TECHNICAL FIELD
[0001] The present disclosure relates to air source heat pumps and particularly to an outdoor
unit of an air source heat pump. Even more particularly, the present disclosure relates
to air source heat pumps for heating and/or cooling a space, such as for air conditioners,
heatings or other HVAC applications or for water heating (domestic hot water).
BACKGROUND
[0002] Outdoor units of this kind include a heat exchanger accommodated in a casing of the
outdoor unit. The heat exchanger in the outdoor unit is configured to enable heat
exchange between a refrigerant circulating in the refrigerant circuit of the heat
pump and outside air as the heat source. For this purpose, the heat exchanger is connected
to the refrigerant circuit of the heat pump and flown through by the refrigerant flowing
in the refrigerant circuit. Further, outside air is forced through the heat exchanger,
e.g. by means of a fan. Due to humidity of the outside air and/or the temperature
difference between the outside air and the refrigerant, water may condense on the
surfaces of the heat exchanger and freezes at low outdoor temperatures. During a defrosting
operation for defrosting the heat exchanger, the ice melts and water flows along the
surfaces of the heat exchanger and accumulates in the casing of the outdoor unit and
particularly on a bottom of the casing in an area below the heat exchanger.
[0003] JP 2013-217525 discloses such an outdoor unit suggesting a drainage hole in the bottom of the casing
in order to drain any condensation water accumulating on a bottom of the casing out
of the casing of the outdoor unit. The drainage hole is positioned between opposite
ends of the heat exchanger in a longitudinal direction of the heat exchanger and condensation
water has to be guided to the drainage hole by suitable configurations of the inner
side of the bottom (e.g. inclinations, channels, etc.). Yet, there is a risk under
cold weather conditions that the water will freeze inside the casing of the outdoor
unit on its way to the drainage hole, because the water cannot be drained fast and
efficiently enough.
[0004] Moreover, the preamble of claim 1 is based on
WO 2012/124457 A1 disclosing an outdoor unit for an air conditioner.
[0005] Further,
EP 2 995 874 A2 refers to an outdoor unit for an air conditioner is provided, including a cabinet
with at least one suction panel, a base provided at a lower portion of the cabinet,
wherein a compressor and a heat exchanger are provided on the base.
SUMMARY
[0006] In order to attend to this problem, it had been suggested by the applicant to provide,
as shown in Figure 1, a first cutout 12 in the bottom 11 of the casing 10. The first
cutout 12 extends along a major portion of the lower end 51 of the heat exchanger
50 (indicated by the broken line) between first and second distanced portions 52,
53 (first and second supported areas) of the heat exchanger 50 at which the heat exchanger
50 is supported on the bottom 11 of the casing 10. As a result, the water on the surfaces
of the heat exchanger 50 may directly drop to the ground along a major portion of
the lower end 51 of the heat exchanger 50 without being accumulated on the bottom
11 of the casing 10.
[0007] In general, the first cutout 12 and the bottom 11 of the casing 10 can extend along
the entire length of the heat exchanger 50 in its longitudinal direction except for
the discrete portions 52, 53 of the heat exchanger 50 at which the heat exchanger
50 is supported on the bottom 11 of the casing 10. These discrete portions 52, 53
generally correspond to areas 18, 19 (supporting areas) of the bottom 11 at which
the bottom 11 and, hence, the casing 10 are supported on a horizontal surface or via
mounting brackets 100 on a vertical wall. For this purpose, the casing 10 has supports
13 in the form of feet extending between opposite edges 14, 15 (in the particular
example longitudinal edges) of the bottom 11 and being fixed to the bottom 11. In
addition, it is known to sandwich a damping element 30, such as a rubber or metal
spring, between the horizontal surface or the mounting brackets 100 and the supports
13.
[0008] In order to most efficiently and quickly drain condensation water from the heat exchanger
50 to the outside of the casing 10, the first cutout 12 should be as large as possible.
Yet, this leads to the problem that opposite edges 16, 17 of the first cutout 12 along
the longitudinal direction of the heat exchanger 50 (or of the first cutout 12) are
located adjacent the supports 13 and, hence, the damping elements 30.
[0009] Because some water still accumulates on the bottom 11 at the areas 18, 19 at which
the heat exchanger 50 is supported, this water will be drained in close proximity
of the supports 13 and, hence, the damping elements 30. Thus, there is a risk that
the water flows along the supports 13 and the damping elements 30 and under cold weather
conditions freezes. As a result, the function of the damping elements is impaired
and vibrations of the outdoor unit may not be sufficiently absorbed by the damping
elements and are, hence, transferred to the horizontal surface or via the mounting
brackets 100 to the vertical wall.
[0010] One solution to overcome this problem would have been to increase the distance between
the supports 13 and the opposite edges 16, 17 of the first cutout 12. This would reduce
the risk of condensation water being drained out of the casing 10 flowing along the
supports 13 and the damping elements 30.
[0011] The disadvantage, however, is that the size of the first cutout 12 will be reduced,
thereby reducing the efficiency with which the water is led out of the casing 10.
Moreover, even increasing the distance may not entirely eliminate the risk, because
water may, because of the surface tension, be accumulated on a lower side (bottom
side) of the bottom and may still reach the supports 13 and the damping elements 30.
[0012] Taking the aforesaid into account, it is the object of the present disclosure to
provide an outdoor unit as described above, which enables efficient and fast drainage
of any water formed on the outer surfaces of the heat exchanger at the same time preventing
the formation of ice on the damping elements and, thereby, maintaining operability
of the damping elements.
[0013] This object is solved by the subject matter as defined in claim 1. Embodiments are
named in the dependent claims, the following description as well as the drawings.
[0014] According to an aspect, the present disclosure suggests an outdoor unit for an air
source heat pump, particularly for heating and/or cooling a space or water heating
as described in more detail above. The outdoor unit comprises a heat exchanger. The
heat exchanger is to be connected to a refrigerant circuit of the heat pump and configured
to exchange heat between outside air and the refrigerant flowing through the refrigerant
circuit. The heat exchanger may be of any known kind. In one example, the heat exchanger
is flat. In this context, the length and height may be larger than the width. In one
embodiment, the heat exchanger is longitudinal in that the length is larger than the
height. Further, the heat exchanger may have at least a first straight portion along
its longitudinal direction and an optional curved or bent portion at one end of the
straight portion in its longitudinal direction.
[0015] Furthermore, the outdoor unit comprises a bottom as part of a casing of the outdoor
unit. The casing accommodates the heat exchanger. The bottom has an upper inner side
and a lower outer side. The upper inner side is directed toward the inside of the
casing, whereas the lower outer side is directed toward the outside of the casing.
The bottom is configured to support a lower end of the heat exchanger in its height
direction. The bottom may be a longitudinal having a length larger than its width.
Further, the bottom may be pan-shaped having upright edges around its periphery (except
for drainage edges as described below).
[0016] In order to fix the outdoor unit to a horizontal surface or to a mounting bracket
attached to a vertical surface, first and second supports are provided at the lower
outer side of the bottom. The supports may in this context also be defined as a foot.
The supports may extend between and in some example beyond opposite longitudinal edges
(edges along the length) of the bottom. The supports are distanced in a longitudinal
direction of the bottom (in some examples corresponding to the longitudinal direction
of the heat exchanger).
[0017] Moreover, the bottom has at least one drainage edge extending along a portion of
the support and being configured to drain liquid (particularly condensation water)
accumulating on the upper inner side of the bottom to the outside of the casing. The
drainage edge may extend in a widthwise direction of the bottom, i.e. when the supports
extend between longitudinal edges, it extends in a widthwise direction of the bottom.
In one embodiment, the drainage edge is parallel to the widthwise direction of the
bottom. Yet, it is also conceivable that the drainage edge is angled relative to the
widthwise direction.
[0018] In order to prevent condensation water drained from the casing to reach the supports
and/or adhere to the lower outer side of the bottom due to surface tension, the drainage
edge slopes from the upper inner side of the bottom in a direction to the lower outer
side of the bottom away from the support. A sloping drainage edge on the one hand
prevents the water from adhering to the lower outer side of the bottom due to surface
tension and on the other hand provides for the advantage that a distance of the free
end (extremity) of the drainage edge may be located closer to the support as compared
to a case in which the bottom is horizontal at the drainage edge (see Figure 2A) or
in which the drainage edge slopes from the upper inner side of the bottom in a direction
to the lower outer side of the bottom toward the support (see Figure 2B).
[0019] Furthermore, it has been proven advantageous that the slope of the drainage edge
ranges from substantially vertically (1°) to an angle of 55° relative to a line perpendicular
to the bottom (vertical line in cross-section). According to another embodiment, the
slope of the drainage edge ranges from 10° to 45° relative to a line perpendicular
to the bottom (vertical line in cross-section).
[0020] According to an embodiment, a smallest distance between a free end (extremity) of
the drainage edge and the support is at least 15 mm. According to another example,
the smallest distance resides between 15 mm and 50 mm. Moreover, the distance may
be constant, which is particularly the case, if the drainage edge extends parallel
to the support (e.g. parallel to the widthwise direction of the bottom).
[0021] Moreover, the bottom supports the lower end (in the height direction) of the heat
exchanger at a discrete portion (first supported portion) of the heat exchanger, wherein
an area of the bottom corresponding to the discrete portion is pan-shaped and comprises
the drainage edge. To put it differently, the bottom may have a bead (recess or dimple)
at least in the area of the bottom corresponding to the discrete portion. Thus, any
water flowing from the heat exchanger is accumulated in the pan-shaped area and drained
via the drainage edge being a portion of the circumference of the pan-shaped area.
[0022] The outdoor unit may further comprise a damping element at the support, in particular
at a side of the support opposite to the bottom. The damping element may be of any
kind, such as a rubber or metal spring.
[0023] As previously mentioned, two of the supports are provided (first and second supports).
The two supports may be distanced from each other in a longitudinal direction of the
bottom (and according to an example also along the longitudinal direction of the heat
exchanger). Moreover, the bottom comprises a firtst cutout extending between the supports.
The first cutout may be a closed opening in the bottom or an opening in the bottom
which is open at one side. The bottom supports the lower end of the heat exchanger
in the height direction of the heat exchanger at distanced discrete portions (first
and second supported portions) of the heat exchanger in areas corresponding to the
supports. Hence, a longitudinal portion of the heat exchanger spans the first cutout
and any water flowing down from the surfaces of the heat exchanger in this portion
(portion of the heat exchanger spanning the first cutout) will drop to the ground
without being accumulated on the bottom or in the casing.
[0024] In one embodiment, two of the drainage edges are disposed at facing (opposite) edges
of the first cutout. Hence, it may be ensured that a major portion of the condensation
water is discharged through the first cutout even from the portions at the opposite
ends of the first cutout where the heat exchanger is supported on the bottom.
[0025] Alternatively or additionally, drainage edges are provided on opposite sides of one
of the supports, wherein the drainage edges slope in opposite directions away from
each other. Thus, if the heat exchanger extends beyond one of the supports, it can
be ensured that any water is efficiently and quickly drained from the area at which
the heat exchanger is supported on the bottom. This area corresponds in many cases
to the area in which the bottom is supported on a horizontal surface or on a mounting
bracket, i.e. to the area of the supports.
BRIEF DESCRIPTION OF DRAWINGS
[0026] In the following, additional features, advantages and embodiments are described with
respect to the accompanying drawings in which:
Figure 1 shows the bottom of a previous development not covered by the present application
in a top view;
Figures 2A and 2B show schematic side views of alternative drainage edges not covered
by the present application;
Figure 2C shows a schematic side view of a drainage edge according to the present
disclosure;
Figure 3 shows the bottom of an outdoor unit according to an embodiment of the present
disclosure in a top view;
Figure 4 shows the bottom of the embodiment in Figure 3 in a side view;
Figure 5 shows a portion of the bottom shown in Figure 4 at the right support in an
enlarged side view; and
Figure 6 shows a partial perspective of the left hand portion of Figure 5 with the
support 13 being omitted.
DESCRIPTION OF AN EMBODIMENT
[0027] In the following description the same or similar elements are denoted by the same
reference numerals and a repetitive description of these elements is dispensed in
order to avoid repetition.
[0028] The bottom 11 of the casing 10 (indicated by the broken line in Figure 4) in Figure
2 has opposite longitudinal edges 14 and 15 as well as opposite transverse edges 23
and 24. The bottom 11 further has an upper inner side 20 and a lower outer side 21
(see Figure 2). The upper inner side 20 is directed toward the inside of the casing
10 whereas the lower outer side 21 is directed to the outside of the casing 10. In
the present example, the upper inner side surface 20 of the bottom 11 is the top surface
of the bottom 11 facing upward and the lower outer side 21 faces downward.
[0029] A heat exchanger 50 (indicated by the broken line in Figures 3 and 4) is supported
at discrete portions 52, 53 (supported portion 52, 53) at a lower end 51 of the heat
exchanger 50 in the height direction HD. The height direction HD is perpendicular
to the plan view in Figure 3 and, hence, perpendicular to the bottom 11 as indicated
in Figure 4. The areas of the bottom 11 supporting the heat exchanger 50 and corresponding
to the supported areas are denoted by the reference numerals 18 and 19 (supporting
areas 18, 19).
[0030] The heat exchanger 50 may be configured similar to the heat exchanger has disclosed
in
JP 2013-217525 A. Thus, the heat exchanger 50 may in plan view have a straight portion 54 and a curved
portion 55. The straight portion 54 of the heat exchanger 50 extends between the supported
portions 52, 53, wherein the curved portion 55 starts at the supported portion 53.
[0031] The heat exchanger 50 may be of a flat type, wherein the height H (see Figure 4)
and the length L (see Figure 3) are larger than the width W (see Figure 3).
[0032] The bottom 11 has a first cutout 12 extended between the supporting portions 18,
19 in a longitudinal direction LD of the bottom 11. The first cutout 12 is open at
one side as visible in the plan view of Figure 3. In particular, the first cutout
12 is open at the side facing away from the longitudinal side edge 15 of the bottom
11. The depth of the first cutout 12 in a widthwise direction WD may be equal to or
larger than the width W of the heat exchanger 50. In particular, the first cutout
12 should be configured so that a portion of the lower end 51 of the heat exchanger
50 between the supported portions 52 and 53 spans the first cutout 12 and is fully
accommodated within the first cutout 12. The first cutout 12 is thus delimited by
the longitudinal side edge 15 of the bottom 11 and two opposite edges 16, 17 facing
towards each other. As a result, any water flowing down from the heat exchanger 50
may drop immediately to the ground from the lower end 51 of the heat exchanger 50
through the first cutout 12 in the bottom.
[0033] Another second cutout 25 may be provided to cover a lower end 51 of the curved portion
55 of the heat exchanger 50. The second cutout 25 extends between the supported portion
53 or the supporting portion 19 and the end of the heat exchanger 50 opposite to the
end at which the supported portion 52 of the heat exchanger 50 is located. Thus, a
portion of the lower end 51 of the heat exchanger 50 in the area of the curved portion
55 is fully accommodated within the second cutout 25. The second cutout 25 in Figure
3 is as well open at an end facing away from the transverse side edge 24 of the bottom
11. Thus, the second cutout 25 is delimited by the transverse edge 24, the bottom
11 as well as opposite edges 26 and 27 of the second cutout 25. As a result, any water
flowing down from the heat exchanger 50 may drop immediately to the ground from the
lower end 51 of the heat exchanger 50 through the second cutout 25 in the bottom.
[0034] It is clear that each first cutout 12, 25 may have an open end as the cutouts 12
and 25 in Figure 3 or that each first cutout 12, 25 may be configured as a closed
opening as shown with respect to the second cutout 25 in Figure 1.
[0035] In order to fix the casing 10 of the outdoor unit to a horizontal surface or via
mounting brackets 100 to a vertical surface such as a wall of a house, feet (supports)
13 are attached to the lower outer side 21 of the bottom 11. The supports 13 are in
plan view longitudinal and extend between and beyond the opposite longitudinal edges
14, 15 of the bottom 11 in the widthwise direction WD. As best visible from the plan
view, the opposite edges 16, 17 of the first cutout 12 extend in parallel to the side
edges of the supports 13, i.e. parallel to the widthwise direction WD of the bottom
11. The same applies for the edge 22 of the second cutout 25.
[0036] As best visible from Figure 4, damping elements 30 are sandwiched between the supports
13 and the mounting brackets 100. In the present example elastic elements (for example
cylinders) are employed as damping element 30. For example, the damping element 30
may be made of a rubber. Alternatively, metal springs may be used. The damping elements
30 serve to dampen any vibrations occurring during the operation of the heat pump
in the outdoor unit and preventing the vibrations from being transferred to the horizontal
surface or to a vertical surface to which the outdoor unit is attached to.
[0037] Furthermore, as best visible from Figure 3, the areas 28 of the bottom 11, at which
the supporting surface 18, 19 are provided, are provided with a bead (recess or dimple)
so as to be pan-shaped. Thus, any water flowing down from the heat exchanger 50 at
the supported portions 52 and 53 will be accumulated in the pan-shaped areas 28 of
the bottom.
[0038] In order to lead water accumulated in the pan-shaped areas 28 to the ground, the
pan-shaped areas 28 are delimited at a portion of their circumference by drainage
edges 22.
[0039] In particular, in the example, the drainage edges 22 are located at the edges 16,
17 and 26 of the cutouts 12 and 25. A further drainage edge 31 is located at the edge
27 of the second cutout 25 which may be configured similar to the drainage edges 22
described in the following. Yet, as the drainage edge 31 is not located in close proximity
to the supports 13 and, hence, the damping elements 30 as the drainage edges 22, the
drainage edge 31 is not that problematic with respect to the formation of ice on the
damping elements 30 and will not be described in more detail in this application.
[0040] In particular, in the course of the present development, different configurations
of the drainage edge 22 had been considered as shown in Figures 2A to C. In the first
place, it had been considered to extend the drainage edge 22 so as to increase the
distance Y of the free end 29 of the drainage edge 22 to the support 13 as shown in
Figure 2A. However, a relatively large distance Y was necessary in order to avoid
any water from reaching the supports 13 and particularly the damping elements 30.
A large distance Y, however, results in a narrower first cutout 12 in the longitudinal
direction LD (along the straight portion 54 of the heat exchanger 50). In addition,
experiments showed that water will still adhere to the lower outer side 21 of the
bottom 11 and may thus migrate to the damping element 30.
[0041] Alternatively, it had been considered to form the drainage edge 22 so as to slope
toward the support 13 as shown in Figure 2B. Yet, also in this configuration, the
distance Z needed to be relatively large with the additional disadvantage that the
bottom 11 at the edge 17 was even further directed to the first cutout 12 than the
free end 29 of the drainage edge 22. As a result, the first cutout 12 was even smaller
than compared to the case in Figure 2A.
[0042] As a consequence, according to the present disclosure, the drainage edge 22 is configured
so as to slope from the inner side surface of the bottom 11 in a direction to the
outer side surface of the bottom away from the support 13 and, hence, the damping
element 30, as schematically shown in Figure 2C and in more detail in Figure 6. This
solution provides for the best compromise of a small distance X between the free end
29 of the drainage edge 22 in a cross-sectional side view and a relatively large first
cutout 12 and the longitudinal direction LD of the bottom 11. As a result, water accumulating
in the areas 28 can efficiently and quickly be let out of the casing 10 maintaining
a relatively large first cutout 12 so that the amount of water accumulating in the
areas 28 can be reduced to a minimum.
[0043] In addition and as shown in more detail in the partial side view of Figure 5, the
distance D between the free end 29 of the drainage edge 22 and the support 13 should
be at least 15 mm and according to an embodiment resides between 15 mm and 50 mm.
[0044] The angle α of the slope of the drainage edge 22 should reside between 1° (close
to the vertical or substantially vertical) and 55°, preferably between 10° and 45°
relative to a line 32 perpendicular to the bottom 11 or a vertical line 32.
[0045] As will be apparent from Figure 3, drainage edges 22 are positioned at the edges
16, 17 of the first cutout 12. Thus, the drainage edges 22 extend parallel to the
widthwise direction WD and the supports 13 and delimit the first cutout 12. The drainage
edges 22 at the edges 16, 17 are disposed opposite to and facing each other in association
with the respective supports 13. The drainage edges 22 at the edges 16, 17 slope towards
each other.
[0046] The drainage edges 22 at the edges 17 and 26 are associated to the same support 13,
but different cutouts 12, 25. The drainage edges 22 at the edges 17 and 26 are provided
on opposite sides of the support 13 facing away from each other as clearly apparent
from Figures 4 and 5 as well as in the plan view of Figure 3. The drainage edges 22
at the edges 17 and 26 slope in opposite directions away from each other.
[0047] It is clear that the above description relates to a particular embodiment and that
modifications are conceivable within the scope of the present disclosure and without
sparking from the scope of the appended claims. For example, it is clear that the
cutouts may be configured to have open and/or to be closed openings. Moreover, it
is clear that the positioning of the drainage edges 22 may be adapted to the shape
of the heat exchanger and/or the configuration of the bottom plate and the cutouts.
Thus, there may even be further drainage edges 22 or less drainage edges 22 than described
in the above embodiment.
LIST OF REFERENCES
[0048]
Casing 10
Bottom 11
First cutout 12
Support 13
Longitudinal edge of the bottom 14
Longitudinal edge of the bottom 15
Transverse edge of the cutout 16
Transverse edge of the cutout 17
Supporting area 18
Supporting area 19
Upper inner side 20
Lower outer side 21
Drainage edge 22
Transverse edge of the bottom 23
Transverse edge of the bottom 24
Second cutout 25
Edge of the further cutout 26
Edge of the further cutout 27
Pan-shaped area 28
Free end 29
Damping element 30
Further drainage edge 31
Vertical line 32
Heat exchanger 50
Lower end of heat exchanger 51
Supported area 52
Supported area 53
Straight portion 54
Curved portion 55
Mounting brackets 100
1. Outdoor unit for an air source heat pump, comprising:
a heat exchanger (50);
a bottom (11) having an upper inner side (20) and a lower outer side (21), the bottom
(11) supporting a lower end (51) of the heat exchanger (50); and
first and second supports (13) at the lower outer side (21) of the bottom (11) for
supporting the bottom (11), wherein the bottom (11) has at least one drainage edge
(22) extending along a portion of the supports (13) and being configured to drain
liquid accumulating on the upper inner side (20) of the bottom (11) to the outside,
wherein the drainage edge (22) slopes from the inner side of the bottom (11) in a
direction to the outer side of the bottom (11) away from the supports (13) characterized in that the bottom (11) comprises a first cutout (12) extending between the first and second
supports (13), wherein the bottom (11) supports the lower end of the heat exchanger
(51) at distanced discrete first and second supported portions (52, 53) of the heat
exchanger (50) in areas corresponding to the first and second supports (13) so that
a portion of the heat exchanger (50) spans the cutout (12) and wherein the first cutout
(12) extends along a major portion of the lower end (51) of the heat exchanger (50)
between the first and second supported portions (52, 53) of the heat exchanger (50).
2. Outdoor unit according to claim 1, wherein the slope of the drainage edge (22) is
angled from 1° to 55°, preferably from 10° to 45° relative to a line perpendicular
to the bottom (11) .
3. Outdoor unit according to claim 1 or 2, wherein a smallest distance between a free
end (29) of the drainage edge (22) and the support (13) is at least 15 mm and preferably
resides between 15 mm and 50 mm.
4. Outdoor unit according to any one of the preceding claims, wherein an area of the
bottom (11) corresponding to the first supported portion (52) is pan-shaped and comprises
the drainage edge (22).
5. Outdoor unit according to any one of the preceding claims, wherein the first support
(13) extends between two opposite edges of the bottom (11).
6. Outdoor unit according to any one of the preceding claims, further comprising a damping
element (30) at the first support (13) .
7. Outdoor unit according to any one of the preceding claims, wherein two of the drainage
edges (22) are provided and respectively disposed at facing edges of the cutout (12).
8. Outdoor unit according to any one of the preceding claims, wherein two of the drainage
edges (22) are provided and respectively disposed on opposite sides of the first support
(13), wherein the drainage edges (22) slope in opposite directions away from each
other.
9. Outdoor unit according to any one of the preceding claims, wherein the heat exchanger
(50) has a straight portion (54) and a curved portion (55), wherein the straight portion
(54) extends between the first and second supported portions (52,53) and the curved
portion (55) starts at the second supported portion (53), and wherein the outdoor
unit further comprises a second cutout (25) provided to cover a lower end (51) of
the curved portion (55) of the heat exchanger (50), the second cutout (25) extending
between the second supported portion (53) and the end of the heat exchanger (50) opposite
to the end at which the first supported portion (52) is located.
1. Außeneinheit für eine Luftquellen-Wärmepumpe, umfassend:
einen Wärmetauscher (50);
einen Boden (11), der eine obere Innenseite (20) und eine untere Außenseite (21) aufweist,
wobei der Boden (11) ein unteres Ende (51) des Wärmetauschers (50) stützt; und
erste und zweite Stützen (13) an der unteren Außenseite (21) des Bodens (11) zum Stützen
des Bodens (11),
wobei der Boden (11) mindestens einen Drainagerand (22) aufweist, der sich entlang
eines Abschnitts der Stützen (13) erstreckt und ausgestaltet ist, Flüssigkeit, die
sich auf der oberen Innenseite (20) des Bodens (11) ansammelt, nach außen abzuleiten,
wobei sich der Drainagerand (22) von der Innenseite des Bodens (11) in eine Richtung
zu der Außenseite des Bodens (11) weg von den Stützen (13) neigt, dadurch gekennzeichnet, dass der Boden (11) einen ersten Ausschnitt (12) umfasst, der sich zwischen den ersten
und zweiten Stützen (13) erstreckt, wobei der Boden (11) das untere Ende des Wärmetauschers
(51) an beabstandeten, diskreten ersten und zweiten gestützten Abschnitten (52, 53)
des Wärmetauschers (50) in Bereichen stützt, die den ersten und zweiten Stützen (13)
entsprechen, sodass ein Abschnitt des Wärmetauschers (50) den Ausschnitt (12) überspannt,
und wobei sich der erste Ausschnitt (12) entlang eines Hauptabschnitts des unteren
Endes (51) des Wärmetauschers (50) zwischen den ersten und zweiten gestützten Abschnitten
(52, 53) des Wärmetauschers (50) erstreckt.
2. Außeneinheit nach Anspruch 1, wobei die Neigung des Drainagerands (22) von 1° bis
55°, vorzugsweise von 10° bis 45° in Bezug auf eine Linie senkrecht zu dem Boden (11)
gewinkelt ist.
3. Außeneinheit nach Anspruch 1 oder 2, wobei ein kleinster Abstand zwischen einem freien
Ende (29) des Drainagerands (22) und der Stütze (13) mindestens bei 15 mm liegt und
vorzugweise zwischen 15 mm und 50 mm beträgt.
4. Außeneinheit nach einem der vorstehenden Ansprüche, wobei ein Bereich des Bodens (11),
der dem ersten gestützten Abschnitt (52) entspricht, pfannenförmig ist und den Drainagerand
(22) umfasst.
5. Außeneinheit nach einem der vorstehenden Ansprüche, wobei sich die erste Stütze (13)
zwischen zwei gegenüberliegenden Rändern des Bodens (11) erstreckt.
6. Außeneinheit nach einem der vorstehenden Ansprüche, weiter umfassend ein Dämpfungselement
(30) an der ersten Stütze (13).
7. Außeneinheit nach einem der vorstehenden Ansprüche, wobei zwei der Drainageränder
(22) bereitgestellt und jeweils an einander zugewandten Rändern des Ausschnitts (12)
angeordnet sind.
8. Außeneinheit nach einem der vorstehenden Ansprüche, wobei zwei der Drainageränder
(22) bereitgestellt und jeweils an gegenüberliegenden Seiten der ersten Stütze (13)
angeordnet sind, wobei sich die Drainageränder (22) in entgegengesetzte Richtungen
voneinander weg neigen.
9. Außeneinheit nach einem der vorstehenden Ansprüche, wobei der Wärmetauscher (50) einen
geraden Abschnitt (54) und einen gekrümmten Abschnitt (55) aufweist, wobei sich der
gerade Abschnitt (54) zwischen den ersten und zweiten gestützten Abschnitten (52,
53) erstreckt und der gekrümmte Abschnitt (55) an dem zweiten gestützten Abschnitt
(53) beginnt, und wobei die Außeneinheit weiter einen zweiten Ausschnitt (25) umfasst,
der bereitgestellt ist, um ein unteres Ende (51) des gekrümmten Abschnitts (55) des
Wärmetauschers (50) zu bedecken, wobei sich der zweite Ausschnitt (25) zwischen dem
zweiten gestützten Abschnitt (53) und dem Ende des Wärmetauschers (50) erstreckt,
das dem Ende gegenüberliegt, an dem sich der erste gestützte Abschnitt (52) befindet.
1. Unité extérieure pour une pompe à chaleur à source d'air, comprenant :
un échangeur de chaleur (50) ;
un fond (11) ayant un côté intérieur supérieur (20) et un côté extérieur inférieur
(21), le fond (11) supportant une extrémité inférieure (51) de l'échangeur de chaleur
(50) ; et
des premier et second supports (13) au niveau du côté extérieur inférieur (21) du
fond (11) pour supporter le fond (11),
dans laquelle le fond (11) a au moins un bord de drainage (22) s'étendant le long
d'une portion des supports (13) et étant configuré pour drainer un liquide s'accumulant
sur le côté intérieur supérieur (20) du fond (11) vers l'extérieur,
dans laquelle le bord de drainage (22) s'incline depuis le côté intérieur du fond
(11) dans un sens vers le côté extérieur du fond (11) à l'écart des supports (13),
caractérisée en ce que le fond (11) comprend une première découpe (12) s'étendant entre les premier et second
supports (13), dans laquelle le fond (11) supporte l'extrémité inférieure de l'échangeur
de chaleur (51) à des première et seconde portions supportées distinctes distancées
(52, 53) de l'échangeur de chaleur (50) dans des zones correspondant aux premier et
second supports (13) de sorte qu'une portion de l'échangeur de chaleur (50) couvre
la découpe (12) et dans laquelle la première découpe (12) s'étend le long d'une portion
majeure de l'extrémité inférieure (51) de l'échangeur de chaleur (50) entre les première
et seconde portions supportées (52, 53) de l'échangeur de chaleur (50).
2. Unité extérieure selon la revendication 1, dans laquelle la pente du bord de drainage
(22) est inclinée de 1° à 55°, de préférence de 10° à 45° par rapport à une ligne
perpendiculaire au fond (11).
3. Unité extérieure selon la revendication 1 ou 2, dans laquelle une distance la plus
petite entre une extrémité libre (29) du bord de drainage (22) et le support (13)
est au moins 15 mm et réside de préférence entre 15 mm et 50 mm.
4. Unité extérieure selon l'une quelconque des revendications précédentes, dans laquelle
une zone du fond (11) correspondant à la première portion supportée (52) est en forme
de poêle et comprend le bord de drainage (22).
5. Unité extérieure selon l'une quelconque des revendications précédentes, dans laquelle
le premier support (13) s'étend entre deux bords opposés du fond (11).
6. Unité extérieure selon l'une quelconque des revendications précédentes, comprenant
en outre un élément d'amortissement (30) au premier support (13).
7. Unité extérieure selon l'une quelconque des revendications précédentes, dans laquelle
deux des bords de drainage (22) sont prévus et respectivement disposés à des bords
se faisant face de la découpe (12).
8. Unité extérieure selon l'une quelconque des revendications précédentes, dans laquelle
deux des bords de drainage (22) sont prévus et respectivement disposés sur des côtés
opposés du premier support (13), dans laquelle les bords de drainage (22) s'inclinent
dans des sens opposés l'un à l'autre.
9. Unité extérieure selon l'une quelconque des revendications précédentes, dans laquelle
l'échangeur de chaleur (50) a une portion droite (54) et une portion incurvée (55),
dans laquelle la portion droite (54) s'étend entre les première et seconde portions
supportées (52, 53) et la portion incurvée (55) commence à la seconde portion supportée
(53), et dans laquelle l'unité extérieure comprend en outre une seconde découpe (25)
prévue pour recouvrir une extrémité inférieure (51) de la portion incurvée (55) de
l'échangeur de chaleur (50), la seconde découpe (25) s'étendant entre la seconde portion
supportée (53) et l'extrémité de l'échangeur de chaleur (50) à l'opposé de l'extrémité
à laquelle la première portion supportée (52) est située.