TECHNICAL FIELD
[0002] The present application relates to the technical field of air conditioning systems,
and in particular, to an air outlet panel, an air outlet assembly, and an air conditioner
outdoor unit.
BACKGROUND
[0003] Under increasingly stringent energy-saving and emission-reduction requirements, it
is necessary to further increase the air volume of the outdoor unit without increasing
the overall noise of the outdoor unit. The increase in air volume can only be achieved
by increasing the diameters of the air impeller and the air guide ring. Currently,
the air volume of outdoor units in the industry has reached a certain bottleneck.
Existing panels of air conditioner outdoor units are usually provided with an air
guide ring to guide the airflow of the outdoor unit, and a grille is disposed at the
air outlet of the air guide ring. When airflow passes through the existing air guide
ring, the airflow velocity is relatively low and the noise is relatively high, thereby
increasing the unnecessary power consumption of the outdoor unit.
SUMMARY
TECHNICAL PROBLEM
[0004] The main purpose of the present application is to provide an air outlet panel, an
air outlet assembly, and an air conditioner outdoor unit, aiming to solve the problems
of high noise and high power consumption of existing air outlet panels.
TECHNICAL SOLUTION
[0005] To achieve the above purpose, the present application proposes an air outlet panel,
the air outlet panel has an outer side and an inner side opposite to the outer side,
a recessed area is formed on the outer side of the air outlet panel, an air outlet
hole is provided through a local area of the recessed area, and the air outlet hole
communicates with the recessed area to form an air discharge channel.
[0006] In an embodiment, the air outlet hole is formed with an annular outward flange protruding
from the inner side of the air outlet panel, and an aperture of the annular outward
flange is at least partially gradually increased in an inward direction.
[0007] In an embodiment, the air discharge channel comprises a flow collecting section,
a flow guiding section, and a flow expanding section arranged sequentially from inside
to outside, the flow collecting section and the flow guiding section are formed in
the air outlet hole, and the flow expanding section is formed in the recessed area;
and
an aperture of the flow collecting section is greater than an aperture of the flow
guiding section.
[0008] In an embodiment, a circular arc transition is provided between the flow guiding
section and the flow collecting section.
[0009] In an embodiment, in a direction from inside to outside, a length of the flow collecting
section is A, a length of the flow guiding section is B, and a length of the flow
expanding section is C, where 65 mm ≤ A+B+C ≤ 80 mm.
[0010] In an embodiment, 10% ≤ C/(A+B+C) ≤ 20%.
[0011] In an embodiment, a cross-sectional area of the air outlet hole is S1, and a cross-sectional
area of the recessed area is S2, where 20% ≤ (S2-S1)/S1 ≤ 40%.
[0012] In an embodiment, the recessed area is configured in a square shape, the air outlet
hole is configured in a circular shape, and a cross-sectional center of the recessed
area coincides with a center of the circular hole.
[0013] The present application further provides an air outlet assembly, comprising:
a housing provided with a mounting opening;
an air outlet panel mounted in the mounting opening; and
a grille provided on the outer side of the air outlet panel and corresponding to the
recessed area;
the air outlet panel has an outer side and an inner side opposite to the outer side,
a recessed area is formed on the outer side of the air outlet panel, an air outlet
hole is provided through a local area of the recessed area, and the air outlet hole
communicates with the recessed area to form an air discharge channel.
[0014] The present application further provides an air conditioner outdoor unit comprising
an air outlet assembly. The air outlet assembly comprises:
a housing provided with a mounting opening;
an air outlet panel mounted in the mounting opening; and
a grille provided on the outer side of the air outlet panel and corresponding to the
recessed area;
the air outlet panel has an outer side and an inner side opposite to the outer side,
a recessed area is formed on the outer side of the air outlet panel, an air outlet
hole is provided through a local area of the recessed area, and the air outlet hole
communicates with the recessed area to form an air discharge channel.
BENEFICIAL EFFECTS
[0015] In the technical solution provided by the present application, when the fan operates
to supply air toward the air outlet hole of the air outlet panel, the airflow first
passes through the air outlet hole, and then the airflow located on the periphery
of the air outlet hole passes through the recessed area before being discharged from
the grille. Since the airflow flows from the air outlet hole to the recessed area,
and the cross-sectional area of the recessed area is larger than that of the air outlet
hole, airflow backflow is reduced, thereby increasing the air volume. For the same
flow rate, the airflow velocity at the air outlet hole is higher, and when the airflow
flows to the recessed area, the velocity decreases. By providing the recessed area
communicating with the air outlet hole at the air outlet end of the air outlet hole,
the airflow corresponding to the recessed area can convert the originally local static
pressure into dynamic pressure in the area surrounding the air outlet hole, thereby
reducing the air discharge resistance of the airflow, lowering the aerodynamic noise
at the air outlet, and reducing power consumption, so as to solve the problems of
high noise and high power consumption of existing air outlet panels.
BRIEF DESCRIPTION OF THE DRAWINGS
[0016] In order to more clearly illustrate the technical solutions in the embodiments of
the present application or in the related art, the drawings required to be used in
the description of the embodiments or the related art will be briefly introduced below.
Obviously, the drawings in the following description are only some embodiments of
the present application. For those of ordinary skill in the art, other drawings can
also be obtained based on these drawings without creative labor.
FIG. 1 is a three-dimensional schematic view of an embodiment of an air outlet panel
in an air outlet assembly provided by the present application.
FIG. 2 is a front schematic view of the air outlet panel in FIG. 1.
FIG. 3 is a cross-sectional schematic view taken along line X-X in FIG. 2.
FIG. 4 is a schematic view showing the area of the air outlet hole and the area of
the recessed area of the air outlet panel in FIG. 2.
FIG. 5 is a front schematic view of the air outlet assembly provided by the present
application.
FIG. 6 is a cross-sectional schematic view taken along line Y-Y in FIG. 5.
Description of reference signs
[0017]
[Table_sm_0001]
| Reference sign |
Name |
Reference sign |
Name |
| 100 |
air outlet panel |
11 |
flow collecting section |
| 200 |
air outlet assembly |
12 |
flow guiding section |
| 1a |
recessed area |
13 |
flow expanding section |
| 1b |
air outlet hole |
10 |
housing |
| 101 |
outward flange |
20 |
grille |
[0018] The realization of the purpose, functional features and advantages of the present
application will be further explained in conjunction with the embodiments and with
reference to the accompanying drawings.
DETAILED DESCRIPTION
[0019] The technical solutions in the embodiments of the present application will be clearly
and completely described below in conjunction with the accompanying drawings in the
embodiments of the present application. Obviously, the described embodiments are only
a part of the embodiments of the present application, rather than all the embodiments.
Based on the embodiments in the present application, all other embodiments obtained
by those of ordinary skill in the art without creative labor fall within the scope
of the present application.
[0020] It should be noted that if directional indications (such as up, down, left, right,
front, back, etc.) are involved in the embodiments of the present application, the
directional indications are only used to explain the relative positional relationship,
movement status, etc. between components in a specific posture (as shown in the accompanying
drawings). If the specific posture changes, the directional indications will also
change accordingly.
[0021] In addition, if descriptions involving "first", "second", etc. are involved in the
embodiments of the present application, the descriptions of "first", "second", etc.
are only for descriptive purposes and should not be understood as indicating or implying
their relative importance or implicitly indicating the number of the indicated technical
features. Thus, a feature defined as "first" or "second" may explicitly or implicitly
comprise at least one such feature. In addition, the meaning of "and/or" appearing
throughout the text comprises three parallel schemes. Taking "A and/or B" as an example,
it comprises scheme A, or scheme B, or a scheme where both A and B are satisfied.
In addition, the technical solutions between the various embodiments can be combined
with each other, but must be based on what can be implemented by those of ordinary
skill in the art. When the combination of technical solutions is contradictory or
cannot be implemented, it should be considered that such a combination of technical
solutions does not exist and is not within the scope claimed by the present application.
[0022] Under increasingly stringent energy-saving and emission-reduction requirements, it
is necessary to further increase the air volume of the outdoor unit without increasing
the overall noise of the outdoor unit. The increase in air volume can only be achieved
by increasing the diameters of the air impeller and the air guide ring. Currently,
the air volume of outdoor units in the industry has reached a certain bottleneck.
Existing panels of air conditioner outdoor units are usually provided with an air
guide ring to guide the airflow of the outdoor unit, and a grille is disposed at the
air outlet of the air guide ring. When airflow passes through the existing air guide
ring, the airflow velocity is relatively low and the noise is relatively high, thereby
increasing the unnecessary power consumption of the outdoor unit.
[0023] In order to solve the above problems, the present application provides an air outlet
panel. FIG. 1 is a three-dimensional schematic view of an embodiment of an air outlet
panel in the air outlet assembly provided by the present application; FIG. 2 is a
front schematic view of the air outlet panel in FIG. 1; FIG. 3 is a cross-sectional
schematic view taken along line X-X in FIG. 2; FIG. 4 is a schematic view showing
the area of the air outlet hole and the area of the recessed area of the air outlet
panel in FIG. 2; FIG. 5 is a front schematic view of the air outlet assembly provided
by the present application; FIG. 6 is a cross-sectional schematic view taken along
line Y-Y in FIG. 5.
[0024] Referring to FIG. 1 to FIG. 3, the air outlet panel 100 has an outer side and an
inner side opposite to the outer side. A recessed area 1a is formed on the outer side
of the air outlet panel 100. An air outlet hole 1b is provided through a local area
of the recessed area 1a. The air outlet hole 1b communicates with the recessed area
1a to form an air discharge channel.
[0025] In an embodiment, the inner side and the outer side of the air outlet panel 100 are
defined relative to the flow direction of the airflow. When the airflow flows, the
side of the air outlet panel 100 where air enters is the inner side, and the side
where air exits is the outer side. Therefore, the recessed area 1a is provided at
the air outlet end of the air discharge channel through which the airflow passes.
[0026] It should be noted that the recessed area 1a may be configured as a groove with a
regular shape or an irregular groove, and the bottom wall of the groove may be configured
as a flat surface or a curved surface. The recessed area 1a may be configured in other
possible shapes. The specific configuration may be determined according to actual
conditions. As long as the air outlet hole 1b can communicate with the bottom wall
of the groove, it falls within the scope of the present application, and this embodiment
of the specification does not limit it.
[0027] In an embodiment, the air outlet hole 1b is provided through a local area of the
recessed area 1a, that is, the surface of the remaining area of the recessed area
1a, i.e., the surface of the recessed area 1a corresponding to the periphery of the
air outlet hole 1b, together with the inner wall surface of the air outlet hole 1b,
defines the air discharge channel. Thus, the cross-sectional area of the recessed
area 1a is necessarily greater than the cross-sectional area of the air outlet hole
1b.
[0028] In the technical solution provided by the present application, when the fan operates
to supply air toward the air outlet hole 1b of the air outlet panel 100, the airflow
first passes through the air outlet hole 1b, and then the airflow located on the periphery
of the air outlet hole 1b passes through the recessed area 1a before being discharged
from the grille 20. Since the airflow flows from the air outlet hole 1b to the recessed
area 1a, and the cross-sectional area of the recessed area 1a is larger than that
of the air outlet hole 1b, airflow backflow is reduced, thereby increasing the air
volume. For the same flow rate, the airflow velocity at the air outlet hole 1b is
higher, and when the airflow flows to the recessed area 1a, the velocity decreases.
By providing the recessed area 1a communicating with the air outlet hole 1b at the
air outlet end of the air outlet hole 1b, the airflow corresponding to the recessed
area 1a can convert the originally local static pressure into dynamic pressure in
the area surrounding the air outlet hole 1b, thereby reducing the air discharge resistance
of the airflow, lowering the aerodynamic noise at the air outlet, and reducing power
consumption, so as to solve the problems of high noise and high power consumption
of the existing air outlet panel 100.
[0029] Moreover, in the related art, the cross-sectional area of the air outlet hole 1b
on a conventional air outlet panel 100 does not change at the air outlet end, resulting
in a relatively large amount of airflow backflow, thereby making the delivered air
volume relatively small.
[0030] In an embodiment, referring to FIG. 3, the air outlet hole 1b is configured in the
form of a flanged hole, so that the air outlet hole 1b is formed with an annular outward
flange 101 protruding from the inner side of the air outlet panel 100. An aperture
of the annular outward flange 101 is at least partially gradually increased in an
inward direction. With such a configuration, in the area corresponding to the air
outlet hole 1b, the opening at the air inlet end is larger than the opening at the
air outlet end. Therefore, when the fan exhausts air, more airflow can be collected
at the air inlet end of the air outlet hole 1b to concentrate the airflow. At this
time, the airflow velocity in the air outlet hole 1b is relatively high.
[0031] It should be noted that, in an embodiment, the annular outward flange 101 gradually
increases step by step in the inward direction, so that during the flow of airflow
toward the air outlet end of the air discharge channel, the air resistance is stable
and does not fluctuate, thereby affecting the stability of the airflow.
[0032] Specifically, referring to FIG. 3, in an embodiment, the air discharge channel comprises
a flow collecting section 11, a flow guiding section 12, and a flow expanding section
13 arranged sequentially from inside to outside. The flow collecting section 11 and
the flow guiding section 12 are formed in the air outlet hole 1b, and the flow expanding
section 13 is formed in the recessed area 1a. An aperture of the flow collecting section
11 is greater than an aperture of the flow guiding section 12. Thus, more airflow
is collected in the flow collecting section 11 to concentrate the airflow, which then
flows through the flow guiding section 12 to the flow expanding section 13 with a
larger cross-sectional area.
[0033] In an embodiment, a circular arc transition is provided between the flow guiding
section 12 and the flow collecting section 11. The circular arc transition can more
smoothly change the direction of the airflow, reducing wind resistance; the circular
arc transition can avoid the formation of vortices, reduce noise, and can make the
airflow pass through the channel more uniformly, thereby improving the stability and
reliability of aerodynamic performance.
[0034] It should be noted that the flow expanding section 13 is formed in the recessed area
1a. The length of the flow expanding section 13 in the inner-outer direction depends
on the depth of the recessed area 1a, and the size of the cross-section of the flow
expanding section 13 depends on the projected area of the recessed area 1a in the
inner-outer direction.
[0035] In an embodiment, in a direction from inside to outside, a length of the flow collecting
section 11 is A, a length of the flow guiding section 12 is B, and a length of the
flow expanding section 13 is C, where 65 mm ≤ A+B+C ≤ 80 mm. With such a configuration,
the compressive strength of the air outlet panel 100 is ensured, and the possibility
of tearing the air outlet panel 100 during manufacturing is avoided. Since the air
outlet panel 100 is generally a plastic part, drafting is required during manufacturing.
When the distance of the air discharge channel in the inner-outer direction is too
large, i.e., A+B+C is greater than 80 mm, due to friction between the plastic part
and the mold cavity, stress concentration will occur on the surface of the plastic
part. If there are weak points on the surface or inside of the plastic part (e.g.,
gates, ejector pin marks, etc.), the stress in these areas will exceed the strength
of the material, leading to tearing.
[0036] When the distance of the air discharge channel in the inner-outer direction is too
small, i.e., A+B+C is less than 65 mm, the thickness of the air outlet panel 100 is
relatively thin. When the air outlet panel 100 is installed on an air conditioner
outdoor unit, under lowtemperature conditions in winter, the condenser is prone to
frosting or even icing. During the operation of the fan, the air supply volume of
the fan will decrease. However, in the present application, the air volume attenuation
of the air discharge channel corresponding to the flow expanding section 13 is smaller,
thereby increasing the compressive strength of the air outlet panel 100.
[0037] In an embodiment, the flow collecting section 11, the flow guiding section 12, and
the flow expanding section 13 further satisfy the following relationship: 10% ≤ C/(A+B+C)
≤ 20%. When the length proportion of the flow expanding section 13 is too large, i.e.,
C/(A+B+C) is greater than 20%, it will lead to a risk of tearing during demolding.
When the length proportion of the flow expanding section 13 is too small, i.e., C/(A+B+C)
is less than 10%, the increase in air volume is relatively small.
[0038] In an embodiment, a cross-sectional area of the air outlet hole 1b is S1, and a cross-sectional
area of the recessed area 1a is S2. In FIG. 4 of the specification, the recessed area
1a represents the area of the entire square region, and S2-S1 represents the area
of the recessed area 1a projected onto the air outlet panel 100 in the inner-outer
direction, where 20% ≤ (S2-S1)/S1 ≤ 40%. With such a configuration, both the aesthetic
appearance of the air outlet panel 100 and an effective increase in air volume are
ensured. When (S2-S1)/S1 is greater than 40%, the area of the flow expanding section
is too large, resulting in poor aesthetics and higher manufacturing costs. When (S2-S1)/S1
is less than 20%, the antibackflow effect of the recessed area 1a is degraded, and
the improvement in air volume becomes poor.
[0039] Specifically, referring to FIGS. 1, 2, and 4, in an embodiment, the recessed area
1a is configured in a square shape, and the air outlet hole 1b is configured in a
circular shape, where a cross-sectional center of the recessed area 1a coincides with
a center of the circular hole. Thus, multiple triangular-like recessed areas 1a on
the periphery of the circular air outlet hole 1b can be symmetrical left-right or
up-down with respect to the vertical centerline or horizontal centerline of the air
outlet hole 1b. Of course, the recessed area 1a is not limited to the above shape.
The recessed area 1a may also be configured as a concentric circle with a diameter
larger than that of the air outlet hole 1b. Of course, the shapes of the recessed
area 1a and the air outlet hole 1b are not limited to the above examples. Those skilled
in the art may make other modifications under the inspiration of the technical essence
of this embodiment of the specification, but as long as the functions and effects
achieved are the same as or similar to those of this embodiment of the specification,
they should be covered within the scope of this embodiment of the specification.
[0040] The present application further provides an air outlet assembly 200. Referring to
FIG. 5 to FIG. 6, the air outlet assembly 200 comprises a housing 10, an air outlet
panel 100, and a grille 20. The housing 10 has a mounting opening; the air outlet
panel 100 is mounted in the mounting opening; the grille 20 is provided on the outer
side of the air outlet panel 100 and corresponds to the recessed area 1a. The air
outlet assembly 200 further comprises a fan and the like. Since the air outlet assembly
200 comprises the air outlet panel 100, the specific structure of the air outlet panel
100 refers to the above embodiments. Since the air outlet panel 100 of the present
air outlet assembly 200 adopts all the technical solutions of the above embodiments,
it at least has all the beneficial effects brought by the technical solutions of the
above embodiments, which will not be repeated here.
[0041] In an embodiment, the air outlet assembly 200 may be an air outlet appliance such
as a fan, a heater fan, an air conditioner, etc., or may be a heat dissipation device,
etc. This embodiment of the specification does not limit it.
[0042] In an embodiment, when the outer contour of the grille 20 is square, the four corners
of the grille 20 also have air outlet grilles arranged opposite to the flow expanding
section 13 for air discharge. The originally local static pressure is converted into
dynamic pressure, the air discharge resistance of the airflow is reduced, and the
aerodynamic noise at the air outlet can be reduced by about 1 dB.
[0043] The present application further provides an air conditioner outdoor unit. The air
conditioner outdoor unit comprises the aforementioned air outlet assembly 200. The
air conditioner outdoor unit further comprises a fan and the like. Since the air conditioner
outdoor unit comprises the air outlet assembly 200, the specific structure of the
air outlet assembly 200 refers to the above embodiments. Since the air outlet assembly
200 of the present outdoor unit of the air conditioner adopts all the technical solutions
of the above embodiments, it at least has all the effects brought by the technical
solutions of the above embodiments, which will not be repeated here.
[0044] The above descriptions are only optional embodiments of the present application,
and thus do not limit the scope of the present application. All equivalent structural
transformations made using the contents of the specification and drawings of the present
application under the inventive concept of the present application, or direct/indirect
applications in other related technical fields, are comprised within the scope of
the present application.
1. An air outlet panel, the air outlet panel has an outer side and an inner side opposite
to the outer side, a recessed area is formed on the outer side of the air outlet panel,
an air outlet hole is provided through a local area of the recessed area, and the
air outlet hole communicates with the recessed area to form an air discharge channel.
2. The air outlet panel according to claim 1, wherein the air outlet hole is formed with
an annular outward flange protruding from the inner side of the air outlet panel,
and an aperture of the annular outward flange is at least partially gradually increased
in an inward direction.
3. The air outlet panel according to claim 1, wherein the air discharge channel comprises
a flow collecting section, a flow guiding section, and a flow expanding section arranged
sequentially from inside to outside, the flow collecting section and the flow guiding
section are formed in the air outlet hole, and the flow expanding section is formed
in the recessed area; and
an aperture of the flow collecting section is greater than an aperture of the flow
guiding section.
4. The air outlet panel according to claim 3, wherein a circular arc transition is provided
between the flow guiding section and the flow collecting section.
5. The air outlet panel according to claim 3, wherein in a direction from inside to outside,
a length of the flow collecting section is A, a length of the flow guiding section
is B, and a length of the flow expanding section is C, wherein 65 mm ≤ A+B+C ≤ 80
mm.
6. The air outlet panel according to claim 5, wherein 10% ≤ C/(A+B+C) ≤ 20%.
7. The air outlet panel according to claim 1, wherein a cross-sectional area of the air
outlet hole is S1, and a cross-sectional area of the recessed area is S2, wherein
20% ≤ (S2-S1)/S1 ≤ 40%.
8. The air outlet panel according to claim 1, wherein the recessed area is configured
in a square shape, the air outlet hole is configured in a circular shape, and a cross-sectional
center of the recessed area coincides with a center of the circular hole.
9. An air outlet assembly, comprising:
a housing provided with a mounting opening;
an air outlet panel according to any one of claims 1 to 8, the air outlet panel being
mounted in the mounting opening; and
a grille provided on an outer side of the air outlet panel and corresponding to a
recessed area.
10. An air conditioner outdoor unit, comprising an air outlet assembly according to claim
9.