motor and the outer cylinder are generally located on the side of the motor closer to the outer cylinder. This design makes it easy for the motor to swing around the mounting points during operation, especially in the axial direction of the motor's output shaft, where the swing amplitude is relatively large, affecting the stability of the motor after assembly. Therefore, the orthogonal projection of the three connecting parts on the second plane is designed to be triangularly distributed. That is, the lines connecting the orthogonal projections of the three mounting points between the motor and the outer cylinder on the second plane can form a triangular structure. The second plane is a plane perpendicular to the arrangement direction of the output shaft and the rotation shaft. This allows the three mounting points to form a triangular structure, at least in the axial direction of the motor's output shaft. By utilizing the stability of the triangle, the stability of the motor after assembly can be enhanced, thereby improving the problem of increased motor vibration due to unstable support.
[0028] In some embodiments, in the orthogonal projections of the three connecting parts onto the second plane, the distance between any two orthogonal projections is b;
[0029] Where b satisfies: 80 mm < b < 200 mm.
[0030] In the above technical solution, by limiting the range of the distance b between any two of the three orthogonal projections projected by the three connecting parts on the second plane, the distance between the three mounting points between the motor and the outer cylinder can be made appropriate in the direction perpendicular to the arrangement direction of the rotation axis and the output shaft of the motor. The appropriate distance helps to improve the stability of the triangular structure formed by the three mounting points, and also leaves enough installation space for the assembly of the three mounting points, which is convenient for assembly.
[0031] In some embodiments, the cylinder assembly further includes a support structure configured to support the outer cylinder and to connect the outer cylinder to the housing.
[0032] The mating part is connected to the outer cylinder through a supporting structure.
[0033] In the above technical solution, the support arm, connecting part, and mating part constitute a connecting assembly, which directly connects the motor to the support structure. Since the rigidity of the support structure is much greater than that of the thin-walled outer cylinder, connecting the motor to the support structure can improve the installation strength of the motor and ensure the stability of the motor after assembly. Moreover, compared with the method of directly connecting the motor to the outer cylinder, the structural design of directly assembling the motor to the support structure allows the support structure to provide a more reasonable layout space for the motor and facilitates the assembly between the motor and the support structure. In addition, by connecting the motor to the outer cylinder through the support structure, the vibration force generated by the motor during operation must be transmitted to the outer cylinder through the support structure, which can reduce the force transmitted from the motor to the outer cylinder, thereby reducing the vibration of the outer cylinder and improving the shock absorption effect.
[0034] In some embodiments, the housing of the motor includes a front cover, a middle cover, and a rear cover arranged along a first direction, with the front cover passing through the output shaft of the motor.
[0035] The number of connecting components is three, which makes the number of support arms three, and the three support arms are set one-to-one with the three connecting parts;
[0036] Three support arms are located on the front and rear covers.
[0037] In the above technical solution, the three support arms are respectively set on the front cover and the rear cover of the motor, which can reasonably distribute the weight and vibration of the motor to further improve the stability of the motor.
[0038] In some embodiments, the housing of the motor includes a front cover, a middle cover, and a rear cover arranged along a first direction, with the front cover passing through the output shaft of the motor.
[0039] The number of connecting components is three, which makes the number of support arms three, and the three support arms are set one-to-one with the three connecting parts;
[0040] Three support arms are mounted on the front cover.
[0041] In the above technical solution, the three support arms are centrally located on the front cover of the motor, which allows for sufficient layout space between the middle and rear covers of the motor and the outer cylinder. This layout space can be adapted to the shape design of the motor or the outer cylinder, and can also serve as the installation space between the motor or the outer cylinder and other components, making the layout between the motor and the outer cylinder more compact and reasonable. Moreover, centrally located on the front cover of the motor, the installation points between the motor and the outer cylinder are also more concentrated, which facilitates assembly.
[0042] In some embodiments, the support arm has a first side and a second side disposed opposite to each other along a first direction;
[0043] The number of connecting components is three, which makes the number of support arms three, and the three support arms are set one-to-one with the three connecting parts;
[0044] The three connecting parts are respectively located on the second side of their respective support arms.
[0045] In the above technical solution, all three connecting parts are set on the second side of the support arm. When the motor is assembled onto the outer cylinder, the worker or assembly mechanism only needs to connect the three connecting parts and the three mating parts on one side of the axial direction of the motor's output shaft, without having to install the corresponding connecting parts and mating parts on both sides of the axial direction of the motor's output shaft. This can improve assembly efficiency and reduce labor intensity.
[0046] Secondly, a garment processing device is also provided, including:
[0047] The enclosure, the cylindrical assembly and the motor housed inside the enclosure;
[0048] The cylinder assembly includes:
[0049] outer cylinder;
[0050] The inner cylinder is rotatably disposed inside the outer cylinder via a rotating shaft;
[0051] The motor is located on the outer periphery of the outer cylinder and is configured to drive the inner cylinder to rotate;
[0052] Garment processing equipment also includes:
[0053] The connecting component is configured to connect the cylinder assembly and the motor;
[0054] The connection components include:
[0055] The support arm is mounted on the motor housing;
[0056] The connecting part is located on the support arm;
[0057] The mating part is connected to the outer cylinder, and the mating part is adapted to connect with the connecting part;
[0058] The number of connecting components is three, thus the number of connecting parts is three.
[0059] The orthogonal projections of the three connecting parts onto the second plane form a triangular distribution.
[0060] The second plane is a plane perpendicular to the second direction, which is the arrangement direction of the rotating shaft and the output shaft of the motor.
[0061] In the above technical solution, three connecting components are used to connect the motor and the outer cylinder. That is, the motor is installed on the outer cylinder with three-point support. Compared with the two-point support structure design, the stability of the motor after assembly is stronger. Compared with the four-point support structure design, there are fewer installation points between the motor and the outer cylinder. The installation points can be arranged more reasonably in a limited space, and the assembly efficiency can be improved and the cost can be saved. Furthermore, since the motor is located on the outer periphery of the outer cylinder, the three mounting points between the motor and the outer cylinder are generally located on the side of the motor closer to the outer cylinder. This design makes it easy for the motor to swing around the mounting points during operation, especially in the axial direction of the motor's output shaft, where the swing amplitude is relatively large, affecting the stability of the motor after assembly. Therefore, the orthogonal projection of the three connecting parts on the second plane is designed to be triangularly distributed. That is, the lines connecting the orthogonal projections of the three mounting points between the motor and the outer cylinder on the second plane can form a triangular structure. Moreover, the second plane is a plane perpendicular to the arrangement direction of the output shaft and the rotation shaft. This allows the three mounting points to form a triangular structure, at least in the axial direction of the motor's output shaft. By utilizing the stability of the triangle, the stability of the motor after assembly can be enhanced, thereby improving the problem of increased motor vibration due to unstable support.
[0062] Thirdly, a garment processing device is provided, comprising:
[0063] The enclosure, the cylindrical assembly and the motor housed inside the enclosure;
[0064] The cylinder assembly includes:
[0065] outer cylinder;
[0066] The inner cylinder is rotatably disposed inside the outer cylinder via a rotating shaft;
[0067] The support structure is configured to support the outer cylinder and connect the outer cylinder to the box body via the support structure;
[0068] The motor is located on the outer periphery of the outer cylinder and is configured to drive the inner cylinder to rotate;
[0069] Garment processing equipment also includes:
[0070] The connecting component is configured to connect the cylinder assembly and the motor;
[0071] The connection components include:
[0072] The support arm is mounted on the motor housing;
[0073] The connecting part is located on the support arm;
[0074] The mating part is set on the supporting structure, and the mating part is adapted to connect with the connecting part.
[0075] In the above technical solution, the support arm, connecting part, and mating part constitute a connecting assembly, which directly connects the motor to the support structure. Since the rigidity of the support structure is much greater than that of the thin-walled outer cylinder, connecting the motor to the support structure can improve the installation strength of the motor and ensure the stability of the motor after assembly. Moreover, compared with the method of directly connecting the motor to the outer cylinder, the structural design of directly assembling the motor to the support structure allows the support structure to provide a more reasonable layout space for the motor and facilitates the assembly between the motor and the support structure. In addition, by connecting the motor to the outer cylinder through the support structure, the vibration force generated by the motor during operation must be transmitted to the outer cylinder through the support structure, which can reduce the force transmitted from the motor to the outer cylinder, thereby reducing the vibration of the outer cylinder and improving the shock absorption effect. Attached Figure Description
[0076] To more clearly illustrate the technical solutions in the embodiments of this disclosure, the drawings used in the description of the embodiments or the prior art will be briefly introduced below. Obviously, the drawings described below are only some embodiments of this disclosure. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.
[0077] Figure 1 This is a three-dimensional structural diagram of a garment processing device provided according to some embodiments of the present disclosure;
[0078] Figure 2 This is a schematic diagram of the internal structure of a garment processing device according to some embodiments of the present disclosure after removing the housing;
[0079] Figure 3 This is a side view of a first type of motor mounted on a cylinder assembly according to some embodiments of the present disclosure;
[0080] Figure 4 This is a rear view schematic diagram of a first type of motor mounted on a support structure according to some embodiments of the present disclosure;
[0081] Figure 5 This is a three-dimensional structural diagram of a first type of motor assembled on a support structure according to some embodiments of the present disclosure;
[0082] Figure 6 This is an exploded view of the first type of motor and support structure provided according to some embodiments of this disclosure;
[0083] Figure 7 This is a three-dimensional structural schematic diagram of a first type of motor provided according to some embodiments of the present disclosure;
[0084] Figure 8This is a rear view structural schematic diagram of a first type of motor provided according to some embodiments of the present disclosure;
[0085] Figure 9 This is a top view schematic diagram of a first type of motor provided according to some embodiments of the present disclosure;
[0086] Figure 10 This is a side view of a first type of motor provided according to some embodiments of the present disclosure;
[0087] Figure 11 This is a schematic diagram showing the distribution of the orthogonal projections of the three connecting parts in a first type of motor provided according to some embodiments of the present disclosure onto a first plane;
[0088] Figure 12 This is a schematic diagram showing the distribution of the orthogonal projections of the three connecting parts in a first type of motor provided according to some embodiments of the present disclosure onto a second plane;
[0089] Figure 13 This is a three-dimensional structural schematic diagram of a second type of motor provided according to some embodiments of the present disclosure.
[0090] The attached figures are labeled as follows:
[0091] 1-Box body, 11-Dispensing port;
[0092] 2-Gate body;
[0093] 3-Cylinder assembly, 31-Outer cylinder, 32-Inner cylinder, 33-Rotating shaft, 34-Supporting structure, 341-Matching part;
[0094] 4-Motor, 41-Output shaft, 42-Support arm, 43-Connecting part, 44-Front cover, 45-Middle cover, 46-Rear cover;
[0095] 5-Vibration damping components;
[0096] 6-Belt;
[0097] 7-First plane, 71-First orthogonal projection;
[0098] 8-Second plane, 81-Second orthogonal projection. Detailed Implementation
[0099] The present disclosure will be further described in detail below with reference to the accompanying drawings and embodiments. Through these descriptions, the features and advantages of the present disclosure will become clearer and more apparent.
[0100] Unless otherwise defined, all technical and scientific terms used in this disclosure have the same meaning as commonly understood by one of ordinary skill in the art to which this disclosure belongs; the terminology used in this disclosure is for the purpose of describing particular embodiments only and is not intended to limit this disclosure; the terms “comprising” and “having” and any variations thereof in the specification and the foregoing description of this disclosure are intended to cover non-exclusive inclusion.
[0101] The term "embodiment" as used in this disclosure means that a particular feature, structure, or characteristic described in connection with an embodiment may be included in at least one embodiment of this disclosure. The appearance of this phrase in various places throughout the specification does not necessarily refer to the same embodiment, nor is it a separate or alternative embodiment that is mutually exclusive with other embodiments. It will be explicitly and implicitly understood by those skilled in the art that the embodiments described in this disclosure can be combined with other embodiments.
[0102] The specific term "exemplary" used in this disclosure means "serving as an example, embodiment, or illustration." Any embodiment illustrated as "exemplary" is not necessarily to be construed as superior or better than other embodiments. Although various aspects of embodiments are shown in the accompanying drawings, the drawings are not necessarily drawn to scale unless specifically indicated otherwise.
[0103] In the description of this disclosure, the technical terms “first,” “second,” “third,” etc., are used only to distinguish different objects and should not be construed as indicating or implying relative importance or implicitly indicating the number, specific order, or primary or secondary relationship of the indicated technical features.
[0104] In the description of this disclosure, the technical term "and / or" is merely a description of the relationship between related objects, indicating that three relationships can exist. For example, A and / or B can represent: A existing alone, A and B existing simultaneously, or B existing alone. Additionally, the character " / " in this document generally indicates that the preceding and following related objects are in an "or" relationship.
[0105] In the description of this disclosure, the technical terms "upper", "lower", "inner", "outer", "front", "back", "left", "right", "top", "bottom", etc., indicate the orientation or positional relationship based on the orientation or positional relationship under the working state of this disclosure. They are only for the convenience of describing this disclosure and simplifying the description, and do not indicate or imply that the device or component referred to must have a specific orientation, or be constructed and operated in a specific orientation. Therefore, they should not be construed as limitations on this disclosure.
[0106] In the description of this disclosure, unless otherwise expressly specified and limited, the technical terms "installation," "connection," "joining," "fixing," etc., should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral part; 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; they can refer to the internal communication of two components or the interaction between two components. Those skilled in the art can understand the specific meaning of the above terms in this disclosure based on the specific circumstances.
[0107] In the description of this disclosure, unless otherwise expressly specified and limited, "above" or "below" the second feature can mean that the first and second features are in direct contact, or that the first and second features are in indirect contact through an intermediate medium. Furthermore, "above," "over," and "on top" of the second feature can mean that the first feature is directly above or diagonally above the second feature, or simply indicates that the first feature is at a higher horizontal level than the second feature. "Below," "below," and "under" the second feature can mean that the first feature is directly below or diagonally below the second feature, or simply indicates that the first feature is at a lower horizontal level than the second feature.
[0108] In the description of this disclosure, "multiple" means two or more (including two), unless otherwise expressly and specifically limited.
[0109] In the description of this disclosure, the same reference numerals denote the same components, and for brevity, detailed descriptions of the same components are omitted in different embodiments. It should be understood that the thickness, length, and other dimensions of various components in the embodiments of this disclosure shown in the drawings, as well as the overall thickness, length, and other dimensions of the integrated device, are merely illustrative and should not constitute any limitation on this disclosure.
[0110] As part of the inventive concept of this disclosure, before describing the embodiments of this disclosure, it is necessary to analyze the reasons for the problems of poor stability and inconvenience of motor assembly in related technologies, and obtain the technical solutions of the embodiments of this disclosure through reasonable analysis.
[0111] In related technologies, garment processing equipment is a device that converts electrical energy into mechanical energy to wash or dry clothes. It is now widely used in households. Currently, garment processing equipment uses an electric motor as the drive component. The motor drives the inner drum inside the garment processing equipment to rotate, completing the washing or drying process. The motors in garment processing equipment are typically small motors below 3kW or medium-sized motors between 3kW and 30kW. Medium-sized motors are generally chosen to drive the rotation of the inner drum. For medium-sized motors, they can be mounted on the outer drum inside the garment processing equipment using two-point or four-point support. However, with a two-point support structure, the stability of the motor after assembly onto the outer drum is poor, and the unstable support structure increases motor vibration. The four-point support structure design results in numerous mounting points between the motor and the outer cylinder, leading to long assembly times, low efficiency, and high costs. Furthermore, due to the limited outer space of the outer cylinder, an excessive number of mounting points makes proper arrangement difficult, causing inconvenience in motor-outer cylinder assembly. It should also be noted that the four-point support typically involves two mounting points on the left sharing a single mounting shaft, and two mounting points on the right sharing another, with all four mounting points arranged in a coplanar manner. This four-point support structure can create rigid body modes that cause the motor to bounce horizontally or vertically. Excessive motor vibration can increase the vibration at the mounting points, potentially leading to loosening of the mounting points over time and affecting the stability of the assembled motor.
[0112] To address this, the present disclosure provides a garment processing device that uses a three-point support connection between the motor and the outer cylinder, with the three mounting points arranged in a triangle. This enhances the stability of the motor and the outer cylinder after assembly, thereby solving the technical problems of poor stability and inconvenient assembly of the motor in the prior art.
[0113] The technical solutions of the embodiments of this disclosure are described in detail below with reference to the accompanying drawings. The technical features involved in the different embodiments of this disclosure described below can be combined with each other as long as they do not conflict with each other.
[0114] Please refer to the above. Figures 1 to 6 , Figure 8 as well as Figure 11 , Figure 1 and Figure 2 A schematic diagram of the external and internal structure of a garment processing device is provided, showing the basic components of the garment processing device. Figures 3 to 6 A schematic diagram of a motor mounted on a cylinder assembly is provided; it shows a structural relationship between a first type of motor and the cylinder assembly. Figure 8 A rear view structural schematic diagram of the first type of motor is provided; it shows the positional relationship of one of the three connecting parts of the first type of motor at one angle. Figure 11A schematic diagram is provided showing the distribution of the orthogonal projections of the three connecting parts in the first type of motor onto a first plane; the positional relationship between the three orthogonal projections is shown.
[0115] This disclosure provides a garment processing device, such as... Figures 1 to 3 As shown, the garment processing equipment includes a housing 1, a drum assembly 3, and a motor 4. The drum assembly 3 is located inside the housing 1, and the motor 4 is located inside the housing 1 and on the outer periphery of the outer drum 31. The motor 4 can drive the drum assembly 3 to work to complete tasks such as washing or drying.
[0116] Clothing processing equipment can be a drum washing machine or a washer-dryer combo, etc. For ease of description, the following uses a drum washing machine as an example to explain the structure of clothing processing equipment in detail.
[0117] In this embodiment, as Figure 1 As shown, the housing 1 forms the outer shell of the garment processing equipment, which is usually a rectangular hollow structure. The appearance of the housing 1 can be designed as needed and is not limited here. The housing 1 is provided with a receiving cavity, which can provide installation space for components such as the cylinder assembly 3 and the motor 4.
[0118] The housing 1 is provided with a feeding port 11, which can be roughly circular and located on the front end face of the housing 1. The feeding port 11 connects to the receiving cavity. Of course, the feeding port 11 can also be located on other end faces of the housing 1, which is not limited here. However, for conventional drum garment processing equipment, its feeding port 11 is generally located on the front end face of the housing 1.
[0119] A door 2 is also installed on the housing 1. The door 2 is movably connected to the housing 1 near the dispensing port 11 via a hinge shaft to open or close the dispensing port 11.
[0120] In this embodiment, as Figure 2 and Figure 3 As shown, the drum assembly 3 is installed inside the receiving cavity of the box 1 and can be used for washing, rinsing, dehydrating and drying clothes.
[0121] The cylinder assembly 3 has a cylinder opening, which can be roughly circular and located on the front end face of the cylinder assembly 3. The cylinder opening is arranged opposite to the dispensing port 11.
[0122] The drum assembly 3 also has a washing chamber that can hold clothes; after the door 2 is opened, clothes can be put into the washing chamber or taken out of the washing chamber through the inlet 11 and the drum opening.
[0123] The drum assembly 3 includes an outer drum 31 and an inner drum 32. The outer drum 31 is disposed in the receiving cavity of the housing 1, and the inner drum 32 is rotatably disposed inside the outer drum 31 via a rotating shaft 33. The washing chamber is formed inside the inner drum 32, thereby enabling the inner drum 32 to drive the clothes to rotate relative to the outer drum 31, improving the uniformity of washing and dehydrating the clothes. The outer drum 31 and the inner drum 32 can be arranged coaxially inside and outside. The front side of the outer drum 31 and the front side of the inner drum 32 are provided with openings arranged opposite to each other, and the opening on the front side of the outer drum 31 can serve as the drum opening of the drum assembly 3.
[0124] In this embodiment, as Figure 3 As shown, the motor 4, as the driving component for driving the inner cylinder 32, is located on the outer periphery of the outer cylinder 31.
[0125] Optionally, the motor 4 can be located on the lower rear side of the outer cylinder 31, with the output shaft 41 of the motor 4 extending toward the rear side of the outer cylinder 31, and the output shaft 41 of the motor 4 can be arranged parallel to the rotation shaft 33 in a static state.
[0126] Optionally, motor 4 is a medium-sized motor of 3kw-30kw.
[0127] In this embodiment, as Figures 4 to 6 As shown, the garment processing equipment also includes a connecting component, which is configured to connect the cylinder assembly 3 and the motor 4.
[0128] Specifically, the connecting assembly includes a support arm 42, a connecting part 43, and a mating part 341. The support arm 42 is disposed on the housing of the motor 4, the connecting part 43 is disposed on the support arm 42, and the mating part 341 is connected to the outer cylinder 31, with the mating part 341 and the connecting part 43 being adapted to each other.
[0129] For example, one of the connecting part 43 and the mating part 341 can be a cylindrical structure, and the other can be a cavity structure. The mating part 341 and the connecting part 43 can be adapted to be connected by inserting the cylindrical structure into the cavity structure. Of course, in order to ensure the connection stability between the connecting part 43 and the mating part 341, a fastener (such as a bolt assembly) can also be used to lock the mating part 341 and the connecting part 43 after insertion.
[0130] Optionally, a vibration damping component 5 may be provided between the connecting part 43 and the mating part 341 to reduce the vibration force transmitted from the motor 4 to the outer cylinder 31. The vibration damping component 5 may be made of a vibration damping material, such as rubber, EVA (ethylene vinyl acetate copolymer), ACF (artificial cartilage foam), PU (polyurethane), etc.
[0131] Optionally, the connecting part 43 and the support arm 42 can be integrally formed with the housing of the motor 4. The integrally formed structure makes the overall structure more rigid and helps to improve the stability of the motor 4 after assembly; moreover, the integrally formed structure can also reduce assembly time and assembly errors, thereby improving work efficiency and assembly quality.
[0132] Furthermore, such as Figure 6 As shown, there are three connecting components: three support arms 42, three connecting parts 43, and three mating parts 341. Specifically, the three support arms 42 are paired with the three connecting parts 43, and the three connecting parts 43 are paired with the three mating parts 341.
[0133] With the above structural design, three connecting components are used to connect the motor 4 and the outer cylinder 31. That is, the motor 4 is installed on the outer cylinder 31 with three-point support. Compared with the structural design with two-point support, the motor 4 has stronger stability after assembly. Compared with the structural design with four-point support, there are fewer installation points between the motor 4 and the outer cylinder 31. The installation points can be arranged more reasonably in a limited space, which can improve assembly efficiency and save costs.
[0134] It should be understood that the mounting point refers to the place where the motor 4 is connected to the outer cylinder 31. In this article, the mounting point can be the connection position between the adapter connection part 43 and the mating part 341.
[0135] Furthermore, such as Figure 8 and Figure 11 As shown, the three connecting parts 43 are distributed in a triangular shape by their orthogonal projections on the first plane 7; wherein, the first plane 7 is a plane perpendicular to the first direction, and the first direction is the axial direction of the output shaft 41 of the motor 4.
[0136] Since the transmission between the output shaft 41 of the motor 4 and the rotating shaft 33 installed on the inner cylinder 32 is generally achieved by the belt 6, the belt 6 can be fitted between the output shaft 41 and the rotating shaft 33. This structure causes the belt 6 to exert a tension on the output shaft 41 and the motor 4 that tends to be towards the rotating shaft 33. Especially in the arrangement direction of the output shaft 41 and the rotating shaft 33, the tension generated by the belt 6 on the output shaft 41 and the motor 4 is relatively large, which will affect the stability of the motor 4 after assembly.
[0137] Therefore, the orthogonal projections of the three connecting parts 43 on the first plane 7 can be designed to be triangularly distributed. That is, the lines connecting the three mounting points between the motor 4 and the outer cylinder 31 on the first plane 7 can form a triangular structure. The first plane 7 is a plane perpendicular to the axial direction of the output shaft 41 of the motor 4. At least in the arrangement direction of the output shaft 41 and the rotation shaft 33, the three mounting points can form a triangular structure. By utilizing the stability of the triangle, the stability of the motor 4 after assembly can be enhanced, thereby improving the problem of increased vibration of the motor 4 due to unstable support.
[0138] It should be noted that the orthogonal projections of the three connecting parts 43 onto the first plane 7 form a triangular distribution, which can be determined in the following way: (e.g.) Figure 11 As shown, the three connecting parts 43 project three orthogonal projections onto the first plane 7. These orthogonal projections can be defined as the first orthogonal projection 71. In the arrangement direction of the output shaft 41 and the rotation shaft 33, the line connecting the midpoints O of the line segments with the largest size of the three first orthogonal projections 71 can form a triangular shape, thus determining that the orthogonal projections of the three connecting parts 43 on the first plane 7 are distributed in a triangular pattern.
[0139] It should be further explained that the so-called arrangement direction of the output shaft 41 and the rotation shaft 33 refers to the direction that is perpendicular to the central axis of the output shaft 41 and passes through any point on the central axis of the rotation shaft 33.
[0140] Furthermore, in the orthogonal projections of the three connecting parts 43 onto the first plane 7, the distance between any two orthogonal projections is 'a'; that is, the distance between any two of the three first orthogonal projections 71 is 'a'. Here, 'a' satisfies: 80 mm < a < 200 mm, and 'a' can be 85 mm, 90 mm, 100 mm, 150 mm, 190 mm, etc.
[0141] Optionally, the triangle formed by the three first orthogonal projections 71 can be an isosceles triangle, and the side lengths of the three sides of the isosceles triangle can be 92 mm, 92 mm and 180 mm respectively.
[0142] Optionally, the triangle formed by the three first orthogonal projections 71 can be an isosceles triangle, and the three interior angles of the isosceles triangle can be 12°, 12° and 156° respectively.
[0143] By adopting the above structural design, in the three orthogonal projections projected by the three connecting parts 43 on the first plane 7, by limiting the range of the distance a between any two of the orthogonal projections, the distance between the three mounting points of the motor 4 and the outer cylinder 31 (this mounting point can be regarded as the midpoint O of the line segment with the largest size in the arrangement direction of the first orthogonal projection 71 on the output shaft 41 and the rotation shaft 33) can be made appropriate in the direction perpendicular to the axial direction of the output shaft 41 of the motor 4. The appropriate distance helps to improve the stability of the triangular structure formed by the three mounting points, and also leaves enough installation space for the assembly of the three mounting points, which is convenient for assembly.
[0144] Please refer to the above. Figure 3 , Figure 6 , Figure 9 , Figure 12 , Figure 3 and Figure 6 A structural schematic diagram of the first type of motor and cylinder assembly is provided; it shows the positional relationship between the first type of motor and cylinder assembly. Figure 9 A top view of the first type of motor is provided; it shows the positional relationship of the three connecting parts in the first type of motor at another angle. Figure 12 A schematic diagram is provided showing the distribution of the orthogonal projections of the three connecting parts in the first type of motor onto the second plane; the positional relationship between the three orthogonal projections is shown.
[0145] In some embodiments, such as Figure 9 and Figure 12 As shown, the three connecting parts 43 are distributed in a triangular shape by their orthogonal projections on the second plane 8; wherein, the second plane 8 is a plane perpendicular to the second direction, which is the arrangement direction of the output shaft 41 and the rotation shaft 33 of the motor 4.
[0146] like Figure 3 and Figure 6 As shown, since the motor 4 is located on the outer periphery of the outer cylinder 31, the three mounting points between the motor 4 and the outer cylinder 31 are generally located on the side of the motor 4 closer to the outer cylinder 31. This design makes it easy for the motor 4 to swing around the mounting points during operation. In particular, the swing amplitude of the motor 4 is large in the axial direction of the output shaft 41 of the motor 4, which affects the stability of the motor 4 after assembly.
[0147] Therefore, the orthogonal projections of the three connecting parts 43 on the second plane 8 are designed to be triangularly distributed. That is, the lines connecting the three mounting points between the motor 4 and the outer cylinder 31 on the second plane 8 can form a triangular structure. The second plane 8 is a plane perpendicular to the arrangement direction of the output shaft 41 and the rotation shaft 33. At least in the axial direction of the output shaft 41 of the motor 4, the three mounting points can form a triangular structure. By utilizing the stability of the triangle, the stability of the motor 4 after assembly can be enhanced, thereby improving the problem of increased vibration of the motor 4 due to unstable support.
[0148] It should be noted that the orthogonal projections of the three connecting parts 43 onto the second plane 8 form a triangular distribution, which can be determined in the following way: (e.g.) Figure 12 As shown, the three connecting parts 43 project three orthogonal projections onto the second plane 8. These orthogonal projections can be defined as second orthogonal projections 81. Along the axial direction of the output shaft 41 of the motor 4, the line connecting the midpoints P of the line segments with the largest size of the three second orthogonal projections 81 can form a triangular shape, thus determining that the orthogonal projections of the three connecting parts 43 on the second plane 8 are distributed in a triangular pattern.
[0149] Furthermore, in the orthogonal projections of the three connecting parts 43 onto the second plane 8, the distance between any two orthogonal projections is b; that is, the distance between any two second orthogonal projections 81 among the three second orthogonal projections 81 is b. Here, b satisfies: 80 mm < b < 200 mm, and b can be 85 mm, 90 mm, 100 mm, 150 mm, 190 mm, etc.
[0150] Optionally, the triangle formed by the three second orthogonal projections 81 can be an isosceles triangle, and the side lengths of the three sides of the isosceles triangle can be 92 mm, 92 mm and 180 mm respectively.
[0151] Optionally, the triangle formed by the three second orthogonal projections 81 can be an isosceles triangle, and the three interior angles of the isosceles triangle can be 12°, 12° and 156° respectively.
[0152] By adopting the above structural design, in the three orthogonal projections projected by the three connecting parts 43 on the second plane 8, by limiting the range of the distance b between any two of the orthogonal projections, the distance between the three mounting points (which can be regarded as the midpoint P of the line segment with the largest dimension on the axial direction of the second orthogonal projection 81 on the output shaft 41 of the motor 4) between the motor 4 and the outer cylinder 31 can be made appropriate in the direction perpendicular to the arrangement direction of the output shaft 41 and the rotation shaft 33 of the motor 4. The appropriate distance helps to improve the stability of the triangular structure formed by the three mounting points, and also leaves enough installation space for the assembly of the three mounting points, which is convenient for assembly.
[0153] Please refer to the above.Figures 2 to 6 , Figure 2 and Figure 3 A schematic diagram of the assembly between a motor and a cylinder assembly is provided; it shows a layout relationship between the motor and the cylinder assembly. Figures 4 to 6 Schematic diagrams of the first type of motor and support structure at different angles are provided; one layout relationship between the first type of motor and support structure is shown.
[0154] In some embodiments, such as Figures 2 to 6 As shown, the cylinder assembly 3 also includes a support structure 34, which is configured to support the outer cylinder 31 and connect the outer cylinder 31 to the housing 1; the mating part 341 is connected to the outer cylinder 31 through the support structure 34.
[0155] Optionally, at least a portion of the support structure 34 may be disposed on the rear side of the outer cylinder 31. When the garment processing equipment is in operation, especially during the dehydration process, the support structure 34 disposed on the rear side of the outer cylinder 31 can withstand a large centrifugal force, preventing the outer cylinder 31 from shifting backward or shaking. The stability of the outer cylinder 31 can be enhanced by disposing of the support structure 34.
[0156] Optionally, the support structure 34 can be connected to the inner wall of the housing 1 through a vibration damping structure such as a spring or damper to reduce the transmission of vibration to the housing 1 and reduce noise and shaking.
[0157] Optionally, the mating part 341 can be integrally manufactured with the support structure 34. This integral manufacturing structure increases the overall rigidity of the structure and helps improve the stability of the motor 4 after assembly. Furthermore, it reduces assembly time and assembly errors, thereby improving work efficiency and assembly quality.
[0158] With the above structural design, the support arm 42, the connecting part 43 and the mating part 341 constitute a connecting assembly, and the connecting assembly directly connects the motor 4 to the support structure 34. Since the rigidity of the support structure 34 is much greater than the rigidity of the thin-walled outer cylinder 31, connecting the motor 4 to the support structure 34 can improve the installation strength of the motor 4 and ensure the stability of the motor 4 after assembly.
[0159] Moreover, compared to the method of directly connecting the motor 4 to the outer cylinder 31, the structural design of directly mounting the motor 4 on the support structure 34 allows the support structure 34 to provide a more reasonable layout space for the motor 4 and facilitates the assembly between the motor 4 and the support structure 34.
[0160] In addition, by connecting the motor 4 to the outer cylinder 31 through the support structure 34, the vibration force generated by the motor 4 during operation is transmitted to the outer cylinder 31 through the support structure 34, which reduces the force transmitted from the motor 4 to the outer cylinder 31, thereby reducing the vibration of the outer cylinder 31 and improving the shock absorption effect.
[0161] Please refer to the above. Figures 7 to 10 , Figure 13 , Figures 7 to 10 A schematic diagram of the first type of motor at different angles is provided; it shows the specific structure of the first type of motor and the layout of its three support arms. Figure 13 A three-dimensional structural diagram of the second type of motor is provided; it shows the specific structure of the second type of motor and the layout of its three support arms.
[0162] In some embodiments, such as Figure 9 , Figure 10 and Figure 13 As shown, the housing of the motor 4 includes a front cover 44, a middle cover 45 and a rear cover 46 arranged along a first direction. The front cover 44 is penetrated by the output shaft 41 of the motor 4. The front cover 44, the middle cover 45 and the rear cover 46 can be connected and locked by bolt assemblies distributed around the first direction.
[0163] To enhance the stability of the motor 4 after assembly, three connecting components are arranged between the motor 4 and the outer cylinder 31, resulting in three support arms 42, three connecting parts 43, and three mating parts 341. The three support arms 42 are arranged in a one-to-one correspondence with the three connecting parts 43, and the three connecting parts 43 are arranged in a one-to-one correspondence with the three mating parts 341.
[0164] Optionally, three support arms 42 are distributed on the front cover 44 and the rear cover 46.
[0165] For example, such as Figures 7 to 10 As shown, one of the three support arms 42 is mounted on the front cover 44, and the other two are mounted on the rear cover 46. Specifically, of the three support arms 42, the support arm 42 located in the middle position in the third direction is defined as the middle support arm, and the other two support arms 42 are defined as side support walls. The middle support arm is connected to the front cover 44, and the two side support arms are connected to the rear cover 46. The two side support arms can be symmetrically distributed on both sides of the middle support arm in the third direction. Moreover, in the second direction, the connecting portion 43 on the middle support arm is farther away from the output shaft 41 of the motor 4 than the connecting portions 43 on the two side support arms. The third direction is perpendicular to both the first and second directions.
[0166] Furthermore, the central support arm can be integrally formed with the front cover 44, and the two side support arms can be integrally formed with the rear cover 46.
[0167] By adopting the above structural design, the three support arms 42 are respectively set on the front cover 44 and the rear cover 46 of the motor 4, which can reasonably distribute the weight and vibration force of the motor 4 and further improve the stability of the motor 4.
[0168] Optionally, three support arms 42 are mounted on the front cover 44.
[0169] For example, such as Figure 13 As shown, among the three support arms 42, the support arm 42 located in the middle position in the third direction is defined as the middle support arm, and the other two support arms 42 are defined as side support arms. The two side support arms can be symmetrically distributed on both sides of the middle support arm along the third direction. Moreover, in the second direction, the connecting part 43 on the middle support arm is closer to the output shaft 41 of the motor 4 than the connecting parts 43 on the two side support arms. The third direction is perpendicular to both the first direction and the second direction.
[0170] By adopting the above structural design, the three support arms 42 are centrally located on the front cover 44 of the motor 4, which allows sufficient layout space between the middle cover 45 and the rear cover 46 of the motor 4 and the outer cylinder 31. This layout space can be adapted to the shape design of the motor 4 or the outer cylinder 31, and can also serve as the installation space between the motor 4 or the outer cylinder 31 and other components, so that the layout between the motor 4 and the outer cylinder 31 is more compact and reasonable. Moreover, by centrally located on the front cover 44 of the motor 4, the mounting points between the motor 4 and the outer cylinder 31 are more concentrated, which facilitates assembly.
[0171] Please refer to the above. Figure 6 and Figure 7 , Figure 6 An exploded view of the first type of motor and the supporting structure is provided; it shows a layout relationship between the first type of motor and the supporting structure. Figure 7 A three-dimensional structural schematic diagram of the first type of motor is provided; it shows the mounting positions of the three connecting parts 43 on the corresponding support arms of the first type of motor.
[0172] In some embodiments, the support arm 42 has a first side and a second side disposed opposite to each other along a first direction. In the three connecting components, there are three support arms 42 and three connecting parts 43, with each of the three support arms 42 and the three connecting parts 43 being disposed in a one-to-one correspondence, and each of the three connecting parts 43 being disposed on the second side of its respective support arm 42.
[0173] Optionally, the connecting part 43 is a column structure, which can be extended from the second side of the support arm 42 in the direction from the rear cover 46 to the front cover 44.
[0174] With the above structural design, all three connecting parts 43 are set on the second side of the support arm 42. When the motor 4 is assembled onto the outer cylinder 31, the worker or assembly mechanism only needs to connect the three connecting parts 43 and the three mating parts 341 on one side of the axial direction of the output shaft 41 of the motor 4. This eliminates the need to install the corresponding connecting parts 43 and mating parts 341 on both sides of the axial direction of the output shaft 41 of the motor 4, thereby improving assembly efficiency and reducing labor intensity.
[0175] It should be understood that the three connecting parts 43 can also be respectively provided on the first side of their respective supporting arms 42. The three connecting parts 43 are provided together on the first side, which can also realize the corresponding assembly of the three connecting parts 43 and the three mating parts 341 on one side of the axial direction of the output shaft 41 of the motor 4, thereby improving assembly efficiency and reducing labor intensity.
[0176] Please refer to the above. Figure 1 , Figure 3 , Figure 6 , Figure 9 , Figure 12 , Figure 1 A schematic diagram of the external structure of a garment processing device is provided, showing the basic components of the garment processing device. Figure 3 and Figure 6 A structural schematic diagram of the first type of motor and cylinder assembly is provided; it shows the positional relationship between the first type of motor and cylinder assembly. Figure 9 A top view of the first type of motor is provided; it shows the positional relationship of the three connecting parts in the first type of motor at another angle. Figure 12 A schematic diagram is provided showing the distribution of the orthogonal projections of the three connecting parts in the first type of motor onto the second plane; the positional relationship between the three orthogonal projections is shown.
[0177] This disclosure also provides a garment processing device in its embodiments, such as... Figure 1 and Figure 3 As shown, the garment processing equipment includes a housing 1, a tubular assembly 3, and a motor 4 disposed inside the housing 1. The tubular assembly 3 includes an outer tubular assembly 31 and an inner tubular assembly 32, with the inner tubular assembly 32 rotatably disposed inside the outer tubular assembly 31 via a rotating shaft 33. The motor 4 is disposed on the outer periphery of the outer tubular assembly 31 and is configured to drive the inner tubular assembly 32 to rotate.
[0178] The garment processing equipment also includes a connecting assembly, which is configured as a connecting cylinder assembly 3 and a motor 4, and the number of connecting assemblies is three.
[0179] With the above structural design, three connecting components are used to connect the motor 4 and the outer cylinder 31. That is, the motor 4 is installed on the outer cylinder 31 with three-point support. Compared with the structural design with two-point support, the motor 4 has stronger stability after assembly. Compared with the structural design with four-point support, there are fewer installation points between the motor 4 and the outer cylinder 31. The installation points can be arranged more reasonably in a limited space, which can improve assembly efficiency and save costs.
[0180] Furthermore, such as Figure 6 As shown, the connecting assembly includes a support arm 42, a connecting part 43, and a mating part 341. The support arm 42 is disposed on the housing of the motor 4, the connecting part 43 is disposed on the support arm 42, and the mating part 341 is connected to the outer cylinder 31. The mating part 341 and the connecting part 43 are adapted to each other.
[0181] Furthermore, the number of connecting components is three, resulting in a total of three connecting parts 43. The orthogonal projections of the three connecting parts 43 on the second plane 8 are arranged in a triangle. The second plane 8 is a plane perpendicular to the second direction, which is the arrangement direction of the rotating shaft 33 and the output shaft 41 of the motor 4.
[0182] like Figure 6 As shown, since the motor 4 is located on the outer periphery of the outer cylinder 31, the three mounting points between the motor 4 and the outer cylinder 31 are generally located on the side of the motor 4 closer to the outer cylinder 31. This design makes it easy for the motor 4 to swing around the mounting points during operation. In particular, the swing amplitude of the motor 4 is large in the axial direction of the output shaft 41 of the motor 4, which affects the stability of the motor 4 after assembly.
[0183] Therefore, such as Figure 9 and Figure 12 As shown, the orthogonal projections of the three connecting parts 43 on the second plane 8 are designed to be distributed in a triangular pattern. That is, the lines connecting the three mounting points between the motor 4 and the outer cylinder 31 on the second plane 8 can form a triangular structure. The second plane 8 is a plane perpendicular to the arrangement direction of the output shaft 41 and the rotation shaft 33. This allows the three mounting points to form a triangular structure, at least along the axial direction of the output shaft 41 of the motor 4. By utilizing the stability of the triangle, the stability of the motor 4 after assembly can be enhanced, thereby improving the problem of increased vibration of the motor 4 due to unstable support.
[0184] Please refer to the above. Figure 1 , Figure 3 and Figure 6 , Figure 1 A schematic diagram of the external structure of a garment processing device is provided, showing the basic components of the garment processing device. Figure 3 and Figure 6A structural schematic diagram of the first type of motor and cylinder assembly is provided; it shows the positional relationship between the first type of motor and cylinder assembly.
[0185] This disclosure further provides a garment processing device, such as... Figure 1 and Figure 3 As shown, the garment processing equipment includes a housing 1, a tubular assembly 3, and a motor 4 disposed inside the housing 1. The tubular assembly 3 includes an outer tubular 31, an inner tubular 32, and a support structure 34. The inner tubular 32 is rotatably disposed inside the outer tubular 31 via a rotating shaft 33. The support structure 34 is configured to support the outer tubular 31 and connect the outer tubular 31 to the housing 1. The motor 4 is disposed on the outer periphery of the outer tubular 31 and is configured to drive the inner tubular 32 to rotate.
[0186] The garment processing equipment also includes a connecting assembly, which is configured to connect the cylindrical assembly 3 and the motor 4.
[0187] Specifically, such as Figure 6 As shown, the connecting assembly includes a support arm 42, a connecting part 43, and a mating part 341. The support arm 42 is disposed on the housing of the motor 4, the connecting part 43 is disposed on the support arm 42, and the mating part 341 is disposed on the support structure 34. The mating part 341 and the connecting part 43 are adapted to be connected.
[0188] With the above structural design, the support arm 42, the connecting part 43 and the mating part 341 constitute a connecting assembly, and the connecting assembly directly connects the motor 4 to the support structure 34. Since the rigidity of the support structure 34 is much greater than the rigidity of the thin-walled outer cylinder 31, connecting the motor 4 to the support structure 34 can improve the installation strength of the motor 4 and ensure the stability of the motor 4 after assembly.
[0189] Moreover, compared to the method of directly connecting the motor 4 to the outer cylinder 31, the structural design of directly mounting the motor 4 on the support structure 34 allows the support structure 34 to provide a more reasonable layout space for the motor 4 and facilitates the assembly between the motor 4 and the support structure 34.
[0190] In addition, by connecting the motor 4 to the outer cylinder 31 through the support structure 34, the vibration force generated by the motor 4 during operation is transmitted to the outer cylinder 31 through the support structure 34, which reduces the force transmitted from the motor 4 to the outer cylinder 31, thereby reducing the vibration of the outer cylinder 31 and improving the shock absorption effect.
[0191] Optionally, such as Figure 6 As shown, there are three connecting components, and the three connecting components are distributed between the housing of the motor 4 and the support structure 34.
[0192] With the above structural design, three connecting components are used to connect the motor 4 and the outer cylinder 31. That is, the motor 4 is installed on the outer cylinder 31 with three-point support. Compared with the structural design with two-point support, the motor 4 has stronger stability after assembly. Compared with the structural design with four-point support, there are fewer installation points between the motor 4 and the outer cylinder 31. The installation points can be arranged more reasonably in a limited space, which can improve assembly efficiency and save costs.
[0193] Finally, it should be noted that the above embodiments are only used to illustrate the technical solutions of this disclosure, and not to limit them. Although this disclosure 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. These 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 disclosure, and they should all be covered within the scope of the claims and specification of this disclosure. This disclosure is not limited to the specific embodiments disclosed herein, but includes all technical solutions falling within the scope of the claims.
Claims
1. A garment processing device, characterized in that, include: The housing, the cylindrical assembly and the motor disposed inside the housing; The cylinder assembly includes: outer cylinder; The inner cylinder is rotatably disposed inside the outer cylinder via a rotating shaft; The motor is disposed on the outer periphery of the outer cylinder and is configured to drive the inner cylinder to rotate; The garment processing equipment also includes: A connecting component is configured to connect the cylinder assembly and the motor; The connection component includes: A support arm is mounted on the housing of the motor; A connecting part is provided on the support arm; A mating part is connected to the outer cylinder, and the mating part is adapted to be connected to the connecting part. The number of connecting components is three, thus the number of connecting parts is three; The three connecting parts are orthogonally projected onto the first plane in a triangular distribution; Wherein, the first plane is a plane perpendicular to the first direction, and the first direction is the axial direction of the output shaft of the motor.
2. The garment processing equipment according to claim 1, characterized in that, In the orthogonal projections of the three connecting parts onto the first plane, the distance between any two orthogonal projections is a; Wherein, 'a' satisfies: 80 mm < a < 200 mm.
3. The garment processing equipment according to claim 1, characterized in that, The three connecting parts are orthogonally projected onto the second plane in a triangular distribution; Wherein, the second plane is a plane perpendicular to the second direction, which is the arrangement direction of the motor's output shaft and the rotation shaft.
4. The garment processing equipment according to claim 3, characterized in that, In the orthogonal projections of the three connecting parts onto the second plane, the distance between any two orthogonal projections is b; Wherein, b satisfies: 80 mm < b < 200 mm.
5. The garment processing equipment according to any one of claims 1-4, characterized in that, The cylinder assembly further includes a support structure configured to support the outer cylinder and to connect the outer cylinder to the housing; The mating part is connected to the outer cylinder through the support structure.
6. The garment processing equipment according to any one of claims 1-4, characterized in that, The housing of the motor includes a front cover, a middle cover, and a rear cover arranged along the first direction, and the front cover is penetrated by the output shaft of the motor; The number of connecting components is three, so that the number of supporting arms is three, and the three supporting arms are arranged in a one-to-one correspondence with the three connecting parts; The three support arms are distributed on the front cover and the rear cover.
7. The garment processing equipment according to any one of claims 1-4, characterized in that, The housing of the motor includes a front cover, a middle cover, and a rear cover arranged along the first direction, and the front cover is penetrated by the output shaft of the motor; The number of connecting components is three, so that the number of supporting arms is three, and the three supporting arms are arranged in a one-to-one correspondence with the three connecting parts; The three support arms are mounted on the front cover.
8. The garment processing equipment according to any one of claims 1-4, characterized in that, The support arm has a first side and a second side that are disposed opposite to each other along the first direction; The number of connecting components is three, so that the number of supporting arms is three, and the three supporting arms are arranged in a one-to-one correspondence with the three connecting parts; The three connecting parts are respectively disposed on the second side of their respective supporting arms.
9. A garment processing device, characterized in that, include: The housing, the cylindrical assembly and the motor disposed inside the housing; The cylinder assembly includes: outer cylinder; The inner cylinder is rotatably disposed inside the outer cylinder via a rotating shaft; The motor is disposed on the outer periphery of the outer drum and is configured to drive the inner drum to rotate; the garment handling device further includes: A connecting component is configured to connect the cylinder assembly and the motor; The connection component includes: A support arm is mounted on the housing of the motor; A connecting part is provided on the support arm; A mating part is connected to the outer cylinder, and the mating part is adapted to be connected to the connecting part. The number of connecting components is three, thus the number of connecting parts is three; The three connecting parts are orthogonally projected onto the second plane in a triangular distribution; Wherein, the second plane is a plane perpendicular to the second direction, which is the arrangement direction of the rotating shaft and the output shaft of the motor.
10. A garment processing device, characterized in that, include: The housing, the cylindrical assembly and the motor disposed inside the housing; The cylinder assembly includes: outer cylinder; The inner cylinder is rotatably disposed inside the outer cylinder via a rotating shaft; A support structure is configured to support the outer cylinder and to connect the outer cylinder to the housing. The motor is disposed on the outer periphery of the outer cylinder and is configured to drive the inner cylinder to rotate; The garment processing equipment also includes: A connecting component is configured to connect the cylinder assembly and the motor; The connection component includes: A support arm is mounted on the housing of the motor; A connecting part is provided on the support arm; A mating part is provided on the support structure, and the mating part is adapted to be connected to the connecting part.