Air conditioner indoor unit
11480345 · 2022-10-25
Assignee
Inventors
Cpc classification
F24F2013/205
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F24F1/0057
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F24F1/0007
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F24F2221/32
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
An air conditioner indoor unit includes a housing and a chassis connected to the housing. The chassis and the housing form a receiving chamber with an access opening. At least a portion of an inner side surface of a bottom wall of the chassis forms a guiding surface extending to the access opening. The chassis includes an avoidance hole and a resilient member. At least a portion of the resilient member is arranged in the avoidance hole and protrudes from the guiding surface.
Claims
1. An air conditioner indoor unit, comprising: a housing; and a chassis connected to the housing; wherein: the chassis and the housing form a receiving chamber with an access opening; at least a portion of an inner side surface of a bottom wall of the chassis forms a guiding surface extending to the access opening; the chassis includes an avoidance hole and a plurality of resilient members provided at the bottom wall of the chassis, at least a portion of one resilient member of the plurality of resilient members being arranged in the avoidance hole and protruding from the guiding surface.
2. The indoor unit according to claim 1, wherein the one resilient member is connected to an inner peripheral wall of the avoidance hole and extends along an assembling direction of the access opening from outside the receiving chamber to inside the receiving chamber through the access opening.
3. The indoor unit according to claim 2, wherein the one resilient member comprises: a first connecting portion connected with the inner peripheral wall of the avoidance hole, extending along the assembling direction, and leaning towards an inside of the receiving chamber; and a second connecting portion connected with the first connecting portion, extending along the assembling direction, and leaning away from the inside of the receiving chamber.
4. The indoor unit according to claim 3, wherein: the one resilient member further comprises: a third connecting portion connected between the first connecting portion and the bottom wall of the chassis; and a fourth connecting portion connected with a free end of the second connecting portion; and an inner side surface of the third connecting portion and an inner side surface of the fourth connecting portion are flush with the guiding surface in a normal state without external force.
5. The indoor unit according to claim 1, wherein the one resilient member includes: a first end connected to a side of the avoidance hole that is distal from the access opening; and a second end extending towards the access opening and being spaced apart from an inner wall surface of the avoidance hole.
6. The indoor unit according to claim 1, wherein a side surface of the one resilient member is spaced apart from a side surface of the avoidance hole.
7. The indoor unit according to claim 1, wherein the plurality of resilient members are arranged at intervals in an assembling direction of the access opening from outside the receiving chamber to inside the receiving chamber through the access opening.
8. The indoor unit according to claim 1, wherein the plurality of resilient members are arranged at intervals in a direction perpendicular to an assembling direction of the access opening from outside the receiving chamber to inside the receiving chamber through the access opening.
9. The indoor unit according to claim 1, wherein an extension direction of one of the plurality of resilient members is opposite to an extension direction of another one of the plurality of resilient members.
10. The indoor unit according to claim 1, further comprising: a fan assembly configured to be inserted into and removed from the receiving chamber along the guiding surface through the access opening.
11. The indoor unit according to claim 10, further comprising: a snap holder connected to the housing and adjacent to the access opening; wherein the fan assembly includes a snap configured to cooperate with the snap holder to fix the fan assembly when the fan assembly is in the receiving chamber.
12. The indoor unit according to claim 1, further comprising: a supporting member, one part of the supporting member being pivotably connected to the chassis and another part of the supporting member being configured to be snapped with the chassis.
13. The indoor unit according to claim 12, wherein: at least a portion of the bottom wall of the chassis is recessed towards an inside of the receiving chamber to form a receiving space; and the supporting member is configured to cover at least a portion of an opening side of the receiving space when being snapped with the chassis.
14. The indoor unit according to claim 13, further comprising: one or more ducts mounted in the receiving space; wherein the supporting member is further configured to cover the one or more ducts when being snapped with the chassis.
15. The indoor unit according to claim 14, wherein the one or more ducts include at least one of a drain duct or a connecting duct.
16. The indoor unit according to claim 1, wherein the guiding surface includes a plurality of grooves extending along an assembling direction of the access opening from outside the receiving chamber to inside the receiving chamber through the access opening and arranged at intervals along a direction perpendicular to the assembling direction.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1)
(2)
(3)
(4)
(5)
(6)
REFERENCE NUMERALS
(7) air conditioner indoor unit 100,
(8) housing 10, receiving chamber 11,
(9) chassis 20, guiding surface 21, avoidance hole 22, groove 23,
(10) resilient member 30, first connecting portion 31, second connecting portion 32, third connecting portion 33, fourth connecting portion 34,
(11) fan assembly 40, snap 41,
(12) supporting member 50, connecting duct 60, drain duct 70, snap holder 80.
DETAILED DESCRIPTION
(13) Embodiments of the present disclosure will be described in detail and examples of the embodiments will be illustrated in the accompanying drawings, where same or similar reference numerals are used to indicate same or similar members or members with same or similar functions. The embodiments described herein with reference to the drawings are explanatory, which aim to illustrate the present disclosure, but shall not be construed to limit the present disclosure.
(14) An air conditioner indoor unit 100 according to embodiments of the present disclosure is described referring to
(15) Specifically, as illustrated in
(16) As illustrated in
(17) Specifically, when it is needed to mount the fan assembly, the fan assembly 40 is mounted into the receiving chamber 11 along the guiding surface 21. When it is needed to dismount the fan assembly, the fan assembly 40 is taken out through the guiding surface 21. With the guiding surface 21, the fan assembly can be supported and guided, which makes it convenient to mount and dismount the fan assembly 40.
(18) Furthermore, the chassis includes an avoidance hole and is provided with a resilient member, and the resilient member is used to fix the fan assembly. Therefore, with the resilient member 30, the possibility that the fan assembly is damaged or hits an operator in case of falling down can be reduced. Especially, the operator does not need to beware of the falling of the fan assembly all the time when mounting the fan assembly. There is no need to provide support for the fan assembly, thereby reducing the operator's labor intensity and making it convenient to mount.
(19) At least a portion of the resilient member 30 is arranged in the avoidance hole 22 and protrudes from the guiding surface 21. The whole resilient member 30 may be arranged in the avoidance hole 22, or the resilient member 30 may be partially arranged in the avoidance hole 22. The resilient member 30 protrudes from the guiding surface 21, when the fan assembly 40 is mounted, the resilient member is deformed, and a portion of the resilient member that protrudes from the guiding surface moves towards an inner of the avoidance hole. In this way, with the avoidance hole 22, a space can be made for the fan assembly 40 to pass through. A large space for the fan assembly 40 to pass through is not needed, furthermore, thickening the whole body of the air conditioner indoor unit 100 is not needed, the appearance of air conditioner indoor unit 100 in a thickness direction can be ensured.
(20) Therefore, with the air conditioner indoor unit 100 according to the embodiments of the present disclosure, the resilient member 30 is provided to limit the position of the fan assembly, and at least a portion of the resilient member 30 is arranged in the avoidance hole 22, the fan assembly can be convenient to mount, which reduces the operator's labor intensity, ensures the operator's safety, and facilitates thinning the body.
(21) In some embodiments, as illustrated in
(22) The pre-positioning structure tends to restore the first state, in this way, during mounting the fan assembly, the pre-positioning structure is in the second state, the pre-positioning structure restore the first state itself after mounting to fix the positon of the fan assembly, which reduces mounting steps.
(23) In addition, in the first state, a portion of the pre-positioning structure extends into the receiving chamber 11, or, in the first state, all the pre-positioning structure extends into the receiving chamber 11. For example, in the first state, a portion of the pre-positioning structure protrudes from the chassis 20 and extends towards the receiving chamber 11, and another portion is located in the bottom wall of the chassis 20 or protrudes from an outer surface of the chassis 20.
(24) The pre-positioning structure may be a structure capable of telescoping in a thickness direction of the chassis 20. For example, in the first state the pre-positioning structure extends towards the inside of the receiving chamber 11 along the thickness of the chassis 20, while in the second state, the pre-positioning structure retracts away from the receiving chamber 11 along the thickness of the chassis 20. Certainly, the above embodiments are exemplary and cannot be construed as a limit to the protection scope of the disclosure. For example, the pre-positioning structure may be an elastic structure or the like.
(25) In some optional embodiments, as illustrated in
(26) Specifically, when the fan assembly is mounted into the receiving chamber 11 through the access opening, the resilient member 30 switches to the second state from the first state, making it convenient to mount the fan assembly, the fan assembly is mounted into the receiving chamber 11 along the guiding surface 21. After the fan assembly reaches a preset position, the resilient member 30 restore to the first state from the second state, the resilient member 30 restricts the fan assembly, i.e. restricts movement of the fan assembly along the guiding surface 21. When the fan assembly is taken out through the access opening, the resilient member 30 switches from the first state to the second state, such that it is convenient to taking the fan assembly out from the receiving chamber 11. After the fan assembly is taken out, the resilient member 30 restores to the first state from the second state. The pre-positioning structure is configured as a resilient member 30, the resilient member 30 may be integrally formed with the chassis 20, thereby simplifying structure and process, and lowing cost.
(27) In some specific embodiments, as illustrated in
(28) In a specific embodiment, as illustrated in
(29) Certainly, the above embodiments are exemplary and cannot be construed as a limit to the protection scope of the disclosure. For example, in the first state, both the fourth connecting portion 34 and the third connecting portion 33 are lower than the guiding surface 21. It should be noted that, terms “higher” and “lower” in the present disclosure both refer to comparison along the thickness direction of the chassis 20. For example, an inner surface of the chassis 20 is higher than an outer surface of the chassis 20. In addition, or in the first state, one of the fourth connecting portion 34 and the third connecting portion 33 is flush with the guiding surface 21, and the other one is lower than the guiding surface 21.
(30) In some specific embodiments, as illustrated in
(31) Certainly, the above embodiments are exemplary and cannot be construed as a limit to the protection scope of the disclosure. For example, the chassis 20 can further include an avoidance groove, the resilient member 30 is arranged in the avoidance groove. The resilient member 30 has a first end connected to a side of the avoidance groove that is distal from the access opening and a second end extending towards the access opening. The second end of the resilient member 30 is higher than the guiding surface 21 of the chassis 20. Therefore, avoidance can be achieved and the structural strength of the chassis 20 can be enhanced.
(32) In some embodiments, as illustrated in
(33) Certainly, the above embodiments cannot be construed as a limit to the protection scope of the disclosure. For example, the plurality of resilient members 30 may arranged at the interval along the direction along which the fan assembly is put in.
(34) In some embodiments, as illustrated in
(35) In some optional embodiments, the snap holder 80 has an end rotatably connected to the housing 10. Therefore, the snap holder 80 releases cooperation with the snap 41 by rotation, which makes it convenient to position and release the fan assembly.
(36) In some embodiments, as illustrated in
(37) As illustrated in
(38) In some embodiments, as illustrated in
(39) In some embodiments, as illustrated in
(40) In the description of the present disclosure, it should be understood that, terms such as “thickness”, “upper”, and “lower”, etc. should be construed to refer to the orientation as then described or as shown in the drawings under discussion. These relative terms are for convenience of description and do not require that the present disclosure be constructed or operated in a particular orientation. Therefore, the above terms should not be construed to limit the present disclosure.
(41) In addition, terms such as “first” and “second” are used herein for purposes of description and are not intended to indicate or imply relative importance or implicitly indicate the number of the feature associated with the term. Thus, the feature associated with “first” and “second” may explicitly or implicitly comprise one or more this feature. In the description of the present disclosure, term “a plurality of” means at least two, such as two, three, etc., unless specified otherwise.
(42) In the present disclosure, unless specified or limited otherwise, the terms “mounted,” “connected,” “coupled,” “fixed” and the like are used broadly, and may be, for example, fixed connections, detachable connections, or integral connections; may also be mechanical or electrical connections; may also be direct connections or indirect connections via intervening structures; may also be inner communications of two elements, which can be understood by those skilled in the art according to specific situations.
(43) Although explanatory embodiments have been shown and described, it would be appreciated by those skilled in the art that the above embodiments cannot be construed to limit the present disclosure, and changes, alternatives, and modifications can be made in the embodiments without departing from spirit, principles and scope of the present disclosure.