Cage and conveying system
By designing a cage with both horizontal and inclined bearing surfaces, the problem of only being able to transport a single type of material in existing technologies has been solved. This allows for the simultaneous transport of multiple materials in the same cage, improving transport efficiency and production line flexibility.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- 青岛海尔制冷电器有限公司
- Filing Date
- 2025-05-20
- Publication Date
- 2026-05-12
AI Technical Summary
现有吊笼或挂具设计只能运送单一型号物料,导致运送效率低下,无法满足现代生产线的高效、灵活物流需求,且限制了生产线的灵活性和反应速度。
Design a hoist cage including a frame body and a horizontal bearing surface and an inclined bearing surface, capable of simultaneously carrying two different types of materials. By setting a bearing part at the lower end of the frame body to form the first and second bearing areas, which are the horizontal and inclined bearing surfaces respectively, and combining an adjusting rod and a detachable bearing plate, the independent transportation of multiple materials can be realized.
It increased the variety and quantity of materials transported in a single shipment, reduced the number of shipments, improved delivery efficiency, and enhanced the flexibility of the production line and its ability to adapt to market changes.
Smart Images

Figure CN224226196U_ABST
Abstract
Description
Technical Field
[0001] This application relates to the field of production technology, and in particular to a cage and conveying system. Background Technology
[0002] In current manufacturing processes, existing hoisting cages or racks can only transport a single type of material at a time during material handling. For example, in refrigerator manufacturing, when transporting core components like the back panel and condenser, traditional hoists can only load one type of material. This limitation directly leads to low transport efficiency and fails to meet the demands of modern refrigerator production for a highly efficient and flexible logistics system. Specifically, because only one type of material can be transported at a time, the production line needs to frequently change hoists or racks when switching production models, increasing production preparation time and logistics costs. Furthermore, this design also limits the flexibility and responsiveness of the production line, making it unable to quickly adapt to market changes and customer needs. Utility Model Content
[0003] To address the aforementioned issues, this application provides a hoisting cage, comprising a frame body and a load-bearing portion protruding horizontally from the lower end of the frame body. The frame body encloses a first load-bearing area, which includes a horizontal load-bearing surface. The load-bearing portion and the frame body define a second load-bearing area, which is located around the first load-bearing area and includes an inclined load-bearing surface.
[0004] Furthermore, the cage also includes an inclined member that connects the frame body and the load-bearing part, forming an inclined load-bearing surface on the side away from the frame body. The inclined member divides the load-bearing part into a first part and a second part that are sequentially connected from the frame body.
[0005] The cage is configured such that when the product to be transported is placed in the second bearing area, the bottom of the product to be transported is placed in the second part, and the side of the product to be transported along the height direction rests against the inclined bearing surface.
[0006] Furthermore, the horizontal bearing surface is configured to be coplanar with the bearing portion.
[0007] Furthermore, the second part is provided with a receiving groove, and the bottom end of the product to be transported is fixed to the receiving groove.
[0008] Furthermore, the inclined member includes a plurality of support rods arranged in parallel and at least one crossbar, wherein the crossbar is connected in series with the plurality of support rods so that they are in the same plane to form an inclined bearing surface.
[0009] Furthermore, the cage also includes at least one adjusting rod, which includes a fixed end and a movable end. The fixed end is rotatably disposed on the frame body. When the movable end rotates around the fixed end, it is in a horizontal state. The adjusting rod limits the movement of the product to be transported located in the first bearing area.
[0010] Furthermore, the first bearing area also includes at least one horizontally arranged detachable bearing plate, which divides the first bearing area into multiple bearing spaces in the vertical direction.
[0011] This application also provides a conveying system, including a conveying mechanism, the conveying mechanism including a conveying track and the aforementioned cage, the cage being fixed to the conveying track and running along the conveying track.
[0012] Furthermore, the cage includes a fixed crossbeam connecting the main frame body, with both ends of the fixed crossbeam fixedly connected to the track.
[0013] Furthermore, the first bearing area supports the condenser or bottom steel, and the second bearing area supports the refrigerator back panel.
[0014] This application relates to a hoisting cage and a conveying system. The hoisting cage includes a frame body and a load-bearing part protruding horizontally from the lower end of the frame body. The frame body encloses a first load-bearing area, which includes a horizontal load-bearing surface. The load-bearing part and the frame body define a second load-bearing area, which is located outside the first load-bearing area and includes an inclined load-bearing surface. In this application, the first load-bearing area and the second load-bearing area are configured to have different load-bearing surfaces, so that the same hoisting cage can simultaneously and independently carry two different types of materials, greatly reducing the number of transport batches and increasing the variety and quantity of materials transported in a single trip, thereby effectively improving the overall transportation efficiency. Attached Figure Description
[0015] Figure 1 This is a first-person view diagram of the hoisting cage in this application;
[0016] Figure 2 This is a second-view schematic diagram of the hoisting cage in this application;
[0017] Figure 3 for Figure 2 Enlarged view of part A in the middle;
[0018] Figure 4 This is a third-view schematic diagram of the hoisting cage in this application;
[0019] Figure 5 This is a fourth-view diagram of the hoisting cage in this application;
[0020] Figure 6 This is a fifth-person perspective diagram of the hoisting cage in this application;
[0021] Figure 7 This is a schematic diagram of the cage structure in this application;
[0022] Figure 8 for Figure 7 A magnified view of part B in the diagram.
[0023] Explanation of reference numerals in the attached figures
[0024] 10. Hoisting cage; 20. Fixed crossbeam; 1. Frame main body; 11. First load-bearing area; 12. Horizontal load-bearing component; 13. Adjusting rod; 14. Load-bearing plate; 2. Load-bearing part; 21. Second load-bearing area; 22. Inclined component; 23. First part; 24. Second part; 25. Receiving groove; 26. Stop block; 27. Support rod; 28. Crossbar; 29. Fixing component. Detailed Implementation
[0025] To gain a more detailed understanding of the features and technical content of the embodiments disclosed herein, the following description is provided in conjunction with the accompanying drawings. Figure 1-8 The implementation of the embodiments of this disclosure is described in detail. The accompanying drawings are for illustrative purposes only and are not intended to limit the embodiments of this disclosure. In the following technical description, for ease of explanation, various details are used to provide a full understanding of the disclosed embodiments. However, one or more embodiments may still be implemented without these details. In other instances, well-known structures and apparatuses may be simplified in their depiction to simplify the drawings.
[0026] The terms "first," "second," etc., used in the specification, claims, and accompanying drawings of this disclosure are used to distinguish similar objects and are not necessarily used to describe a specific order or sequence. It should be understood that such data can be interchanged where appropriate for the embodiments of this disclosure described herein. Furthermore, the terms "comprising" and "having," and any variations thereof, are intended to cover non-exclusive inclusion.
[0027] In this disclosure, the terms "upper," "lower," "inner," "middle," "outer," "front," and "rear," etc., indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings. These terms are primarily for better description of the embodiments of this disclosure and their implementations, and are not intended to limit the indicated devices, elements, or components to having a specific orientation, or to require them to be constructed and operated in a specific orientation. Furthermore, some of the aforementioned terms may be used to indicate other meanings besides orientation or positional relationship; for example, the term "upper" may in some cases indicate a dependency or connection relationship. Those skilled in the art can understand the specific meaning of these terms in the embodiments of this disclosure according to the specific circumstances.
[0028] Furthermore, the terms "set up," "connect," and "fix" should be interpreted broadly. For example, "connection" can be a fixed connection, a detachable connection, or an integral structure; it can be a mechanical connection or an electrical connection; it can be a direct connection or an indirect connection through an intermediate medium, or it can be an internal connection between two devices, components, or parts. Those skilled in the art can understand the specific meaning of the above terms in the embodiments of this disclosure according to the specific circumstances.
[0029] Unless otherwise stated, the term "multiple" means two or more.
[0030] The term "and / or" describes an association between objects, indicating that three relationships can exist. For example, A and / or B means: A or B, or A and B.
[0031] It should be noted that, unless otherwise specified, the embodiments and features described in the present disclosure can be combined with each other.
[0032] To provide a better understanding of the purpose, structure, features, and functions of this application, detailed descriptions are provided below with reference to specific embodiments.
[0033] To address the aforementioned issues, this application provides a hanging cage 10, comprising a frame body 1 and a load-bearing portion 2 protruding horizontally from the lower end of the frame body 1. The frame body 1 encloses a first load-bearing area 11, which includes a horizontal load-bearing surface. The load-bearing portion 2 and the frame body 1 define a second load-bearing area 21, which is located around the first load-bearing area 11 and includes an inclined load-bearing surface.
[0034] The main frame 1 encloses a three-dimensional cage structure to form a first load-bearing area 11. Specifically, the first load-bearing area 11 may include one layer of horizontal load-bearing members 12 or multiple layers of horizontal load-bearing members 12.
[0035] Extending radially from the bottom of the frame body 1 in a horizontal direction away from the first load-bearing area 11, forming a ring-shaped or segmented outward-expanding load-bearing part 2. A ring-shaped outward-expanding load-bearing part 2 means that the load-bearing part 2 extends uniformly around the bottom of the frame body 1 at 360°, forming a continuous ring-shaped load-bearing part 2; a segmented outward-expanding load-bearing part 2 means that the load-bearing part 2 expands outward along the frame body 1 in a partial direction, forming a segmented load-bearing part 2.
[0036] The load-bearing part 2 and the frame body 1 together define the second load-bearing area 21. The second load-bearing area 21 is provided with an inclined load-bearing surface. The inclined load-bearing surface can be set as an inclined load-bearing surface with an adjustable inclination angle or an inclined load-bearing surface with a non-adjustable inclination angle.
[0037] Specifically, the length of the load-bearing part 2 extending from the frame body 1 can be set according to actual needs.
[0038] In one embodiment, the second bearing area 21 includes two second bearing areas 21 symmetrically arranged around the first bearing area 11. By symmetrically arranging the second bearing areas 21, the cage 10 will not sink when transporting materials, making the transportation process more stable.
[0039] In one embodiment, the support portion 2 is pivotally connected to the frame body 1, and when the second support area 21 is not needed, the support portion 2 can be folded toward the frame body 1.
[0040] This application expands the loading capacity of the hoist cage 10 and improves the transportation efficiency of the hoist cage 10 by simultaneously setting a first load-bearing area 11 and a second load-bearing area 21.
[0041] The cage 10 also includes an inclined member 22, which connects the frame body 1 and the load-bearing part 2, and forms an inclined load-bearing surface on the side away from the frame body 1. The inclined member 22 divides the load-bearing part 2 into a first part 23 and a second part 24 that are sequentially connected from the frame body 1.
[0042] Specifically, the first bearing area 11 includes a horizontal bearing member 12, which forms a horizontal bearing surface. The upper end of the inclined member 22 is connected to the frame body 1, and the lower end is connected to the bearing part 2. At the connection between the bearing part 2 and the inclined member 22, the bearing part 2 is divided into a first part 23 and a second part 24 that are connected to each other. The first part 23 is located between the inclined member 22 and the frame body 1, and the second part 24 is away from the frame body 1 relative to the first part 23.
[0043] The first part 23 and the second part 24 can be integrally formed or they can be formed by two independent structures connected to each other. This application does not impose any specific restrictions.
[0044] The cage 10 is configured such that when the product to be transported is placed in the second bearing area 21, the bottom of the product to be transported is placed in the second part 24, and the side of the product to be transported along the height direction rests on the inclined bearing surface.
[0045] When the bottom of the product to be transported is placed on the second part 24, the side of the product to be transported in the height direction rests on the inclined bearing surface of the inclined member 22 away from the frame body 1. The self-weight of the product to be transported is decomposed into vertical pressure and horizontal pressure through the inclined bearing surface. The vertical pressure is borne by the inclined bearing surface of the inclined member 22, and the horizontal pressure is borne by the frame body 1.
[0046] The horizontal bearing surface is configured to be coplanar with the bearing part 2.
[0047] The horizontal bearing surface of the first bearing area 11 and the bearing part 2 of the second bearing area 21 are integrally formed from the same material, forming two bearing surfaces with no difference in height. That is, the horizontal bearing surface and the bearing surface formed by the bearing part 2 are at the same horizontal plane.
[0048] In one embodiment, the bearing part 2 is a bearing part 2 that extends directly from the horizontal bearing surface to the outside of the frame to form a second bearing area 21, that is, the bearing part 2 and the horizontal bearing surface are integrally formed.
[0049] In another embodiment, the bearing part 2 is independent of the horizontal bearing surface. The bearing part 2 is fixed to the bracket by means of connection such as screws, welding, and buckles, and is on the same horizontal plane as the horizontal bearing surface of the first bearing area 11.
[0050] The second part 24 is provided with a receiving groove 25, and the bottom end of the product to be transported is fixed to the receiving groove 25.
[0051] The supporting part 2 and the inclined member 22 intersect to form a first intersection line, and the length direction of the receiving groove 25 is parallel to the extension direction of the first intersection line.
[0052] In one embodiment, the receiving groove 25 is formed by the downward inward recess of the upper surface of the second part 24 of the support portion 2; that is, a U-shaped or V-shaped recess is formed in the second part 24 of the support portion 2 by a stamping process to accommodate the bottom end of the product.
[0053] In another embodiment, the receiving groove 25 is provided with a stop 26 on the side away from the first part 23 of the second part 24 of the support part 2. The stop 26, together with the support part 2 and the inclined member 22, forms a receiving groove 25 whose length direction is parallel to the first intersection line. The length direction of the stop 26 or the extension direction of the stop 26 when it is arranged is parallel to the extension direction of the first intersection line.
[0054] The stop block 26 can be a continuous elongated structure or multiple stop blocks 26 arranged at intervals, with the arrangement direction parallel to the extension direction of the first intersection line.
[0055] The stop block 26 can be fixed to the second part 24 in a detachable manner, or the stop block 26 can be formed by bending the end of the second part 24 away from the first part 23 upward.
[0056] The inclined member 22 includes a plurality of support rods 27 arranged in parallel and at least one crossbar 28, wherein the crossbar 28 is connected in series with the plurality of support rods 27 so that they are in the same plane to form an inclined bearing surface.
[0057] The inclined member 22 consists of multiple support rods 27 arranged in parallel and at least one crossbar 28 connecting all the support rods 27. The multiple support rods 27 are arranged at intervals or closely together according to actual load-bearing requirements, serving as an inclined load-bearing structure. At least one crossbar 28 passes through multiple support rods 27 in series, firmly connecting the multiple support rods 27 together to form a unified whole structure, and ensuring that all support rods 27 are on the same plane.
[0058] In one embodiment, multiple support rods 27 are provided with through holes perpendicular to the axis of the crossbar 28 at the same position. The crossbar 28 passes through the through holes of all support rods 27 in sequence. The through holes and the crossbar 28 are interference-fitted to ensure the connection stability between the crossbar 28 and each support rod 27.
[0059] The crossbar 28 enhances the connection stability between the multiple support rods 27, enabling the support rods 27 to withstand greater external forces.
[0060] The inclined member 22 is connected to the frame body 1 and the load-bearing part 2. Specifically, the upper end of the support rod 27 is connected to the frame body 1, and the lower end of the support rod 27 is connected to the load-bearing part 2. The crossbar 28 is set to be perpendicular to the direction of the support rod 27, so that multiple support rods 27 are connected in series and the multiple support rods 27 are in the same plane. After the inclined member 22 is installed, the multiple support rods 27 are in the same inclined plane, forming an inclined load-bearing surface.
[0061] An inclination angle is formed between the tilting member 22 and the second part 24. The inclination angle allows the material to be transported to lean stably against the tilting member 22 by its own weight, without the need for an additional fixing structure, thus improving the efficiency of transporting materials.
[0062] The crossbar 28 and the support bar 27 are usually connected by reliable methods such as welding, bolting or riveting to ensure that the connection between the crossbar 28 and the support bar 27 has sufficient strength and stability, and to avoid loosening or falling off during long-term use.
[0063] The support rod 27 can be cylindrical, square, or other irregularly shaped to meet the load-bearing requirements.
[0064] In one embodiment, the plurality of support rods 27 are arranged in parallel and at equal intervals.
[0065] The support portion 2 also includes a fixing member, which divides the support portion 2 into a first part 23 and a second part 24. The fixing member protrudes upward from the support portion 2, and the fixing member is provided in a one-to-one correspondence with the support rod 27. The bottom end of the support rod 27 is fixedly connected to the fixing member.
[0066] The bottom end of the support rod 27 can be connected to the fastener by bolts, rivets, welding, etc., and this application does not impose specific restrictions.
[0067] The cage 10 also includes at least one adjusting rod 13, which includes a fixed end and a movable end. The fixed end is rotatably disposed on the frame body 1. When the movable end rotates around the fixed end, it is in a horizontal or nearly horizontal state. The adjusting rod 13 limits the movement of the product to be transported located in the first bearing area 11.
[0068] The fixed end is rotatably connected to the frame body 1 by means of bolts or rivets, so as to ensure that the adjusting rod 13 can rotate freely around the fixed end, allowing the adjusting rod 13 to switch between a vertical storage state and a horizontal working state.
[0069] When the axis of the adjusting rod 13 is vertical, the movable end is close to the vertical side of the frame body 1, without obstructing the space of the bearing area, and the adjusting rod 13 is in a retracted state. When the axis of the adjusting rod 13 is horizontal, the movable end extends to the position of the material to be transported in the bearing area, and contacts or approaches the side of the product to be transported, so as to limit the side of the product to be transported.
[0070] When the adjusting rod 13 is not needed, it can be rotated to make the axis of the adjusting rod 13 vertically retracted; when the adjusting rod 13 is needed to limit the product to be transported in the bearing area, the movable end of the adjusting rod 13 can be rotated to make the axis of the adjusting rod 13 horizontal.
[0071] In one embodiment, the adjusting rod 13 includes a first adjusting rod 13 and a second adjusting rod 13 disposed opposite to each other. When the axes of the first adjusting rod 13 and the second adjusting rod 13 are both in a horizontal state, the two opposite sides of the product to be transported are simultaneously limited.
[0072] In another embodiment, the length of the adjusting rod 13 is adjustable, that is, the distance between the movable end and the fixed end of the adjusting rod 13 can be adjusted according to actual needs.
[0073] The first bearing area 11 further includes at least one horizontally arranged bearing plate 14 that can provide bearing space. Specifically, the bearing plate 14 is configured as a detachable bearing plate 14, which divides the first bearing area 11 into multiple bearing spaces in the vertical direction; or, the bearing plate 14 is configured as a rotatable bearing plate 14, which divides the first bearing area 11 into multiple bearing areas in the vertical direction when the bearing plate 14 is in a horizontal state.
[0074] Specifically, in one embodiment, the support plate 14 is configured as a detachable support plate 14. The support plate 14 has a plate-like structure and is detachably connected to the frame body 1 at its edge by means of slots, bolts, etc.
[0075] The support plate 14 is vertically arranged within the first support area 11, dividing the first support area 11 into multiple support spaces from top to bottom. The support plate 14 is located between two adjacent support spaces, and the distance between any two adjacent support plates 14 can be adjusted according to actual needs to change the height of the corresponding support space.
[0076] The detachable support plate 14 solution allows for adjustments to the spatial layout by installing and removing the support plate 14, offering high flexibility.
[0077] In another embodiment, the support plate 14 is configured as a rotatable support plate 14. The support plate 14 has a plate-like structure, and a rotating structure similar to a rotating shaft is provided at one end or a specific position of the support plate 14, so that the support plate 14 can rotate around the rotating shaft or the rotating structure.
[0078] The rotating shaft or rotating structure is connected to the frame body 1 to ensure the stability and accuracy of the rotation of the bearing plate 14.
[0079] Assuming only one support plate 14 can rotate, when two support spaces are needed, the support plate 14 rotates to a horizontal position, dividing the first support area 11 into upper and lower support spaces. When the support plate 14 rotates to a vertical or inclined position, it relinquishes the support spaces separated in the horizontal position, connecting the upper and lower support spaces to form a larger space.
[0080] When multiple support plates 14 are rotatable, the adjustment process is the same as when only one support plate 14 is rotatable, and will not be described again here.
[0081] Creating or restoring space by rotating the support plate 14 is relatively simple, but the rotating structure may increase cost and complexity. In practical applications, a suitable solution can be selected based on specific needs and usage scenarios.
[0082] The number and relative positions of the bearing plates 14 are set according to actual needs, and this application does not impose specific restrictions.
[0083] This application also provides a conveying system, including a conveying mechanism, the conveying mechanism including a conveying track and the aforementioned cage 10, the cage 10 being fixed to the conveying track and running along the conveying track.
[0084] The conveyor track provides a guiding path for the cage 10 to transport the product to be transported. The conveyor track can be straight, curved, or a combination of straight and curved as it extends along its length.
[0085] The cage 10 is fixed to the conveyor track by rollers or pulleys.
[0086] In one embodiment, positioning markers are also provided on the conveyor track, each positioning marker corresponding to one or more unloading points. When the product to be transported moves in the cage 10 to the position of the positioning marker, the unloading operation can be carried out conveniently and safely to unload the product to be transported.
[0087] Specifically, the positioning mark can be, but is not limited to, color markings, scale markings, positioning protrusions, RFID-like electronic tags, and mechanical clips.
[0088] The conveyor track is connected to multiple spaced cages 10, which avoids collisions between adjacent cages 10 and can improve the transport efficiency of the conveyor system.
[0089] The cage 10 includes a fixed crossbeam 20 connecting the main frame 1 above it, and both ends of the fixed crossbeam 20 are fixedly connected to the track.
[0090] Specifically, the fixed crossbeam 20 is an elongated structure and is securely connected to the top or near the top of the main frame 1. The vertical projection of the fixed crossbeam 20 connects the two second load-bearing areas 21.
[0091] The fixed crossbeam 20 has a first end and a second end that are arranged opposite to each other along its length. Both the first end and the second end are provided with fixing holes. The fixing holes are used to connect rollers or pulleys and other wheel and axle structures, so as to drive the cage 10 to run on the conveyor track by means of the rollers or pulleys. The running direction is along the length extension direction of the conveyor track.
[0092] The first bearing area 11 supports the condenser or bottom steel, and the second bearing area 21 supports the refrigerator back panel.
[0093] Because the condenser is heavy, placing it in the first load-bearing area 11 during transportation can ensure that the cage 10 runs stably on the conveyor track.
[0094] The bottom steel is generally a small flat plate structure. During transportation, placing it in the first bearing area 11 can make full use of the bearing space and ensure that the cage 10 runs stably on the conveyor track.
[0095] The refrigerator back panel is a rectangular or flat structure with rounded corners. Its size is relatively large compared to the bottom steel. The refrigerator back panel is placed at an angle in the second bearing area 21. The inclined component 22 of the second bearing area 21 provides stable support for the refrigerator back panel.
[0096] By symmetrically loading the same number of refrigerator back panels on the outside of the main frame 1 of the cage 10, it can be ensured that the cage 10 runs stably on the conveyor track.
[0097] The conveying system described in this application can simultaneously transport the condenser and the refrigerator back panel. The refrigerator back panel is placed in the second bearing area 21, and the condenser is placed in the first bearing area 11. Specifically, the two refrigerator back panels are symmetrically placed in the two second bearing areas 21 respectively, so as to achieve stable transport of the cage 10.
[0098] The conveying system described in this application can also transport the bottom steel and the refrigerator back panel at the same time. The refrigerator back panel is placed in the second bearing area 21, and the bottom steel is placed in the first bearing area 11. Specifically, the two refrigerator back panels are symmetrically placed in the two second bearing areas 21 respectively, and one or two bottom steels are placed in the first bearing area 11.
[0099] The conveying system of this application is integrated with the factory production management system. The conveying system also includes a monitoring module. When the product to be transported begins to be transported, the monitoring module scans the barcode of the product to be transported and transmits it to the production management system. According to the control instructions issued by the production management system, the conveying system sends the product to be transported to the target workstation via the conveying track.
[0100] The specific delivery process is as follows:
[0101] When a product to be transported needs to be moved by a conveyor mechanism, the monitoring module automatically scans the barcode on the product to be transported, obtains the product information, and the robotic arm places the product to be transported in the first bearing area 11 and the second bearing area 21 of the cage 10.
[0102] The production management system identifies the target workstation based on product information and issues delivery instructions;
[0103] The conveyor system delivers the products to be shipped to the target workstation, scans the barcode again for confirmation, and sends the scan information to the production management system.
[0104] The robotic arm unloads the products to be transported to the target workstation.
[0105] This application relates to a hoist cage 10 and a conveying system. The hoist cage 10 includes a frame body 1 and a load-bearing part 2 protruding horizontally from the lower end of the frame body 1. The frame body 1 encloses a first load-bearing area 11, which includes a horizontal load-bearing surface. The load-bearing part 2 and the frame body 1 define a second load-bearing area 21, which is located around the first load-bearing area 11 and includes an inclined load-bearing surface. In this application, the first load-bearing area 11 and the second load-bearing area 21 are configured to have different load-bearing surfaces, so that the same hoist cage 10 can simultaneously and independently carry two different types of materials, greatly reducing the number of transport batches and increasing the variety and quantity of materials transported in a single trip, thereby effectively improving the overall transport efficiency.
[0106] In the description of this specification, references to terms such as "an embodiment," "some embodiments," "specifically," or "optional embodiments," etc., indicate that a specific feature, structure, material, or characteristic described in connection with that embodiment or example is included in at least one embodiment or example of this application. Furthermore, the specific features, structures, materials, or characteristics described may be combined in any suitable manner in one or more embodiments or examples. Moreover, without contradiction, those skilled in the art can combine and integrate the different embodiments or examples described in this specification, as well as the features of those different embodiments or examples.
[0107] This application has been described with reference to the above-mentioned embodiments; however, the above embodiments are merely examples for implementing this application. It must be noted that the disclosed embodiments do not limit the scope of this application. On the contrary, any modifications and refinements made without departing from the spirit and scope of this application are within the scope of patent protection of this application.
Claims
1. A hanging cage, characterized in that, The system includes a frame body (1) and a load-bearing part (2) protruding horizontally from the lower end of the frame body (1). The frame body (1) encloses a first load-bearing area (11), which includes a horizontal load-bearing surface. The load-bearing part (2) and the frame body (1) define a second load-bearing area (21), which is located around the first load-bearing area (11) and includes an inclined load-bearing surface.
2. The cage according to claim 1, characterized in that, The cage (10) also includes an inclined member (22), which connects the frame body (1) and the load-bearing part (2), and forms an inclined load-bearing surface on the side away from the frame body (1). The inclined member (22) divides the load-bearing part (2) into a first part (23) and a second part (24) that are sequentially connected from the frame body (1). The cage (10) is configured such that when the product to be transported is placed in the second bearing area (21), the bottom end of the product to be transported is placed in the second part (24), and the side of the product to be transported along the height direction rests against the inclined bearing surface.
3. The cage according to claim 2, characterized in that, The horizontal bearing surface is configured to be coplanar with the bearing part (2).
4. The cage according to claim 2, characterized in that, The second part (24) is provided with a receiving groove (25), and the bottom end of the product to be transported is fixed to the receiving groove (25).
5. The cage according to claim 2, characterized in that, The inclined member (22) includes a plurality of support rods (27) arranged in parallel and at least one crossbar (28), wherein the crossbar (28) is connected in series with the plurality of support rods (27) so that they are in the same plane to form an inclined bearing surface.
6. The cage according to claim 1, characterized in that, The cage (10) also includes at least one adjusting rod (13), the adjusting rod (13) includes a fixed end and a movable end, the fixed end is rotatably disposed on the frame body (1), and when the movable end rotates around the fixed end, it is in a horizontal state, the adjusting rod (13) limits the product to be transported located in the first bearing area (11).
7. The cage according to claim 1, characterized in that, The first bearing area (11) further includes at least one horizontally arranged detachable bearing plate (14), which divides the first bearing area (11) into multiple bearing spaces in the vertical direction.
8. A transmission system, characterized in that, The system includes a conveying mechanism, which comprises a conveying track and a cage (10) as described in any one of claims 1-7, wherein the cage (10) is fixed to the conveying track and runs along the conveying track.
9. The transmission system according to claim 8, characterized in that, The cage (10) includes a fixed crossbeam (20) above the main frame (1), and both ends of the fixed crossbeam (20) are fixedly connected to the track.
10. The transmission system according to claim 8, characterized in that, The first bearing area (11) supports the condenser or bottom steel, and the second bearing area (21) supports the refrigerator back panel.