REFRIGERATOR
20230266046 · 2023-08-24
Inventors
Cpc classification
F25D17/062
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25D2317/0653
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
A refrigerator is proposed. The refrigerator may include a cabinet having a storage compartment (F1, F2), and a barrier (30) dividing the storage compartment (F1, F2) into multiple spaces. In addition, a grille fan assembly 50 may be erected at the rear of the storage compartment (F1), and a blower fan (80) configured to blow cold air may be mounted to the grille fan assembly 50. The grille fan assembly (50) may be provided with the control knob (90), and the control knob (90) may be rotated relative to a rotating shaft configured is the same direction as a rotating shaft of the blower fan (80) such that the amount of the blown air can be controlled.
Claims
1. A refrigerator comprising: a cabinet defining a storage compartment; a barrier dividing the storage compartment into multiple spaces and having a communication hole defined at an upper surface of the barrier, the communication hole being disposed between the multiple spaces and configured to allow cold air to be transmitted to the multiple spaces; a grille fan assembly provided at a rear of the storage compartment and having (i) a discharge hole defined at a lower surface of the grille fan assembly such that the discharge hole is coupled to the communication hole, and (ii) a blower fan provided at the grille fan assembly and configured to blow cold air into the storage compartment; and a control knob provided at the grille fan assembly and configured to rotate relative to a rotating shaft thereof provided in the same direction as a direction of a rotating shaft of the blower fan, the control knob configured to control an amount of cold air blown into the discharge hole based on a rotation angle of the control knob, wherein a plurality of inclined parts are defined at the upper surface of the barrier and at the lower surface of the grille fan assembly.
2. The refrigerator of claim 1, wherein the plurality of inclined parts comprise: a first inclined part disposed at the upper surface of the barrier and defined to surround an edge of the communication hole, and a second inclined part disposed at the lower surface of the grille fan assembly and defined to surround an edge of the discharge hole.
3. The refrigerator of claim 2, wherein a height of each of the first inclined part and the second inclined part increases, as the first inclined part and the second inclined part extend toward a rear of the cabinet, and the first inclined part and the second inclined part have the same inclination angle.
4. The refrigerator of claim 2, wherein a sealing foam is disposed at at least one of the first inclined part and the second inclined part, wherein the sealing foam provides sealing at a part at which the communication hole and the discharge hole are coupled to each other, and wherein the first inclined part and the second inclined part are disposed such that the sealing foam between the first inclined part and the second inclined part is compressed.
5. The refrigerator of claim 2, wherein a holding groove is disposed at an upper surface of the storage compartment facing the communication hole, wherein an upper end of the grille fan assembly is inserted into the holding groove, wherein the first inclined part and the second inclined part are disposed such that a distance between an upper surface of the grille fan assembly and the second inclined part is greater than or equal to a distance between the holding groove and the first inclined part.
6. The refrigerator of claim 2, wherein a mounting part in which the communication hole is defined protrudes from the upper surface of the barrier, and the first inclined part is disposed at an upper surface of the mounting part.
7. The refrigerator of claim 2, wherein a pair of guide ribs protrudes from the lower surface of the grille fan assembly adjacent to the second inclined part and surrounds a periphery of the first inclined part.
8. The refrigerator of claim 6, wherein the barrier comprises: a barrier body having a recovery duct disposed therein; and a barrier cover coupled to an upper part of the barrier body and shielding at least a portion of the recovery duct, wherein the mounting part protrudes from an upper surface of the barrier cover.
9. The refrigerator of claim 8, wherein the grille fan assembly comprises a lower plate disposed under the control knob, the discharge hole is defined through the lower plate, and the second inclined part is disposed at a surface of the lower plate facing the upper surface of the barrier cover.
10. The refrigerator of claim 9, wherein the lower plate is disposed to be spaced apart from each of opposite side parts of the grille fan assembly and is provided at a center portion of a lower part of the grille fan assembly.
11. The refrigerator of claim 1, wherein the control knob comprises: a knob body having a cylindrical shape, wherein at least a portion of the knob body protrudes from the grille fan assembly toward a front of the storage compartment; an angle adjustment part protruding from an outer circumferential surface of the knob body and configured to interfere with an adjustment jaw of the grille fan assembly; and an opening/closing blade coupled with the knob body by a connection arm and having a diameter larger than that of the knob body, wherein the control knob is disposed in a flow path for a refrigerating compartment provided inside the grille fan assembly, and the opening/closing blade is configured to open and close an opening/closing entrance of the flow path for the refrigerating compartment.
12. The refrigerator of claim 11, wherein a surface of the opening/closing blade has a curved shape and is disposed to be spaced apart from an inner surface of the opening/closing entrance of the flow path for the refrigerating compartment, and an angle between opposite ends of the opening/closing blade relative to a center of the control knob is larger than an angle between opposite ends of the opening/closing entrance of the flow path for the refrigerating compartment relative to the center of the control knob.
13. The refrigerator of claim 11, wherein the opening/closing blade has an open part which is recessed in a portion of the opening/closing blade.
14. The refrigerator of claim 13, wherein the open part comprises a plurality of open parts disposed along a rotational direction of the opening/closing blade, the plurality of open parts having different sizes from each other.
15. The refrigerator of claim 11, wherein a rotating boss protrudes from the knob body and is inserted rotatably into a fixed boss of the grille fan assembly, and a support leg protrudes from the knob body and is disposed to be in contact with an inner surface of the grille fan assembly.
16. The refrigerator of claim 15, wherein the support leg comprises a plurality of support legs disposed along an edge of a lower surface of the knob body, wherein an end portion of the support leg facing the inner surface of the grille fan assembly has a thickness that gradually decreases toward the inner surface of the grille fan assembly, and a protrusion part protrudes from the angle adjustment part and is disposed to be in contact with an opposing inner surface facing the inner surface of the grille fan assembly.
17. The refrigerator of claim 11, wherein the angle adjustment part is provided continuously along an outer circumferential surface of the knob body, and a control recess is recessed on a surface of the angle adjustment part such that the adjustment jaw is inserted into the control recess.
18. The refrigerator of claim 11, wherein a stopper protrudes from an inner surface of the grille fan assembly and is configured to interfere with a side surface of the connection arm to limit a maximum rotation angle of the control knob, the stopper comprising a first stopper and a second stopper disposed to be spaced apart from each other such that the first stopper and the second stopper are configured to limit maximum and minimum opening angles of the control knob, respectively.
19. The refrigerator of claim 18, wherein the stopper is defined to have a length that is shorter than a distance by which the angle adjustment part is spaced apart from the inner surface of the grille fan assembly, and wherein the length is longer than a distance by which the connection arm is spaced apart from the inner surface of the grille fan assembly.
20. A refrigerator comprising: a cabinet defining a storage compartment; a barrier dividing the storage compartment into multiple spaces and having a communication hole defined at an upper surface of the barrier, the communication hole being disposed between the multiple spaces and configured to allow cold air to be transmitted into the multiple spaces; and a grille fan assembly provided at a rear of the storage compartment and having (i) a discharge hole defined at a lower surface of the grille fan assembly such that the discharge hole is coupled to the communication hole, and (ii) a blower fan provided at the grille fan assembly and configured to blow cold air into the storage compartment, wherein a first inclined part is disposed at the upper surface of the barrier and defined to surround an edge of the communication hole, and a second inclined part is disposed at the lower surface of the grille fan assembly and defined to surround an edge of the discharge hole, wherein the first inclined part and the second inclined part are disposed to be in close contact with each other.
Description
DESCRIPTION OF DRAWING
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MODE FOR INVENTION
[0068] Hereinafter, an embodiment of the present disclosure will be described in detail with reference to exemplary drawings. In giving reference numerals to components in each drawing, it should be noted that the same components are given the same reference numerals as much as possible although they are illustrated in different drawings. In addition, in describing the embodiment of the present disclosure, when it is determined that a detailed description of a related known configuration or function interferes with the understanding of the embodiment of the present disclosure, a detailed description thereof will be omitted.
[0069] The present disclosure relates to a refrigerator. In the refrigerator of the present disclosure, cold air generated in an evaporator installed at the rear side of a freezer compartment F1 may be supplied into the freezer compartment F1. In addition, some of the cold air may be transmitted to a refrigerating compartment F2 disposed under the freezer compartment F1. The transmission of cold air between the freezer compartment F1 and the refrigerating compartment F2 may be performed by a grille fan assembly 50. The grille fan assembly 50 may discharge sonic of cold air generated by the evaporator toward the refrigerating compartment F2.
[0070] In this case, the grille fan assembly 50 may be erected on the upper part of the barrier 30. The barrier 30 may separate the freezer compartment F1 from the refrigerating compartment F2. Sealing foam may be formed at a part at which the grille fan assembly 50 and the barrier 30 are in close contact with each other and may prevent the leakage of cold air. In the refrigerator of the present disclosure, inclined parts A1 and A2 may be formed on the close-contact part between the grille fan assembly 50 and the barrier 30, and thus during the mounting process of the grille fan assembly 50 to the freezer compartment F1, the removal of the sealing foam may be prevented.
[0071] Referring to
[0072] Referring to the structure of the inner casing 10, the freezer compartment F1 may be provided at the upper side of the inner casing 10, and the refrigerating compartment F2 may be provided at the lower side of the freezer compartment F1. The freezer compartment F1 and the refrigerating compartment F2 may be storage compartments separated from each other and may be space capable of storing food. The frame of the refrigerating compartment F2 may be constituted by a lower casing 11, and the frame of the freezer compartment F1 may be constituted by an upper casing 13. Of course, alternatively, the freezer compartment F1 may be located at the lower side and the refrigerating compartment F2 may be located at the upper side.
[0073] The freezer compartment F1 and the refrigeration compartment F2 may already be partitioned from each other by a bottom surface 14 of the freezer compartment F1, but the bottom surface 14 of the freezer compartment F1 may be a structure that is open downward due to a path including a duct inlet 16. Accordingly, the freezer compartment F1 and the refrigerating compartment F2 may be substantially separated from each other by the barrier 30 to be described later.
[0074] Referring to the freezer compartment F1, the bottom surface 14 of the freezer compartment F1 may have a structure of a flat plate, and multiple rib structures 15 may protrude on the bottom surface 14 of the freezer compartment F1. The duct inlet 16 may be formed in the bottom surface 14 of the freezer compartment F1 close to an entrance thereof. The duct inlet 16 may be an entrance to a path through which cold air supplied to the freezer compartment F1 is recovered, and the cold air of the freezer compartment F1 may be introduced into the barrier 30 through the duct inlet 16, and may be recovered back to the evaporator through a recovery duct located in the barrier 30.
[0075] The deepest inner surface of the inner casing 10 may be a rear plate 17 of the inner casing 10. In
[0076] An empty space located between the rear plate 17 and the grille fan assembly 50 may be an evaporation chamber in which the evaporator (not shown) is installed. That is, the inner space of the upper casing 13 may be divided into the freezer compartment F1 located at a front side relative to the grille fan assembly 50, and the evaporation chamber defined between the grille fan assembly 50 and the rear plate 17.
[0077] The inner casing 10 may be coupled to the outer casing to constitute the cabinet, and although not shown, doors may be mounted to the cabinet. The doors are intended to shield the freezer compartment F1 and the refrigerating compartment F2, and may include a door for the freezer compartment F1 and a door for the refrigerating compartment F2 installed independently of each other.
[0078] The barrier 30 may be disposed between the upper casing 13 and the lower casing 11 of the inner casing 10. The barrier 30 may function to separate the freezer compartment F1 from the refrigerating compartment F2. Furthermore, the barrier 30 may function (i) to recover the cold air of the freezer compartment F1 and to transmit the cold air to the evaporation chamber, (ii) to transmit some of cold air discharged by the grille fan assembly 50 after being generated by the evaporator to the refrigerating compartment F2, and (iii) to recover the cold air of the refrigerating compartment F2 and to transmit the cold air to the evaporation chamber.
[0079] As illustrated in
[0080] A barrier cover 33 may be disposed on the upper part of the barrier body 31. The barrier cover 33 may have a flat plate structure covering the upper part of the barrier body 31, and may shield at least a portion of the recovery duct. As illustrated in
[0081] A mounting part 34 may protrude on the barrier cover 33. The mounting part 34 may be a part protruding further from the upper part of the barrier cover 33, and in the embodiment, the mounting part 34 may have a shape approximate to a rectangular frame. The mounting part 34 may be the most protruding part on the upper surface of the barrier cover 33, and may be the most protruding part even on the bottom surface 14 of the freezer compartment F1.
[0082] More specifically, as illustrated in
[0083] In addition, a communication hole 35 may be formed at the center of the mounting part 34. The communication hole 35 may be a part connected to a discharge hole 67 of the grille fan assembly 50, and may be formed vertically through the barrier cover 33.
[0084] The communication hole 35 may be formed not only on the barrier cover 33 but also on the barrier body 31. The communication hole 35 may be formed continuously through the barrier cover 33 and the barrier body 31, and may function to transmit air in a vertical direction. More specifically, cold air discharged from the grille fan assembly 50 may be discharged to the discharge hole 67 of the grille fan assembly 50, and may be transmitted to a lower side through the communication hole 35 in contact with the discharge hole 67. Here, the refrigerating compartment F2 may be located at the lower side.
[0085] A first inclined part A1 may be formed on the periphery of the communication hole 35. The first inclined part A1 may be formed on the periphery of the communication hole 35 which is the edge of the communication hole 35, and in the embodiment, the first inclined part A1 may be formed on the upper surface of the mounting part 34. The first inclined part A1 may be configured to have height increasing gradually toward the rear of the inner casing 10 directed to the rear plate 17. That is, the first inclined part A1 may have height increasing gradually rearward toward the rear plate 17 from a front side which is the entrance of the freezer compartment F1. The first inclined part A1 may have a flat or curved shape.
[0086] The first inclined part A1 may correspond to a second inclined part A2 of the grille fan assembly 50 to be described later. When the grille fan assembly 50 is mounted to the inner casing 10, the second inclined part A2 of the grille fan assembly 50 may climb on the first inclined part A1 such that the first inclined part A1 and the second inclined part A2 are in close contact with each other. Such a structure will be described again below.
[0087] Although not shown, the sealing foam may be formed on the first inclined part A1. The sealing foam may be formed by surrounding the edge of the first inclined part A1. The sealing foam may function to prevent cold air from leaking to the surrounding area of the communication hole 35 located at the center of the first inclined part A1. The sealing foam may be made of a material such as rubber, silicone or urethane foam that can be elastically transformed to some extent.
[0088] The sealing foam may be located between the first inclined part A1 and the second inclined part A2 of the grille fan assembly 50 to be described later. The sealing foam may be located between the communication hole 35 of the center of the first inclined part A1 and the discharge hole 67 of the center of the second inclined part A2, and may have opposite surfaces thereof compressed by the first inclined part A1 and the second inclined part A2, respectively, so the sealing foam may perform a sealing function.
[0089] A drain tray 37 may be disposed on the upper part of the barrier 30. The drain tray 37 may be disposed at the rear of the barrier cover 33 and may be considered as a part of the barrier cover 33. The evaporator may be disposed above the drain tray 37, and defrost water generated at the evaporator may be collected in the drain tray 37 and then may be discharged downward. A heater may be mounted to the drain tray 37 so as to melt frost generated on the evaporator. Reference numeral 38 is a flow path cover and may function to allow cold air recovered by the recovery duct to be transmitted back to the evaporator.
[0090] Next, as for the grille fan assembly 50, the grille fan assembly 50 may be disposed at a rear side of the inside of the upper casing 13. The grille fan assembly 50 may be disposed to be spaced apart from the rear plate 17, and thus the evaporation chamber may be formed between the rear plate 17 and the grille fan assembly 50. The evaporator may be provided in the evaporation chamber.
[0091] Referring to
[0092] In the embodiment, the grille fan assembly 50 may be assembled from the front of the upper casing 13 to the rear thereof. In the assembly process of the grille fan assembly 50, the grille fan assembly 50 may interfere with the inner surface of the upper casing 13, that is, the inner surface of the freezer compartment F1. When the grille fan assembly 50 interferes with the inner surface of the upper casing 13, the grille fan assembly 50 may be damaged or the sealing foam may be removed. This may be prevented by the second inclined part A2 of the grille fan assembly 50 in cooperation with the first inclined part A1.
[0093] Referring to
[0094] The discharge hole 67 may be formed in the center of the second inclined part A2. The discharge hole 67 may be formed vertically through the second inclined part A2, and may be connected with the communication hole 35 by being in contact therewith. The discharge hole 67 may be open toward a storage compartment which is the refrigerating compartment F2, and cold air discharged by a blower fan 80 of the grille fan assembly 50 may be transmitted to the storage compartment.
[0095] The second inclined part A1 may extend by having a predetermined angle. More specifically, relative to a front-to-rear direction which is a direction orthogonal to a vertical direction in which the grille fan assembly 50 erects in the upper casing 13, the second inclined part A1 may be configured to have height increasing gradually toward the rear of the upper casing 13. Here, the front-to-rear direction may be the same as the depth direction of the freezer compartment F1. The second inclined part A2 may have a flat or curved shape.
[0096] The second inclined part A1 may correspond to the first inclined part A1 formed on the periphery of the communication hole 35. While the grille fan assembly 50 is mounted to the upper casing 13, the second inclined part A2 may move along the first inclined part A1. Since each of the first inclined part A1 and the second inclined part A2 may have the structure of a corresponding inclined surface, the second inclined part A2 may naturally move along the first inclined part A1.
[0097] More specifically, the grille fan assembly 50 may be mounted to the upper casing 13 by rotating the lower end of the grille fan assembly 50 in a state in which the upper end of the grille fan assembly 50 is first fitted into a holding groove 19 (see
[0098] Without the first inclined part A1 and the second inclined part A2, in the process in which the lower end of the grille fan assembly 50 is rotating, the lower surface of the lower end of the grille fan assembly 50 may interfere with the bottom surface of the upper casing 13 or the upper surface of the barrier 30. Additionally, due to such interference, the sealing foam may be removed or may move away from an initial position. However, in the embodiment, this may be prevented by the first inclined part A1 and the second inclined part A2.
[0099] Referring to
[0100] In the embodiment, each of the first inclined part A1 and the second inclined part A2 may be configured to have an inclination angle of 5° to 30°. When the inclination angle is 5° or less, the grille fan assembly 50 may interfere with the upper casing 13 during the rotation of the grille fan assembly 50, and when the inclination angle is 30° or more, the lower end of the grille fan assembly 50 may not be held on the upper surface of the first inclined part A1, that is, on the upper surface of sealing foam and may slide forward and thus may have an increased probability of being removed from the upper surface.
[0101] Referring to
[0102] Since the first inclined part A1 and the second inclined part A2 have inclining shapes, the communication hole 35 and the discharge hole 67 may also be configured in inclining directions. Since the communication hole 35 and the discharge hole 67 are configured in the inclining directions, the area of the flow path entrance may increase compared to a flow path entrance having a planar shape. Accordingly, the amount of cold air transmitted to the refrigerating compartment F2 may further increase and the flow of the cold air may further be facilitated.
[0103] In the embodiment, when the grille fan assembly 50 is mounted to the upper casing 13, most of the lower surface of the grille fan assembly 50 may be in close contact with the barrier cover 33 alone. Particularly, the grille fan assembly 50 may be mounted to the upper casing 13 in such a manner that the second inclined part A2 constituting the lower surface of the grille fan assembly 50 moves along the sealing foam formed on the first inclined part A1 of the barrier cover 33 and presses the sealing foam.
[0104] Next, the grille fan assembly 50 will be described in detail with reference to
[0105]
[0106] A portion of a control knob 90 may be exposed to the front surface of the grille fan assembly 50. A knob opening part 72 may be formed at the center of the second housing 70 such that a portion of the control knob 90 protrudes through the knob opening part. In the embodiment, a knob body 91 of the control knob 90 may have a cylindrical shape. As illustrated in the drawings, the dial-shaped knob body 91 may protrude forward. A user may grip the exposed part of the knob body 91 and may rotate the knob body 91 clockwise or counterclockwise. Accordingly, the amount of cold air discharged into the freezer compartment F1 may be controlled.
[0107]
[0108] The blower fan 80 may be configured as a module provided with a fan and a motor. When the blower fan 80 operates, cold air may be introduced from the evaporator. Additionally, the introduced cold air may move along a flow path for the freezer compartment (a freezer flow path 63a) and the flow path for the refrigerating compartment (a refrigeration flow path 64a1 and 64a2) which are provided in the first housing 60, and may be supplied to the freezer compartment F1 and the refrigerating compartment F2.
[0109] Referring to
[0110] As illustrated in
[0111] In the embodiment, the mounting flange 85 may include a total of three mounting flanges provided on the mounting body 81, and the mounting boss 61a may also include a total of three mounting bosses provided on the first housing 60. As illustrated in
[0112] In the embodiment, the mounting flange 85 at the left side may be disposed above the entrance of the freezer flow path 63a located at the left side, and the two mounting flanges 85 at the right side may be disposed to be spaced apart from the entrance of the freezer flow path 63a located at the right side such that the two mounting flanges 85 do not interfere with the entrance of the freezer flow path 63a. The number and positions of the mounting flanges 85 and the mounting bosses 61a may be changed.
[0113] A fence part 61 may be provided on the edge of the first housing 60. The fence part 61 may have a shape bent from the edge of the first housing 60 forward toward the second housing 70. The fence part 61 may be formed along the edge of the first housing 60, and the flow space 62 which is empty space may be defined inside the fence part 61.
[0114] The flow space 62 of the first housing 60 may be provided with flow guides 63 and 64. The flow guides 63 and 64 may protrude on the front surface of the first housing 60 (or on the rear surface 71a of the second housing 70). The flow guides 63 and 64 may be a part at which the cold air outlets 74a, 74b, and 74c of the second housing 70 are formed, and may include a flow guide 63 for the freezer compartment guiding the flow of cold air to the freezer compartment, and a flow guide 64 for the refrigerating compartment guiding the flow of cold air to the refrigerating compartment F2.
[0115] As illustrated in
[0116] The refrigeration flow path 64a1 and 64a2 which is the flow path for the refrigerating compartment may be formed inside the flow guide 64 for the refrigerating compartment. Furthermore, the refrigeration flow path 64a1 and 64a2 may include an upper flow path 64a1 configured to receive cold air blown by the blower fan 80, and a lower flow path 64a2 having a width increasing while extending downward from the upper flow path 64a1. In addition, the opening/closing entrance 64a′ may be disposed between the upper flow path 64a1 and the lower flow path 64a2.
[0117] Here, the upper flow path 64a1 may be located under the blower fan 80. Accordingly, in cold air discharged in a spiral direction due to the rotation of the blower fan 80, cold air discharged toward the lower side of the blower fan 80 may flow to the upper flow path 64a1 of the flow guide 64 for the refrigerating compartment. In the embodiment, the entrance of the upper flow path 64a1 may be located directly under the blower fan 60. Alternatively, the entrance of the upper flow path 64a1 may not be disposed directly under the blower fan 80, but may be disposed at a position skewed to the left or right side from a position directly under the blower fan 80.
[0118] Meanwhile, the upper flow path 64a1 of the flow guide 64 for the refrigerating compartment may be configured to have a width decreasing gradually toward the opening/closing entrance 64a′ of the refrigeration flow path 64a1 and 64a2. Through the structure of such an upper flow path 64a1, cold air blown by the blower fan 80 may be efficiently transmitted to the refrigerating compartment F2.
[0119] In addition, the flow guide 64 for the refrigerating compartment may further include an exit part 65 formed by extending downward from the lower flow path 64a2 and communicating with the refrigerating compartment F2. An exit flow path 65a may be formed inside the exit part 65.
[0120] Furthermore, the lower plate 66 of the first housing 60 may be provided on the lower end portion of the exit part 65. The lower plate 66, together with the exit part 65, may form the exit flow path 65a. Additionally, the discharge hole 67 formed in the lower plate 66 may be connected to the exit flow path 65a, and may allow cold air of the exit flow path 65a to be discharged downward, more specifically, to the refrigerating compartment F2.
[0121] A condensate drain hole 69a may be formed in a part at which the exit flow path 65a is formed. The condensate drain hole 69a may be formed through the first housing 60 in a front-to-rear direction. The condensate drain hole 69a is intended to discharge a condensate flowing along the refrigeration flow path 64a1 and 64a2 to the outside. Referring to
[0122] Water, together with cold air, may flow in the refrigeration flow path 64a1 and 64a2 formed by the flow guide 64 for the refrigerating compartment. Water flowing in the refrigeration flow path 64a1 and 64a2 may not supplied to the refrigerating compartment F2, but may be discharged to the outside of the grille fan assembly 50 by the condensate drain hole 69a, for example, to the drain tray 37.
[0123] The discharge hole 67 may be formed in the lower plate 66. Additionally, the second inclined part A2 described above may be formed on the lower surface of the lower plate 66 by surrounding the periphery of the discharge hole 67. In the embodiment, the entirety of the lower plate 66 may extend to be inclined in a front-to-rear direction, so the lower plate 66 may be the second inclined part A2. Alternatively, as the thickness of the lower plate changes in the front-to-rear direction, the second inclined part A2 may be formed on the lower surface of the lower plate 66.
[0124] In this case, the lower plate 66 may be configured individually by being separated from the opposite side surfaces of the first housing 60. That is, a predetermined empty space may be defined between the lower plate 66 and each of the opposite side surfaces of the first housing 60, and the lower plate 66 may have a kind of cantilever structure by protruding from the lower end of the first housing 60. In this case, the lower plate 66 may be elastically transformed more freely. Accordingly, when mounting the grille fan assembly 50 to the upper casing 13, the lower plate 66 may be elastically transformed more efficiently while being guided by the first inclined part A1.
[0125] Referring to
[0126] As illustrated in
[0127] The adjustment jaw G may have a cantilever structure protruding from the inner surface of the first housing 60, and may have a cylindrical shape. Alternatively, the adjustment jaw G may protrude from the rear surface 71a of the second housing 70.
[0128] A stopper ST1 and ST2 may protrude on the inner surface of the first housing 60. The stopper ST1 and ST2 may be intended to limit the maximum rotation angle of the control knob 90, and may interfere with the control knob 90. The stopper ST1 and ST2 may have a cylindrical shape protruding from the inner surface of the first housing 60 like the adjustment jaw G.
[0129] In the embodiment, the stopper ST1 and ST2 may interfere with the side surface of the connection arm 94 of the control knob 90. When the stopper ST1 and ST2 interferes with the side surface of the connection arm 94, the maximum rotation angle of the control knob 90 may be limited.
[0130] The stopper ST1 and ST2 may be composed of a pair of stoppers. In the embodiment, the stopper ST1 and ST2 may be composed of a first stopper ST1 and a second stopper ST2 spaced apart from each other such that the first stopper ST1 and the second stopper ST2 limit the maximum and minimum opening angles of the control knob 90, respectively. For reference, in
[0131] In the embodiment, the stopper ST1 and ST2 may have a protruding length shorter than the protruding length of the adjustment jaw G. More specifically, the stopper ST1 and ST2 may be configured to be shorter than a distance by which an angle adjustment part 92 of the control knob 90 to be described later is spaced apart from the inner surface of the first housing 60, so the stopper ST1 and ST2 may not interfere with the angle adjustment part 92. In addition, the stopper ST1 and ST2 may be configured to be longer than a distance by which the connection arm 94 of the control knob 90 is spaced apart from the inner surface of the first housing 60, so the stopper ST1 and ST2 may interfere with the connection arm 94.
[0132] Looking at the second housing 70 with reference to
[0133] A first coupling end part 71 may protrude on the upper end of the second housing 70. The first coupling end part 71 may be in close contact with the inside of the fence part 61 provided on the upper end of the first housing 60. Furthermore, a second coupling end part 73 may protrude on the lower end of the second housing 70. The second coupling end part 73 may fill empty space defined between each of the opposite side surfaces of the first housing 60 and the lower plate 66.
[0134] All of the flow guide 63 for the freezer compartment and the flow guide 64 for the refrigerating compartment described above may be formed in the first housing 60, but alternatively, at least one of the flow guide 63 for the freezer compartment and the flow guide 64 for the refrigerating compartment may protrude from the rear surface 71a of the second housing 70.
[0135] As illustrated in
[0136] The cold air outlet 74a, and the cold air outlets 74b and 74c may be formed at the upper part and middle part, respectively, of the second housing 70. In the embodiment, the upper cold air outlet 74a may be formed in the upper part of the second housing 70, and the left cold air outlet 74b and the right cold air outlet 74c may be formed at the middle part thereof and at the left and right sides, respectively, relative to the control knob 90.
[0137] A lower jaw 78 may protrude on the lower end of the second housing 70. The lower jaw 78 may protrude toward the entrance of the freezer compartment F1, and may be formed continuously along the lower end of the second housing 70. The lower jaw 78 may increase the width of the exit flow path 65a, and may allow the position of the discharge hole 67 to be biased toward the entrance of the freezer compartment F1. Referring to
[0138] The first housing 60 and the second housing 70 may be coupled to each other by various methods such as a fastener (not shown), laser welding or adhesive. In the embodiment, a fastening protrusion part 79 may be formed on the second housing 70, and a fastening hole 79′ may be formed in the center of the fastening protrusion part 79.
[0139] In addition, a fastening boss P may protrude on the first housing 60 such that the fastening boss P is located at a position facing the fastening protrusion part 79. The fastening boss P may be formed at a position away from the freezer flow path 63a and the refrigeration flow path 64a1 and 64a2 such that the fastening boss P does not interfere with the freezer flow path 63a and the refrigeration flow path 64a1 and 64a2.
[0140] In a state in which the fastening protrusion part 79 and the fastening boss P face each other, when the fastener (not shown) passes through the fastening hole 79′ and is fastened to the fastening boss P, the first housing 60 and the second housing 70 may be assembled with each other.
[0141] The first housing 60 and the second housing 70 may be coupled to each other by various methods such as a fastener, laser welding, or adhesive. In the embodiment, the fastening protrusion part 79 may be formed on the second housing 70, and a separate fastening boss P may be engaged with the fastening protrusion part 79 such that the first housing 60 and the second housing 70 are coupled to each other.
[0142] Next, the control knob 90 mounted to the grille fan assembly 50 will be described. The control knob 90 may open and close the opening/closing entrance 64a′ of the refrigeration flow path 64a1 and 64a2 by being rotated. More specifically, the opening/closing entrance 64a′ located at a boundary between the upper flow path 64a1 and the lower flow path 64a2 constituting the refrigeration flow path 64a1 and 64a2 may be opened and closed by the control knob 90.
[0143] Here, the opening and closing of the opening/closing entrance 64a′ may include the complete closing or opening of the opening/closing entrance 64a′ and the partial closing or opening of the opening/closing entrance 64a′.
[0144] The control knob 90 may be mounted to the grille fan assembly 50, and in the embodiment, may be mounted to be rotatable relative to a rotating shaft configured in the same direction as the rotating shaft of the blower fan 80. That is, the control knob 90 may be installed in an upright direction rather than in a lying direction. Accordingly, as illustrated in
[0145] Particularly, when a user manipulates the control knob 90, the user may cover and grip the outer circumferential surface of the cylindrical control knob 90. That is, a user may grip the control knob 90 by simultaneously using multiple fingers, so the user may accurately grip the control knob 90 without sliding.
[0146] In addition, when the control knob 90 is mounted to the grille fan assembly 50 in an upright direction rather than in a lying direction, the front-to-rear directional width of the control knob 90 which the control knob 90 occupies in the grille fan assembly 50 may decrease.
[0147] The control knob 90 may be provided in the grille fan assembly 50, and may control the amount of cold air blown to the discharge hole 67 through the rotation angle of the control knob 90. The amount of the cold air transmitted to the refrigerating compartment F2 through the discharge hole 67 may be controlled according to the rotation angle of the control knob 90, and accordingly, the temperature control of the freezer compartment F1 may be performed.
[0148] To this end, the control knob 90 may be disposed in the refrigeration flow path 64a1 and 64a2 formed inside the grille fan assembly 50. More specifically, the control knob 90 may be installed to be adjacent to the opening/closing entrance 64a′ of the refrigeration flow path 64a1 and 64a2. Furthermore, an opening/closing blade 95 of the control knob may open and close the opening/closing entrance 64a′ of the flow path for the refrigerating compartment.
[0149] Specifically, the frame of the control knob 90 may be constituted by the cylindrical knob body 91. At least a portion of the knob body 91 may protrude from the grille fan assembly 50 toward the front of the freezer compartment F1, and the protruding part may be a gripping part.
[0150] Referring to
[0151] The angle adjustment part 92 may be formed continuously along the outer circumferential surface of the knob body 91. In the embodiment, the angle adjustment part 92 may have a structure approximate to a thin band shape, and the control recess 93 may be recessed on the surface of the angle adjustment part 92. The adjustment jaw G may be fitted into the control recess 93 such that the angle of the control knob 90 may be fixed. The control recess 93 may include multiple control recesses formed along the angle adjustment part 92, and intervals between the control recesses may correspond to the plurality of adjustment jaws G.
[0152] A close-contact protrusion part 92′ may be formed on the angle adjustment part 92. The close-contact protrusion part 92′ may protrude from the angle adjustment part 92 toward the rear surface 71a of the second housing 70. When the control knob 90 is mounted to the grille fan assembly 50, the close-contact protrusion part 92′ may be in close contact with the rear surface 71a of the second housing 70 and may function to decrease a gap between the rear surface 71a of the second housing 70 and the control knob 90.
[0153] This state is illustrated in
[0154] The connection arm 94 may protrude on the outer circumferential surface of the knob body 91, and the opening/closing blade 95 may be provided on the connection arm 94. The opening/closing blade 95 may have a diameter larger than the diameter of the knob body 91, and may function to substantially close or open the opening/closing entrance 64a′.
[0155] As described above, the connection arm 94 may interfere with the stopper ST1 and ST2 of the first housing 60 and may function to limit the maximum rotation angle of the control knob 90. Specifically, as illustrated in
[0156] Referring to
[0157] The opening/closing blade 95 may have a width larger than the width of the opening/closing entrance 64a′ of the refrigeration flow path 64a1 and 64a2. Accordingly, as illustrated in
[0158] At the same time, an angle between the opposite ends of the opening/closing blade 95 relative to the center of the control knob 90 may be larger than an angle between the opposite ends of the opening/closing entrance 64a′ relative to the center of the control knob 90. In this case, the opening/closing blade 95 may cover the entire portion of the opening/closing entrance 64a′.
[0159] In this case, the opening/closing blade 95 may include an enlarged open part 96a and 96b. The enlarged open part 96a and 96b may be formed by recessing a portion of the opening/closing blade 95, and may function to increase the open area of the opening/closing entrance 64a′ of the refrigeration flow path 64a1 and 64a2. The enlarged open part 96a and 96b may be considered as a part at which the width of the opening/closing blade 95 is decreased in the same direction as the direction of the rotating shaft of the control knob 90, which is the front-to-rear directional length of the control knob 90. Due to the enlarged open part 96a and 96b, the opening/closing entrance 64a′ may have a predetermined area which is constantly open, and the enlarged open part 96a and 96b allows the open area of the opening/closing entrance 64a′ to be more precisely adjusted by the control knob 90.
[0160] The enlarged open part 96a and 96b may include a plurality of enlarged open parts disposed along the rotational direction of the opening/closing blade 95. In the embodiment, the enlarged open part 96a and 96b may be composed of a first open part 96a and a second open part 96b, wherein the second open part 96b may be larger than the first open part 96a. Of course, contrarily, the first open part 96a may be larger than the second open part 96b, and any one of the first open part 96a and the second open part 96b may be omitted.
[0161] The support legs 97 may protrude on the knob body 91. Each of the support legs 97 may be a part in close contact with the inner surface of the first housing 60 of the grille fan assembly 50. The support legs 97 may have a cantilever structure protruding from the knob body 91 in a direction toward the inner surface of the first housing 60.
[0162] In the embodiment, the support leg 97 may include a plurality of support legs disposed along the edge of the lower surface of the knob body 91, and an empty space may be defined between the support legs. Accordingly, cold air may escape through the space between the support legs 97 without being trapped by the support legs 97, and frost may be prevented from occurring at the end portions of the support legs 97.
[0163] Referring to
[0164] A rotating boss 98 may protrude on the knob body 91. The rotating boss 98 may be a part fitted rotatably to a fixed boss 65 of the grille fan assembly 50. Referring
[0165] Next, the mounting process of the grille fan assembly 50 of the present disclosure will be described with reference to
[0166] In addition, after the grille fan assembly 50 is moved toward the inside of the upper casing 13, that is, the rear thereof, the upper end of the grille fan assembly 50 may be fitted into the holding groove 19. The holding groove 19 may be a part recessed on the upper end of the rear of the upper casing 13, and the upper end of the grille fan assembly 50 may be fitted into the recessed part. This state is illustrated in
[0167] In this state, when the lower end of the grille fan assembly 50 is rotated in the direction of the arrow, the second inclined part A2 formed on the lower end of the grille fan assembly 50 may move along the first inclined part A1. When the grille fan assembly 50 is mounted to the inner casing 10, the second inclined part A2 of the grille fan assembly 50 may climb on the sealing foam formed on the upper surface of the first inclined part A1, and the first inclined part A1 and the second inclined part A2 may be in close contact with each other, so the sealing foam located between the first inclined part A1 and the second inclined part A1 may be compressed.
[0168] In the embodiment, height between the upper surface of the grille fan assembly 50 and the second inclined part A1 may be larger than height between the holding groove 19 and the first inclined part A1. Accordingly, the sealing foam may be compressed between the first inclined part A1 and the second inclined part A2, and may perform a sealing function.
[0169] Accordingly, the grille fan assembly 50 may be assembled rearward from the front of the upper casing 13. While the grille fan assembly 50 is rotated and assembled, the first inclined part A1 and the second inclined part A2 may prevent the interference of the grille fan assembly 50 with the inner surface of the upper casing 13. Particularly, since the interference of the grille fan assembly 50 with the inner surface of the upper casing 13 is prevented in the mounting process of the grille fan assembly 50, the sealing foam may not be damaged or removed, and thus the leakage of cold air may be prevented. A state in which the assembly of the grille fan assembly 50 is completed is illustrated in
[0170] Next, the process of controlling the amount of blown air (the amount of cold air) to be transmitted to the storage compartment will be described with reference to
[0171]
[0172] When a user rotates the control knob 90 clockwise, the control knob 90 may be in a state illustrated in
[0173] Referring to
[0174] Next, when a user further rotates the control knob 90 clockwise, the control knob 90 is in a state illustrated in
[0175] Referring to
[0176] In addition, when a user further rotates the control knob 90 clockwise, the control knob 90 is in a state illustrated in
[0177] Referring to
[0178] Finally, when a user further rotates the control knob 90 clockwise, the control knob 90 is in the state of the minimum opening angle as illustrated in
[0179] Referring to
[0180] At the same time, the connection arm 94 may interfere with the second stopper ST2, and the control knob 90 may not rotate clockwise any longer (see
[0181] Accordingly, when a user rotates the control knob 90, the open degree of the opening/closing entrance 64a′ may be gradually decreased from the maximum opening angle of
[0182] Meanwhile, cold air supplied to the refrigerating compartment F2 along the refrigeration flow path 64a1 and 64a2 may include water, and the freezing of the water may occur between the opening/closing blade 95 and the opening/closing entrance 64a′. However, the surface of the opening/closing blade 95 may be spaced apart by a predetermined distance from the inner surface of the flow guide 64 for the refrigerating compartment, so water may be discharged through a gap defined due to the distance and thus freezing of the water may be prevented. Furthermore, the discharged water may be discharged to the outside of the grille fan assembly 50 through the condensate drain hole 69a and then may be collected in the drain tray 37 located under the evaporator to be discharged.
[0183] In addition, when the internal temperature of the refrigeration compartment F2 falls within a preset range while cold air is supplied to the refrigerating compartment F2 through the flow guide 64 for the refrigerating compartment, the operations of the blower fan 80 and a compressor may stop.
[0184] In the above, even if all components constituting the refrigerator according to the embodiment of the present disclosure have been described as being combined integrally with each other or being operated in combination integrally with each other, the present disclosure is not necessarily limited to this embodiment. That is, as long as it is within the scope of the present disclosure, at least two of all of its components may be selectively combined with each other to be operated.