Door assembly of an embedded refrigeration device and embedded refrigeration device
By designing a door assembly that allows the door panel to move relative to the cabinet side wall during the opening process, the problem of interference between the built-in refrigerator door panel and the cabinet side wall was solved, improving the user experience and aesthetics.
Patent Information
- Application Number
- CN202411187405.0
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Priority Date
- 2024-01-22
- Filing Date
- 2024-08-26
- Publication Date
- 2025-12-26
- Estimated Expiration
- 2044-08-26
AI Technical Summary
Built-in refrigerators are prone to interference or collision with the cabinet side wall during opening, resulting in a poor user experience.
Design a door assembly that allows the door panel to move relative to the door towards the opening side during the opening process. By setting the interference position and gap pattern of the door panel, interference can be avoided.
It effectively prevents the door panel from interfering with the cabinet side wall during opening, improving the user experience and aesthetics of the built-in refrigerator.
Smart Images

Figure CN119665554B_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The present application relates to the technical field of refrigeration, in particular to a door body assembly of an embedded refrigeration device and the embedded refrigeration device. BACKGROUND
[0002] In today's society, the rapid progress of technology has greatly driven the transformation of home living styles. Among them, embedded furniture, as a design concept that combines aesthetics and functionality in one, is favored by the majority of consumers. Embedded furniture cleverly integrates appliances or storage spaces into the home environment, not only effectively saving space, but also significantly improving the overall coordination and aesthetics of the home. Taking an embedded refrigerator as an example, this design enables the refrigerator to be seamlessly embedded in the cabinet, perfectly blending with the kitchen decoration style, creating a modern and harmonious living environment. However, although the embedded refrigerator exhibits significant advantages in improving the aesthetics and space utilization of the home, it still has a problem that cannot be ignored in actual use: the door is prone to interference or collision with the cabinet side wall during opening, resulting in poor user experience of the embedded refrigerator. SUMMARY
[0003] The present application aims to at least solve one of the technical problems existing in the related art. To this end, the present application proposes a door body assembly of a refrigeration device.
[0004] The present application also proposes an embedded refrigeration device.
[0005] According to the door body assembly of the embedded refrigeration device of the first aspect of the present application, comprising:
[0006] a door body rotatably connected to a refrigeration cabinet, the refrigeration cabinet being used to be embedded into a containing space formed by the installation body;
[0007] a door panel movably mounted on the door body, the door panel being movable along the width direction of the door body;
[0008] the door panel is adapted to move relative to the door body to the door opening side of the door body during opening of the door body;
[0009] the door panel has a first interference site, the first interference site being located at the inner corner of the door opening side of the door panel;
[0010] the distance between the end face of the door opening side of the door panel and the side wall corresponding to the containing space when the door body is closed is δ1, and δ1 is greater than the movement distance γ of the first interference site along the width direction of the containing space before the first interference site leaves the containing space.
[0011] According to an embodiment of the present application, a position of the door panel where interference is most likely to occur on the door opening side is determined as a first interference position, and a position where the first interference position is located is determined. On this basis, a condition that needs to be met for the first interference position not to interfere is determined, and thus a rule that needs to be met between the initial gap δ1 on the door opening side of the door body assembly and the movement of the door panel is determined to ensure normal use of the embedded refrigeration equipment.
[0012] According to an embodiment of the present application, the distance δ1 satisfies:
[0013] δ1≤γ max ;
[0014] wherein γ max is the value of γ when λ is zero and Δθ is Δθcrit, γ is the vertical distance by which the first interference position moves towards the side wall of the accommodating space corresponding thereto, λ is the vertical distance by which the second interference position moves towards the side wall of the accommodating space corresponding thereto, Δθ is the angle of rotation during opening of the cabinet door, and Δθcrit is the angle of rotation when the first interference position is away from the accommodating space, and Δs is the distance by which the door panel moves relative to the door opening side of the cabinet door during opening of the cabinet door, wherein the second interference position is located at the outer corner on the hinge side of the door panel. crit crit
[0015] According to an embodiment of the present application, δ1 is positively correlated with l1, l3, h, and the maximum Δs before the first interference position is away from the accommodating space, wherein l1 is the vertical distance from the hinge axis of the cabinet door to the inner surface of the door panel, l3 is the vertical distance from the hinge axis of the cabinet door to the end surface on the hinge side of the door panel, h is the thickness of the door panel, and Δs is the distance by which the door panel moves relative to the cabinet door during opening of the cabinet door.
[0016] According to an embodiment of the present application,
[0017] wherein,
[0018] γ is the vertical distance by which the first interference position moves towards the side wall of the accommodating space corresponding thereto, λ is the vertical distance by which the second interference position moves towards the side wall of the accommodating space corresponding thereto, Δθ is the angle of rotation during opening of the cabinet door, Δθcrit is the angle of rotation when the first interference position is away from the accommodating space, Δs is the distance by which the door panel moves relative to the door opening side of the cabinet door during opening of the cabinet door, and l2 is the vertical distance from the hinge axis of the cabinet door to the end surface on the door opening side of the door panel.
[0019] a is the length of the side of the box door where the hinge axis is located, a is the angle between the first interference site and the side of the box door where the hinge axis is located and the horizontal line, b is the length of the side of the box door where the hinge axis is located, and β is the angle between the second interference site and the side of the box door where the hinge axis is located and the horizontal line.
[0020] According to one embodiment of the present application, l1 is 5mm-50mm, l2 is 240mm-700mm, l3 is (300mm to 700mm)-l2, h is 10mm to 25mm, δ1 is 0.5mm-6mm.
[0021] According to one embodiment of the present application, the door plate further has a second interference site, which is located at the outer corner of the hinge side of the door plate; when the box door is closed, the distance between the end surface of the hinge side of the door plate and the corresponding side wall of the accommodation space is δ2, and δ2 is greater than the movement distance λ of the second interference site along the width direction of the accommodation space before it leaves the accommodation space.
[0022] According to one embodiment of the present application, the distance δ2 satisfies:
[0023] δ2≤λmax;
[0024] λmax is the value of λ when γ is zero and Δθ is Δθcrit, λ and Δs are negatively correlated, γ is the vertical distance of the first interference site moving towards the corresponding side wall of the accommodation space, λ is the vertical distance of the second interference site moving towards the corresponding side wall of the accommodation space, Δθ is the angle of rotation during the opening of the box door, Δθcrit is the Δθ when the first interference site leaves the accommodation space, γ and Δs are positively correlated, and Δs is the distance of the door plate moving relative to the opening side of the box door during the opening of the box door.
[0025] According to one embodiment of the present application, δ2 is positively correlated with l1, l3 and h, and δ2 and the maximum Δs before the first interference site leaves the accommodation space are negatively correlated, wherein l1 is the vertical distance from the hinge axis of the box door to the inner surface of the door plate, l3 is the vertical distance from the hinge axis of the box door to the end surface of the hinge side of the door plate, h is the thickness of the door plate, and Δs is the distance of the door plate moving relative to the box door during the opening of the box door.
[0026] According to one embodiment of the present application, the distance δ2 satisfies: δ2≥λ=b*cosβ-l3,
[0027] wherein,
[0028] gamma is the vertical distance of the first interference site moving towards the side wall of the corresponding accommodating space, lambda is the vertical distance of the second interference site moving towards the side wall of the corresponding accommodating space, delta theta is the angle of rotation during the opening of the cabinet door, and the delta theta of the first interference site when leaving the accommodating space is delta theta crit Delta s is the distance of the door panel moving relative to the opening side of the cabinet door during the opening of the cabinet door.
[0029] a is the length of the side of the first interference site and the hinge axis of the cabinet door, alpha is the included angle between the side of the first interference site and the hinge axis of the cabinet door and the horizontal line, b is the length of the side of the second interference site and the hinge axis of the cabinet door, and beta is the included angle between the side of the second interference site and the hinge axis of the cabinet door and the horizontal line.
[0030] According to an embodiment of the present application, l1 is 5mm-50mm, l2 is 240mm-700mm, l3 is (300mm to 700mm)-l2, h is 10mm to 25mm, and delta 2 is 0.5mm-6mm.
[0031] According to an embodiment of the present application, the hinge axis is a movable shaft.
[0032] According to an embodiment of the second aspect of the present application, the embedded refrigeration device comprises:
[0033] The refrigeration cabinet is adapted to be embedded into the accommodating space.
[0034] The door body assembly.
[0035] Additional aspects and advantages of the present application will be in part apparent and in part pointed out hereinafter. BRIEF DESCRIPTION OF DRAWINGS
[0036] In order to more clearly illustrate the technical solutions in the embodiments of the present application or in the related art, the drawings needed to be used in the embodiments or the related art description will be briefly introduced hereinafter. Obviously, the drawings in the following description only constitute some embodiments of the present application, and for those skilled in the art, other drawings can also be obtained without creative labor on the basis of these drawings.
[0037] Figure 1 is the installation schematic diagram of the door body assembly of the embedded refrigeration device provided by the embodiments of the present application.
[0038] Figure 2 is a simplified schematic diagram of boundary conditions needed to be met during the opening and closing of the door, in which the door panel does not interfere with the two side cabinet panels.
[0039] Figure 3is Figure 2 a partial enlarged view in
[0040] Figure 4 is an exploded view of the refrigeration equipment provided by the embodiment of the present application;
[0041] Figure 5 is one of the schematic views of the sliding door mechanism provided by the embodiment of the present application;
[0042] Figure 6 is another schematic view of the sliding door mechanism provided by the embodiment of the present application;
[0043] Figure 7 is an exploded view of the sliding door mechanism provided by the embodiment of the present application;
[0044] Figure 8 is a structural schematic view of the sliding mechanism provided by the embodiment of the present application;
[0045] Figure 9 is a structural schematic view of the guide provided by the embodiment of the present application;
[0046] Figure 10 is a structural schematic view of the sliding member provided by the embodiment of the present application; Figure 11 is one of the schematic views of the first driven guide rail mechanism provided by the embodiment of the present application;
[0047] Figure 12 is another schematic view of the first driven guide rail mechanism provided by the embodiment of the present application;
[0048] Figure 13 is one of the schematic views of the second driven guide rail mechanism provided by the embodiment of the present application;
[0049] Figure 14 is another schematic view of the second driven guide rail mechanism provided by the embodiment of the present application;
[0050] Figure 15 is a schematic view of the door plate provided by the embodiment of the present application;
[0051] Figure 16 is a schematic view of the first hook and the second hook provided by the embodiment of the present application;
[0052] Figure 17 is a schematic view of the box door, the first end cover and the second end cover provided by the embodiment of the present application;
[0053] Figure 18 is an assembly schematic view of the box door, the first end cover, the second end cover, the sliding door mechanism, the driven guide rail mechanism and each hinge provided by the embodiment of the present application;
[0054] Figure 19 is a schematic view of the first end cover provided by the embodiment of the present application;
[0055] Figure 20 is a schematic view of a second end cover provided by an embodiment of the present application;
[0056] Figure 21 is a schematic view of a cabinet door when a door plate needs to be installed, provided by an embodiment of the present application;
[0057] Figure 22 is a schematic view of a cabinet door when a door plate does not need to be installed, provided by an embodiment of the present application;
[0058] Figure 23 is a schematic view of a first main decorative cover, provided by an embodiment of the present application;
[0059] Figure 24 is a schematic view of a second main decorative cover, provided by an embodiment of the present application;
[0060] Figure 25 is a schematic view of a first secondary decorative cover, provided by an embodiment of the present application;
[0061] Figure 26 is a schematic view of a second main decorative cover, provided by an embodiment of the present application;
[0062] Figure 27 is a schematic view of a second main decorative cover, provided by an embodiment of the present application;
[0063] Figure 28 is a schematic view of a second secondary decorative cover, provided by an embodiment of the present application;
[0064] Figure 29 is a schematic view of a third end cover, provided by an embodiment of the present application;
[0065] Figure 30 is a schematic view of a fourth end cover, provided by an embodiment of the present application;
[0066] Figure 31 is a schematic view of a third main decorative cover, provided by an embodiment of the present application;
[0067] Figure 32 is a schematic view of a third main decorative cover, provided by an embodiment of the present application;
[0068] Figure 33 is a schematic view of a third secondary decorative cover, provided by an embodiment of the present application;
[0069] Figure 34 is a schematic view of a fourth main decorative cover, provided by an embodiment of the present application;
[0070] Figure 35 is a schematic view of a fourth main decorative cover, provided by an embodiment of the present application;
[0071] Figure 36 is a schematic view of a fourth sub-decorative cover provided by an embodiment of the present application.
[0072] Reference signs:
[0073] 1, box body; 110, first connecting hole; 120, first beam body; 121, second connecting hole; 130, second beam body; 131, fourth connecting hole; 132, third connecting hole;
[0074] 2, box door;
[0075] 210, first end cover; 211, first hinge hole; 212, third mounting groove; 213, first mounting groove; 214, first avoiding opening; 215, second avoiding opening; 216, first mounting hole; 217, first convex rib; 218, third groove; 219, fourth groove;
[0076] 220, second end cover; 221, first guide rail fixing seat; 223, second mounting hole; 224, third mounting hole; 225, second convex rib; 227, third convex rib;
[0077] 310, third end cover; 311, second guide rail fixing seat; 313, eighth convex rib; 314, second hinge hole; 315, fourth mounting hole; 316, hand grip groove;
[0078] 320, fourth end cover; 321, fourth avoiding opening; 322, third avoiding opening; 323, fifth mounting groove; 324, sixth mounting groove; 325, fifth mounting hole; 327, ninth convex rib;
[0079] 4, first hinge; 5, second hinge; 6, third hinge;
[0080] 7, sliding door mechanism; 701, first fixing seat; 702, second fixing seat; 703, second adjusting piece; 704, first adjusting piece; 705, first bearing; 706, flexible cable; 707, first rotating shaft fixing seat; 708, pin shaft; 709, traction rod; 710, second rotating shaft fixing seat; 711, connecting head; 712, first connecting block; 713, second sliding block; 714, first sliding block; 715, third bearing; 716, second bearing; 717, first base;
[0081] 730, guide piece; 731, guide structure; 732, fixing plate; 733, sliding groove; 734, sliding sleeve; 7311, first limiting groove; 7312, second limiting groove;
[0082] 740, sliding piece; 741, guide rod; 742, sliding block; 743, first connecting arm; 744, second connecting arm; 745, sliding contact;
[0083] 760, driving rod; 770, elastic member;
[0084] 750, linkage assembly; 751, first link; 752, second link; 753, first hinge shaft; 754, second hinge shaft; 755, third hinge shaft;
[0085] 8, first driven guide rail mechanism; 801, third fixed seat; 802, fourth fixed seat; 803, fourth adjusting member; 804, third adjusting member; 812, second connecting block; 813, third sliding block; 817, second base;
[0086] 9, second driven guide rail mechanism; 901, fifth fixed seat; 902, third base; 903, fourth sliding block; 904, sixth fixed seat; 905, third connecting block;
[0087] 13, first main decorative cover; 1301, fifth notch; 1302, fourth notch; 1303, first notch; 1304, second notch; 1305, first clamping groove; 1306, second protruding rib; 1307, first protruding rib;
[0088] 14, second main decorative cover; 1401, third notch; 1403, fourth protruding rib; 1404, sixth protruding rib; 1405, second clamping groove; 1406, third clamping groove; 1407, seventh protruding rib; 1408, fifth protruding rib;
[0089] 15, third main decorative cover; 1501, sixth notch; 1503, fourth clamping groove;
[0090] 16, fourth main decorative cover; 1601, seventh notch; 1602, eighth notch; 1603, tenth notch; 1604, ninth notch; 1605, sixth clamping groove; 1606, fifth clamping groove;
[0091] 17, first auxiliary decorative cover; 18, second auxiliary decorative cover; 1801, hand buckle; 19, third auxiliary decorative cover; 20, fourth auxiliary decorative cover;
[0092] 21, door panel; 2111, first hook; 2112, second hook;
[0093] 60, cabinet; 601, first cabinet panel; 602, second cabinet panel. DETAILED DESCRIPTION
[0094] The embodiments of the present application will be further described below in conjunction with the accompanying drawings and examples. The following examples are used to illustrate the present application, but cannot be used to limit the scope of the present application.
[0095] In the description of the embodiments of the present application, it should be noted that the terms "center", "longitudinal", "lateral", "upper", "lower", "front", "back", "left", "right", "vertical", "horizontal", "top", "bottom", "inner", "outer" and the like indicate the orientation or positional relationship shown in the drawings based on the orientation or positional relationship, and are only for the convenience of describing the embodiments of the present application and simplifying the description, and therefore cannot be understood as indicating or implying that the devices or elements referred to must have a particular orientation, be constructed and operated in a particular orientation, and therefore cannot be understood as limiting the embodiments of the present application. In addition, the terms "first", "second", "third" are only for the purpose of description and cannot be understood as indicating or implying relative importance.
[0096] In the description of the embodiments of the present application, it should be noted that unless otherwise explicitly specified and limited, the terms "connected", "connected" should be understood broadly, for example, it can be fixedly connected, or it can be detachably connected, or integrally connected; it can be mechanically connected, or it can be electrically connected; it can be directly connected, or it can be indirectly connected through an intermediate medium. For those skilled in the art, the specific meaning of the above terms in the embodiments of the present application can be understood according to the specific circumstances.
[0097] In the embodiments of the present application, unless otherwise explicitly specified and limited, the first feature is "on" or "under" the second feature can be that the first and second features are in direct contact, or the first and second features are in indirect contact through an intermediate medium. Moreover, the first feature "above", "above" and "above" the second feature can be that the first feature is directly above or obliquely above the second feature, or only indicates that the horizontal height of the first feature is higher than that of the second feature. The first feature "below", "below" and "below" the second feature can be that the first feature is directly below or obliquely below the second feature, or only indicates that the horizontal height of the first feature is less than that of the second feature.
[0098] In the description of the present application, the description of the terms "one embodiment", "some embodiments", "example", "specific example", or "some examples" means that the specific features, structures, materials or characteristics described in conjunction with the embodiment or example are included in at least one embodiment or example of the present application. In the present application, the illustrative description of the above terms does not necessarily refer to the same embodiment or example. Moreover, the specific features, structures, materials or characteristics described can be combined in any one or more embodiments or examples in a suitable manner. In addition, those skilled in the art can combine and combine different embodiments or examples described in the present application and the features of different embodiments or examples without contradiction.
[0099] In today's society, the rapid progress of technology has greatly driven the transformation of home lifestyles. Among them, the embedded furniture, as a design concept that combines aesthetics and functionality in one, is favored by the majority of consumers. Embedded furniture cleverly integrates appliances or storage spaces into the home environment, not only effectively saving space, but also significantly improving the overall harmony and aesthetics of the home. Taking embedded refrigerators as an example, this design allows the refrigerator to seamlessly integrate into the cabinet, perfectly blending with the kitchen decoration style, creating a modern and harmonious living environment. However, despite the significant advantages of embedded refrigerators in enhancing the aesthetics of the home and space utilization, there is still a problem that cannot be ignored in their actual use: the door body is prone to interference or collision with the cabinet side wall during opening, resulting in poor user experience of the embedded refrigerator.
[0100] Specifically, when an embedded refrigerator (hereinafter referred to as a refrigerator) meets the user's demand for both flat full-embedded and full-embedded refrigerators, the refrigerator door body (hereinafter referred to as the door body) after connecting with the cabinet door panel (hereinafter referred to as the door panel) causes the entire door body assembly to thicken, resulting in interference between the door body assembly with the cabinet during opening and closing of the door, making it impossible to open and use normally. Therefore, a door body assembly that allows the door body and the door panel to slide relative to each other is needed, so that during the opening of the door body assembly, the door panel can slide towards the opening side (i.e., the opening side), so that during the opening of the door, the hinge side still maintains the thickness of the door body itself, consistent with the opening scenario without the door panel. During closing, the door panel moves towards the hinge side to return to the state before opening, thereby achieving the requirement of refrigerator embedding installation with and without the door panel.
[0101] The above door body assembly with a door panel that can move relative to the door body is prone to interference with the cabinet on the opening side of the door panel towards the door body. Based on this, the present application provides a door body assembly of an embedded refrigeration device (hereinafter referred to as a door body assembly), which satisfies a certain rule between the gap between the opening side of the door panel and the interference object during opening to prevent interference of the door panel.
[0102] Please refer to Figure 1, the door body assembly comprises a cabinet door 2 and a door panel 21. The cabinet door 2 is rotatably connected to the refrigeration cabinet 1 and is embedded into the accommodating space formed by the mounting body. The mounting body generally refers to a cabinet 60, but can also be a wall corner or other components as long as it can form an accommodating space. Hereinafter, the mounting body is taken as the cabinet 60 for description. The door panel 21 is movably mounted on the cabinet door 2 and can move along the width direction of the cabinet door 2. The door panel 21 is adapted to move to the opening side of the cabinet door 2 relative to the cabinet door 2 during opening of the cabinet door 2. In combination with Figure 2 and Figure 3 , the door panel 21 has a first interference site c point, which is located at the inner corner of the opening side of the door panel 21. The "inner" and "outer" are relative to the refrigeration cabinet 1. The side facing the refrigeration cabinet 1 is the "inner" side, and the side away from the refrigeration cabinet 1 is the "outer" side. Since Figure 2 is a top view, the first interference site is a point in Figure 2 . It can be understood that for the door body assembly, the first interference site is a vertical line. If the inner corner of the opening side is in an arc shape, the first interference site is the point farthest from the hinge shaft of the cabinet door 2 on the arc segment.
[0103] In combination with Figure 2 and Figure 3 , the distance between the end face of the opening side of the door panel 21 and the side wall of the accommodating space corresponding thereto when the cabinet door 2 is closed is δ1, which is greater than the movement distance γ of the first interference site along the width direction of the accommodating space before it leaves the accommodating space. γ is the vertical distance of the first interference site moving toward the side wall of the corresponding accommodating space. When the cabinet door 2 is in the closed position, the width direction of the cabinet door 2 is consistent with the width direction of the accommodating space. As the cabinet door 2 is opened, the width direction of the cabinet door 2 and the width direction of the accommodating space form an angle.
[0104] According to the embodiments of the present application, the position of the opening side of the door panel 21 most likely to interfere is determined as the first interference site, and the position of the first interference site is determined. On this basis, the conditions that need to be met for the first interference site not to interfere are determined, and the rules that need to be met between the initial gap δ1 of the opening side of the door body assembly and the movement of the door panel 21 are determined to ensure the normal use of the embedded refrigeration equipment.
[0105] On the basis of the above, under the premise that the opening side of the door panel 21 does not interfere, the initial gap δ1 of the opening side of the door panel 21 generally does not exceed 5 mm to ensure the appearance and use safety of the embedded refrigeration equipment. The upper limit value of δ1 is further given in the embodiments of the present application.
[0106] According to the embodiments of the present application, the distance δ1 satisfies: δ1≤γ max .
[0107] wherein γ max is the upper limit value of δ1, corresponding to the value of γ when λ is zero and Δθ is Δθcrit.
[0108] In combination Figure 2 and Figure 3 , γ is the vertical distance of the first interference site moving towards the side wall of the accommodating space corresponding thereto, λ is the vertical distance of the second interference site moving towards the side wall of the accommodating space corresponding thereto, Δθ is the angle of rotation of the cabinet door 2 during the opening process, and Δθcrit is the Δθ when the first interference site leaves the accommodating space, wherein the “first interference site leaving the accommodating space” corresponds to the case that the point C in Figure 2 and the point e of the cabinet 60 are flush, i.e., the interference site C is located on the horizontal line where the point e is located. γ and Δs are positively correlated, and Δs is the distance of the door panel 21 moving relative to the opening side of the cabinet door 2 during the opening process of the cabinet door 2. The second interference site is located at the outer corner of the hinge side of the door panel 21. Since Figure 2 is a top view, the second interference site is a point in Figure 2 . It can be understood that, for the door body assembly, the second interference site is a vertical line. If the outer corner of the hinge side of the door panel 21 is in an arc shape, the second interference site is the point farthest from the hinge axis of the cabinet door 2 on the arc segment.
[0109] wherein λ being zero means that δ2 can be zero at this time, i.e., the initial gap between the hinge side of the door panel 21 and the cabinet panel can be zero or infinitely close to zero. At this time, in order to ensure that the opening side of the door panel 21 does not interfere with the cabinet panel, the corresponding γ max of the opening side of the door panel 21 is the required maximum γ max , and δ1 is not more than γ max .
[0110] In combination Figure 2 and Figure 3 , the hinge axis of the cabinet door 2 corresponds to the point O in the figure, l1 is the vertical distance from the hinge axis of the cabinet door 2 to the inner surface of the door panel 21, l2 is the vertical distance from the hinge axis of the cabinet door 2 to the end surface of the opening side of the door panel 21, l3 is the vertical distance from the hinge axis of the cabinet door 2 to the end surface of the hinge side of the door panel 21, h is the thickness of the door panel 21, and Δs is the distance of the door panel 21 moving relative to the cabinet door 2 during the opening process of the cabinet door 2.
[0111] Figure 2In the figure, the relationship and angle relationship between the initial position of the refrigerator (the refrigerator door 2 is not opened) and the position (the dashed line in the figure) when the refrigerator door 2 is opened to any angle are simplified and marked. In the figure, the corners that can be interfered in the opening process are marked with black dots. The first interference site c is prone to interference with the e point on the outer side of the right end of the first cabinet panel 601, that is, the e point is the critical point at which the c point escapes from the interference (leaves the accommodation space) in the opening and closing process. In addition, the second interference site d is the corner point on the outer side of the right end of the door panel 21, which is the corner point at which the right end surface of the door panel 21 first interferes with the left end surface of the second cabinet panel 602 adjacent to the right side in the opening and closing process. As can be seen from the figure, in the initial position, the included angle between the oblique side oc between the c point and the hinge axis on the left side of the hinge axis and the inner side of the cabinet panel is θ0, and the angle of the refrigerator door 2 when it is opened to any position is θ, and the oblique side oc at this position, the distance l2 and the distance l1 are indicated by dashed lines; in the initial position, the oblique side od between the d point and the hinge axis on the right side of the hinge axis, and when the angle of the refrigerator door 2 when it is opened to any position is Δθ, the oblique side od at this position, the distance l1+h and the distance l3 are indicated by dashed lines; as can be seen from the figure, if the cabinet panel does not move to the door opening side along the refrigerator door 2 in the opening process, the d point will soon interfere with the left end surface of the second cabinet panel 602 as the opening angle increases, resulting in the refrigerator door 2 being unable to open, and therefore, in order to avoid interference and affect the opening, the door panel 21 needs to move a distance Δs to the door opening side when the door body is opened to an angle of Δθ. Δ
[0112] According to the embodiments of the present application, it can be understood that the larger l1, l3, and h are, the more likely the door panel 21 is to interfere at this time, and therefore, l1, l3, h, and δ1 are positively correlated. In addition, δ1 and the maximum Δs before the first interference site leaves the accommodation space are positively correlated, that is, the larger the distance Δs by which the door panel 21 moves relative to the refrigerator door 2 before the first interference site leaves the accommodation space, the larger δ1 is at this time, so as to prevent the door panel 21 from colliding with the first cabinet panel 601 during movement.
[0113] According to the embodiments of the present application, δ1 is positively correlated with l1, l3, h, and the maximum Δs before the first interference site leaves the accommodation space, wherein l1 is the vertical distance from the hinge axis of the refrigerator door 2 to the inner surface of the door panel 21, l2 is the vertical distance from the hinge axis of the refrigerator door 2 to the end surface on the door opening side of the door panel 21, l3 is the vertical distance from the hinge axis of the refrigerator door 2 to the end surface on the hinge side of the door panel 21, h is the thickness of the door panel 21, and Δs is the distance by which the door panel 21 moves relative to the refrigerator door 2 during opening of the refrigerator door 2.
[0114] According to the embodiment of the present application, it is assumed that the door panel 21 moves a distance Δs, at this time, the length of the side where the point c is located with the hinge shaft center o is a, and the angle between a and the horizontal position is α, at this time, the length of the side where the point d is located with the hinge shaft center o is b, and the angle between b and the horizontal position is β.
[0115] In one embodiment, δ1≥γ=a×cosα-l2.
[0116] wherein,
[0117] As described above, Δθ is the angle of rotation during the opening of the cabinet door 2, and Δs is the distance of movement of the door panel 21 relative to the opening side of the cabinet door 2 during the opening of the cabinet door 2.
[0118] Thus, the relationship between δ1 and Δs can be obtained when l1 and l2 are determined. When Δs is determined, Δθ can be obtained. crit wherein, Δθ crit is the value of Δθ when the first interference site leaves the accommodation space.
[0119] According to the embodiment of the present application, the door panel 21 has a second interference site, which is located at the outer corner of the hinge side of the door panel 21; and when the cabinet door 2 is closed, the distance between the end surface of the hinge side of the door panel 21 and the side wall of the accommodation space corresponding thereto is δ2. Above, when the initial gap δ2 of the hinge side of the door body is determined, δ1 can be obtained. If δ2 itself is not determined, δ2 can be further determined based on the known conditions of the door body assembly at this time. Specifically, δ2 is greater than the movement distance λ of the second interference site along the width direction of the accommodation space before the second interference site leaves the accommodation space, and λ is the vertical distance of the movement of the second interference site towards the side wall of the corresponding accommodation space.
[0120] On the basis of the above, under the premise of satisfying the non-interference of the door body assembly, in order to ensure the aesthetics and use safety of the embedded refrigeration equipment, the present application further gives the upper limit value of δ2.
[0121] According to the embodiment of the present application, the distance δ2 satisfies: δ2≤λmax.
[0122] wherein, λmax is the value of λ corresponding to γ being zero and Δθ being Δθcrit. That is, when γ is zero, the initial gap δ1 of the opening side of the door panel 21 can be zero or infinitely close to zero. In this case, when Δθ is Δθcrit, the displacement of the hinge side of the door panel 21 is λmax, and in order to ensure that the hinge side of the door panel 21 does not interfere with the cabinet panel, the corresponding λmax of the hinge side of the door panel 21 is the required maximum λmax.
[0123] Wherein, when γ is zero, it means that δ1 can be zero, i.e. the initial gap between the opening side of the door plate 21 and the cabinet plate can be zero or infinitely close to zero. In order to ensure that the hinge side of the door plate 21 does not interfere with the cabinet plate, the corresponding λmax of the hinge side of the door plate 21 is the required maximum λmax, and δ2 is not more than the maximum λmax.
[0124] According to the embodiments of the present application, λ and Δs are negatively correlated, and γ is the vertical distance of the movement of the first interference site towards the side wall of the accommodating space corresponding thereto.
[0125] According to the embodiments of the present application, δ2 is positively correlated with l1, l3 and h, and δ2 and the maximum Δs before the first interference site leaves the accommodating space are negatively correlated. That is, when l1, l2, l3 and h are larger, in order to avoid the interference between the second interference site and the second cabinet plate 602, δ2 is larger. Conversely, if the displacement amount Δs of the door plate 21 towards the opening side of the cabinet door 2 during the opening of the door, in order to avoid the interference of the hinge side of the door plate 21, the required δ2 is smaller.
[0126] In one embodiment, the distance δ2 satisfies: δ2≥λ=b*cosβ-l3.
[0127] Wherein,
[0128] Therefore, under the condition that l1 and l3 are determined, the relationship between δ2 and Δs can be obtained. When δ1 and δ2 are equal, i.e. the initial gaps on both sides of the door plate 21 are equal, the value range of Δs can be obtained, and the value range of δ1 and δ2 can be further obtained.
[0129] The above calculation formula of δ1 and δ2 does not constitute a limitation on δ1 and δ2. For example, the above calculation formula can also have a correction coefficient or a correction parameter. In addition, the above calculation formula is for the case where the hinge axis is determined. If the cabinet door 2 is installed by using a double-axis hinge or a movable hinge, the hinge axis will change with the opening of the cabinet door 2, and then the calculation formula of δ1 and δ2 also changes adaptively, and the movement distance of the hinge axis needs to be calculated in the formula. In addition, if there is an installation gap between the door plate 21 and the cabinet door 2, then h in the above calculation formula is the distance between the sliding surface of the door plate 21 and the outer surface of the door plate 21, and l1 is the distance from the hinge point of the cabinet door 2 to the sliding surface of the door plate 21.
[0130] According to the embodiments of the present application, the relative movement between the door panel 21 and the cabinet door 2 is determined by the sliding mechanism or the traction mechanism driving the movement of the sliding mechanism. In the case that the relative movement between the door panel 21 and the cabinet door 2 is determined by the sliding mechanism, once the sliding mechanism is determined, the movement amount Δs of the door panel 21 is determined at this time, and then the value range of δ1 and the value range of δ2 can be obtained from Δs.
[0131] According to the embodiments of the present application, in the case that all parameters of the door body assembly are known and δ2 is known, δ1 can be determined. Alternatively, according to the embodiments of the present application, when δ1 and δ2 are determined, in this case, the functional relationship of δ1 and δ2 and Δs can be determined, and then the required sliding mechanism or traction cabinet can be obtained based on Δs. Alternatively, in the case that the width of the containing space is determined and all parameters of the door body assembly are determined except Δs, the specific value of δ1+δ2 can be obtained at this time, and then Δs at this time can be obtained based on δ1+δ2. Further, in the case that the width of the containing space is determined, the specific value of δ1+δ2 can be obtained at this time, and generally δ1=δ2 in order to ensure the installation aesthetics and reliability, and then δ1 and δ2 can be obtained respectively, and then Δs at this time can be obtained based on δ1 and δ2.
[0132] In combination with Figure 2 and Figure 3 , in the case that the cabinet door 2 is closed, the distance between the end face of the door panel 21 on the door opening side and the side wall of the containing space corresponding thereto is δ1, and δ1 is 0.5mm-6mm. In this case, the installation requirement of the door body assembly can be met, the hidden installation of the refrigeration equipment is ensured, and at the same time, the process of opening the door can ensure that the door body assembly does not interfere with the installation body, and the user experience is improved. In one embodiment, l1 is 5mm-50mm, l2 is 240mm-700mm, l3 is (300mm to 700mm)-l2, h is 10mm to 25mm, and δ1 is 0.5mm-6mm.
[0133] In addition, the distance between the end face of the door panel 21 on the hinge side and the side wall of the containing space corresponding thereto is δ2, and the distance between the end face of the door panel on the hinge side and the side wall of the containing space corresponding thereto is δ2 is 0.5mm-6mm. In one embodiment, l1 is 5mm-50mm, l2 is 240mm-700mm, l3 is (300mm to 700mm)-l2, h is 10mm to 25mm, and δ2 is 0.5mm-6mm.
[0134] According to the embodiment of the present application, the vertical distance from the hinge axis of the cabinet door to the inner surface of the door panel is l1, the vertical distance from the hinge axis of the cabinet door to the end surface of the door panel on the door opening side is l2, the vertical distance from the hinge axis of the cabinet door to the end surface of the door panel on the hinge side is l3, the thickness of the door panel is h, l1 is 5mm-50mm, l2 is 240mm-700mm, l3 is (300mm to 700mm) minus l2, and h is 10mm to 25mm. In this case, the overall size of the door body assembly is suitable, the privacy of the refrigeration equipment can be easily ensured, and interference of the door body assembly can be prevented. Common values of l2 include 597mm, 600mm, 747mm, 750mm, 607mm, and 610mm. Common values of h include 16mm, 18mm, 20mm, 22mm, and 25mm.
[0135] According to the embodiment of the present application, the change of the movement distance Δs is not more than 3mm when the door opening angle of the door body assembly increases by 0.5°. That is, the movement of the door panel is as uniform as possible, sudden large-angle movement of the door panel is prevented, and the door panel is as hidden as possible, so that the user is prevented from being panicked by the movement of the door panel.
[0136] According to the embodiment of the present application, the movement distance Δs is not more than 5mm before the first interference site leaves the accommodation space. For example, the angle corresponding to the first interference site leaving the accommodation space is 2°-5°. Since Δs is small during this process, interference between the door panel and the accommodation space can be avoided.
[0137] In one embodiment, the movement distance Δs is 0.3mm to 0.5mm when the door opening angle Δθ of the door body assembly is 0.5°, and the change of the movement distance Δs is not more than 3mm when the door opening angle of the door body assembly increases by 0.5°.
[0138] According to the embodiment of the present application, the related parameters during the door opening process of the door body assembly can refer to the following table:
[0139] Table 1
[0140] According to the embodiment of the present application, the positions of the first interference site and the second interference site on the door panel 21 where interference is most likely to occur are determined first, and the positions of the first interference site and the second interference site on the door panel 21 are determined. On this basis, the conditions that need to be met for the first interference site not to interfere and the conditions that need to be met for the second interference site not to interfere are determined, and the rules that need to be met between the initial gaps (δ1 and δ2) on both sides of the door body assembly and the movement of the door panel 21 are determined, so as to ensure the normal use of the embedded refrigeration equipment.
[0141] According to the embodiment of the present application, when the size of the door body assembly is defined as the size in Table 1 above, γ is between -24 mm and 0.4 mm, λ is between -1 mm and 2.2 mm, and γ≤δ1 and λ≤δ2.
[0142] According to the embodiment of the present application, when the size of the door body assembly is defined as the size in Table 1 above, the angle between the line connecting the first interference site and the hinge axis of the cabinet door and the horizontal position is set as α, and the angle between the line connecting the second interference site and the hinge axis of the cabinet door and the horizontal position is set as β, the angle α is between 2.4° and 21°, and the angle β is between 66° and 72°.
[0143] According to the embodiment of the present application, δ1 and δ2 can be artificially controlled during the installation of the embedded refrigeration equipment. Of course, limiting components can also be correspondingly arranged on the door opening side and the hinge side of the embedded refrigeration equipment to ensure that the initial gap between the door panel 21 and the cabinet 60 on the door opening side is δ1 and the initial gap between the door panel 21 and the cabinet 60 on the hinge side is δ2 during the installation. Alternatively, auxiliary installation tools can be provided, the sizes of which correspond to the sizes of δ1 and δ2, respectively, so that the initial gap between the door panel 21 and the cabinet 60 meets the above settings during the installation through the auxiliary installation tools.
[0144] According to the embodiment of the present application, the sliding door mechanism 7 includes a sliding mechanism and a traction mechanism.
[0145] According to one embodiment of the present application, referring to Figures 4 to 5 , the sliding mechanism includes a first base 717, a first sliding block 714, a second sliding block 713, and a flexible cable 706. The first base 717 is formed with a first guide rail on one side and a second guide rail on the other side. The first sliding block 714 is slidably arranged on the first guide rail, and the traction mechanism is rotatably connected between the cabinet 1 and the first sliding block 717. The second sliding block 713 is slidably arranged on the second guide rail and is used to be connected with the door panel 21. The flexible cable 706 is connected with the first sliding block 714 and the second sliding block 713 at both ends. When the first sliding block 714 moves on the first guide rail, the first sliding block 714 drives the second sliding block 713 to move in the opposite direction on the second guide rail through the flexible cable 706, so as to drive the door panel 21 to move relative to the width direction of the cabinet door 2.
[0146] It can be understood that the sliding mechanism of the present embodiment can be arranged on the cabinet door 2, one of the first sliding block 714 and the second sliding block 713 is in transmission connection with the cabinet door 2 or the cabinet 1, and the other is in sliding connection with the door panel 21 arranged outside the cabinet door 2, so that when the cabinet door 2 rotates, the first sliding block 714 and the second sliding block 713 slide relative to each other to drive the door panel 21 to slide relative to the cabinet door 2, so that the door panel 21 can avoid obstacles on both sides during the opening and closing of the cabinet door 2.
[0147] Specifically, taking the example that the first slider 714 is connected with the cabinet 1 through the traction mechanism, and the second slider 713 is connected with the door panel 21, the first base 717 of the embodiment can be arranged on the cabinet door 2. The two ends of the flexible cable 706 are respectively connected with the first slider 714 and the second slider 713, so that the first slider 714 can drive the second slider 713 to move synchronously through the flexible cable 706, and in turn drive the door panel 21 to slide relative to the cabinet door 2.
[0148] By reasonably setting the extension direction of the flexible cable 706, the first slider 714 and the second slider 713 move in opposite directions when moving, so as to drive the door panel 21 to avoid obstacles.
[0149] For example, in the process of opening the cabinet door 2 to the outside of the cabinet 1, the cabinet 1 drives the first slider 714 to slide towards the first hinge 4, and at the same time, the first slider 714 drives the second slider 713 to slide in the opposite direction (i.e. away from the first hinge 4) through the flexible cable 706, so as to avoid interference between the door panel 21 and the obstacle outside. In the process of closing the cabinet door 2 to the side of the cabinet 1, the cabinet 1 drives the first slider 714 to slide away from the first hinge 4, and at the same time, the first slider 714 drives the second slider 713 to slide in the opposite direction (i.e. towards the first hinge 4) through the flexible cable 706, so as to avoid interference between the door panel 21 and the obstacle after closing.
[0150] It can be understood that the first slider 714 can also be connected with the door panel 21, and correspondingly, the second slider 713 is connected with the cabinet door 2 or the cabinet 1 through the traction mechanism, and the working process is the same as the above embodiment, which will not be described here.
[0151] According to the sliding mechanism of the present application, the first guide rail and the second guide rail are arranged on both sides of the first base 717, and the first slider 714 and the second slider 713 are respectively slidably arranged on the first guide rail and the second guide rail. The first slider 714 and the second slider 713 can synchronously slide along the guide rail under the transmission of the flexible cable 706, and the sliding directions are opposite. One of the first slider 714 and the second slider 713 is connected with the cabinet door 2 or the cabinet 1 through the traction mechanism, and the other is connected with the door panel 21 arranged outside the cabinet door 2, so that when the cabinet door 2 rotates, the two sliders slide relative to each other to drive the door panel 21 to slide relative to the cabinet door 2, so that the door panel 21 can avoid the obstacles on both sides during the opening and closing of the cabinet door 2.
[0152] It should be noted that in actual application, the design of the first slider 714 and the second slider 713 can be flexible and variable to adapt to different working scenes and performance requirements. They are not limited to specific shapes, sizes or materials, but can be customized and optimized according to specific needs.
[0153] From a material perspective, the first slider 714 and the second slider 713 can be selected to have high wear resistance, low friction coefficient, and good stability, such as metal alloy, engineering plastic, or special lubricating material. The selection of these materials aims to improve the durability of the slider, reduce wear and noise during sliding, and ensure smooth sliding.
[0154] In terms of structural design, the first slider 714 and the second slider 713 can adopt various forms of guide rail contact surfaces, such as plane contact, ball contact, or sliding bearing contact, etc. These different contact methods have their own advantages and disadvantages, for example, ball contact can reduce friction and wear, but the cost is higher; while plane contact is simple in structure, but may require more frequent lubrication and maintenance. Therefore, factors such as use conditions, cost-effectiveness, and maintenance convenience should be considered when selecting.
[0155] In addition, in order to enhance the carrying capacity and stability of the slider, reinforcing ribs, support plates or other auxiliary structures can be added to the first slider 714 and the second slider 713. These structures can increase the rigidity and anti-deformation ability of the slider, ensuring stable sliding performance when bearing the weight of the door panel 21 and external forces.
[0156] In this embodiment, the first guide rail and the second guide rail are arranged in sequence along the width direction of the first base 717, and the first guide rail and the second guide rail are arranged in parallel along the width direction of the first base 717. While ensuring that the length of the first guide rail and the second guide rail can meet the sliding distance of the first slider 714 and the second slider 713, it can effectively reduce the size of the first base 717 in the height direction and the thickness direction, and the structure is more compact, occupying less space.
[0157] In actual application, due to factors such as machine tool precision, tool wear, material unevenness, etc., there will be certain errors in the machining of the first guide rail, the second guide rail and the base. These errors may include dimensional errors (such as deviations in length, width, height), shape errors (such as straightness, flatness, roundness, etc.), and position errors (such as coaxiality, parallelism, perpendicularity, etc.). The parallelism between the first guide rail and the second guide rail is evaluated by measuring the relative position deviation between them. This deviation needs to be controlled within a certain tolerance range to ensure smooth sliding of the slider and stable operation of the system. This tolerance range is usually determined according to design requirements, use environment and system precision.
[0158] It should be noted that in this embodiment, parallel and vertical should not be strictly geometrically, at least manufacturing and installation errors should be considered, and positive and negative 10° errors should be understood as the scope protected by the patent.
[0159] In an embodiment of the present application, as Figure 5As shown, the flexible cable 706 includes a first flexible cable and a second flexible cable. The first flexible cable passes around one end of the first base 717 and is connected to one end of the first slider 714 and the second slider 713, respectively. The second flexible cable passes around the other end of the first base 717 and is connected to the other end of the first slider 714 and the second slider 713, respectively.
[0160] In this embodiment, by connecting the first flexible cable around one end of the first base 717 to the first slider 714 and the second slider 713, respectively, when the first slider 714 slides away from the one end of the first base 717 under the drive of the cabinet door 2 or the cabinet 1 through the traction mechanism, the first slider 714 drives the second slider 713 to slide towards the one end of the first base 717 through the first flexible cable. At the same time, by connecting the second flexible cable around the other end of the first base 717 to the first slider 714 and the second slider 713, respectively, when the first slider 714 slides away from the other end of the first base 717 under the drive of the cabinet door 2, the first slider 714 drives the second slider 713 to slide towards the other end of the first base 717 through the second flexible cable. Thus, when the first slider 714 slides towards both ends of the first base 717, respectively, the second slider 713 can be driven to slide in the opposite direction of the first slider 714, and the door panel 21 can slide relative to the cabinet door 2 when the cabinet door 2 is opened or closed, so as to avoid interference with obstacles and affect the opening and closing of the cabinet door 2.
[0161] The flexible cable 706 is one of a steel wire rope, a steel strand, or a hemp rope. It is selected according to the required load bearing, working environment, and use requirements. For occasions that require bearing large load and harsh environment, it is recommended to select a steel wire rope or a steel strand; for occasions with smaller load and moderate environment, a hemp rope can be considered. Under the premise of meeting the use requirements, the cost difference of different materials is considered, and the material with high cost performance is selected. In addition, the steel wire rope and the steel strand may need to be regularly inspected and maintained during use to ensure their performance and safety; while the hemp rope is relatively easy to replace and maintain.
[0162] Specifically, the second slider 713 and the first slider 714 are both provided with a connecting head 711 for fixing the flexible cable 706.
[0163] In one embodiment of the present application, as Figure 5As shown, the sliding mechanism further comprises a first fixed seat 701 and a second fixed seat 702. The first fixed seat 701 is connected to one end of the first base 717 and is formed with a first limiting slot. The two ends of the first limiting slot are in abutment with one end of the first guide rail and the second guide rail. A portion of the first flexible cable is slidably arranged in the first limiting slot. The second fixed seat 702 is connected to the other end of the first base 717 and is formed with a second limiting slot. The two ends of the second limiting slot are in abutment with the other end of the first guide rail and the second guide rail. A portion of the second flexible cable is slidably arranged in the second limiting slot.
[0164] In the embodiment, by arranging the first fixed seat 701 and the second fixed seat 702 at the two ends of the first base 717, the first fixed seat 701 and the second fixed seat 702 are respectively formed with the first limiting slot and the second limiting slot in abutment with the first guide rail and the second guide rail. The positions of the first flexible cable and the second flexible cable are respectively limited and guided, so that the sliding of the first flexible cable and the second flexible cable is smoother.
[0165] Specifically, the first fixed seat 701 is provided with a first fixed hole, and the first base 717 is provided with a first waist-shaped hole extending along the width direction of the first base 717. The sliding mechanism further comprises a first adjusting member 704. The first adjusting member 704 passes through the first fixed hole and is slidably arranged in the first waist-shaped hole. The tightness of the first flexible cable is adjusted by adjusting the position of the first adjusting member 704 in the first waist-shaped hole.
[0166] In the embodiment, by adjusting the position of the first adjusting member 704 in the first waist-shaped hole, the position of the first fixed seat 701 along the width direction of the first base 717 is adjusted. The first fixed seat 701 can tighten or loosen the first flexible cable, so as to adjust the tightness of the first flexible cable.
[0167] Since the first flexible cable and the second flexible cable are respectively arranged on the first fixed seat 701 and the second fixed seat 702 at the two sides of the first base 717, and the first flexible cable and the second flexible cable are connected to the two ends of the first sliding block 714 and the second sliding block 713, when the first fixed seat 701 is adjusted relative to the first base 717 through the first waist-shaped hole, the tightness of the first flexible cable is adjusted, and the tightness of the second flexible cable is also adjusted under the pulling of the first fixed seat 701 to the first flexible cable.
[0168] It can be understood that the first fixed hole can also be arranged on the second fixed seat 702. The first base 717 is provided with a first waist-shaped hole extending along the width direction of the first base 717. The sliding mechanism further comprises a first adjusting member 704. The first adjusting member 704 passes through the first fixed hole and is slidably arranged in the first waist-shaped hole. The tightness of the second flexible cable is adjusted by adjusting the position of the first adjusting member 704 in the first waist-shaped hole.
[0169] In the embodiment, the position of the second fixed seat 702 along the width direction of the first base 717 can be adjusted by adjusting the position of the first adjusting member 704 in the first waist-shaped hole, so that the second fixed seat 702 can tighten or loosen the second flexible cable, thereby adjusting the tightness of the second flexible cable.
[0170] Since the first flexible cable and the second flexible cable are respectively located on the first fixed seat 701 and the second fixed seat 702 on both sides of the first base 717, and the first flexible cable and the second flexible cable are connected to both ends of the first slider 714 and the second slider 713, when the second fixed seat 702 is adjusted relative to the first base 717 through the first waist-shaped hole, the tightness of the second flexible cable is adjusted, and the tightness of the first flexible cable is also adjusted under the pulling of the second fixed seat 702 to the second flexible cable.
[0171] Further, in some embodiments, the first fixed seat 701 is provided with a second waist-shaped hole extending along the width direction of the first base 717. The first base 717 is provided with a second fixed hole. The sliding mechanism further includes a second adjusting member 703, which is fixed in the external structure in sequence through the second waist-shaped hole and the second fixed hole, so as to adjust the position of the first fixed seat 701 relative to the external structure by the position of the second adjusting member 703 in the second waist-shaped hole.
[0172] In the embodiment, the first fixed seat 701 is fixed in the external structure by providing the second waist-shaped hole on the first fixed seat 701 and fixing the second adjusting member 703 in the external structure in sequence through the second waist-shaped hole and the second fixed hole, so as to fix the sliding mechanism on the external structure (such as the box door 2). At the same time, the second adjusting member 703 can be finely adjusted in the position along the second waist-shaped hole, so as to adjust the position of the first fixed seat 701, thereby being able to adjust the position of the first fixed seat 701 relative to the external structure.
[0173] It can be understood that the second fixed seat 702 can also be provided with a second waist-shaped hole extending along the width direction of the first base 717; the second adjusting member 703 is fixed in the external structure in sequence through the second waist-shaped hole and the second fixed hole, so as to adjust the position of the second fixed seat 702 relative to the external structure by the position of the second adjusting member 703 in the second waist-shaped hole. The second adjusting member 703, the second waist-shaped hole and the second fixed hole have similar effects as the above-mentioned embodiments, which will not be described here.
[0174] Further, in some embodiments, a rotatable support bearing is arranged in the first limiting slot; a portion of the first flexible cable abuts against the support bearing in the first limiting slot. In this embodiment, by abutting a portion of the first flexible cable against the support bearing, the extension direction of the first flexible cable is adjusted, and the first flexible cable is conveniently routed around the end of the first base 717 to be connected with the first slider 714 and the second slider 713.
[0175] It can be understood that a rotatable support bearing can also be arranged in the second limiting slot; a portion of the second flexible cable abuts against the support bearing in the second limiting slot, so as to adjust the extension direction of the second flexible cable, and the second flexible cable is conveniently routed around the end of the first base 717 to be connected with the first slider 714 and the second slider 713.
[0176] Specifically, in some embodiments, the support bearing includes a first bearing 705 and a second bearing 716, which are respectively arranged at one end of the same side of the first guide rail and the second guide rail, and are respectively arranged at two sides of the first base 717.
[0177] In an embodiment of the present application, as shown in Figure 5 the traction mechanism includes a traction rod 709, a first rotating shaft fixing seat 707, and a second rotating shaft fixing seat 710. The first rotating shaft fixing seat 707 is connected to the first slider 714, and the second rotating shaft fixing seat 710 is used to be connected to the cabinet 1. One end of the traction rod 709 is rotatably connected to the first rotating shaft fixing seat 707, and the other end of the traction rod 709 is rotatably connected to the second rotating shaft fixing seat 710.
[0178] In this embodiment, by fixing the first rotating shaft fixing seat 707 and the second rotating shaft fixing seat 710 to the first slider 714 and the cabinet 1 respectively, and connecting the first rotating shaft fixing seat 707 and the second rotating shaft fixing seat 710 through the traction rod 709, the distance between the first slider 714 and the second rotating shaft fixing seat 710 is always kept unchanged. When the cabinet door 2 rotates relative to the cabinet 1, the angle between the cabinet 1 and the cabinet door 2 changes, thereby driving the first slider 714 through the transmission connection of the traction rod 709, the first rotating shaft fixing seat 707, and the second rotating shaft fixing seat 710, so that the first slider 714 slides on the first base 717, and the second slider 713 is driven to slide to realize the movement of the door panel 21 relative to the cabinet door 2.
[0179] Specifically, one end of the traction rod 709 and the first rotating shaft fixing seat 707 are rotatably connected through a pin shaft 708 and a third bearing 715, and the other end and the second rotating shaft fixing seat 710 are rotatably connected through another pin shaft 708 and another third bearing 715.
[0180] In another aspect of an embodiment of the present application, as shown in Figure 1 andFigure 4 As shown, a door assembly is provided, including: a door 2, a door panel 21, and a sliding mechanism as provided in any of the above embodiments. The door 2 is rotatably connected to a housing 1 and is adapted to open or close the storage space of the housing 1. The door panel 21 is slidably disposed on the outside of the door 2; the sliding mechanism is disposed on the door 2, a first slider 714 is used for transmission connection with the housing 1, and a second slider 713 is connected to the door panel 21. During the opening or closing of the door 2, the first slider 714 and the second slider 713 move in opposite directions to drive the door panel 21 to move relative to the door 2.
[0181] Specifically, during the process of the door 2 rotating outwards to open the box body 1, the first slider 714 slides towards the first hinge 4 under the drive of the box body 1 via the traction mechanism. The first slider 714 drives the second slider 713 to slide away from the first hinge 4 via the flexible cable 706, thereby driving the door panel 21 to slide away from the first hinge 4, thus preventing the door panel 21 from interfering with obstacles on the outside. Similarly, during the process of the door 2 rotating towards the box body 1 to close, the sliding mechanism drives the door panel 21 to slide towards the first hinge 4, thereby preventing the closed door panel 21 from interfering with obstacles.
[0182] According to the door assembly of the present application embodiment, a sliding mechanism is provided on the door 2. The sliding mechanism is connected to the door 2 and the door panel 21 respectively, so that when the door 2 rotates to open or close relative to the box body 1, the door panel 21 is driven to slide relative to the width direction of the door 2, so that the door panel 21 can avoid obstacles such as side walls and objects when the door 2 is closed or opened.
[0183] It is understood that since the sliding mechanism has the beneficial effects of the above embodiments, the door assembly will have the corresponding beneficial effects of the above embodiments. The specific implementation method can be referred to the above embodiments, and will not be repeated in this application.
[0184] In one embodiment of this application, such as Figures 5 to 6 As shown, the second slider 713 is provided with a first connecting block 712, and the first connecting block 712 has a slot for the door panel 21 to be hung.
[0185] In this embodiment, a first connecting block 712 is provided on the second slider 713, and a slot is provided on the first connecting block 712. Correspondingly, the door panel 21 is provided with a connecting component (such as a hook, plug, etc.) adapted to the slot, so that the door panel 21 can be installed on the first connecting block 712 and the door panel 21 can slide with the second slider 713. At the same time, it is also convenient for the user to remove the door panel 21 from the second slider 713 when needed, meeting the user's usage needs in different scenarios.
[0186] According to another embodiment of the present application, in addition to the above structure of double guide rails and double sliding blocks, the sliding mechanism of the present application can also adopt the structure in Figures 8 to 10 , wherein the sliding mechanism comprises a guide member 730, a sliding member 740, a linkage assembly 750 and a driving rod 760.
[0187] The guide member 730 is configured to be arranged on the cabinet door, and the guide member 730 is provided with a guide structure 731. The sliding member 740 is configured to be arranged on the door panel, and the sliding member 740 is movably arranged on the guide member 730 along the width direction of the cabinet door.
[0188] The linkage assembly 750 is movably arranged on the guide structure 731 and can deform in structure under the guidance of the guide structure 731. The second end of the linkage assembly 750 is movably connected with the sliding member 740.
[0189] The driving rod 760 is arranged on the cabinet and movably connected with the first end of the linkage assembly 750, so as to drive the linkage assembly 750 to deform in structure during the opening and closing of the cabinet door, and then drive the sliding member 740 to move the door panel along the width direction by the linkage assembly 750.
[0190] It can be understood that, as shown in the figure, the cabinet is provided with a hinge, the hinge is provided with a hinge shaft, and the cabinet door is movably arranged on the hinge shaft, so as to realize the opening or closing of the cabinet door relative to the cabinet.
[0191] The guide structure 731 can ensure that the linkage assembly 750 moves along a predetermined path or direction, prevent it from deviating from the predetermined trajectory, and guide the deformation of the linkage assembly 750, and then drive the sliding member 740 to move along the width direction of the cabinet door.
[0192] Optionally, the guide structure 731 can guide the linkage assembly 750 to move along the tooth shape of the chain wheel through the cooperation of the chain wheel and the chain, and the guide structure 731 can also guide the linkage assembly 750 to move along the section of the guide rail through the cooperation of the sliding block 742 and the guide rail.
[0193] The linkage assembly 750 deforms in structure, so that the distance between the second end of the linkage assembly 750 and the hinge changes, and then the distance between the sliding member 740 and the hinge changes, and further realizes the change of the distance between the door panel connected with the sliding member 740 and the hinge.
[0194] Optionally, the linkage assembly 750 can be a parallel four-bar linkage mechanism, or a crank rocker mechanism.
[0195] For the sliding mechanism shown in the embodiment, the guide 730 is arranged on the cabinet door, the sliding member 740 is arranged on the door panel, the sliding member 740 is movably arranged on the guide 730 along the width direction of the cabinet door, the guide structure 731 is arranged on the guide 730, the guide structure 731 can guide the structural deformation of the link assembly 750, and the second end of the link assembly 750 is movably connected with the sliding member 740. When the cabinet door is opened, the driving rod 760 drives the first end of the link assembly 750, the link assembly 750 deforms in structure, the second end of the link assembly 750 pulls the sliding member 740 to move towards the direction away from the hinge, and then drives the door panel to move towards the direction away from the hinge along the width direction of the cabinet door, so that the door panel is prevented from interfering with the cabinet body; when the cabinet door is closed, the driving rod 760 drives the first end of the link assembly 750, the link assembly 750 deforms in structure, the second end of the link assembly 750 pulls the sliding member 740 to move towards the direction close to the hinge, and then drives the door panel to move towards the direction close to the hinge along the width direction of the cabinet door, so that the door panel is restored to the original position, and interference between the door panel and the cabinet body around the refrigeration equipment is prevented.
[0196] In some embodiments, as shown in Figure 8 The link assembly 750 includes a first link 751 and a second link 752.
[0197] The driving rod 760 is rotatably connected with the first end of the first link 751, the second end of the first link 751 and the first end of the second link 752 are rotatably connected through a first hinge shaft 753; the first hinge shaft 753 is arranged on the guide structure 731 and moves along the thickness direction of the door panel under the guidance of the guide structure 731; the second end of the second link 752 is rotatably connected with the sliding member 740.
[0198] The driving rod 760 is used to drive the first end of the first link 751 to move along the width direction, the first link 751 is used to drive the first hinge shaft 753 to move along the thickness direction, so as to change the included angle between the first link 751 and the second link 752, and then the second link 752 drives the sliding member 740 to move in the direction opposite to the driving direction of the driving rod 760.
[0199] It can be understood that the driving rod 760 provides a driving force to the first end of the first link 751, the guide structure 731 can constrain the movement path of the first hinge shaft 753, so that the first hinge shaft 753 can only move along the thickness direction of the cabinet door, thereby changing the included angle between the first link 751 and the second link 752, so that the second link 752 moves along the width direction.
[0200] In the process of opening the cabinet by the cabinet door, the driving rod 760 drives the first end of the first connecting rod 751 to move along the width direction towards the side close to the hinge, the first connecting rod 751 drives the first hinge shaft 753 to move along the thickness direction towards the side close to the sliding piece 740, the included angle between the first connecting rod 751 and the second connecting rod 752 is increased, the second connecting rod 752 is pushed to move towards the side away from the hinge, and the sliding piece 740 is further driven to move along the width direction towards the side away from the hinge, so that the door plate is prevented from interfering with the cabinet.
[0201] In the process of closing the cabinet by the cabinet door, the driving rod 760 drives the first end of the first connecting rod 751 to move along the width direction towards the side away from the hinge, the first connecting rod 751 drives the first hinge shaft 753 to move along the thickness direction towards the side away from the sliding piece 740, the included angle between the first connecting rod 751 and the second connecting rod 752 is decreased, the second connecting rod 752 is pushed to move towards the side close to the hinge, and the sliding piece 740 is further driven to move along the width direction towards the side close to the hinge, so that the door plate is restored to the original position and interference between the door plate and the cabinet around the refrigeration equipment is prevented.
[0202] In the process of closing the cabinet by the cabinet door, the driving rod 760 drives the first end of the first connecting rod 751 to move along the width direction towards the side away from the hinge, the first connecting rod 751 drives the first hinge shaft 753 to move along the thickness direction towards the side away from the sliding piece 740, the included angle between the first connecting rod 751 and the second connecting rod 752 is decreased, the second connecting rod 752 is pushed to move towards the side close to the hinge, and the sliding piece 740 is further driven to move along the width direction towards the side close to the hinge, so that the door plate is restored to the original position and interference between the door plate and the cabinet around the refrigeration equipment is prevented.
[0203] In some embodiments, as shown in FIG. 7, the driving rod 760 includes a connecting piece. Figure 8 The first end of the connecting piece is configured to be rotatably arranged at a fixed position on the cabinet of the refrigeration equipment, and the second end of the connecting piece is rotatably connected with the first end of the first connecting rod 751.
[0204] In the process of opening the cabinet by the cabinet door, the connecting piece is used to drive the first end of the first connecting rod 751 to move towards the side close to the hinge, and the second connecting rod 752 drives the sliding piece 740 to drive the door plate to move towards the side away from the hinge.
[0205] In the process of closing the cabinet by the cabinet door, the connecting piece is used to drive the first end of the first connecting rod 751 to move towards the side away from the hinge, and the second connecting rod 752 drives the sliding piece 740 to drive the door plate to move towards the side close to the hinge.
[0206]
[0207] It can be understood that the first end of the linkage member in the embodiment is rotatably arranged on the hinge, and when the cabinet door rotates relative to the cabinet body around the hinge shaft, the second end of the linkage member rotates around the hinge shaft as the center. Since the first end of the linkage member is arranged in a staggered manner with the hinge shaft, the distance between the second end of the linkage member and the hinge changes with the rotation of the linkage member, thereby driving the linkage assembly 750 to move towards or away from the hinge along the width direction of the cabinet door.
[0208] During the process of opening the cabinet body by the cabinet door, with the rotation of the cabinet door, the cabinet door drives the linkage member to rotate, the second end of the linkage member drives the first end of the first linkage rod 751 to move towards the side close to the hinge position, the second end of the second linkage rod 752 drives the sliding member 740 to move towards the side away from the hinge position, thereby making the door panel move towards the side away from the hinge position.
[0209] During the process of closing the cabinet body by the cabinet door, with the rotation of the cabinet door, the cabinet door drives the linkage member to rotate, the second end of the linkage member drives the first end of the first linkage rod 751 to move towards the side away from the hinge position, the second end of the second linkage rod 752 drives the sliding member 740 to move towards the side away from the hinge position, thereby making the door panel move towards the side close to the hinge position.
[0210] The embodiment sets the first end of the linkage member to deviate from the hinge position between the cabinet door and the cabinet body, so that the second end of the linkage member can drive the first end of the first linkage rod 751, so that the second linkage rod 752 can drive the sliding member 740 to move along the width direction. The opening and closing of the cabinet door can control the transmission of the linkage assembly 750 driven by the linkage member, so that the sliding member 740 can drive the door panel to move along the width direction. Without additional driving devices, the movement of the door panel relative to the cabinet door can be synchronized with the opening and closing of the cabinet door.
[0211] In some embodiments, as shown in FIG. 7A, the guide structure 731 includes a first limiting slot 7311. Figure 9
[0212] The first limiting slot 7311 extends along the thickness direction.
[0213] The first hinge shaft 753 is inserted into the first limiting slot 7311 and can move along the extension direction of the first limiting slot 7311.
[0214] It can be understood that the first limiting slot 7311 is used to limit the first hinge shaft 753, so that the first hinge shaft 753 can only move along the thickness direction, thereby changing the included angle between the first linkage rod 751 and the second linkage rod 752 connected with the first hinge shaft 753 respectively, and the moving direction of the second end of the first linkage rod 751 is opposite to that of the second end of the second linkage rod 752.
[0215] The first limiting groove 7311 can guide the moving direction of the first hinged shaft 753, and the first limiting groove 7311 can be directly arranged on the upper surface of the guide piece 730, without occupying additional space, thereby ensuring the compactness of the structure of the sliding mechanism.
[0216] In some embodiments, as shown in Figure 9 The guide structure 731 further includes a second limiting groove 7312.
[0217] The second limiting groove 7312 extends along the width direction and is in communication with the first limiting groove 7311.
[0218] The driving rod 760 is rotationally connected with the first end of the first connecting rod 751 through a second hinged shaft 754, and the second end of the second connecting rod 752 is rotationally connected with the sliding piece 740 through a third hinged shaft 755; the second hinged shaft 754 and the third hinged shaft 755 are respectively inserted into the second limiting groove 7312 and can move along the extension direction of the second limiting groove 7312.
[0219] The second hinged shaft 754 and the third hinged shaft 755 are respectively arranged on the two sides of the first limiting groove 7311.
[0220] It can be understood that the second limiting groove 7312 is used for limiting the second hinged shaft 754 and the third hinged shaft 755, so that the second hinged shaft 754 and the third hinged shaft 755 can only move along the width direction, thereby enabling the second connecting rod 752 to drive the sliding piece 740 to move along the width direction. The second limiting groove 7312 of the present embodiment ensures that the moving direction of the sliding piece 740 will not deviate, thereby ensuring the reliability and stability of the moving direction of the sliding piece 740, and further ensuring the reliability of the door panel moving along the width direction of the cabinet door.
[0221] In some embodiments, as shown in Figure 8 The sliding mechanism further includes an elastic piece 770.
[0222] The elastic piece 770 is arranged between the guide piece 730 and the sliding piece 740.
[0223] When the connecting rod assembly 750 drives the sliding piece 740 to move towards the side away from the hinged position, the sliding piece 740 compresses the elastic piece 770 in the process of driving the door panel to move.
[0224] When the connecting rod assembly 750 drives the sliding piece 740 to move towards the side close to the hinged position, the elastic piece 770 drives the sliding piece 740 to drive the door panel to move towards the hinged position.
[0225] The hinged position is located between the cabinet door and the cabinet body, and the cabinet door is rotationally arranged on the cabinet body based on the hinged position.
[0226] It can be understood that when the linkage assembly 750 drives the sliding piece 740 to move towards the side away from the hinge position, the elastic piece 770 is extruded in the direction away from the hinge to accumulate elastic potential energy.
[0227] When the linkage assembly 750 drives the sliding piece 740 to move towards the side close to the hinge position, the elastic potential energy of the elastic piece 770 is released, and the elastic force of the elastic piece 770 acts on the sliding piece 740 to drive the sliding piece 740 to move close to the hinge position.
[0228] Specifically, the elastic piece 770 can be an elastic sheet, an elastic block, or a spring.
[0229] The embodiment can ensure that the movement of the sliding piece 740 relative to the guide piece 730 is more stable and reliable based on the elastic deformation of the elastic piece 770 by arranging the elastic piece 770 in the sliding mechanism.
[0230] In some embodiments, as shown in Figures 8 to 10 The guide piece 730 includes a fixed plate 732 and a sliding groove 733.
[0231] The fixed plate 732 is configured to be arranged on the cabinet door.
[0232] The sliding groove 733 is arranged on the fixed plate 732 and extends in the width direction, and at least part of the sliding piece 740 is movably arranged in the sliding groove 733 in the width direction.
[0233] It can be understood that the fixed plate 732 of the embodiment is used to be fixedly connected with the cabinet door, and the sliding groove 733 is used to guide the movement of the sliding piece 740 in the width direction of the cabinet door, and based on the sliding cooperation between the sliding piece 740 and the sliding groove 733, it can be ensured that the sliding piece 740 can move stably and reliably in the width direction of the cabinet door.
[0234] In some embodiments, as shown in Figure 9 and Figure 10 The guide piece 730 further includes a sliding sleeve 734, and the sliding sleeve 734 is arranged at one end of the sliding groove 733 away from the hinge position.
[0235] The sliding piece 740 includes a guide rod 741 and a sliding block 742, the guide rod 741 is arranged in the sliding sleeve 734, the guide rod 741 is provided with a sliding contact 745, and the sliding contact 745 is movably arranged in the sliding groove 733 in the width direction; the sliding block 742 is connected with the guide rod 741 and is configured to be connected with the door plate.
[0236] The elastic piece 770 is arranged between the sliding sleeve 734 and the sliding contact 745.
[0237] It can be understood that the sliding groove 733 of the embodiment is arranged in an arc shape to match the outer wall of the guide rod 741, the sliding sleeve 734 is used to guide the movement of the guide rod 741 relative to the sliding groove 733, and with the movement of the sliding piece 740 on the sliding groove 733, the sliding contact 745 also moves, the sliding sleeve 734 is fixedly arranged relative to the fixed plate 732, the elastic piece 770 is limited between the sliding sleeve 734 and the sliding contact 745, when the guide rod 741 moves towards the side away from the hinge, the sliding contact 745 moves towards the sliding sleeve 734, causing the elastic piece 770 between the sliding sleeve 734 and the sliding contact 745 to be compressed, when the guide rod 741 moves towards the side close to the hinge, the elastic piece 770 releases the elastic potential energy and elongates, the sliding contact 745 moves in the direction away from the sliding sleeve 734, and the sliding sleeve 734 and the sliding contact 745 constrain the elastic piece 770 from both sides to ensure the reliability of the compression and elongation of the elastic piece 770.
[0238] Furthermore, one end of the sliding block 742 is connected with the guide rod 741, and the other end is connected with the door plate, so that when the guide rod 741 moves along the width direction of the cabinet door, the sliding block can drive the door plate to move along the width direction of the cabinet door.
[0239] In some embodiments, as shown in Figure 8 the elastic piece 770 includes a spring, the spring is sleeved on the outer side of the guide rod 741 and is limited between the sliding sleeve 734 and the sliding contact 745.
[0240] It can be understood that when the elastic piece 770 is arranged as a spring, the hollow structure of the spring enables the spring to be sleeved on the outer wall of the guide rod 741, and in the length direction of the guide rod 741, the spring changes between the compressed and elongated states, and the sliding sleeve 734 and the sliding contact 745 can limit the two sides of the spring from both ends of the guide rod 741, facilitating the stopping of both ends during compression and elongation of the spring. The spring of the embodiment makes the structure simple and compact when the door plate is reset relative to the cabinet door, has a small volume, and saves the installation space of the door plate.
[0241] In some embodiments, as shown in Figure 8 and Figure 9 the sliding piece 740 further includes a first connecting arm 743 and a second connecting arm 744.
[0242] The first connecting arm 743 and the second connecting arm 744 are arranged in the width direction, the first end of the guide rod 741 is connected with the first end of the sliding block 742 through the first connecting arm 743, and the second end of the guide rod 741 is connected with the second end of the sliding block 742 through the second connecting arm 744.
[0243] The sliding sleeve 734 and the sliding contact 745 are located between the first connecting arm 743 and the second connecting arm 744.
[0244] It can be understood that the first connecting arm 743 and the second connecting arm 744 connect the guide rod 741 and the sliding block 742 from both ends of the guide rod 741 and the sliding block 742, so that the connection of the guide rod 741 and the sliding block 742 is more firm, and the sliding block 742 is more easily attached when moving along the width direction of the cabinet door.
[0245] Further, the sliding block 742 of the embodiment is vertically arranged with the first connecting arm 743 and the second connecting arm 744, so that when the door panel is installed on the sliding block 742, the fixed plate 732 is installed at the top end of the cabinet door, and the door panel and the cabinet door can be attached in parallel, ensuring the flatness of the door panel installed on the cabinet door, and facilitating the movement of the door panel along the cabinet door.
[0246] Of course, in addition to the above slide rail and block form or connecting rod form, the sliding mechanism can also adopt a gear and rack form or a cable structure form, and the specific structure is not limited, as long as the sliding mechanism can drive the door panel to move relative to the cabinet door. Correspondingly, the traction mechanism is not limited by the above examples, for example, the traction mechanism can adopt a cylinder, a rope and the like, and specific examples are not given one by one. In addition, the traction mechanism can be an electric structure or a mechanical structure.
[0247] In an embodiment of the present application, Figure 4 、 Figure 11 and Figure 12 As shown in the figure, the door body assembly further comprises a first driven guide rail mechanism 8. The first driven guide rail mechanism 8 is arranged in parallel with the sliding mechanism on the cabinet door 2, comprising a second base 817 and a third sliding block 813. The second base 817 is formed with a third guide rail, and the third sliding block 813 is slidably arranged on the third guide rail. The third sliding block 813 is provided with a second connecting block 812, and the second connecting block 812 is formed with a slot for hanging the door panel 21.
[0248] In the embodiment, by arranging the first driven guide rail mechanism 8 in parallel with the sliding mechanism on the cabinet door 2, the first driven guide rail mechanism 8 has a second base 817, the second base 817 is provided with a third guide rail and a third sliding block 813 which can slide along the third guide rail, and the third sliding block 813 is connected with the door panel 21 through the second connecting block 812. The third sliding block 813 can slide with the door panel 21 when the door panel 21 slides relative to the cabinet door 2, which supports and assists the sliding of the door panel 21, making the door panel 21 slide more smoothly relative to the cabinet door 2. At the same time, the first driven guide rail mechanism 8 can cooperate with the sliding mechanism to limit the movement direction of the door panel 21, reduce the shaking of the door panel 21 during sliding, and make the sliding more stable. In addition, the slot on the second connecting block 812 can facilitate the user to install the door panel 21 on the driven guide rail mechanism.
[0249] Further, the first driven guide rail mechanism 8 further comprises a third fixed seat 801 and a fourth fixed seat 802, which are also provided with limiting grooves similar to the first fixed seat 701 and the second fixed seat 702.
[0250] Specifically, the third fixed seat 801 is provided with a third fixed hole, and the second base 817 is provided with a third waist-shaped hole extending along the width direction of the second base 817; the third adjusting part 804 passes through the third fixed hole and is slidably arranged in the third waist-shaped hole to adjust the position of the third adjusting part 804 in the third waist-shaped hole.
[0251] It can be understood that the fourth fixed seat 802 can also be provided with a third fixed hole; the second base 817 is provided with a third waist-shaped hole extending along the width direction of the second base 817; the third adjusting part 804 passes through the third fixed hole and is slidably arranged in the third waist-shaped hole to adjust the position of the third adjusting part 804 in the third waist-shaped hole.
[0252] Further, the third fixed seat 801 is provided with a fourth waist-shaped hole extending along the width direction of the second base 817. The second base 817 is provided with a fourth fixed hole. The fourth adjusting part 803 passes through the fourth waist-shaped hole and the fourth fixed hole in sequence and is fixed in the external structure to adjust the position of the third fixed seat 801 relative to the external structure through the position of the fourth adjusting part 803 in the fourth waist-shaped hole.
[0253] It can be understood that the fourth fixed seat 802 can also be provided with a fourth waist-shaped hole extending along the width direction of the third base 902; the fourth adjusting part 803 passes through the fourth waist-shaped hole and the fourth fixed hole in sequence and is fixed in the external structure to adjust the position of the fourth fixed seat 802 relative to the external structure through the position of the fourth adjusting part 803 in the fourth waist-shaped hole.
[0254] In an embodiment of the present application, as shown in Figure 4 , Figure 13 and Figure 14 , the door body assembly further comprises a second driven guide rail mechanism 9, which is arranged in a different axis with the sliding mechanism, and the second driven guide rail mechanism 9 comprises a third base 902 and a fourth sliding block 903, the third base 902 is formed with a fourth guide rail, and the fourth sliding block 903 is slidably arranged in the fourth guide rail, and the fourth sliding block 903 is provided with a plurality of third connecting blocks 905, and the third connecting blocks 905 are formed with insertion grooves for hanging the door plate 21.
[0255] In the embodiment, the fourth sliding block 903 of the second driven guide rail mechanism 9 can slide with the door panel 21 when the door panel 21 slides relative to the cabinet door 2, which supports the sliding of the door panel 21 and makes the door panel 21 slide relative to the cabinet door 2 more stably and smoothly.
[0256] Meanwhile, since the second driven guide rail mechanism 9 is arranged in a different axis with the sliding mechanism, the third connecting block 905 can limit the movement direction of the door panel 21 in cooperation with the sliding mechanism, so as to avoid the door panel 21 from deflecting around the sliding direction when sliding, and the sliding process is more stable and reliable.
[0257] In an embodiment of the present application, as shown in Figure 13 and Figure 14 , the two ends of the third base 902 of the second driven guide rail mechanism 9 are respectively provided with a fifth fixed seat 901 and a sixth fixed seat 904 for fixed connection with the cabinet door 2.
[0258] Further, in an embodiment of the present application, as shown in Figure 4 , Figures 11 to 14 , the sliding mechanism, the first driven guide rail mechanism 8 and the second driven guide rail mechanism 9 are arranged along the width direction of the cabinet door 2, the first driven guide rail mechanism 8 and the sliding mechanism are arranged in parallel, and the second driven guide rail mechanism 9 is arranged in a different axis with the sliding mechanism.
[0259] It can be understood that the width direction of the cabinet door 2 is parallel to the plane where the cabinet door 2 is located, and is perpendicular to the rotation axis of the cabinet door 2, so that the door panel 21 can move away from or close to the hinge axis of the cabinet door 2.
[0260] In the embodiment, the first driven guide rail mechanism 8 is arranged in parallel with the sliding mechanism, so that the third sliding block 813 can slide in parallel with the sliding mechanism, which better assists the door panel 21 to slide relative to the cabinet door 2 under the drive of the sliding mechanism. Meanwhile, the second connecting block 812 can limit the movement direction of the door panel 21 in cooperation with the sliding mechanism, so as to avoid the door panel 21 from swinging during the movement. Meanwhile, since the second driven guide rail mechanism 9 is arranged in a different axis with the sliding mechanism, the third connecting block 905 can limit the movement direction of the door panel 21 in cooperation with the sliding mechanism, so as to avoid the door panel 21 from deflecting around the sliding direction when sliding, and the sliding process is more stable and reliable.
[0261] In an embodiment of the present application, as shown in Figures 17 to 20As shown, the door body assembly further comprises: a first end cover 210 and a second end cover 220, the first end cover 210 is arranged at one end of the cabinet door 2, the first end cover 210 is formed with a first mounting groove 213, the sliding mechanism and the first driven rail mechanism 8 are arranged in the first mounting groove 213; the second end cover 220 is arranged at the other end of the cabinet door 2, the second end cover 220 is formed with a second mounting groove, and the second driven rail mechanism 9 is arranged in the second mounting groove.
[0262] In the embodiment, by arranging the first end cover 210 and the second end cover 220 at the two ends of the cabinet door 2 respectively, forming the first mounting groove 213 on the first end cover 210 to mount the sliding mechanism and the first driven rail mechanism 8, and forming the second mounting groove on the second end cover 220 to mount the second driven rail mechanism 9, the structure of the sliding mechanism, the first driven rail mechanism 8, the second driven rail mechanism 9 and the cabinet door 2 is more compact and beautiful.
[0263] Optionally, in an embodiment of the present application, as shown in Figure 18 , the first driven rail mechanism 8 and the second driven rail mechanism 9 are arranged along the width direction of the cabinet door 2, the sliding mechanism and the first driven rail mechanism 8 are arranged at the top of the cabinet door 2, and the second driven rail mechanism 9 is arranged at the bottom of the cabinet door 2.
[0264] In the embodiment, by arranging the sliding mechanism and the first driven rail mechanism 8 at the top of the cabinet door 2 and arranging the second driven rail mechanism 9 at the bottom of the cabinet door 2, the top of the cabinet door 2 is connected through the sliding mechanism and the first driven rail mechanism 8 and the door panel 21, and the bottom of the cabinet door 2 is connected through the second driven rail mechanism 9 and the door panel 21, so that the connection between the door panel 21 and the cabinet door 2 is more stable and reliable.
[0265] It can be understood that, in another embodiment of the present application, the first driven rail mechanism 8 and the second driven rail mechanism 9 are arranged along the width direction of the cabinet door 2, the sliding mechanism and the first driven rail mechanism 8 are arranged at the bottom corresponding to the cabinet door 2, and the second driven rail mechanism 9 of the first door body assembly is arranged at the top corresponding to the cabinet door 2.
[0266] In the embodiment, by arranging the sliding mechanism and the first driven rail mechanism 8 at the bottom of the cabinet door 2 and arranging the second driven rail mechanism 9 at the top of the cabinet door 2, the top of the cabinet door 2 is connected through the sliding mechanism and the first driven rail mechanism 8 and the door panel 21, and the bottom of the cabinet door 2 is connected through the second driven rail mechanism 9 and the door panel 21, so that the connection between the door panel 21 and the cabinet door 2 is more stable and reliable.
[0267] Further, as shown in Figure 21 , Figure 23 , Figure 24 , Figure 26 and Figure 27As shown, in one embodiment of the present application, the door body assembly further comprises a first main decorative cover 13 and a second main decorative cover 14. The first main decorative cover 13 is detachably arranged on the first end cover 210 and is formed with a first gap 1303 and a second gap 1304, one end of the first connecting block 712 provided with the insertion slot passes through the first gap 1303, and one end of the second connecting block 812 provided with the insertion slot passes through the second gap 1304. The second main decorative cover 14 is detachably arranged on the second end cover 220 and is formed with a third gap 1401, and one end of the third connecting block 905 provided with the insertion slot passes through the third gap 1401.
[0268] In the present embodiment, by arranging the first main decorative cover 13 on the cabinet door 2, the first main decorative cover 13 can cover the entire sliding mechanism and the first driven rail mechanism 8, avoiding the complete exposure of the sliding mechanism and the first driven rail mechanism 8 to the outside, and being more beautiful; at the same time, the first main decorative cover 13 is formed with the first gap 1303 and the second gap 1304, so that the sliding mechanism and the first driven rail mechanism 8 can extend to the outside of the first main decorative cover 13 through the first gap 1303 and the second gap 1304 respectively and be connected with the door panel 21, so as to realize the function of driving the door panel 21 to slide. By detachably arranging the second main decorative cover 14 on the cabinet door 2, the second driven rail mechanism 9 can be covered, avoiding the exposure of the second driven rail mechanism 9 to the outside, making the entire cabinet door 2 more beautiful, and the second driven rail mechanism 9 passes through the third gap 1401 and is used to be connected with the door panel 21, so that the second driven rail mechanism 9 cooperates with the guide door panel 21 to move relative to the cabinet door 2 in the process of opening or closing the cabinet door 2.
[0269] It can be understood that the color and material of the first main decorative cover 13 and the second main decorative cover 14 of the present embodiment can be designed according to the user's demand, and the color and material of the first main decorative cover 13 and the second main decorative cover 14 are matched with (for example, consistent with or matched with the outer surface of the cabinet door 2 to form a decorative pattern) the color and material of the outer surface of the cabinet door 2, so as to improve the overall beauty of the cabinet body.
[0270] In one embodiment of the present application, as shown in Figure 19 , Figure 23 and Figure 24 , one of the first main decorative cover 13 and the first end cover 210 is provided with a first protrusion, and the other is provided with a first groove corresponding to the first protrusion, and the first main decorative cover 13 is detachably connected with the first end cover 210 through the first protrusion and the first groove.
[0271] As shown in Figure 20 , Figure 26 and Figure 27 , one of the second main decorative cover 14 and the second end cover 220 is provided with a second protrusion, and the other is provided with a second groove corresponding to the second protrusion, and the second main decorative cover 14 is detachably connected with the second end cover 220 through the second protrusion and the second groove.
[0272] In the embodiment, the first end cover 210 is provided with a first protrusion, and the first main decorative cover 13 is provided with a first groove, and the first protrusion and the first groove can be clamped with each other to fix the first main decorative cover 13 and the first end cover 210 with each other.
[0273] It can be understood that the positions of the first protrusion and the first groove can be interchanged, that is, the first end cover 210 is provided with a first groove, and the first main decorative cover 13 is provided with a first protrusion.
[0274] Similarly, as shown in Figure 20 , Figure 26 and Figure 27 , the second end cover 220 is provided with a second protrusion, and the second main decorative cover 14 is provided with a second groove, and the second protrusion and the second groove can be clamped with each other to fix the second main decorative cover 14 and the second end cover 220 with each other.
[0275] It can be understood that the positions of the second protrusion and the second groove can be interchanged, that is, the second end cover 220 is provided with a first groove, and the second main decorative cover 14 is provided with a second protrusion.
[0276] In an embodiment of the present application, as shown in Figure 22 , Figure 25 and Figure 28 , the door body assembly further comprises a first auxiliary decorative cover 17 and a second auxiliary decorative cover 18. The first auxiliary decorative cover 17 is detachably arranged on the first end cover 210 to shield the sliding mechanism and the first driven rail mechanism 8; and the second auxiliary decorative cover 18 is detachably arranged on the second end cover 220 to shield the second driven rail mechanism 9.
[0277] In the embodiment, in some use scenarios, the door plate 21 does not need to be installed on the outside of the box door 2, and the first auxiliary decorative cover 17 can be used to replace the first main decorative cover 13 on the first end cover 210, and the second auxiliary decorative cover 18 can be used to replace the second main decorative cover 14 on the second end cover 220, respectively, to shield the sliding mechanism and the two driven rail mechanisms, so as to improve the consistency of the box door 2 in vision, be more beautiful, and be suitable for different use requirements of users.
[0278] In some embodiments of the present application, in an embodiment of the present application, one of the first auxiliary decorative cover 17 and the first end cover 210 is provided with a first protrusion, and the other is provided with a first groove corresponding to the first protrusion, and the first auxiliary decorative cover 17 is detachably connected with the first end cover 210 through the first protrusion and the first groove.
[0279] One of the second sub-decorative cover 18 and the second end cover 220 is provided with a second protrusion, and the other is provided with a second groove corresponding to the second protrusion, and the second sub-decorative cover 18 is detachably connected with the second end cover 220 through the second protrusion and the second groove.
[0280] In the embodiment, the first end cover 210 is provided with a first protrusion, and the first sub-decorative cover 17 is provided with a first groove, and the first protrusion and the first groove can be clamped with each other to fix the first sub-decorative cover 17 and the first end cover 210 with each other.
[0281] It can be understood that the positions of the first protrusion and the first groove can be interchanged, that is, the first end cover 210 is provided with a first groove, and the first sub-decorative cover 17 is provided with a first protrusion.
[0282] Similarly, the second end cover 220 is provided with a second protrusion, and the second sub-decorative cover 18 is provided with a second groove, and the second protrusion and the second groove can be clamped with each other to fix the second sub-decorative cover 18 and the second end cover 220 with each other.
[0283] It can be understood that the positions of the second protrusion and the second groove can be interchanged, that is, the second end cover 220 is provided with a first groove, and the second sub-decorative cover 18 is provided with a second protrusion.
[0284] In some embodiments, at least one of the first end cover 210, the second end cover 220, the first sub-decorative cover 17 and the second sub-decorative cover 18 is provided with a handhold slot for a user to open or close the box door 2.
[0285] In the embodiment, by providing the handhold slot on at least one of the first end cover 210, the second end cover 220, the first sub-decorative cover 17 and the second sub-decorative cover 18, the user can conveniently put his hand into the handhold slot, and the user can conveniently manually open or close the box door 2, and the structure is simple and the operation is convenient.
[0286] It can be understood that, as shown in Figure 28 When the door plate 21 is not needed to be installed, the second driven guide rail mechanism 9 in the second installation slot can be removed, and correspondingly, the second sub-decorative cover 18 is provided with an inner recessed handhold part 1801 at a position corresponding to the second installation slot, so as to facilitate the user to manually open and close the box door 2.
[0287] In an embodiment of the present application, as shown in Figure 15 and Figure 16 The top of the door plate 21 is provided with a first hook 2111, and the bottom of the door plate 21 is provided with a second hook 2112, and the length of the second hook 2112 is greater than the length of the first hook 2111. The first hook 2111 and the second hook 2112 are adapted to be inserted into the corresponding slots.
[0288] In the present embodiment, the first hook 2111 and the second hook 2112 are respectively arranged at the top and the bottom of the door panel 21, and the door panel 21 is connected with the sliding mechanism and the two driven rail mechanisms through the first hook 2111 and the second hook 2112 and the slots, so as to slidably connect the door panel 21 with the cabinet door 2. The first hook 2111 and the second hook 2112 are respectively arranged at the top and the bottom of the door panel 21, so that the door panel 21 is not easy to shake.
[0289] In addition, the length of the second hook 2112 is greater than that of the first hook 2111. When the door panel 21 is installed outside the cabinet door 2, the slot at the bottom is first connected with the second hook 2112 of the door panel 21 to preliminarily position the bottom of the door panel 21, and then the position and the angle of the door panel 21 are adjusted so that the first hook 2111 at the top of the door panel 21 is connected with the slot at the top of the cabinet door 2. Therefore, the user can more easily align the slots with the first hook 2111 and the second hook 2112, and the installation is more convenient.
[0290] Specifically, the first hook 2111 includes a connecting portion and a hook portion arranged on the connecting portion. The hook portion is in the shape of a hook and is used for being connected in the slot. The connecting portion is provided with at least one waist-shaped hole extending in the horizontal direction and at least one waist-shaped hole extending in the vertical direction. The door panel 21 is provided with a fixed hole corresponding to the first hook 2111. The door panel 21 and the first hook 2111 are fixedly connected through the fixed connecting piece penetrating the waist-shaped hole and the fixed hole. By adjusting the position of the fixed connecting piece in the waist-shaped hole, the position of the first hook 2111 can be finely adjusted, which facilitates the installation of the door panel 21 and the fine adjustment of the position and the angle of the door panel 21.
[0291] It can be understood that the second hook 2112 is similar in structure to the first hook 2111, which will not be described here again.
[0292] In an embodiment of the present application, the door body assembly and the cabinet 1 are arranged in the installation space formed between the first cabinet body and the second cabinet body. During the opening or closing of the cabinet door 2, the sliding mechanism is configured to drive the door panel 21 to move a preset distance on the cabinet door 2, so that the door panel 21 avoids the side walls of the first cabinet body and the second cabinet body.
[0293] In the present embodiment, the cabinet 1 is arranged between the first cabinet body and the second cabinet body. It can be understood that the material and the color of the door panel 21 can be designed to be similar or the same as the material and the color of the outer wall of the cabinet body. When the cabinet door 2 is closed, the door panel 21 is flush with the outer walls of the first cabinet body and the second cabinet body on both sides, so that the door panel 21 and the outer wall of the cabinet body can be visually consistent and have a small gap, and are more beautiful.
[0294] When the cabinet door 2 is opened outwardly, the sliding mechanism drives the door panel 21 to slide a preset distance away from the first hinge 4 to avoid interference between the door panel 21 and the cabinet wall near the first hinge 4, so that the cabinet door 2 cannot be opened to a larger angle. When the cabinet door 2 is closed, the sliding mechanism drives the door panel 21 to slide a preset distance towards the first hinge 4 to avoid interference between the door panel 21 and the cabinet wall away from the first hinge 4, so that the cabinet door 2 cannot be completely closed to affect the function of the cabinet 1, and when the cabinet door 2 is completely closed, the door panel 21 can return to the flush state with the cabinet body. By designing a reasonable preset distance, interference between the door panel 21 and the cabinet wall on both sides can be avoided when the door panel 21 slides relative to the cabinet door 2.
[0295] In another embodiment of the present application, the door body assembly and the cabinet 1 are arranged in a cabinet body; during opening or closing of the cabinet door 2, the sliding mechanism is configured to drive the door panel 21 to move a preset distance on the cabinet door 2 to avoid the door panel 21 from interfering with the side wall of the cabinet body.
[0296] In this embodiment, the cabinet 1 is arranged in a single cabinet body, and it can be understood that the material and color of the door panel 21 can be designed to be similar or identical to the material and color of the outer wall of the cabinet body. When the cabinet door 2 is closed, the door panel 21 is flush with the outer wall of the cabinet body, so that the door panel 21 and the outer wall of the cabinet body can be visually consistent and have a small gap, and are more beautiful.
[0297] When the cabinet door 2 is opened outwardly, the sliding mechanism drives the door panel 21 to slide a preset distance away from the first hinge 4 to avoid interference between the door panel 21 and the cabinet wall near the first hinge 4, so that the cabinet door 2 cannot be opened to a larger angle. When the cabinet door 2 is closed, the sliding mechanism drives the door panel 21 to slide a preset distance towards the first hinge 4 to avoid interference between the door panel 21 and the cabinet wall away from the first hinge 4, so that the cabinet door 2 cannot be completely closed to affect the function of the cabinet 1, and when the cabinet door 2 is completely closed, the door panel 21 can return to the flush state with the cabinet body. By designing a reasonable preset distance, interference between the door panel 21 and the cabinet wall on both sides can be avoided when the door panel 21 slides relative to the cabinet door 2.
[0298] In another embodiment of the present application, as shown in Figure 1 and Figure 2 a refrigeration device is provided, comprising a cabinet 1 and a door body assembly as provided in any of the above embodiments. The cabinet 1 forms a storage space, and the cabinet door 2 is rotatably connected to the cabinet 1 and is adapted to open or close the storage space.
[0299] In this embodiment, the door body assembly comprises a cabinet door 2, a door panel 21 and a sliding mechanism. The sliding mechanism is arranged on the cabinet door 2 and is configured to drive the door panel 21 to move relative to the width direction of the cabinet door 2 during opening or closing of the cabinet door 2.
[0300] When the refrigeration device is in an embedded type and arranged in a recessed space or arranged between two cabinet bodies, the door panel 21 can be arranged flush with the side wall of the recess or the cabinet bodies on both sides to reduce the gap between the refrigeration device and the adjacent wall or cabinet body, and the refrigeration device is more beautiful.
[0301] Meanwhile, when the cabinet door 2 rotates, the sliding mechanism can drive the door panel 21 to move relative to the cabinet door 2 during the rotation of the cabinet door 2 to move away from the wall or cabinet body on the side of the cabinet 1 as far as possible to avoid the wall or cabinet body blocking the door panel 21 and affecting the rotation of the cabinet door 2, so that the cabinet door 2 cannot be normally opened or closed.
[0302] The combination of the cabinet door 2 and the door panel 21 enables the refrigeration device to avoid the interference between the door panel 21 and the surrounding objects during opening and closing, greatly improving the convenience of use. In particular, in a narrow kitchen environment, the design advantage is more obvious. In addition, the sliding mechanism enables the door panel 21 to move smoothly during opening and closing, improving the service life and stability of the refrigerator.
[0303] It can be understood that the door body assembly has the beneficial effects of the above embodiments, and the refrigeration device also has the beneficial effects of the above embodiments, and the specific embodiments can refer to the above embodiments, which will not be described herein.
[0304] Optionally, the cabinet 1 can have one or more storage spaces, and each storage space is provided with a door body assembly. It can be understood that the plurality of storage spaces can be arranged in any manner, such as up-down arrangement, left-right arrangement, etc.
[0305] In some embodiments of the present application, as shown in Figure 4 The cabinet 1 forms at least two storage spaces, and the door body assembly is provided with a plurality of door body assemblies, each of which corresponds to one of the storage spaces, so as to drive the door panel 21 to move relative to the corresponding cabinet door 2 during the opening or closing of any cabinet door 2.
[0306] In the present application, the cabinet 1 has at least two storage spaces, and the two storage spaces can be set to different storage environments (different temperatures, humidities, etc.) to meet the storage conditions of different objects. Each storage space is provided with a corresponding door body assembly, and the cabinet door 2 of the corresponding door body assembly can open or close the corresponding storage space, so that the two storage spaces can be independently opened or closed, facilitating the user to store or take out the objects in the storage space. The door panel 21 of each door body assembly can also slide relative to the corresponding cabinet door 2, and the door panel 21 can be flush with the adjacent cabinet body when the cabinet door 2 is closed, or the door panel 21 can avoid the obstacles on both sides when the cabinet door 2 is opened.
[0307] In an embodiment of the present application, as shown inFigure 4 As shown, the cabinet 1 has a first storage space and a second storage space. Correspondingly, the door assembly also includes a first door assembly and a second door assembly. The door 2 of the first door assembly is rotatably connected to the cabinet 1 to open or close the first storage space, and the door 2 of the second door assembly is rotatably connected to the cabinet 1 to open or close the second storage space.
[0308] Furthermore, the first door assembly and the second door assembly are arranged vertically along the height direction of the door 2. The first door assembly also includes a first driven guide rail mechanism 8 and a second driven guide rail mechanism 9, and the second door assembly also includes a first driven guide rail mechanism 8 and a second driven guide rail mechanism 9. The sliding mechanism and the first driven guide rail mechanism 8 of the first door assembly are located at the top of the corresponding door 2, and the second driven guide rail mechanism 9 of the first door assembly is located at the bottom of the corresponding door 2; the sliding mechanism and the first driven guide rail mechanism 8 of the second door assembly are located at the bottom of the corresponding door 2, and the second driven guide rail mechanism 9 of the first door assembly is located at the top of the corresponding door 2.
[0309] Specifically, such as Figure 4 As shown, the box body 1 is provided with a first connection hole 110, and a first hinge 4 is connected to the first connection hole 110 of the box body 1. The box body 1 is rotatably connected to the box door 2 of the first door assembly through the first hinge 4.
[0310] The first storage space and the second storage space are separated by a first beam 120. The first beam 120 is provided with a second connecting hole 121, and the first beam 120 is connected to the second hinge 5 through the second connecting hole 121. The second hinge 5 has two hinge axes distributed vertically, and the two hinge axes are rotatably connected to the box door 2 of the first door assembly and the box door 2 of the second door assembly, respectively.
[0311] The bottom of the second storage space is provided with a second beam 130, which has a third connecting hole 132 and a fourth connecting hole 131. The second beam 130 is rotatably connected to the door 2 of the second door assembly through the third connecting hole 132 and a third hinge 6. The second beam 130 is connected to the sliding mechanism of the second door assembly through the fourth connecting hole 131.
[0312] The top and bottom of the door 2 of the first door assembly are respectively provided with a first end cap 210 and a second end cap 220. The first end cap 210 is rotatably connected to the first hinge 4, and the second end cap 220 is rotatably connected to the hinge shaft of the second hinge 5 located on the upper side, so as to realize that the door 2 of the first door assembly can rotate relative to the box body 1.
[0313] The top and bottom of the box door 2 of the second door body assembly are respectively provided with a third end cover 310 and a fourth end cover 320, the fourth end cover 320 is rotatably connected with the third hinge 6, and the third end cover 310 is rotatably connected with the hinge shaft on the lower side of the second hinge 5, so that the box door 2 of the second door body assembly can rotate relative to the box body 1.
[0314] In an embodiment of the present application, as shown in Figure 4 and Figure 19 , both ends of the first end cover 210 are provided with a first hinge hole 211 rotatably connected with the first hinge 4, and the first end cover 210 can be connected with the first hinge 4 through the first hinge hole 211 at one end thereof. The first end cover 210 is provided with a first mounting groove 213, and the groove wall of the first mounting groove 213 is provided with a first mounting hole 216, and the sliding mechanism is fixed through the first mounting hole 216 and the groove wall of the first mounting groove 213 by bolts. The groove wall of the first mounting groove 213 facing the box body 1 is provided with a first avoiding opening 214 corresponding to the traction mechanism, and the traction mechanism is movably inserted into the first avoiding opening 214 so as to move with the box door 2 to drive the sliding mechanism.
[0315] The first end cover 210 is further provided with a third mounting groove 212, and the first driven guide rail mechanism 8 is mounted in the third mounting groove 212. It can be understood that the positions of the sliding mechanism and the first driven guide rail mechanism 8 can be exchanged according to the hinge position of the box door 2 and the box body 1, and correspondingly, the groove wall of the third mounting groove 212 facing the box body 1 is also provided with a second avoiding opening 215 avoiding the traction mechanism.
[0316] Specifically, the opposite groove walls of the first mounting groove 213 and the third mounting groove 212 are provided with a third groove 218, a fourth groove 219 and a first protruding rib 217 for insertion, so as to be inserted and fixed with the first main decorative cover 13 or the first auxiliary decorative cover 17.
[0317] Specifically, as shown in Figure 23 and Figure 24 , the two side end faces of the first main decorative cover 13 are respectively provided with a first notch 1303 and a second notch 1304 corresponding to the first mounting groove 213 and the third mounting groove 212, so that the sliding mechanism and the first driven guide rail mechanism 8 can extend out of the notch and be connected with the door plate 21. The two ends of the first main decorative cover 13 are provided with a fourth notch 1302 and a fifth notch 1301, so that when the sliding mechanism is mounted in the first mounting groove 213 or the third mounting groove 212, the traction mechanism can swing with the movement of the box door 2. The first main decorative cover 13 is provided with a first clamping groove 1305 corresponding to the first protruding rib 217; the inner side of the first notch 1303 is provided with a first protruding rib 1307 for clamping with the groove wall of the first mounting groove 213; and the inner side of the second notch 1304 is provided with a second protruding rib 1306 for clamping with the groove wall of the third mounting groove 212.
[0318] Correspondingly, the first sub-decorative cover 17 is similar in structure to the first main decorative cover 13, but is not provided with a gap for the sliding mechanism and the first driven rail mechanism 8 to extend out, which will not be described here.
[0319] As shown in Figure 20 , the second mounting groove of the second end cover 220 is provided with a third mounting hole 224 on the inner groove wall, and the first rail fixing seat 221 is mounted in the second mounting groove through the third mounting hole 224. The first rail fixing seat 221 is provided with a second mounting hole 223, and the second driven rail mechanism 9 is mounted on the first rail fixing seat 221 through the second mounting hole 223.
[0320] Specifically, the opposite two side groove walls of the second mounting groove are provided with a second protruding rib 225 and a third protruding rib 227 for insertion, so as to be inserted and fixed with the second main decorative cover 14 or the first sub-decorative cover 17.
[0321] Specifically, in an embodiment of the present application, as shown in Figure 13 , Figure 14 , Figure 26 and Figure 27 , the third connecting block 905 has two, and the second main decorative cover 14 corresponding to the two third connecting blocks 905 of the second driven rail mechanism 9 is provided with two third gaps 1401. A cavity is formed in the second main decorative cover 14 for covering the second end cover 220. The two ends of the cavity are provided with a fourth protruding rib 1403 and a fifth protruding rib 1408, and the bottom of the cavity is provided with a sixth protruding rib 1404 and a seventh protruding rib 1407, which are matched and assembled with the third protruding rib 227 on the second end cover 220. At the same time, the bottom of the cavity is also provided with a second clamping groove 1405 and a third clamping groove 1406 which are matched and inserted with the second protruding rib 225, so as to assemble the second end cover 220 and the second main decorative cover 14 together.
[0322] As shown in Figure 4 , Figure 17 and Figure 18 , the top and bottom of the box door 2 of the second door assembly are respectively provided with a third end cover 310 and a fourth end cover 320. The fourth end cover 320 is rotatably connected with the third hinge 6, and the third end cover 310 is rotatably connected with the hinge shaft of the lower second hinge 5, so as to realize the rotation of the box door 2 of the second door assembly relative to the cabinet 1.
[0323] As shown in Figure 4 , Figure 21 and Figure 22 , the second door assembly further comprises a third main decorative cover 15, a fourth main decorative cover 16, a third sub-decorative cover 19 and a fourth sub-decorative cover 20.
[0324] The third main decorative cover 15 and the third auxiliary decorative cover 19 are used to detachably mount the third end cover 310 at the top of the second door body assembly. It can be understood that the structure of the third main decorative cover 15 is similar to that of the second main decorative cover 14; the structure of the third auxiliary decorative cover 19 is similar to that of the second auxiliary decorative cover 18.
[0325] The fourth main decorative cover 16 and the fourth auxiliary decorative cover 20 are used to detachably mount the fourth end cover 320 at the bottom of the second door body assembly. It can be understood that the structure of the fourth main decorative cover 16 is similar to that of the first main decorative cover 13; the structure of the fourth auxiliary decorative cover 20 is similar to that of the first auxiliary decorative cover 17.
[0326] Specifically, when the door panel 21 of the second door body assembly needs to be installed, the third main decorative cover 15 and the fourth main decorative cover 16 can be respectively installed on the third end cover 310 and the fourth end cover 320; when the door panel 21 does not need to be installed, the third main decorative cover 15 and the fourth main decorative cover 16 can be removed, and the third auxiliary decorative cover 19 and the fourth main decorative cover 16 can be respectively installed on the third end cover 310 and the fourth end cover 320.
[0327] Specifically, as shown in Figure 29 , both ends of the third end cover 310 have a second hinge hole 314 connected with the second hinge 5, and the side of the third end cover 310 away from the cabinet door 2 has a buckle slot 316. The third end cover 310 has a fourth mounting groove, and the second guide rail fixing seat 311 is mounted in the fourth mounting groove. The fourth mounting hole 315 is arranged on the second guide rail fixing seat 311, and the second driven guide rail mechanism 9 of the second door body assembly is mounted on the second guide rail fixing seat 311 through the fourth mounting hole 315. The top plane of the third end cover 310 has a plurality of eighth ribs 313 for inserting the third main decorative cover 15 and the third auxiliary decorative cover 19.
[0328] Correspondingly, as shown in Figure 31 and Figure 32 , the third main decorative cover 15 is provided with two sixth notches 1501 corresponding to the second driven guide rail mechanism 9, and a plurality of fourth clamping grooves 1503 are arranged on the third main decorative cover 15 corresponding to the eighth ribs 313. When the third main decorative cover 15 is clamped with the third end cover 310, the buckle slot 316 of the third end cover 310 is exposed outside, which facilitates the user to put his hand into the buckle slot 316 to open and close the cabinet door 2. The second driven guide rail mechanism 9 can be connected with the door panel 21 through the sixth notches 1501.
[0329] As shown in Figure 33 , the structure of the third auxiliary decorative cover 19 is similar to that of the third main decorative cover 15, but does not need to be provided with a notch structure for the second driven guide rail mechanism 9 to pass through.
[0330] As shown in Figure 30As shown, the fourth end cover 320 is provided with a fifth mounting groove 323, and a fifth mounting hole 325 is arranged on the groove wall of the fifth mounting groove 323. The sliding mechanism is fixed by the fifth mounting hole 325 and the fifth mounting groove 323 through bolts. A third avoiding opening 322 is arranged on the groove wall of the fifth mounting groove 323 towards the cabinet 1, and the traction mechanism is movably arranged in the third avoiding opening 322 so as to move with the cabinet door 2 to pull the sliding mechanism.
[0331] Meanwhile, the fourth end cover 320 is also provided with a sixth mounting groove 324, and the second driven guide rail mechanism 9 is mounted in the sixth mounting groove 324. It can be understood that the positions of the sliding mechanism and the first driven guide rail mechanism 8 can be exchanged according to the hinge position of the cabinet door 2 and the cabinet 1, and correspondingly, a fourth avoiding opening 321 is also arranged on the groove wall of the sixth mounting groove 324 towards the cabinet 1 to avoid the traction mechanism. The fourth end cover 320 is provided with a ninth protruding rib 327 for cooperating with the fourth main decorative cover 16 and the fourth auxiliary decorative cover 20.
[0332] Correspondingly, as shown in Figure 34 and Figure 35 , the two side end faces of the fourth main decorative cover 16 are respectively provided with a seventh notch 1601 and an eighth notch 1602 corresponding to the fifth mounting groove 323 and the sixth mounting groove 324, so that the sliding mechanism and the first driven guide rail mechanism 8 can extend out of the notches and be connected with the door plate 21. The two ends of the fourth main decorative cover 16 are provided with a ninth notch 1604 and a tenth notch 1603, so that when the sliding mechanism is mounted in the fifth mounting groove 323 or the sixth mounting groove 324, the traction mechanism can swing with the movement of the cabinet door 2. The fourth main decorative cover 16 is provided with a fifth clamping groove 1606 and a sixth clamping groove 1605 corresponding to the ninth protruding rib 327.
[0333] As shown in Figure 36 , the fourth auxiliary decorative cover 20 is similar in structure to the fourth main decorative cover 16, but does not need to be provided with a notch structure for the sliding mechanism and the first driven guide rail mechanism 8 to pass through.
[0334] Finally, it should be noted that the above embodiments are only used to illustrate the present application, and are not limiting to the present application. Although the present application has been described in detail with reference to the embodiments, it should be understood by those skilled in the art that various combinations, modifications or equivalent replacements of the technical solutions of the present application do not deviate from the spirit and scope of the present application, and should be covered in the scope of the claims of the present application.
Claims
1. A door assembly for an embedded refrigeration device, characterized in that, include: The cabinet door is rotatably connected to the refrigeration cabinet, which is used to be embedded into the receiving space formed by the mounting body; A door panel is movably installed on the box door, and the door panel can move along the width direction of the box door; The door panel is adapted to move relative to the door towards the opening side of the door during the opening process of the cabinet door; The door panel has a first interference position and a second interference position. The first interference position is located at the inner corner of the door panel on the opening side, and the second interference position is located at the outer corner of the door panel on the hinge side. When the cabinet door is closed, the distance between the end face of the door panel on the opening side and the corresponding side wall of the accommodating space is: , The distance γ that the first interference bit moves along the width direction of the receiving space before leaving the receiving space; spacing satisfy: ; Where, γ max For λ is zero and for The value of γ corresponding to the time, and λ is the vertical distance that the second interference position of the door panel moves toward the side wall of the corresponding accommodating space. The angle of rotation during the opening of the cabinet door, when the first interference position leaves the accommodating space. for , γ and Positive correlation The distance the door panel moves relative to the opening side of the door during the opening process.
2. The door assembly of the embedded refrigeration device according to claim 1, characterized in that, and , , and the maximum before the first interference position leaves the accommodating space Positive correlation, among which, The vertical distance from the hinge axis of the door to the inner surface of the door panel. The vertical distance from the hinge axis of the door to the hinge side end face of the door panel is denoted as . The thickness of the door panel is given. This refers to the distance the door panel moves relative to the door during the opening process.
3. The door assembly of the embedded refrigeration device according to claim 2, characterized in that, , in, , The vertical distance from the hinge axis of the door to the end face of the door panel on the opening side; 'a' is the length of the side where the first interference position and the hinge axis of the door are located, and α is the angle between the side where the first interference position and the hinge axis of the door are located and the horizontal line.
4. The door assembly of the embedded refrigeration device according to claim 3, characterized in that, The thickness ranges from 5mm to 50mm. The range is 240mm-700mm. (300mm to 700mm) - , The diameter ranges from 10mm to 25mm, and δ1 ranges from 0.5mm to 6mm.
5. The door assembly of the embedded refrigeration device according to any one of claims 1 to 4, characterized in that, When the door is closed, the distance between the hinged end face of the door panel and the corresponding side wall of the accommodating space is: , The distance λ is greater than the distance λ that the second interference bit moves along the width direction of the receiving space before leaving the receiving space.
6. The door assembly of the embedded refrigeration device according to claim 5, characterized in that, spacing satisfy: ; λmax is zero and γ is zero for The corresponding value of λ, λ and Negative correlation.
7. The door assembly of the embedded refrigeration device according to claim 5, characterized in that, and , as well as Positive correlation The maximum value before the first interference position leaves the containment space Negative correlation, among which, The vertical distance from the hinge axis of the door to the inner surface of the door panel. The vertical distance from the hinge axis of the door to the hinge side end face of the door panel is denoted as . The thickness of the door panel is given. This refers to the distance the door panel moves relative to the door during the opening process.
8. The door assembly of the embedded refrigeration device according to claim 7, characterized in that, spacing satisfy: , in, , b is the length of the side where the second interference position and the hinge axis of the door are located, and β is the angle between the side where the second interference position and the hinge axis of the door are located and the horizontal line.
9. The door assembly of the embedded refrigeration device according to claim 8, characterized in that, The thickness ranges from 5mm to 50mm. The range is 240mm-700mm. (300mm to 700mm) - , The thickness ranges from 10mm to 25mm. The thickness ranges from 0.5mm to 6mm.
10. The door assembly of the embedded refrigeration device according to any one of claims 1 to 4, characterized in that, The hinge axis is a movable axis.
11. An embedded cooling device, characterized in that, include: The refrigeration enclosure is designed to be embedded into a storage space. The door assembly according to any one of claims 1 to 10.
Citation Information
Patent Citations
Refrigerator
CN112282544A
Door assembly and refrigeration equipment
CN113154774A