Box assembly
The box device's innovative hinge assembly with slide shafts and rails on elliptical or linear paths addresses door interference by guiding the door to move away from the pivot side, ensuring stable and interference-free operation and installation as a built-in unit.
Patent Information
- Application Number
- JP2024524722
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2021-10-29
- Filing Date
- 2022-08-17
- Publication Date
- 2025-12-16
- Estimated Expiration
- 2042-08-17
Smart Images

Figure 0007786793000001 
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Figure 0007786793000003
Abstract
Description
[Technical Field]
[0001] This application claims priority to a Chinese patent application filed on October 29, 2021, bearing application number 2021112754461 and entitled "Box Device," the entire contents of which are incorporated herein by reference.
[0002] The present application relates to the technical field of hinges, and more particularly to box devices. [Background technology]
[0003] In the case of a box device having a door and a box body, when the door is opened relative to the box body, the door may protrude from the outer wall of the box device, causing a problem that the door may interfere with the environment in which the box device is installed. For example, when the box device is installed as a built-in, the part of the door protruding from the outer wall of the box device may interfere with the wall into which it is embedded. Summary of the Invention
[0004] In view of this, the main technical problem to be solved by the present application is to provide a box device that can reduce the risk of interference and collision during door rotation.
[0005] In order to solve the above technical problems, one technical solution adopted by the present application is to provide a box device. The box device includes a box having an internal storage space with an opening. The box further includes a door for closing the opening. The box further includes a hinge assembly provided on a pivot side of the box and pivotally connecting the box and the door. The hinge assembly includes a first connecting part and a second connecting part, the first connecting part being provided on one of the box and the door and the second connecting part being provided on the other. The first connecting part is provided with at least a first sliding shaft and a second sliding shaft, and the second connecting part is provided with at least a first sliding rail and a second sliding rail, the first sliding shaft being movably connected to the first sliding rail, and the second sliding shaft being movably connected to the second sliding rail. The first slide rail extends on a first reference ellipse, and the second slide rail extends on a second reference ellipse. When the door closes the opening, the portion of the first slide rail that moves away from the box body and the portion of the second slide rail that moves away from the box body are both away from the pivot side. As the door moves from a state in which the opening is closed to a state in which the door is opened relative to the box body, the door moves toward the target side of the box body, and the pivot side and the target side are located opposite each other on either side of the opening.
[0006] In one embodiment of the present application, the center of the first reference ellipse and the center of the second reference ellipse overlap.
[0007] In one embodiment of the present application, when the door closes the opening, the first slide axis is farther from the opening than the center of the first reference ellipse, and the second slide axis is farther from the opening than the center of the second reference ellipse.
[0008] In one embodiment of the present application, when the door closes the opening, the first slide rail is bent in a direction closer to the box body.
[0009] In one embodiment of the present application, when the door closes the opening, the first slide rail is bent in a direction away from the box body.
[0010] In one embodiment of the present application, when the door closes the opening, the first slide rail extends in a direction toward the pivot side or in a direction closer to the box body.
[0011] In one embodiment of the present application, when the door closes the opening, the second slide rail is bent in a direction closer to the box body.
[0012] In one embodiment of the present application, when the door closes the opening, the second slide rail is bent in a direction away from the box body.
[0013] In one embodiment of the present application, when the door closes the opening, the second slide rail extends in a direction toward the pivot side or in a direction closer to the box body.
[0014] In one embodiment of the present application, the first slide rail on which the first slide axis is located has a first tangent line, the second slide rail on which the second slide axis is located has a second tangent line, and the included angle between the first tangent line and the second tangent line is 10° or more.
[0015] In one embodiment of the present application, the major axes of the first slide rail and the first base ellipse intersect at a first inflection point, and the major axes of the second slide rail and the second base ellipse intersect at a second inflection point.
[0016] In one embodiment of the present application, the first slide rail has a first target point located on the side of the minor axis of the first base ellipse toward the first inflection point, and the included angle between the connecting line between the first target point and the first inflection point and the major axis of the first base ellipse is 10° or more; the second slide rail has a second target point located on the side of the minor axis of the second base ellipse toward the second inflection point, and the included angle between the connecting line between the second target point and the second inflection point and the major axis of the second base ellipse is 10° or more.
[0017] In one embodiment of the present application, a reference circle is defined for the second connection part, and the center of the first reference ellipse and the center of the second reference ellipse both overlap with the center of the reference circle.
[0018] In one embodiment of the present application, the end face of the door facing the hinge assembly has an inner edge and an outer edge, the inner edge and the outer edge are spaced apart in a first direction and both extend in a second direction, the first direction is perpendicular to the second direction, and when the door closes the opening, the inner edge is closer to the box than the outer edge.
[0019] In one embodiment of the present application, the end face of the door facing the hinge assembly further has a side edge, the inner edge and the outer edge being connected by the side edge, and the side edge extending in the first direction.
[0020] In one embodiment of the present application, the side edge is perpendicular to the plane of the opening, and R≦N≦100 mm is satisfied, where R is the radius of the reference circle and N is the distance from the center of the reference circle to the side edge.
[0021] In one embodiment of the present application, if the radius of the reference circle is R, the length of the side edge in the first direction is D, and the distance from the center of the reference circle to the outer edge is W, then R≦W≦(1 / 2)D.
[0022] In one embodiment of the present application, the side edge is perpendicular to the plane on which the opening is located, and when the distance from the center of the reference circle to the side edge is N, the range is 15 mm≦N≦100 mm.
[0023] In one embodiment of the present application, R≦W≦D is satisfied, where R is the radius of the reference circle, D is the length of the side edge in the first direction, and W is the distance from the center of the reference circle to the outer edge.
[0024] In one embodiment of the present application, if the length of the door in the first direction is H, then 35 mm≦H≦100 mm; if the length of the door in the second direction is L, then 300 mm≦L≦700 mm; if the radius of the reference circle is R, then R=(1 / 3)H; and if the minimum distance from the reference circle to the outer edge is M, then 0 mm≦M≦15 mm.
[0025] The beneficial effects of the present application are as follows: Different from the prior art, the hinge assembly of the box device according to the present application is provided with a first slide rail and a second slide rail. The first slide rail extends on a first reference ellipse, and the second slide rail extends on a second reference ellipse. When the door closes the opening, the portion of the first slide rail that moves away from the box and the portion of the second slide rail that moves away from the box are both away from the pivot side. This allows the door to move toward the target side of the box as it opens from a state in which the door has closed the opening, reducing the extent to which the door protrudes from the outer wall of the box and reducing the risk of the door interfering with or colliding with an external structure during rotation. [Brief explanation of the drawings]
[0026] The accompanying drawings, which are incorporated in and constitute a part of the specification, illustrate embodiments consistent with the present application and, together with the specification, serve to explain the principles of the present application. It should be noted that these drawings and textual descriptions are not intended to limit the scope of the present application in any way, but rather to explain the concepts of the present application to those skilled in the art with reference to specific embodiments. [Figure 1] 1 is a structural schematic diagram of an embodiment of a refrigeration device according to the prior art; [Figure 2] 1 is a structural schematic diagram of an embodiment of a box device according to the present application; [Figure 3] 1 is a structural schematic diagram of a slide shaft and a slide rail according to a first embodiment of the present invention; [Figure 4] 3 is a structural schematic diagram of a part of the box device shown in FIG. 2. FIG. [Figure 5] 1 is a structural schematic diagram of an embodiment of the door opening process according to the present application; [Figure 6] 4 is a structural schematic diagram of a second embodiment of a slide shaft and a slide rail according to the present application. FIG. [Figure 7] 10 is a structural schematic diagram of a third embodiment of a slide shaft and a slide rail according to the present application. FIG. [Figure 8]10 is a structural schematic diagram of a fourth embodiment of a slide shaft and a slide rail according to the present application. FIG. [Figure 9] 10 is a structural schematic diagram of a slide shaft and a slide rail according to a fifth embodiment of the present invention. FIG. [Figure 10] FIG. 10 is a structural schematic diagram of a slide shaft and a slide rail according to a sixth embodiment of the present invention. [Figure 11] FIG. 10 is a structural schematic diagram of a seventh embodiment of a slide shaft and a slide rail according to the present application. [Figure 12] FIG. 13 is a structural schematic diagram of an eighth embodiment of a slide shaft and a slide rail according to the present application. [Figure 13] FIG. 13 is a structural schematic diagram of a slide shaft and a slide rail according to a ninth embodiment of the present invention. [Figure 14] FIG. 22 is a structural schematic diagram of a slide shaft and a slide rail according to a tenth embodiment of the present invention. [Figure 15] FIG. 16 is a structural schematic diagram of an eleventh embodiment of a slide shaft and a slide rail according to the present application. [Figure 16] FIG. 22 is a structural schematic diagram of a slide shaft and a slide rail according to a twelfth embodiment of the present invention. [Figure 17] FIG. 22 is a structural schematic diagram of a slide shaft and a slide rail according to a thirteenth embodiment of the present invention. [Figure 18] FIG. 22 is a structural schematic diagram of a slide shaft and a slide rail according to a fourteenth embodiment of the present invention. [Figure 19] FIG. 20 is a structural schematic diagram of a slide shaft and a slide rail according to a fifteenth embodiment of the present invention. [Figure 20] 1 is a structural schematic diagram of an embodiment of a slide rail extending along a base ellipse according to the present application; [Figure 21] FIG. 20 is a structural schematic diagram of a slide shaft and a slide rail according to a sixteenth embodiment of the present invention. [Figure 22] 1 is a structural schematic diagram of a part of a door according to the present application. [Figure 23] 3 is a structural schematic diagram of another part of the box device shown in FIG. 2. FIG. DETAILED DESCRIPTION OF THE INVENTION
[0027] In order to make the objectives, technical solutions and advantages of the present application clearer, the following will clearly and completely describe the technical solutions in the embodiments of the present application in combination with the embodiments of the present application. Obviously, the described embodiments are only some of the embodiments of the present application, and not all of the embodiments. All other embodiments obtained by those skilled in the art based on the embodiments of the present application without any inventive efforts fall within the scope of protection of the present application. The embodiments and features in the embodiments described below can be combined with each other without any contradiction.
[0028] Basic structure Please refer to FIG. 1, which is a structural schematic diagram of one embodiment of a prior art refrigeration device.
[0029] In the prior art, a hinge structure for opening and closing a door of a freezing appliance such as a refrigerator generally uses a single hinge shaft design. For example, a hinge fixing plate 12 is provided on a case 11 of a refrigerator 10, a hinge fixing plate 12 is provided on the hinge fixing plate 12, a hinge shaft 13 is provided on the door 14 of the refrigerator 10, a shaft hole (not shown) is provided in the shaft hole, the hinge shaft 13 is inserted into the shaft hole, and the hinge shaft 13 is rotatable in the shaft hole, allowing the door 14 to rotate relative to the case 11, thereby realizing the opening and closing of the door 14. As home decor styles gradually move toward wholeness, invisibility, and simplicity, inset mounting of refrigerators 10 is also becoming popular. For example, refrigerators 10 are fitted into cabinets 15. However, due to limitations imposed by the use of a single hinge shaft design in conventional hinge structures, door 14 may protrude from the outer wall 111 of case 11 during rotation relative to case 11, which may create a hidden risk of interference or collision with an external structure (such as cabinet 15) during rotation.
[0030] In view of this, an embodiment of the present application provides a box device that can reduce the extent to which the door protrudes from the outer wall of the box during rotation, as will be described in detail below.
[0031] Please refer to FIG. 2, which is a structural schematic diagram of an embodiment of a box device according to the present application.
[0032] In one embodiment, the box device may be a refrigeration device such as a refrigerator, a chest freezer, etc. Of course, the box device may also be any other equipment having a box body 20 and a door 30, where the door 30 is required to be rotatable relative to the box body 20. Hereinafter, a refrigerator will be described as an example of the box device, but this is for the purpose of discussion only and does not limit the specific embodiment of the box device.
[0033] The box device includes a box 20. The box 20 is a storage medium of the box device, and a user stores items that need to be refrigerated or frozen in the box 20. Specifically, a storage space 21 having an opening 22 is provided inside the box 20, and the items that need to be refrigerated or frozen are stored in the storage space 21 through the opening 22.
[0034] The box device further includes a door 30 for closing the opening 22 of the storage space 21. When the door 30 closes the opening 22, i.e., when the door 30 is in a closed state, a sealed space for storing items is formed inside the box 20. The door 30 is rotatably connected to the pivot side 23 of the box 20, i.e., the door 30 can rotate relative to the box 20. The box 20 further includes a target side 24, and the pivot side 23 and the target side 24 are provided on both sides of the opening 22 opposite each other.
[0035] The box device further includes a hinge assembly 40. The hinge assembly 40 is provided on the pivot side 23 of the box 20 and pivotally connects the box 20 and the door 30, i.e., realizes a rotational connection between the box 20 and the door 30. Specifically, the hinge assembly 40 includes a first connecting part 41 provided on one of the box 20 and the door 30 and a second connecting part 42 provided on the other. The first connecting part 41 is provided with a slide shaft, and the second connecting part 42 is provided with a slide rail, and the slide shaft is movably connected to the slide rail. When the door 30 rotates relative to the box 20, the slide shaft moves along the slide rail.
[0036] It should be noted that the first connecting part 41 and the second connecting part 42 may be part of the box 20 or the door 30, i.e., the first connecting part 41 and the second connecting part 42 may be integral with the box 20 or the door 30. For example, when the first connecting part 41 is provided on the box 20 and the second connecting part 42 is provided on the door 30, the first connecting part 41 and the box 20 may be integral with each other, and the second connecting part 42 and the door 30 may be integral with each other. In particular, when the sliding rail is groove-shaped, the surface of the door 30 is recessed to directly form the sliding rail, and the sliding shaft is embedded in the sliding rail. In this case, the location on the door 30 where the sliding rail is located is understood to be the second connecting part 42.
[0037] In one embodiment, the end face of the door 30 facing the hinge assembly 40 has an inner edge 31, an outer edge 32, and a side edge 33. The inner edge 31 and the outer edge 32 are spaced apart in a first direction Z1 and both extend in a second direction Z2. When the door 30 closes the opening 22, the inner edge 31 is closer to the box 20 than the outer edge 32. The side edge 33 is located on the pivot side 23 and is connected to the inner edge 31 and outer edge 32 by the side edge 33, which extends in the first direction Z1. When the door 30 closes the opening 22, the side edge 33 is perpendicular to the plane 221 in which the opening 22 is located.
[0038] The door 30 has a first inner ridge 34 and an outer ridge 35 on the pivot side 23. The first inner ridge 34 and the outer ridge 35 are spaced apart in the first direction Z1 and both extend in the third direction Z3. When the door 30 closes the opening 22, the first inner ridge 34 is closer to the box 20 than the outer ridge 35. The first inner ridge 34 is connected to the intersection of the inner edge 31 and the side edge 33, and the outer ridge 35 is connected to the intersection of the outer edge 32 and the side edge 33.
[0039] The door 30 further has a second inner ridge 36 on the side away from the pivot side 23. The second inner ridge 36 extends in a third direction Z3. When the door 30 closes the opening 22, a plane passing through the first inner ridge 34 and the second inner ridge 36 is parallel to a plane 221 in which the opening 22 lies. A user typically grasps the side of the door 30 away from the pivot side 23 to open the door 30.
[0040] Among these, the first direction Z1, the second direction Z2, and the third direction Z3 are perpendicular to one another. When the box device is placed correctly, the first direction Z1 and the second direction Z2 are all horizontal, and the third direction Z3 is vertical. The pivot side 23 and the target side 24 are arranged opposite to the second direction Z2. Since the third direction Z3 in FIG. 2 is perpendicular to the plane of the drawing, the third direction Z3 is shown as a single dot in FIG. 2. Similarly, the first inner edge 34, the outer edge 35, and the second inner edge 36 are shown as dots in FIG. 2.
[0041] In one embodiment, the box device further includes a door seal 50 provided on the door 30. The door 30 closes the opening 22 of the storage space 21 through the door seal 50, and when the door 30 closes the opening 22, the storage space 21 can have a good sealing effect. The door seal 50 has a third inner edge 51 on the pivot side 23, which extends along the third direction Z3, and the third inner edge 51 and the door 30 are spaced apart from each other. Similarly, the third inner edge 51 is shown in the form of a dot in FIG. 2 .
[0042] It should be noted that the box device of the embodiment of the present application may adopt a single-door type, a double-door type, or even a design with more doors 30. The box device provides an independent storage space 21 corresponding to each door 30, that is, the door 30 and the storage space 21 have a one-to-one correspondence, and the door 30 is used to close the corresponding storage space 21.
[0043] Collaboration of linear slide rails Please refer to FIG. 2 and FIG. 3. FIG. 3 is a structural schematic diagram of a first embodiment of a ride shaft and a slide rail according to the present application.
[0044] In one embodiment, the first connecting part 41 is provided with at least a slide shaft 411 and a slide shaft 412, and the second connecting part 42 is provided with at least a slide rail 421 and a slide rail 422, and the slide shaft 411 is movably connected to the slide rail 421, and the slide shaft 412 is movably connected to the slide rail 422.
[0045] Both slide rails 421 and 422 extend in a straight line, and when door 30 closes opening 22, slide rail 421 is perpendicular to plane 221 on which opening 22 is located, and slide rail 422 is provided at an angle to plane 221 on which opening 22 is located, and moves door 30 toward target side 24 of box body 20 as door 30 moves from a state in which opening 22 is closed to a state in which door 30 opens relative to box body 20.
[0046] Specifically, a reference circle 61, a first reference line 62, and a second reference line 63 are defined for the second connecting part 42. The reference circle 61, the first reference line 62, and the second reference line 63 are on the same plane, the first reference line 62 and the second reference line 63 intersect with the center O of the reference circle 61, and when the door 30 closes the opening 22, the first reference line 62 is perpendicular to the plane 221 on which the opening 22 is located.
[0047] The slide rail 421 extends in a straight line along the first reference line 62, and the slide rail 422 extends in a straight line along the second reference line 63. In the process of the door 30 closing the opening 22 and opening it relative to the box body 20, the slide shaft 411 moves along the slide rail 421, and the slide shaft 412 moves along the slide rail 422, thereby moving the door 30 toward the target side 24 of the box body 20.
[0048] As described above, when the door 30 is opened relative to the box body 20 from a state in which the opening 22 is closed by the action of the hinge assembly 40, the door 30 may move toward the target side 24 of the box body 20, reducing the extent to which the door 30 protrudes from the outer wall 25 of the box body 20 and reducing the risk of the door 30 interfering with or colliding with an external structure during rotation. In other words, in this embodiment, the gap between the box body device and the external structure located adjacent thereto can be made as small as a microseam, or even seamless, which is advantageous for installing the box body device as a built-in.
[0049] It should be explained that the slide rail extends along the reference line means that the center line of the slide rail overlaps with the reference line.
[0050] In this embodiment, the slide rail 421 and the slide rail 422 have an intersection point. When the door 30 closes the opening 22, the slide shaft 411 and the slide shaft 412 are both farther from the opening 22 than the intersection point, and the connecting line between the slide shaft 411 and the slide shaft 412 is perpendicular to the slide rail 422.
[0051] Specifically, when the door 30 closes the opening 22, the door 30 is in the closed state, and the minimum distance from the central axis 414 of the slide shaft 411 to the plane 221 on which the opening 22 is located and the minimum distance from the central axis 415 of the slide shaft 412 to the plane 221 on which the opening 22 is located are both equal to or greater than the minimum distance from the center O of the reference circle 61 to the plane 221 on which the opening 22 is located. The central axis 414 of the slide shaft 411 is located at the intersection of the first reference line 62 and the reference circle 61; that is, the starting point of the slide shaft 411 is located at the intersection of the first reference line 62 and the reference circle 61. The connecting line between the intersection of the center axis 415 of the slide shaft 412 and the second reference line 63 and the intersection of the first reference line 62 and the reference circle 61 is perpendicular to the second reference line 63, i.e., the connecting line between the starting point of the slide shaft 412 and the intersection of the first reference line 62 and the reference circle 61 is perpendicular to the second reference line 63.
[0052] It should be noted that the central axis 414 of the slide shaft 411 and the central axis 415 of the slide shaft 412 are both perpendicular to the paper surface shown in the accompanying drawings of the present application, and therefore the central axis 414 of the slide shaft 411 and the central axis 415 of the slide shaft 412 are all shown as dots in the accompanying drawings of the present application.
[0053] As described above, when the door 30 is opened relative to the box body 20 from a state in which the opening 22 is closed by the action of the hinge assembly 40, the door 30 can move along a set trajectory. Specifically, as shown in Figures 4 and 5, the outer edge 35 of the door 30 can move along a trajectory A1, the first inner edge 34 can move along a trajectory A2, the second inner edge 36 can move along a trajectory A3, and the third inner edge 51 of the door seal 50 can move along a trajectory A4.
[0054] When a box device is installed as a built-in device, the industry generally requires that the distance between the box device and the external structure located next to it be 4 mm or less, and that the maximum opening angle of the door 30 be 90° or more. When the door 30 of the box device of this embodiment moves along a set trajectory, the maximum distance g that the outer edge 35 of the door 30 protrudes from the outer wall 25 of the box 20 is max It is possible to ensure that the maximum opening angle a of the door 30 is 4 mm or less. max It is possible to ensure that the maximum opening angle is greater than 90°. max can reach 150°, so it can meet the requirements.
[0055] Furthermore, when the door 30 closes the opening 22, the slide rail 422 extends in a direction toward the pivot side 23 or in a direction away from the box body 20, and the slide shaft 412 is located on the side recessed from the target side 24 of the first reference line 62. That is, as shown in FIG. 3 , the start point of the slide shaft 412 is located on the side recessed from the target side 24 of the first reference line 62. Alternatively, when the door 30 closes the opening 22, the slide rail 422 extends in a direction toward the target side 24 or in a direction away from the box body 20, and the slide shaft 412 is located on the side of the first reference line 62 toward the target side 24. That is, the start point of the slide shaft 412 is located on the side of the first reference line 62 toward the target side 24. In this way, the door 30 can move along a set trajectory by the action of the hinge assembly 40 during the process of opening the door 30 from a state in which the opening 22 is closed relative to the box body 20.
[0056] Please refer to FIG. 6 together with FIG. 6, which is a structural schematic diagram of a second embodiment of the slide shaft and slide rail according to the present application.
[0057] In one embodiment, the first connecting part 41 is further provided with a slide shaft 413, and the second connecting part 42 is further provided with a slide rail 423, and the slide shaft 413 is movably connected to the slide rail 423. The slide rail 423 extends linearly, and when the door 30 closes the opening 22, the slide rail 423 is provided at an angle to the plane 221 on which the opening 22 is located and the slide rail 422.
[0058] Specifically, the second connecting part 42 further defines a third reference line 64, which is on the same plane as the reference circle 61 and intersects with the first reference line 62 and the second reference line 63 and the center O of the reference circle 61, respectively.
[0059] It should be noted that the central axis 416 of the slide shaft 413 is perpendicular to the plane of the paper shown in the accompanying drawings of the present application, so the central axis 416 of the slide shaft 413 is shown as a dot in the accompanying drawings of the present application.
[0060] In this way, at any given time, at least two of the movement directions of the slide shaft 411, the slide shaft 412, and the slide shaft 413 are different, which avoids the problem of unstable movement of the door 30 caused by the slide shafts 411, 412, and 413 moving in the same direction at a given time, and is advantageous in ensuring stability in the movement of the door 30.
[0061] In this embodiment, the slide rails 421, 422, and 423 have an intersection point. When the door 30 closes the opening 22, the slide shaft 413 is farther from the opening 22 than the intersection point, and the connecting line between the slide shaft 411 and the slide shaft 413 is perpendicular to the slide rail 423.
[0062] Specifically, when the door 30 closes the opening 22, the minimum distance from the central axis 416 of the slide shaft 413 to the plane 221 on which the opening 22 is located is equal to or greater than the minimum distance from the center O of the reference circle 61 to the plane 221 on which the opening 22 is located, and the connecting line between the intersection of the central axis 416 of the slide shaft 413 and the third reference line 64 and the intersection of the first reference line 62 and the reference circle 61 is perpendicular to the third reference line 64; that is, the connecting line between the starting point of the slide shaft 413 and the intersection of the first reference line 62 and the reference circle 61 is perpendicular to the third reference line 64. In this way, when the door 30 is opened relative to the box 20 from a state in which the opening 22 is closed by the action of the hinge assembly 40, the door 30 can move along a set trajectory.
[0063] Furthermore, when the door 30 closes the opening 22, the slide rail 423 extends in a direction toward the pivot side 23 or in a direction away from the box body 20, and the slide shaft 413 is located on the side recessed from the target side 24 of the first reference line 62. That is, as shown in FIG. 3 , the start point of the slide shaft 413 is located on the side recessed from the target side 24 of the first reference line 62. Alternatively, when the door 30 closes the opening 22, the slide rail 423 extends in a direction toward the target side 24 or in a direction away from the box body 20, and the slide shaft 413 is located on the side toward the target side 24 of the first reference line 62. That is, the start point of the slide shaft 413 is located on the side toward the target side 24 of the first reference line 62. In this way, the door 30 can move along a set trajectory by the action of the hinge assembly 40 during the process of opening the door 30 from a state in which the opening 22 is closed relative to the box body 20.
[0064] Preferably, when the door 30 closes the opening 22, one of the slide rails 422 and 423 extends in a direction toward the pivot side 23 or away from the box body 20, and the other extends in a direction toward the target side 24 or away from the box body 20. That is, as shown in Fig. 6, one of the slide shafts 412 and 413 is located on the side of the first reference line 62 that is recessed from the target side 24, and the other is located on the side of the first reference line 62 that faces the target side 24. In other words, the slide rails 422 and 423 are located on both sides of the slide rail 421, which is advantageous in further ensuring the stability of the movement of the door 30.
[0065] Of course, in other embodiments of the present application, when the door 30 closes the opening 22, the slide shaft 412 and the slide shaft 413 may be located on the same side of the first reference line 62, and are not limited here.
[0066] Please refer to FIG. 7 together, which is a structural schematic diagram of a third embodiment of the slide shaft and slide rail according to the present application.
[0067] In an alternative embodiment, the hinge assembly 40 may be provided with only the slide shaft 412 and the slide rail 422, or the slide shaft 413 and the slide rail 423. When the door 30 is opened relative to the box body 20 from a state in which the opening 22 is closed by the action of the hinge assembly 40, the slide shaft 412 moves along the slide rail 422, and the slide shaft 413 moves along the slide rail 423, and similarly, the door 30 can be guided to move along a set trajectory.
[0068] Vertical linear slide rails and oval slide rails work together 2, 8, and 9, Fig. 8 is a structural schematic diagram of a fourth embodiment of the slide shaft and slide rail according to the present application, and Fig. 9 is a structural schematic diagram of a fifth embodiment of the slide shaft and slide rail according to the present application. In particular, in some of the accompanying drawings of the present application, the widths of the slide shaft and slide rail are omitted, and the slide shaft is represented by the central axis of the slide shaft, and the slide rail is represented by the center line of the slide rail.
[0069] In one embodiment, the first connecting part 41 is provided with at least a slide shaft 411 and a slide shaft 412, and the second connecting part 42 is provided with at least a slide rail 421 and a slide rail 422, and the slide shaft 411 is movably connected to the slide rail 421, and the slide shaft 412 is movably connected to the slide rail 422.
[0070] The slide rail 421 extends in a straight line, and the slide rail 422 extends along an ellipse. When the door 30 closes the opening 22, the slide rail 421 is perpendicular to the plane 221 on which the opening 22 is located, and the portion of the slide rail 422 that moves away from the box body 20 is farther from the pivot side 23 than the slide rail 421, and moves the door 30 toward the target side 24 of the box body 20 as the door 30 moves from a state in which it has closed the opening 22 to a state in which it is opened relative to the box body 20.
[0071] Specifically, a reference circle 61, a first reference line 62, and a reference ellipse 65 are defined for the second connecting part 42, and the reference circle 61, the first reference line 62, and the reference ellipse 65 are on the same plane, the first reference line 62 passes through the center O of the reference circle 61, and the center of the reference ellipse 65 overlaps with the center O. In particular, when the door 30 closes the opening 22, the first reference line 62 is perpendicular to the plane 221 on which the opening 22 is located, and the portion of the reference ellipse 65 that moves away from the box body 20 is closer to the target side 24 than the first reference line 62.
[0072] The slide rail 421 extends linearly along the first reference line 62, and the slide rail 422 extends along the reference ellipse 65. In the process of the door 30 closing the opening 22 and opening it relative to the box body 20, the slide shaft 411 moves along the slide rail 421, and the slide shaft 412 moves along the slide rail 422, thereby moving the door 30 toward the target side 24 of the box body 20.
[0073] As described above, when the door 30 is opened relative to the box 20 from a state in which the opening 22 is closed by the action of the hinge assembly 40, the door 30 may move toward the target side 24 of the box 20, reducing the extent to which the door 30 protrudes from the outer wall 25 of the box 20 and reducing the risk of the door 30 interfering with or colliding with an external structure during rotation. In other words, in this embodiment, the gap between the box device and the adjacent external structure can be made as small as a microseam, or even seamless, which is advantageous for installing the box device as a built-in.
[0074] It should be explained that the slide rail extends along the reference ellipse means that the center line of the slide rail overlaps with the reference ellipse.
[0075] In this embodiment, the slide rail 421 passes through the center of the ellipse. When the door 30 closes the opening 22, both the slide shaft 411 and the slide shaft 412 are farther from the opening 22 than the center of the ellipse, and the slide rail 422 extends in a direction toward the pivot side 23 or in a direction closer to the box body 20.
[0076] Specifically, the second connecting part 42 further defines a second reference line 63, a first coordinate axis X, and a second coordinate axis Y, the second reference line 63 being on the same plane as the first reference line 62 and intersecting the first reference line 62 with the center O of the reference circle 61, and the origin of the coordinate system defined by the first coordinate axis X and the second coordinate axis Y being the center O. In particular, when the door 30 closes the opening 22, the first coordinate axis X is parallel to the plane 221 on which the opening 22 is located, and the second coordinate axis Y is perpendicular to the plane 221 on which the opening 22 is located.
[0077] An arbitrary point (x, y) in the coordinate system of the base ellipse 65 satisfies the following relationship.
[0078] x=M / sin(θ)*cos(90°-a-θ)-R*sin(a),y=M / sin(θ)*sin(90°-a-θ)
[0079] Among them, x is the coordinate value of the arbitrary point on the first coordinate axis X, y is the coordinate value of the arbitrary point on the second coordinate axis Y, M is the absolute coordinate value of the starting point of the slide axis 412 on the first coordinate axis X, a is the opening angle of the door 30 relative to the box body 20, and θ is the included angle between the first reference line 62 and the second reference line 63.
[0080] When the door 30 closes the opening 22, the minimum distance from the central axis of the slide shaft 411 to the plane 221 on which the opening 22 is located and the minimum distance from the central axis of the slide shaft 412 to the plane 221 on which the opening 22 is located are both equal to or greater than the minimum distance from the center O to the plane 221 on which the opening 22 is located. The central axis of the slide shaft 411 is located at the intersection of the first reference line 62 and the reference circle 61, i.e., the starting point of the slide shaft 411 is located at the intersection of the first reference line 62 and the reference circle 61. The central axis of the slide shaft 412 is located at the intersection of the reference ellipse 65 and the second reference line 63, i.e., the starting point of the slide shaft 412 is located at the intersection of the reference ellipse 65 and the second reference line 63.
[0081] In this manner, when the door 30 is opened relative to the box body 20 from a state in which the opening 22 is closed by the action of the hinge assembly 40, the door 30 can move along a set trajectory.
[0082] In one exemplary embodiment, when the door 30 closes the opening 22, the slide rail 422 is bent in a direction closer to the box body 20. Specifically, the second connecting part 42 further defines a reference point 66 located on the second reference line 63, and a connecting line between the reference point 66 and the intersection of the first reference line 62 and the reference circle 61 is perpendicular to the second reference line 63. As shown in FIGS. 2 and 8 , the starting point of the slide axis 412 is farther from the center O of the reference circle 61 than the reference point 66 is, and when the door 30 closes the opening 22, the slide rail 422 is located on the side of the second reference line 63 facing the target side 24.
[0083] In another exemplary embodiment, when the door 30 closes the opening 22, the slide rail 422 is bent in a direction away from the box body 20. Specifically, as shown in FIGS. 2 and 9 , the starting point of the slide shaft 412 is closer to the center O of the reference circle 61 than the reference point 66, and when the door 30 closes the opening 22, the slide rail 422 is located on the side recessed from the target side 24 of the second reference line 63.
[0084] Referring to Figures 2, 10 and 11, Figure 10 is a structural schematic diagram of a sixth embodiment of the slide shaft and slide rail according to the present application, and Figure 11 is a structural schematic diagram of a seventh embodiment of the slide shaft and slide rail according to the present application.
[0085] In one embodiment, the first connecting part 41 is provided with at least a slide shaft 411 and a slide shaft 412, and the second connecting part 42 is provided with at least a slide rail 421 and a slide rail 422, and the slide shaft 411 is movably connected to the slide rail 421, and the slide shaft 412 is movably connected to the slide rail 422.
[0086] The slide rail 421 extends in a straight line, and the slide rail 422 extends along an ellipse. When the door 30 closes the opening 22, the slide rail 421 is perpendicular to the plane 221 on which the opening 22 is located. The portion of the slide rail 422 that moves away from the box body 20 is closer to the pivot side 23 than the slide rail 421, and moves the door 30 toward the target side 24 of the box body 20 as the door 30 moves from a state in which the opening 22 is closed to a state in which the door 30 is opened relative to the box body 20.
[0087] Specifically, a reference circle 61, a first reference line 62, and a reference ellipse 65 are defined for the second connecting part 42, and the reference circle 61, the first reference line 62, and the reference ellipse 65 are on the same plane, the first reference line 62 passes through the center O of the reference circle 61, and the center of the reference ellipse 65 overlaps with the center O. In particular, when the door 30 closes the opening 22, the first reference line 62 is perpendicular to the plane 221 on which the opening 22 is located, and the portion of the reference ellipse 65 that is away from the box body 20 is farther from the target side 24 than the first reference line 62.
[0088] The slide rail 421 extends linearly along the first reference line 62, and the slide rail 422 extends along the reference ellipse 65. In the process of the door 30 closing the opening 22 and opening it relative to the box body 20, the slide shaft 411 moves along the slide rail 421, and the slide shaft 412 moves along the slide rail 422, thereby moving the door 30 toward the target side 24 of the box body 20.
[0089] As described above, when the door 30 is opened relative to the box 20 from a state in which the opening 22 is closed by the action of the hinge assembly 40, the door 30 may move toward the target side 24 of the box 20, reducing the extent to which the door 30 protrudes from the outer wall 25 of the box 20 and reducing the risk of the door 30 interfering with or colliding with an external structure during rotation. In other words, in this embodiment, the gap between the box device and the adjacent external structure can be made as small as a microseam, or even seamless, which is advantageous for installing the box device as a built-in.
[0090] In this embodiment, the slide rail 421 passes through the center of the ellipse. When the door 30 closes the opening 22, both the slide shaft 411 and the slide shaft 412 are farther from the opening 22 than the center of the ellipse, and the slide rail 422 is bent in a direction closer to the pivot side 23 or in a direction away from the box body 20.
[0091] Specifically, the second connecting part 42 further defines a second reference line 63, a first coordinate axis X, and a second coordinate axis Y, the second reference line 63 being on the same plane as the first reference line 62 and intersecting the first reference line 62 with the center O of the reference circle 61, and the origin of the coordinate system defined by the first coordinate axis X and the second coordinate axis Y being the center O. In particular, when the door 30 closes the opening 22, the first coordinate axis X is parallel to the plane 221 on which the opening 22 is located, and the second coordinate axis Y is perpendicular to the plane 221 on which the opening 22 is located.
[0092] An arbitrary point (x, y) in the coordinate system of the base ellipse 65 satisfies the following relationship.
[0093] x=M / sin(θ)*cos(90°+a-θ)+R*sin(a),y=-M / sin(θ)*sin(90°+a-θ)
[0094] Among them, x is the coordinate value of the arbitrary point on the first coordinate axis X, y is the coordinate value of the arbitrary point on the second coordinate axis Y, M is the absolute coordinate value of the starting point of the slide axis 412 on the first coordinate axis X, a is the opening angle of the door 30 relative to the box body 20, and θ is the included angle between the first reference line 62 and the second reference line 63.
[0095] When the door 30 closes the opening 22, the minimum distance from the central axis of the slide shaft 411 to the plane 221 on which the opening 22 is located and the minimum distance from the central axis of the slide shaft 412 to the plane 221 on which the opening 22 is located are both equal to or greater than the minimum distance from the center O to the plane 221 on which the opening 22 is located. The central axis of the slide shaft 411 is located at the intersection of the first reference line 62 and the reference circle 61, i.e., the starting point of the slide shaft 411 is located at the intersection of the first reference line 62 and the reference circle 61. The central axis of the slide shaft 412 is located at the intersection of the reference ellipse 65 and the second reference line 63, i.e., the starting point of the slide shaft 412 is located at the intersection of the reference ellipse 65 and the second reference line 63.
[0096] In this manner, when the door 30 is opened relative to the box body 20 from a state in which the opening 22 is closed by the action of the hinge assembly 40, the door 30 can move along a set trajectory.
[0097] In one exemplary embodiment, when the door 30 closes the opening 22, the slide rail 422 is located on the recessed side of the connecting line between the slide axis 412 and the center of the ellipse, away from the housing 20. Specifically, as shown in FIGS. 2 and 10 , the second connecting part 42 further defines a reference point 66 located on the second reference line 63, and the connecting line between the reference point 66 and the intersection of the first reference line 62 and the reference circle 61 is perpendicular to the second reference line 63. The starting point of the slide axis 412 is farther from the center O of the reference circle 61 than the reference point 66 is, and when the door 30 closes the opening 22, the slide rail 422 is located on the side of the second reference line 63 facing the target side 24.
[0098] In another exemplary embodiment, when the door 30 closes the opening 22, the slide rail 422 is located on the side of the connecting line between the slide axis 412 and the center of the ellipse, facing the box body 20. Specifically, as shown in Figures 2 and 11, the starting point of the slide axis 412 is closer to the center O of the reference circle 61 than the reference point 66, and when the door 30 closes the opening 22, the slide rail 422 is located on the side recessed from the target side 24 of the second reference line 63.
[0099] Cooperation between diagonal straight slide rails and elliptical slide rails Referring to Figures 2, 12 and 13, Figure 12 is a structural schematic diagram of an eighth embodiment of a slide shaft and a slide rail according to the present application, and Figure 13 is a structural schematic diagram of a ninth embodiment of a slide shaft and a slide rail according to the present application.
[0100] In one embodiment, the first connecting part 41 is provided with at least a slide shaft 411 and a slide shaft 412, and the second connecting part 42 is provided with at least a slide rail 421 and a slide rail 422, and the slide shaft 411 is movably connected to the slide rail 421, and the slide shaft 412 is movably connected to the slide rail 422.
[0101] The slide rail 421 extends in a straight line, and the slide rail 422 extends along an ellipse. When the door 30 closes the opening 22, the slide rail 421 is disposed at an angle to the plane 221 on which the opening 22 is located, and the portion of the slide rail 422 that moves away from the box body 20 is farther from the pivot side 23 than the slide rail 421, and in the process of the door 30 moving from a state in which the opening 22 is closed to the box body 20 and opening it relative to the box body 20, the door 30 moves toward the target side 24 of the box body 20.
[0102] Specifically, the second connecting part 42 defines a reference circle 61, a first reference line 62, a second reference line 63, and a reference ellipse 65, and the reference circle 61, the first reference line 62, the second reference line 63, and the reference ellipse 65 are on the same plane, the first reference line 62 and the second reference line 63 intersect with the center O of the reference circle 61, and the center of the reference ellipse 65 overlaps with the center O. In particular, when the door 30 closes the opening 22, the first reference line 62 is perpendicular to the plane 221 on which the opening 22 is located, and the portion of the reference ellipse 65 that moves away from the box body 20 is closer to the target side 24 than the first reference line 62.
[0103] The slide rail 421 extends linearly along the second reference line 63, and the slide rail 422 extends along the reference ellipse 65. In the process of the door 30 being opened relative to the box body 20 from a state in which the opening 22 is closed, the slide shaft 411 moves along the slide rail 421, and the slide shaft 412 moves along the slide rail 422, thereby moving the door 30 toward the target side 24 of the box body 20.
[0104] As described above, when the door 30 is opened relative to the box 20 from a state in which the opening 22 is closed by the action of the hinge assembly 40, the door 30 may move toward the target side 24 of the box 20, reducing the extent to which the door 30 protrudes from the outer wall 25 of the box 20 and reducing the risk of the door 30 interfering with or colliding with an external structure during rotation. In other words, in this embodiment, the gap between the box device and the adjacent external structure can be made as small as a microseam, or even seamless, which is advantageous for installing the box device as a built-in.
[0105] In this embodiment, the slide rail 421 passes through the center of the ellipse. When the door 30 closes the opening 22, both the slide shaft 411 and the slide shaft 412 are farther from the opening 22 than the center of the ellipse, and the slide rail 422 extends in a direction toward the pivot side 23 or in a direction closer to the box body 20.
[0106] Specifically, the second connecting part 42 further defines a third reference line 64, a first coordinate axis X, and a second coordinate axis Y, the third reference line 64 being on the same plane as the first reference line 62 and intersecting the first reference line 62 with the center O of the reference circle 61, and the origin of the coordinate system defined by the first coordinate axis X and the second coordinate axis Y being the center O. In particular, when the door 30 closes the opening 22, the first coordinate axis X is parallel to the plane 221 on which the opening 22 is located, and the second coordinate axis Y is perpendicular to the plane 221 on which the opening 22 is located.
[0107] An arbitrary point (x, y) in the coordinate system of the base ellipse 65 satisfies the following relationship.
[0108] x=M / sin(θ)*cos(90°-a-θ)-R*sin(a),y=M / sin(θ)*sin(90°-a-θ)
[0109] Among them, x is the coordinate value of the arbitrary point on the first coordinate axis X, y is the coordinate value of the arbitrary point on the second coordinate axis Y, M is the absolute coordinate value of the starting point of the slide axis 412 on the first coordinate axis X, a is the opening angle of the door 30 relative to the box body 20, and θ is the included angle between the first reference line 62 and the third reference line 64.
[0110] When the door 30 closes the opening 22, the minimum distance from the central axis of the slide shaft 411 to the plane 221 on which the opening 22 is located and the minimum distance from the central axis of the slide shaft 412 to the plane 221 on which the opening 22 is located are both equal to or greater than the minimum distance from the center O of the circle to the plane 221 on which the opening 22 is located. A connecting line between the intersection of the central axis of the slide shaft 411 and the second reference line 63 and the intersection of the first reference line 62 and the reference circle 61 is perpendicular to the second reference line 63; that is, a connecting line between the starting point of the slide shaft 411 and the intersection of the first reference line 62 and the reference circle 61 is perpendicular to the second reference line 63. The central axis of the slide shaft 412 is located at the intersection of the reference ellipse 65 and the third reference line 64; that is, the starting point of the slide shaft 412 is located at the intersection of the reference ellipse 65 and the third reference line 64.
[0111] In this manner, when the door 30 is opened relative to the box body 20 from a state in which the opening 22 is closed by the action of the hinge assembly 40, the door 30 can move along a set trajectory.
[0112] In one exemplary embodiment, when the door 30 closes the opening 22, the slide rail 422 is bent in a direction closer to the box body 20. Specifically, the second connecting part 42 further defines a reference point 66, which is located on a third reference line 64, and a connecting line between the reference point 66 and the intersection of the first reference line 62 and the reference circle 61 is perpendicular to the third reference line 64. As shown in FIGS. 2 and 12 , the starting point of the slide axis 412 is farther from the center O of the reference circle 61 than the reference point 66 is, and when the door 30 closes the opening 22, the slide rail 422 is located on the side of the third reference line 64 facing the target side 24.
[0113] In another exemplary embodiment, when the door 30 closes the opening 22, the slide rail 422 is bent in a direction away from the box body 20. Specifically, as shown in FIGS. 2 and 13 , the starting point of the slide shaft 412 is closer to the center O of the reference circle 61 than the reference point 66, and when the door 30 closes the opening 22, the slide rail 422 is located on the recessed side from the target side 24 of the third reference line 64.
[0114] In this embodiment, when the door 30 closes the opening 22, the slide rail 421 extends in a direction toward the pivot side 23 or in a direction away from the box 20, and the slide shaft 411 is located on the side of the first reference line 62 that is recessed from the target side 24. That is, as shown in FIGS. 12 and 13 , the start point of the slide shaft 411 is located on the side of the first reference line 62 that is recessed from the target side 24. Alternatively, when the door 30 closes the opening 22, the slide rail 421 extends in a direction toward the target side 24 or in a direction away from the box 20, and the slide shaft 411 is located on the side of the first reference line 62 that is toward the target side 24. That is, the start point of the slide shaft 411 is located on the side of the first reference line 62 that is toward the target side 24. In this way, the door 30 can move along a set trajectory by the action of the hinge assembly 40 as it moves from a state in which the opening 22 is closed to a state in which the door 30 is opened relative to the box 20.
[0115] Referring to Figures 2, 14 and 15, Figure 14 is a structural schematic diagram of a tenth embodiment of a slide shaft and a slide rail according to the present application, and Figure 15 is a structural schematic diagram of an eleventh embodiment of a slide shaft and a slide rail according to the present application.
[0116] In one embodiment, the first connecting part 41 is provided with at least a slide shaft 411 and a slide shaft 412, and the second connecting part 42 is provided with at least a slide rail 421 and a slide rail 422, and the slide shaft 411 is movably connected to the slide rail 421, and the slide shaft 412 is movably connected to the slide rail 422.
[0117] The slide rail 421 extends in a straight line, and the slide rail 422 extends along an ellipse. When the door 30 closes the opening 22, the slide rail 421 is disposed at an angle to the plane 221 on which the opening 22 is located, and the portion of the slide rail 422 that moves away from the box body 20 is closer to the pivot side 23 than the slide rail 421, and moves the door 30 toward the target side 24 of the box body 20 as the door 30 moves from a state in which the opening 22 is closed to a state in which the door 30 is opened relative to the box body 20.
[0118] Specifically, a reference circle 61, a first reference line 62, a second reference line 63, and a reference ellipse 65 are defined for the second connecting part 42, and the reference circle 61, the first reference line 62, the second reference line 63, and the reference ellipse 65 are on the same plane, the first reference line 62 and the second reference line 63 intersect with the center O of the reference circle 61, and the center of the reference ellipse 65 overlaps with the center O. In particular, when the door 30 closes the opening 22, the first reference line 62 is perpendicular to the plane 221 on which the opening 22 is located, and the portion of the reference ellipse 65 that is away from the box body 20 is farther from the target side 24 than the first reference line 62.
[0119] The slide rail 421 extends linearly along the second reference line 63, and the slide rail 422 extends along the reference ellipse 65. In the process of the door 30 being opened relative to the box body 20 from a state in which the opening 22 is closed, the slide shaft 411 moves along the slide rail 421, and the slide shaft 412 moves along the slide rail 422, thereby moving the door 30 toward the target side 24 of the box body 20.
[0120] As described above, when the door 30 is opened relative to the box 20 from a state in which the opening 22 is closed by the action of the hinge assembly 40, the door 30 may move toward the target side 24 of the box 20, reducing the extent to which the door 30 protrudes from the outer wall 25 of the box 20 and reducing the risk of the door 30 interfering with or colliding with an external structure during rotation. In other words, in this embodiment, the gap between the box device and the adjacent external structure can be made as small as a microseam, or even seamless, which is advantageous for installing the box device as a built-in.
[0121] In this embodiment, the slide rail 421 passes through the center of the ellipse. When the door 30 closes the opening 22, both the slide shaft 411 and the slide shaft 412 are farther from the opening 22 than the center of the ellipse, and the slide rail 422 is bent in a direction closer to the pivot side 23 or in a direction away from the box body 20.
[0122] Specifically, the second connecting part 42 further defines a third reference line 64, a first coordinate axis X, and a second coordinate axis Y, the third reference line 64 being on the same plane as the first reference line 62 and intersecting the first reference line 62 with the center O of the reference circle 61, and the origin of the coordinate system defined by the first coordinate axis X and the second coordinate axis Y being the center O. In particular, when the door 30 closes the opening 22, the first coordinate axis X is parallel to the plane 221 on which the opening 22 is located, and the second coordinate axis Y is perpendicular to the plane 221 on which the opening 22 is located.
[0123] An arbitrary point (x, y) in the coordinate system of the base ellipse 65 satisfies the following relationship.
[0124] x=M / sin(θ)*cos(90°+a-θ)+R*sin(a),y=-M / sin(θ)*sin(90°+a-θ)
[0125] Among them, x is the coordinate value of the arbitrary point on the first coordinate axis X, y is the coordinate value of the arbitrary point on the second coordinate axis Y, M is the absolute coordinate value of the starting point of the slide axis 412 on the first coordinate axis X, a is the opening angle of the door 30 relative to the box body 20, and θ is the included angle between the first reference line 62 and the third reference line 64.
[0126] When the door 30 closes the opening 22, the minimum distance from the central axis of the slide shaft 411 to the plane 221 on which the opening 22 is located and the minimum distance from the central axis of the slide shaft 412 to the plane 221 on which the opening 22 is located are both equal to or greater than the minimum distance from the center O of the circle to the plane 221 on which the opening 22 is located. A connecting line between the intersection of the central axis of the slide shaft 411 and the second reference line 63 and the intersection of the first reference line 62 and the reference circle 61 is perpendicular to the second reference line 63; that is, a connecting line between the starting point of the slide shaft 411 and the intersection of the first reference line 62 and the reference circle 61 is perpendicular to the second reference line 63. The central axis of the slide shaft 412 is located at the intersection of the reference ellipse 65 and the third reference line 64; that is, the starting point of the slide shaft 412 is located at the intersection of the reference ellipse 65 and the third reference line 64.
[0127] In this manner, when the door 30 is opened relative to the box body 20 from a state in which the opening 22 is closed by the action of the hinge assembly 40, the door 30 can move along a set trajectory.
[0128] In one exemplary embodiment, when the door 30 closes the opening 22, the slide rail 422 is located on the recessed side of the connecting line between the slide axis 412 and the center of the ellipse from the box body 20. Specifically, the second connecting part 42 further defines a reference point 66, which is located on a third reference line 64, and the connecting line between the reference point 66 and the intersection of the first reference line 62 and the reference circle 61 is perpendicular to the third reference line 64. As shown in FIGS. 2 and 14 , the starting point of the slide axis 412 is farther from the center O of the reference circle 61 than the reference point 66 is, and when the door 30 closes the opening 22, the slide rail 422 is located on the side of the third reference line 64 facing the target side 24.
[0129] In another exemplary embodiment, when the door 30 closes the opening 22, the slide rail 422 is located on the side of the connecting line between the slide shaft 412 and the center of the ellipse, facing the box body 20. Specifically, as shown in FIGS. 2 and 15 , the starting point of the slide shaft 412 is closer to the center O of the reference circle 61 than the reference point 66, and when the door 30 closes the opening 22, the slide rail 422 is located on the side recessed from the target side 24 of the third reference line 64.
[0130] In this embodiment, when the door 30 closes the opening 22, the slide rail 421 extends in a direction toward the target side 24 or in a direction away from the box 20, and the slide shaft 411 is located on the side of the first reference line 62 toward the target side 24, i.e., the starting point of the slide shaft 411 is located on the side of the first reference line 62 toward the target side 24. In this way, a large included angle can be secured between the slide rails 421 and 422, which is advantageous in ensuring the stability of the movement of the slide shafts 411 and 412, i.e., ensuring stable movement of the door 30.
[0131] Oval slide rail cooperation Referring to Figures 2, 16 and 17, Figure 16 is a structural schematic diagram of a twelfth embodiment of a slide shaft and a slide rail according to the present application, and Figure 17 is a structural schematic diagram of a thirteenth embodiment of a slide shaft and a slide rail according to the present application.
[0132] In one embodiment, the first connecting part 41 is provided with at least a slide shaft 411 and a slide shaft 412, and the second connecting part 42 is provided with at least a slide rail 421 and a slide rail 422, and the slide shaft 411 is movably connected to the slide rail 421, and the slide shaft 412 is movably connected to the slide rail 422.
[0133] The slide rail 421 extends along the first reference ellipse 651, and the slide rail 422 extends along the second reference ellipse 652. When the door 30 closes the opening 22, the portion of the slide rail 421 that is away from the box body 20 is away from the pivot side 23, and the portion of the slide rail 422 that is away from the box body 20 is close to the pivot side 23, and as the door 30 moves from a state in which it has closed the opening 22 to a state in which it is opened relative to the box body 20, the door 30 moves toward the target side 24 of the box body 20.
[0134] It should be explained that the part of the slide rail that moves away from the box body 20 is away from the pivot side 23 means that the part of the slide rail that moves away from the box body 20 is further from the pivot side 23 than the part of the slide rail that is closer to the box body 20, and the part of the slide rail that moves away from the box body 20 is closer to the pivot side 23 means that the part of the slide rail that moves away from the box body 20 is closer to the pivot side 23 than the part of the slide rail that is closer to the box body 20.
[0135] Specifically, a reference circle 61, a first reference line 62, a first reference ellipse 651, and a second reference ellipse 652 are defined for the second connecting part 42. The reference circle 61, the first reference line 62, the first reference ellipse 651, and the second reference ellipse 652 are on the same plane, the first reference line 62 passes through the center O of the reference circle 61, and the centers of the first reference ellipse 651 and the second reference ellipse 652 both overlap with the center O. In particular, when the door 30 closes the opening 22, the first reference line 62 is perpendicular to the plane 221 on which the opening 22 is located, the portion of the first reference ellipse 651 that is away from the box body 20 is closer to the target side 24 than the first reference line 62, and the portion of the second reference ellipse 652 that is away from the box body 20 is farther from the target side 24 than the first reference line 62.
[0136] The slide rail 421 extends along the first reference ellipse 651, and the slide rail 422 extends along the second reference ellipse 652. In the process of the door 30 closing the opening 22 and opening it relative to the box body 20, the slide shaft 411 moves along the slide rail 421, and the slide shaft 412 moves along the slide rail 422, thereby moving the door 30 toward the target side 24 of the box body 20.
[0137] As described above, when the door 30 is opened relative to the box 20 from a state in which the opening 22 is closed by the action of the hinge assembly 40, the door 30 may move toward the target side 24 of the box 20, reducing the extent to which the door 30 protrudes from the outer wall 25 of the box 20 and reducing the risk of the door 30 interfering with or colliding with an external structure during rotation. In other words, in this embodiment, the gap between the box device and the adjacent external structure can be made as small as a microseam, or even seamless, which is advantageous for installing the box device as a built-in.
[0138] In this embodiment, when the door 30 closes the opening 22, the slide axis 411 is farther from the opening 22 than the center of the first reference ellipse 651, and the slide rail 421 extends in a direction toward the pivot side 23 or in a direction closer to the box body 20.
[0139] Specifically, the second connecting part 42 further defines a second reference line 63, a first coordinate axis X, and a second coordinate axis Y, the second reference line 63 being on the same plane as the first reference line 62 and intersecting the first reference line 62 with the center O of the reference circle 61, and the origin of the coordinate system defined by the first coordinate axis X and the second coordinate axis Y being the center O. In particular, when the door 30 closes the opening 22, the first coordinate axis X is parallel to the plane 221 on which the opening 22 is located, and the second coordinate axis Y is perpendicular to the plane 221 on which the opening 22 is located.
[0140] An arbitrary point (x, y) in the coordinate system of the first base ellipse 651 satisfies the following relationship.
[0141] x=M1 / sin(θ1)*cos(90°-a-θ1)-R*sin(a),y=M1 / sin(θ1)*sin(90°-a-θ1)
[0142] Among them, x is the coordinate value of the arbitrary point on the first coordinate axis X, y is the coordinate value of the arbitrary point on the second coordinate axis Y, M1 is the absolute coordinate value of the starting point of the slide axis 411 on the first coordinate axis X, a is the opening angle of the door 30 relative to the box body 20, and θ1 is the included angle between the first reference line 62 and the second reference line 63.
[0143] When the door 30 closes the opening 22, the minimum distance from the central axis of the slide shaft 411 to the plane 221 on which the opening 22 is located is equal to or greater than the minimum distance from the center O of the reference circle 61 to the plane 221 on which the opening 22 is located. The central axis of the slide shaft 411 is located at the intersection of the first reference ellipse 651 and the second reference line 63; that is, the starting point of the slide shaft 411 is located at the intersection of the first reference ellipse 651 and the second reference line 63.
[0144] In this manner, when the door 30 is opened relative to the box body 20 from a state in which the opening 22 is closed by the action of the hinge assembly 40, the door 30 can move along a set trajectory.
[0145] In one exemplary embodiment, when the door 30 closes the opening 22, the slide rail 421 is bent in a direction closer to the box body 20. Specifically, the second connecting part 42 further defines a first reference point 661 located on the second reference line 63, and a connecting line between the first reference point 661 and the intersection of the first reference line 62 and the reference circle 61 is perpendicular to the second reference line 63. As shown in FIGS. 2 and 16 , the starting point of the slide axis 411 is farther from the center O of the reference circle 61 than the first reference point 661, and when the door 30 closes the opening 22, the slide rail 421 is located on the side of the second reference line 63 facing the target side 24.
[0146] In another exemplary embodiment, when the door 30 closes the opening 22, the slide rail 421 is bent in a direction away from the box body 20. Specifically, as shown in Figures 2 and 17, the start point of the slide shaft 411 is closer to the center O of the reference circle 61 than the first reference point 661, and when the door 30 closes the opening 22, the slide rail 421 is located on the side recessed from the target side 24 of the second reference line 63.
[0147] In this embodiment, when the door 30 closes the opening 22, the slide axis 412 is farther from the opening 22 than the center of the second reference ellipse 652, and the slide rail 422 is bent in a direction closer to the pivot side 23 or in a direction away from the box body 20.
[0148] Specifically, the second connecting part 42 further defines a third reference line 64, which is on the same plane as the first reference line 62 and intersects with the first reference line 62 and the center O of the reference circle 61.
[0149] An arbitrary point (x, y) in the above coordinate system of the second base ellipse 652 satisfies the following relationship.
[0150] x=M2 / sin(θ2)*cos(90°+a-θ2)+R*sin(a),y=-M2 / sin(θ2)*sin(90°+a-θ2)
[0151] Among them, x is the coordinate value of the arbitrary point on the first coordinate axis X, y is the coordinate value of the arbitrary point on the second coordinate axis Y, M2 is the absolute coordinate value of the starting point of the slide axis 412 on the first coordinate axis X, a is the opening angle of the door 30 relative to the box body 20, and θ2 is the included angle between the first reference line 62 and the third reference line 64.
[0152] When the door 30 closes the opening 22, the minimum distance from the central axis of the slide shaft 412 to the plane 221 on which the opening 22 is located is equal to or greater than the minimum distance from the center O of the reference circle 61 to the plane 221 on which the opening 22 is located. The central axis of the slide shaft 412 is located at the intersection of the second reference ellipse 652 and the third reference line 64; that is, the starting point of the slide shaft 412 is located at the intersection of the second reference ellipse 652 and the third reference line 64.
[0153] In this manner, when the door 30 is opened relative to the box body 20 from a state in which the opening 22 is closed by the action of the hinge assembly 40, the door 30 can move along a set trajectory.
[0154] In one exemplary embodiment, when the door 30 closes the opening 22, the slide rail 422 is located on the recessed side of the connecting line between the slide axis 412 and the center of the second reference ellipse 652 from the housing 20. Specifically, the second connecting part 42 further defines a second reference point 662 located on the third reference line 64, and the connecting line between the second reference point 662 and the intersection of the first reference line 62 and the reference circle 61 is perpendicular to the third reference line 64. As shown in FIGS. 2 and 16 , the starting point of the slide axis 412 is farther from the center O of the reference circle 61 than the second reference point 662. When the door 30 closes the opening 22, the slide rail 422 is located on the side of the third reference line 64 facing the target side 24.
[0155] In another illustrative embodiment, when the door 30 closes the opening 22, the slide rail 422 is located on the side of the connecting line between the slide axis 412 and the center of the second reference ellipse 652, facing the box 20. Specifically, as shown in FIGS. 2 and 17 , the starting point of the slide axis 412 is closer to the center O of the reference circle 61 than the second reference point 662, and when the door 30 closes the opening 22, the slide rail 422 is located on the side of the third reference line 64 that is recessed from the target side 24.
[0156] Referring to Figures 2, 18 and 19, Figure 18 is a structural schematic diagram of a fourteenth embodiment of the slide shaft and slide rail according to the present application, and Figure 19 is a structural schematic diagram of a fifteenth embodiment of the slide shaft and slide rail according to the present application.
[0157] In one embodiment, the first connecting part 41 is provided with at least a slide shaft 411 and a slide shaft 412, and the second connecting part 42 is provided with at least a slide rail 421 and a slide rail 422, and the slide shaft 411 is movably connected to the slide rail 421, and the slide shaft 412 is movably connected to the slide rail 422.
[0158] The slide rail 421 extends along the first reference ellipse 651, and the slide rail 422 extends along the second reference ellipse 652. When the door 30 closes the opening 22, the portion of the slide rail 421 that moves away from the box body 20 and the portion of the slide rail 422 that moves away from the box body 20 are both away from the pivot side 23, and move the door 30 toward the target side 24 of the box body 20 as the door 30 moves from a state in which it has closed the opening 22 to a state in which it is opened relative to the box body 20.
[0159] Specifically, a reference circle 61, a first reference line 62, a first reference ellipse 651, and a second reference ellipse 652 are defined for the second connecting part 42. The reference circle 61, the first reference line 62, the first reference ellipse 651, and the second reference ellipse 652 are on the same plane, the first reference line 62 passes through the center O of the reference circle 61, and the centers of the first reference ellipse 651 and the second reference ellipse 652 both overlap with the center O. In particular, when the door 30 closes the opening 22, the first reference line 62 is perpendicular to the plane 221 on which the opening 22 is located, and the portion of the first reference ellipse 651 that moves away from the box body 20 and the portion of the second reference ellipse 652 that moves away from the box body 20 are both closer to the target side 24 than the first reference line 62.
[0160] The slide rail 421 extends along the first reference ellipse 651, and the slide rail 422 extends along the second reference ellipse 652. In the process of the door 30 closing the opening 22 and opening it relative to the box body 20, the slide shaft 411 moves along the slide rail 421, and the slide shaft 412 moves along the slide rail 422, thereby moving the door 30 toward the target side 24 of the box body 20.
[0161] As described above, when the door 30 is opened relative to the box 20 from a state in which the opening 22 is closed by the action of the hinge assembly 40, the door 30 may move toward the target side 24 of the box 20, reducing the extent to which the door 30 protrudes from the outer wall 25 of the box 20 and reducing the risk of the door 30 interfering with or colliding with an external structure during rotation. In other words, in this embodiment, the gap between the box device and the adjacent external structure can be made as small as a microseam, or even seamless, which is advantageous for installing the box device as a built-in.
[0162] It should be noted that the first reference ellipse 651 and the second reference ellipse 652 are different, i.e., the portion of the first reference ellipse 651 that is away from the box body 20 and the portion of the second reference ellipse 652 that is away from the box body 20 differ in the degree to which they are close to the target side 24.
[0163] In this embodiment, when the door 30 closes the opening 22, the slide axis 411 is farther from the opening 22 than the center of the first reference ellipse 651, and the slide rail 421 extends in a direction toward the pivot side 23 or in a direction closer to the box body 20.
[0164] Specifically, the second connecting part 42 further defines a second reference line 63, a first coordinate axis X, and a second coordinate axis Y, the second reference line 63 being on the same plane as the first reference line 62 and intersecting the first reference line 62 with the center O of the reference circle 61, and the origin of the coordinate system defined by the first coordinate axis X and the second coordinate axis Y being the center O. In particular, when the door 30 closes the opening 22, the first coordinate axis X is parallel to the plane 221 on which the opening 22 is located, and the second coordinate axis Y is perpendicular to the plane 221 on which the opening 22 is located.
[0165] An arbitrary point (x, y) in the coordinate system of the first base ellipse 651 satisfies the following relationship.
[0166] x=M1 / sin(θ1)*cos(90°-a-θ1)-R*sin(a),y=M1 / sin(θ1)*sin(90°-a-θ1)
[0167] Among them, x is the coordinate value of the arbitrary point on the first coordinate axis X, y is the coordinate value of the arbitrary point on the second coordinate axis Y, M1 is the absolute coordinate value of the starting point of the slide axis 411 on the first coordinate axis X, a is the opening angle of the door 30 relative to the box body 20, and θ1 is the included angle between the first reference line 62 and the second reference line 63.
[0168] When the door 30 closes the opening 22, the minimum distance from the central axis of the slide shaft 411 to the plane 221 on which the opening 22 is located is equal to or greater than the minimum distance from the center O of the reference circle 61 to the plane 221 on which the opening 22 is located. The central axis of the slide shaft 411 is located at the intersection of the first reference ellipse 651 and the second reference line 63; that is, the starting point of the slide shaft 411 is located at the intersection of the first reference ellipse 651 and the second reference line 63.
[0169] In this manner, when the door 30 is opened relative to the box body 20 from a state in which the opening 22 is closed by the action of the hinge assembly 40, the door 30 can move along a set trajectory.
[0170] In one exemplary embodiment, when the door 30 closes the opening 22, the slide rail 421 is bent in a direction closer to the box body 20. Specifically, the second connecting part 42 further defines a first reference point 661 located on the second reference line 63, and a connecting line between the first reference point 661 and the intersection of the first reference line 62 and the reference circle 61 is perpendicular to the second reference line 63. As shown in FIGS. 2 and 18 , the starting point of the slide axis 411 is farther from the center O of the reference circle 61 than the first reference point 661, and when the door 30 closes the opening 22, the slide rail 421 is located on the side of the second reference line 63 facing the target side 24.
[0171] In another exemplary embodiment, when the door 30 closes the opening 22, the slide rail 421 is bent in a direction away from the box body 20. Specifically, as shown in Figures 2 and 19, the start point of the slide shaft 411 is closer to the center O of the reference circle 61 than the first reference point 661, and when the door 30 closes the opening 22, the slide rail 421 is located on the side recessed from the target side 24 of the second reference line 63.
[0172] In this embodiment, when the door 30 closes the opening 22, the slide axis 412 is farther from the opening 22 than the center of the second reference ellipse 652, and the slide rail 422 extends in a direction toward the pivot side 23 or in a direction closer to the box body 20.
[0173] Specifically, the second connecting part 42 further defines a third reference line 64, which is on the same plane as the first reference line 62 and intersects with the first reference line 62 and the center O of the reference circle 61.
[0174] An arbitrary point (x, y) in the above coordinate system of the second base ellipse 652 satisfies the following relationship.
[0175] x=M2 / sin(θ2)*cos(90°-a-θ2)-R*sin(a),y=M2 / sin(θ2)*sin(90°-a-θ2)
[0176] Among them, x is the coordinate value of the arbitrary point on the first coordinate axis X, y is the coordinate value of the arbitrary point on the second coordinate axis Y, M2 is the absolute coordinate value of the starting point of the slide axis 412 on the first coordinate axis X, a is the opening angle of the door 30 relative to the box body 20, and θ2 is the included angle between the first reference line 62 and the third reference line 64.
[0177] When the door 30 closes the opening 22, the minimum distance from the central axis of the slide shaft 412 to the plane 221 on which the opening 22 is located is equal to or greater than the minimum distance from the center O of the reference circle 61 to the plane 221 on which the opening 22 is located. The central axis of the slide shaft 412 is located at the intersection of the second reference ellipse 652 and the third reference line 64; that is, the starting point of the slide shaft 412 is located at the intersection of the second reference ellipse 652 and the third reference line 64.
[0178] In this manner, when the door 30 is opened relative to the box body 20 from a state in which the opening 22 is closed by the action of the hinge assembly 40, the door 30 can move along a set trajectory.
[0179] In one exemplary embodiment, when the door 30 closes the opening 22, the slide rail 422 is bent in a direction closer to the box body 20. Specifically, the second connecting part 42 further defines a second reference point 662 located on the third reference line 64, and a connecting line between the second reference point 662 and the intersection of the first reference line 62 and the reference circle 61 is perpendicular to the third reference line 64. As shown in FIGS. 2 and 18 , the starting point of the slide axis 412 is farther from the center O of the reference circle 61 than the second reference point 662 is, and when the door 30 closes the opening 22, the slide rail 422 is located on the side of the third reference line 64 facing the target side 24.
[0180] In another exemplary embodiment, when the door 30 closes the opening 22, the slide rail 422 is bent in a direction away from the box body 20. Specifically, as shown in FIGS. 2 and 19 , the start point of the slide shaft 412 is closer to the center O of the reference circle 61 than the second reference point 662, and when the door 30 closes the opening 22, the slide rail 422 is located on the recessed side from the target side 24 of the third reference line 64.
[0181] 18, the starting point of the slide shaft 411 is preferably farther from the center O of the reference circle 61 than the first reference point 661, and the starting point of the slide shaft 412 is closer to the center O of the reference circle 61 than the second reference point 662. Alternatively, as shown in FIG. 19, the starting point of the slide shaft 411 is closer to the center O of the reference circle 61 than the first reference point 661, and the starting point of the slide shaft 412 is farther from the center O of the reference circle 61 than the second reference point 662. In this way, a large included angle is formed between the slide rails 421 and 422, which is advantageous in ensuring the stability of the movements of the slide shafts 411 and 412, i.e., ensuring stable movement of the door 30.
[0182] Inflection point of oval slide rail Please refer to FIG. 20, which is a structural schematic diagram of one embodiment of a slide rail extending along a base ellipse according to the present application.
[0183] In one embodiment, a slide rail extending along an ellipse (including the base ellipse in the above embodiment) intersects the major axis of the ellipse at an inflection point 424. The slide rail has a target point 425 located on the side of the minor axis of the ellipse facing the inflection point 424. In particular, the included angle α between the connecting line between any target point 425 and the inflection point 424 and the major axis of the ellipse is 10° or greater.
[0184] In this way, it is possible to prevent the rotation angle of the slide rail from becoming too large at the inflection point 424, reduce the risk of the slide axis getting stuck when passing through the inflection point 424, and help ensure smooth movement of the slide axis, i.e., ensure smooth opening and closing of the door. In addition, it is possible to reduce the degree of overlap of the rail segments of the slide rail located on both sides of the inflection point 424, which is beneficial to ensure stability of the slide axis movement, i.e., ensure stable door movement, and also provide convenience in the design and manufacture of the slide rail.
[0185] Slide rail angle Referring to FIG. 21, FIG. 21 is a structural schematic diagram of a slide shaft and a slide rail according to a sixteenth embodiment of the present invention.
[0186] In one embodiment, the slide rail 421 on which the slide shaft 411 is located has a first tangent line P1, and the slide rail 422 on which the slide shaft 412 is located has a second tangent line P2, and the included angle β between the first tangent line P1 and the second tangent line P2 is greater than or equal to 10°, which is advantageous for ensuring the stability of the door movement.
[0187] Slide rail installation position 2 and 22, FIG. 22 is a schematic diagram of a part of the structure of a door according to the present application.
[0188] The installation positions of the slide rails will be described below based on the case where the door 30 is in the closed state.
[0189] In one embodiment, the minimum distance from the slide rail to each of inner edge 31, outer edge 32, and side edge 33 is 6 mm or greater. In other words, the minimum distance from any one of slide rails, including slide rail 421, slide rail 422, and slide rail 423 in the above embodiment, to each of inner edge 31, outer edge 32, and side edge 33 is 6 mm or greater. In this way, sufficient space can be secured for designing and manufacturing the slide rails, which facilitates the process design and manufacturing of hinge assembly 40.
[0190] In one embodiment, different slide rails may be spaced apart from each other, i.e., different slide rails do not intersect with each other. Specifically, any two of the slide rails, including slide rail 421, slide rail 422, and slide rail 423 described in the above embodiment, are spaced apart from each other. In this way, it is possible to ensure that different slide axes are positioned on different slide rails at any time, and to avoid the problem of different slide axes being positioned on the same slide rail, resulting in unstable movement of the slide axes. This embodiment is advantageous in ensuring the stability of door movement.
[0191] It should be noted that the accompanying drawings corresponding to some embodiments of the present application show cases where different slide rails intersect with each other, and in this case, as described in the above embodiments, if there is a sufficiently large included angle between the tangents of the slide rails where the different slide axes are located, the stability of the door movement can be similarly ensured.
[0192] Reference circle size and installation position 2, 4 and 23, FIG. 23 is a structural schematic diagram of another part of the box device shown in FIG.
[0193] The size and installation position of the reference circle 61 will be described below based on the case where the door 30 is in the closed state.
[0194] In one embodiment, as the location of the reference circle 61 moves from the side edge 33 toward the target side 24 of the box 20, the maximum distance that the outer edge 35 of the door 30 extends beyond the outer wall 25 of the box 20 becomes smaller and smaller. At the same time, as the location of the reference circle 61 moves toward the target side 24 of the box 20, it is assumed that the amount of movement of the door 30 toward the target side 24 during the opening process increases.
[0195] In view of this, in this embodiment, the radius of the reference circle 61 is R, and the distance from the center O of the reference circle 61 to the side edge 33 is N, so that R≦N≦100 mm. In this way, when the door 30 is opened by the hinge assembly 40, the maximum distance by which the outer edge 35 of the door 30 protrudes from the outer wall 25 of the box 20 can be controlled to within 4 mm, as required by the industry. At the same time, the amount of movement of the door 30 toward the target side 24 can be controlled within a reasonable range, reducing the risk of the second inner edge 36 of the door 30 interfering with or colliding with other structures, and ensuring sufficient space for the user to open the door 30. Furthermore, the distance from the center O of the reference circle 61 to the side edge 33 is at least equal to the radius R of the reference circle 61, which provides convenience in the design and manufacture of the slide shaft and slide rail on the hinge assembly 40.
[0196] In one embodiment, as the position of the reference circle 61 moves from the outer edge 32 toward the inner edge 31, the movement of the outer edge 35 of the door 30 toward the box 20 gradually increases during the process of opening the door 30, gradually increasing the risk of interference or collision between the outer edge 35 and the box 20. When the center O of the reference circle 61 is closer to the opening 22 than the center of the side edge 33, the outer edge 35 of the door 30 will interfere with or collide with the box 20 during the process of opening the door 30.
[0197] In view of this, in this embodiment, if the length of the side edge 33 of the door 30 in the first direction Z1 is D and the distance from the center O of the reference circle 61 to the outer edge 32 is W, then R≦W≦(½)D holds. In this way, it is possible to reduce the risk of the outer edge 35 of the door 30 interfering with or colliding with the box body 20 when the door 30 is opened by the action of the hinge assembly 40. In addition, the distance from the center O of the reference circle 61 to the outer edge 32 is at least equal to the radius R of the reference circle 61, which provides convenience in the design and manufacture of the slide shaft and slide rail on the hinge assembly 40.
[0198] In one embodiment, as the position of the reference circle 61 moves from the side edge 33 toward the target side 24 of the box body 20, the movement of the first inner edge 34 of the door 30 toward the box body 20 gradually increases during the process of opening the door 30, and the risk of interference or collision between the first inner edge 34 and the box body 20 gradually increases.
[0199] In view of this, in this embodiment, if the distance from the center O of the reference circle 61 to the side edge 33 is N, then 15 mm≦N≦100 mm. In this way, it is possible to reduce the risk of interference or collision between the first inner edge 34 of the door 30 and the box body 20 when the door 30 is opened by the action of the hinge assembly 40. In addition, the distance from the center O of the reference circle 61 to the side edge 33 is at least 15 mm, which provides convenience in the design and manufacture of the slide shaft and slide rail on the hinge assembly 40.
[0200] In one embodiment, as the position of the reference circle 61 moves from the outer edge 32 toward the inner edge 31, the amount of movement of the first inner edge 34 of the door 30 toward the housing 20 during the process of opening the door 30 does not change significantly; in this case, the selection of the position of the reference circle 61 has less impact on the amount of interference between the first inner edge 34 and the housing 20, and more consideration is given to the design and manufacture of the hinge assembly 40.
[0201] In view of this, in this embodiment, the radius of the reference circle 61 is R, the length of the side edge 33 in the first direction Z1 is D, and the distance from the center O of the reference circle 61 to the outer edge 32 is W, so that R≦W≦D. In this way, the position of the reference circle 61 can be selected flexibly, the design and manufacture of the slide shaft and slide rail are convenient, and the door 30 can be adapted to applications where the maximum opening angle reaches 150°.
[0202] In one embodiment, as the position of the reference circle 61 moves from the side edge 33 toward the target side 24 of the box 20, the movement of the third inner edge 51 of the door seal 50 toward the box 20 gradually increases during the process of opening the door 30, and the amount of pressure applied by the door seal 50 gradually increases. To ensure the reliability of the door seal 50, it is reasonable in the industry to require that the amount of pressure applied by the door seal 50 be controlled within 5 mm, i.e., the maximum movement of the third inner edge 51 of the door seal 50 toward the box 20 during the process of opening the door 30 must be 5 mm or less.
[0203] In view of this, in this embodiment, if the distance from the center O of the reference circle 61 to the side edge 33 is N, then 15 mm≦N≦100 mm. In this way, it is possible to ensure that the maximum movement of the third inner edge 51 of the door seal 50 toward the box body 20 during the process of opening the door 30 is 5 mm or less, which is advantageous to improving the reliability and stability of the door seal 50. In addition, the distance from the center O of the reference circle 61 to the side edge 33 is at least 15 mm, which provides convenience in the design and manufacture of the slide shaft and slide rail on the hinge assembly 40.
[0204] In one embodiment, as the position of the reference circle 61 moves from the outer edge 32 toward the inner edge 31, the amount of movement of the third inner edge 51 of the door seal 50 toward the box body 20 during the process of opening the door 30 does not change significantly. In this case, the selection of the position of the reference circle 61 has little effect on the amount of pressure applied to the door seal 50, and more consideration is given to the design and manufacture of the hinge assembly 40.
[0205] In view of this, in this embodiment, the radius of the reference circle 61 is R, the length of the side edge 33 in the first direction Z1 is D, and the distance from the center O of the reference circle 61 to the outer edge 32 is W, so that R≦W≦D. In this way, the position of the reference circle 61 can be selected flexibly, the design and manufacture of the slide shaft and slide rail are convenient, and the door seal 50 can be adapted to applications where the maximum opening angle reaches 150°.
[0206] In one embodiment, if the length of the door 30 in the first direction Z1 is H, i.e., the width of the door 30 is H, then 35 mm≦H≦100 mm. If the length of the door 30 in the second direction Z2 is L, i.e., the length of the door 30 is L, then 300 mm≦L≦700 mm. If the radius of the reference circle 61 is R, then R=(1 / 3)H. If the minimum distance from the reference circle 61 to the outer edge 32 is M, then 0 mm≦M≦15 mm.
[0207] By summarizing the requirements for the size and installation position of the reference circle 61 in the above embodiment and rationally selecting the size and installation position of the reference circle 61, the installation positions of the slide shaft and slide rail can be rationally determined, and the slide shaft and slide rail designed and manufactured in this way can guide the door 30 to move along the above-mentioned set trajectory. Specifically, the outer edge 35 of the door 30 moves along the trajectory A1, and the maximum distance g by which the outer edge 35 protrudes from the outer wall 25 of the box 20 is max can be controlled to within 1 mm. The first inner edge 34 of the door 30 moves along a trajectory A2, and the amount of movement of the first inner edge 34 toward the box body 20 is small, reducing the risk of interference with the box body 20. The second inner edge 36 of the door 30 moves along a trajectory A3, and the maximum distance that the second inner edge 36 protrudes from the outer wall 25 of the box body 20 can be controlled to within 3 mm. The third inner edge 51 of the door seal 50 moves along a trajectory A4, and the amount of movement of the third inner edge 51 toward the box body 20 is small, i.e., the amount of pressure applied by the door seal 50 is small.
[0208] In this application, unless otherwise expressly specified or limited, the terms "coupled," "connected," "overlapped," etc. should be understood in a broad sense, and may mean, for example, fixedly connected, detachably connected, or integrated, directly connected, indirectly connected via an intermediate medium, internal communication between two elements, or an interactive relationship between two elements. Those skilled in the art will be able to understand the specific meanings of the above terms in this application depending on the specific case.
[0209] Finally, it should be understood that the above embodiments are only used to explain the technical solutions of the present application, and are not intended to limit the same. Although the present application has been described in detail with reference to the above embodiments, those skilled in the art may still amend the technical solutions described in the above embodiments or make equivalent substitutions for some or all of the technical features therein, and these amendments and substitutions will not cause the essence of the corresponding technical solutions to deviate from the scope of the technical solutions of the embodiments of the present application. [Explanation of symbols]
[0210] 10. Refrigerator 11 Box body 12 Hinge fixing plate 13 Hinge axis 14 doors 15 Cabinet 20 box body 21 Storage space 22 Aperture 23 Pivot side 24 Target side 25 Outer wall 30 doors 31 Common-law marriage 32 outer edge 33 Side edge 34 First medial ridge 35 outer ridge 36 Second medial ridge 40 Hinge Assembly 41 first connecting part 42 Second connecting part 50 Door Seal 51 Third medial ridge 61 base yen 62 First Reference Line 63 Second Reference Line 64 Third Reference Line 65 Reference Ellipse 66 Reference point 111 Outside wall 221 plane 411, 412, 413 Slide shaft 414, 415, 416 center axis 421, 422, 423 slide rails 424 Inflection Point 425 target point 651 First Reference Ellipse 652 Second Reference Ellipse 661 First Reference Point 662 Second Reference Point A1, A2, A3, A4 trajectory O Enshin P1 First tangent P2 Second tangent
Claims
1. a box body having a storage space with an opening provided therein; a door for closing the opening; a hinge assembly provided on the pivot side of the box body and pivotally connecting the box body and the door; A box device comprising: the hinge assembly includes a first connecting part and a second connecting part, the first connecting part being provided on one of the box body and the door, and the second connecting part being provided on the other, the first connecting part being provided with at least a first slide shaft and a second slide shaft, the second connecting part being provided with at least a first slide rail and a second slide rail, the first slide shaft being movably connected to the first slide rail, and the second slide shaft being movably connected to the second slide rail; a box device characterized in that the first slide rail extends along a first reference ellipse (hereinafter referred to as the "first reference ellipse"), the second slide rail extends along a second reference ellipse (hereinafter referred to as the "second reference ellipse"), when the door closes the opening, the portion of the first slide rail away from the box body is farther from the pivot than the second slide rail, and the portion of the second slide rail away from the box body is closer to the pivot than the portion of the first slide rail away from the box body, and the door moves toward a target side of the box body in the process of opening relative to the box body from a state in which the door has closed the opening, and the pivot side and the target side are located opposite each other on either side of the opening.
2. 2. The box device according to claim 1, wherein the center of the first reference ellipse and the center of the second reference ellipse overlap with each other.
3. 3. The box device according to claim 2, wherein when the door closes the opening, the first slide axis is farther from the opening than the center of the first reference ellipse, and the second slide axis is farther from the opening than the center of the second reference ellipse.
4. 2. The box device according to claim 1, wherein the first slide rail is bent in a direction closer to the box when the door closes the opening.
5. 2. The box device according to claim 1, wherein the first slide rail is bent in a direction away from the box when the door closes the opening.
6. 6. The box device according to claim 4, wherein when the door closes the opening, the first slide rail extends in a direction toward the pivot or in a direction closer to the box.
7. 2. The box device according to claim 1, wherein when the door closes the opening, the second slide rail is bent in a direction closer to the pivot or in a direction away from the box.
8. the first slide rail on which the first slide shaft is located has a first tangent; the second slide rail on which the second slide shaft is located has a second tangent; 2. The box device according to claim 1, wherein the angle between the first tangent line and the second tangent line is 10 degrees or more.
9. The box device according to claim 1, characterized in that the first slide rail and the major axis of the first base ellipse intersect at a first inflection point, and the second slide rail and the major axis of the second base ellipse intersect at a second inflection point.
10. the first slide rail has a first target point located on a side facing a first inflection point of the minor axis of the first base ellipse, and an included angle between a connecting line between the first target point and the first inflection point of the minor axis and the major axis of the first base ellipse is 10° or more; The box device described in claim 9, characterized in that the second slide rail has a second target point located on the side toward the second inflection point of the minor axis of the second base ellipse, and the included angle between the connecting line between the second target point and the second inflection point of the minor axis and the major axis of the second base ellipse is 10° or more.
11. The box device according to claim 1, characterized in that a reference circle (hereinafter referred to as the "reference circle") is defined for the second connecting part, and the centers of the first reference ellipse and the second reference ellipse both overlap with the center of the reference circle.
12. 12. The box device of claim 11, wherein an end face of the door facing the hinge assembly has an inner edge and an outer edge, the inner edge and the outer edge being spaced apart in a first direction and both extending in a second direction, the first direction being perpendicular to the second direction, and the inner edge being closer to the box than the outer edge when the door closes the opening.
13. 13. The box device of claim 12, wherein an end face of the door facing the hinge assembly further has a side edge, the inner edge and the outer edge are connected by the side edge, and the side edge extends in the first direction.
14. The box device according to claim 13, characterized in that the side edge is perpendicular to a plane on which the opening is located, and where R is a radius of the reference circle and N is a distance from the center of the reference circle to the side edge, R≦N≦100 mm.
15. The box device according to claim 13, characterized in that, when the radius of the reference circle is R, the length of the side edge in the first direction is D, and the distance from the center of the reference circle to the outer edge is W, R≦W≦(1 / 2)D.
16. The box device according to claim 13, wherein the side edge is perpendicular to a plane on which the opening is located, and the distance from the center of the reference circle to the side edge is N, and the distance N satisfies 15 mm≦N≦100 mm.
17. The box device according to claim 13, characterized in that, when the radius of the reference circle is R, the length of the side edge in the first direction is D, and the distance from the center of the reference circle to the outer edge is W, R≦W≦D.
18. When the length of the door in the first direction is H, 35 mm≦H≦100 mm; where L is the length of the door in the second direction, and 300 mm≦L≦700 mm; If the radius of the reference circle is R, then R = (1 / 3)H, 13. The box device according to claim 12, wherein M is the minimum distance from the reference circle to the outer edge, and 0 mm≦M≦15 mm is satisfied.
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