TECHNICAL FIELD
[0001] This disclosure relates to a compressor having a mixed compression stage and a radial
compression stage. The compressor is used in a heating, ventilation, and air conditioning
(HVAC) chiller system, for example.
BACKGROUND
[0002] Refrigerant compressors are used to circulate refrigerant in a chiller via a refrigerant
loop. Refrigerant loops are known to include a condenser, an expansion device, and
an evaporator. The compressor compresses the fluid, which then travels to a condenser,
which in turn cools and condenses the fluid. The refrigerant then goes to an expansion
device, which decreases the pressure of the fluid, and to the evaporator, where the
fluid is vaporized, completing a refrigeration cycle.
[0003] Many refrigerant compressors are centrifugal compressors and have an electric motor
that drives at least one impeller to compress refrigerant. Fluid flows into the impeller
in an axial direction, and is expelled radially from the impeller. The fluid is then
directed downstream for use in the chiller system.
SUMMARY
[0004] A refrigerant compressor according to an exemplary aspect of the present disclosure
includes, among other things, a first compression stage arranged in a main refrigerant
flow path. The first compression stage is a mixed compression stage having both axial
and radial components. The compressor further includes a second compression stage
arranged in the main refrigerant flow path downstream of the first compression stage.
The second compression stage is a radial compression stage.
[0005] In a further embodiment, the first compression stage is arranged such that fluid
is configured to flow therethrough along a direction inclined relative to an axis
of rotation of the refrigerant compressor.
[0006] In a further embodiment, the direction is inclined at an angle of less than 45° relative
to the axis of rotation of the refrigerant compressor.
[0007] In a further embodiment, the main refrigerant flow path is defined between an outer
wall and an inner wall. Further, adjacent an inlet of the first compression stage,
the outer wall and inner wall are radially spaced-apart from one another by a first
radial distance, and adjacent an outlet of the first compression stage, the outer
wall and inner wall are radially spaced-apart from one another by a second radial
distance less than the first radial distance.
[0008] In a further embodiment, the outer wall and the inner wall are curved within the
first compression stage.
[0009] In a further embodiment, within the first compression stage, the outer wall and the
inner wall are concave when viewed from a radially outer location.
[0010] In a further embodiment, the outer wall and the inner wall have inflection points
and smoothly transition such that the outer wall and the inner wall are substantially
parallel to one another between the first compression stage and the second compression
stage.
[0011] In a further embodiment, an array of static diffuser vanes is arranged in the main
refrigerant flow path between the first compression stage and the second compression
stage.
[0012] In a further embodiment, the second compression stage includes an impeller configured
to turn a substantial axial flow to a substantial radial flow.
[0013] In a further embodiment, the main refrigerant flow path makes a substantially 180
degree turn between the first and second compression stages.
[0014] In a further embodiment, the main refrigerant flow path includes a cross-over bend
between the first and second compression stages.
[0015] In a further embodiment, deswirl vanes are arranged within the main refrigerant flow
path downstream of the cross-over bend and upstream of the second compression stage.
[0016] In a further embodiment, the refrigerant compressor is used in a heating, ventilation,
and air conditioning (HVAC) chiller system.
[0017] A refrigerant system according to an exemplary aspect of the present disclosure includes,
among other things, a main refrigerant loop including a compressor, a condenser, an
evaporator, and an expansion device. The compressor includes a first compression stage
arranged in a main refrigerant flow path. The first compression stage is a mixed compression
stage having both axial and radial components. Further, a second compression stage
is arranged in the main refrigerant flow path downstream of the first compression
stage. The second compression stage is a radial compression stage.
[0018] In a further embodiment, the first compression stage is arranged such that fluid
is configured to flow therethrough along a direction inclined relative to an axis
of rotation of the refrigerant compressor at an angle of less than 45° relative to
the axis of rotation of the refrigerant compressor.
[0019] In a further embodiment, the main refrigerant flow path is defined between an outer
wall and an inner wall, and the outer wall and the inner wall are curved within the
first compression stage such that the outer wall and inner wall are concave when viewed
from a radially outer location.
[0020] In a further embodiment, an array of static diffuser vanes is arranged in the main
refrigerant flow path between the first compression stage and the second compression
stage.
[0021] In a further embodiment, the second compression stage includes an impeller configured
to turn a substantial axial flow to a substantial radial flow.
[0022] In a further embodiment, the main refrigerant flow path makes a substantially 180
degree turn between the first and second compression stages.
[0023] In a further embodiment, the refrigerant system is a heating, ventilation, and air
conditioning (HVAC) chiller system.
BRIEF DESCRIPTION OF THE DRAWINGS
[0024]
Figure 1 schematically illustrates a refrigerant system.
Figure 2 schematically illustrates a first example compressor having two compression
stages, with a first compression stage being a mixed compression stage and a second
compression stage being a radial compression stage.
Figure 3 schematically illustrates a second example compressor having two compression
stages, with a first compression stage being a mixed compression stage and a second
compression stage being a radial compression stage.
DETAILED DESCRIPTION
[0025] Figure 1 illustrates a refrigerant system 10. The refrigerant system 10 includes
a main refrigerant loop, or circuit, 12 in communication with a compressor 14, a condenser
16, an evaporator 18, and an expansion device 20. This refrigerant system 10 may be
used in a chiller, for example. In that example, a cooling tower may be in fluid communication
with the condenser 16. While a particular example of the refrigerant system 10 is
shown, this application extends to other refrigerant system configurations, including
configurations that do not include a chiller. For instance, the main refrigerant loop
12 can include an economizer downstream of the condenser 16 and upstream of the expansion
device 20.
[0026] Figure 2 schematically illustrates a first example refrigerant compressor according
to this disclosure. In Figure 2, a portion of the compressor 14 is shown in cross-section.
It should be understood that Figure 2 only illustrates an upper portion of the compressor
14, and that the compressor 14 would essentially include the same structure reflected
about its central longitudinal axis A.
[0027] In this example, the compressor 14 has two compression stages 22, 24 spaced-apart
from one another along the axis A. The compression stages 22, 24 each include a plurality
of blades (e.g., an array of blades) arranged on a disk, for example, and rotatable
about the axis A via a motor 26. In this example, the motor 26 is an electric motor
arranged about the axis A. The compression stages 22, 24 may be coupled to the motor
26 by separate shafts or by a common shaft. Two shafts are shown schematically in
Figure 2.
[0028] The compressor 14 includes an outer wall 28 and an inner wall 30 which together bound
a main flow path 32. The main flow path 32 extends between an inlet 34 and an outlet
36 of the compressor 14. The outer and inner walls 28, 30 may be provided by one or
more structures.
[0029] Between the inlet 34 and the first compression stage 22, fluid F within the main
flow path 32 flows in a first direction F
1, which is an axial direction substantially parallel to the axis A. The "axial" direction
is labeled in Figure 2 for reference. The fluid F is refrigerant in this disclosure.
[0030] The first compression stage 22 includes a plurality of blades 33 arranged for rotation
about the axis A. Adjacent the inlet 331 of the first compression stage 22, the outer
and inner walls 28, 30 are spaced-apart by a radial distance D
1. Adjacent the outlet 33O of the first compression stage 22, the outer and inner walls
28, 30 are spaced-apart by a radial distance D
2, which is less than D
1. The distances D
1 and D
2 are measured normally to the axis A.
[0031] Within the first compression stage 22, the outer and inner walls 28, 30 are arranged
such that the fluid F is directed in a second direction F
2, which has both axial and radial components. In this regard, the first compression
stage 22 may be referred to as a "mixed" compression stage, because the fluid F within
the first compression stage 22 has both axial and radial flow components. The "radial"
direction is labeled in Figure 2 for reference.
[0032] In one example, the second direction F
2 is inclined at an angle of less than 45° relative to the first direction F
1 and relative to the axis A. In this way, the second direction F
2 is primarily axial but also has a radial component (i.e., the axial component is
greater than the radial component).
[0033] Further, between the inlet 331 and outlet 33O, the inner and outer walls 28, 30 are
not straight. Rather, the inner and outer walls 28, 30 are curved. Specifically, in
this example, the inner and outer walls 28, 30 are curved such that they are generally
concave within the first compression stage 22 when viewed from a radially outer location,
such as the location 35 in Figure 2. Thus, the fluid F smoothly transitions from a
purely axial flow to a mixed flow having both axial and radial components.
[0034] Downstream of the first compression stage 22, the outer and inner walls 28, 30 have
inflection points and smoothly transition such that they are substantially parallel
to one another. As such, the fluid F is directed in a third direction F
3, which is substantially parallel to both the first direction F
1 and the axis A. As the fluid F is flowing in the third direction F
3, the fluid F also flows through an array of static diffuser vanes 38 in this example.
[0035] Downstream of the diffuser vanes 38, the fluid F is directed to the second compression
stage 24, which in this example includes an impeller 40 configured to turn the fluid
F flowing in a substantially axial direction to a substantially radial direction.
In particular, the impeller 40 includes an inlet 40I arranged axially, substantially
parallel to the axis A, and an outlet 40O arranged radially, substantially perpendicular
to the axis A.
[0036] In particular, the fluid F enters the second compression stage 24 flowing in the
third direction F
3 and exits the second compression stage 24 flowing in a fourth direction F
4, which in one example is substantially parallel to the radial direction. In this
disclosure, the fourth direction F
4 is inclined relative to the axis A at an angle greater than 45° and less than or
equal to 90°. In one particular example, the fourth direction F
4 is substantially equal to 90°. In this way, the second stage compression 24 may be
referred to as a radial compression stage.
[0037] The combination of the first compression stage 22 having both axial and radial components
(i.e., second direction F
2 is inclined at less than 45°) with the second compression stage 24 being primarily
radial (i.e., the fourth direction F
4 is substantially equal to 90°), the compressor 14 is more compact than a compressor
that includes two radial impellers, for example. The compressor 14 also exhibits an
increased operating range, in that it can operate without surging at lower capacities,
relative to compressors with two axial impellers. Accordingly, the compressor 14 strikes
a unique balance between being compact and efficient.
[0038] Figure 3 schematically illustrates a second example refrigerant compressor according
to this disclosure. To the extent not otherwise described or shown, the compressor
114 corresponds to the compressor 14 of Figure 2, with like parts having reference
numerals preappended with a "1."
[0039] Like the compressor 14, the compressor 114 has two compression stages 122, 124 spaced-apart
from one another along an axis A. The first compression stage 122 is a "mixed" compression
stage and is arranged substantially similar to the first compression stage 22. The
second compression stage 124 is a radial compression stage and is likewise arranged
substantially similar to the second compression stage 24.
[0040] Unlike the compressor 14, the main flow path 132 of the compressor 114 includes a
180-degree bend between the first and second compression stages 122, 124. Specifically,
downstream of the first compression stage 122, the main flow path 132 turns and projects
radially outward from the axis A. Specifically, the main flow path 132 is substantially
normal to the axis A within a first section 190. The main flow path 132 turns again
by substantially 180 degrees in a cross-over bend 192, such that the main flow path
132 projects radially inward toward the axis A in a second section 194, which may
be referred to as a return channel. The second section includes deswirl vanes 196
in this example, which ready the flow of fluid F for the second compression stage
124. Further, downstream of the second compression stage 124, the compressor 114 includes
an outlet volute 198 which spirals about the axis A and leads to a compressor outlet.
The compressor 14 may also include an outlet volute.
[0041] It should be understood that terms such as "axial" and "radial" are used above with
reference to the normal operational attitude of a compressor. Further, these terms
have been used herein for purposes of explanation, and should not be considered otherwise
limiting. Terms such "generally," "about," and "substantially" are not intended to
be boundaryless terms, and should be interpreted consistent with the way one skilled
in the art would interpret those terms.
[0042] Although the different examples have the specific components shown in the illustrations,
embodiments of this disclosure are not limited to those particular combinations. It
is possible to use some of the components or features from one of the examples in
combination with features or components from another one of the examples.
[0043] One of ordinary skill in this art would understand that the above-described embodiments
are exemplary and non-limiting. That is, modifications of this disclosure would come
within the scope of the claims. Accordingly, the following claims should be studied
to determine their true scope and content.
1. A refrigerant compressor (14), comprising:
a first compression stage (22) arranged in a main refrigerant flow path (32), wherein
the first compression stage (22) is a mixed compression stage having both axial and
radial components; and
a second compression stage (24) arranged in the main refrigerant flow path (32) downstream
of the first compression stage (22), wherein the second compression stage (24) is
a radial compression stage.
2. The refrigerant compressor (14) as recited in claim 1, wherein the first compression
stage (22) is arranged such that fluid is configured to flow therethrough along a
direction inclined relative to an axis of rotation of the refrigerant compressor (14),
optionally wherein the direction is inclined at an angle of less than 45° relative
to the axis of rotation (A) of the refrigerant compressor (14).
3. The refrigerant compressor (14) as recited in claim 1 or 2, wherein:
the main refrigerant flow path (32) is defined between an outer wall (28) and an inner
wall (30),
adjacent an inlet (331) of the first compression stage (22), the outer wall (28) and
inner wall (30) are radially spaced-apart from one another by a first radial distance
(D1), and
adjacent an outlet of the first compression stage (33O), the outer wall (28) and inner
wall (30) are radially spaced-apart from one another by a second radial distance (D2)
less than the first radial distance (D1),
optionally wherein the outer wall (28) and the inner wall (30) are curved within the
first compression stage (22).
4. The refrigerant compressor (14) as recited in claim 3, wherein, within the first compression
stage (22), the outer wall (28) and the inner wall (30) are concave when viewed from
a radially outer location; or,
wherein the outer wall (28) and the inner wall (30) have inflection points and smoothly
transition such that the outer wall (28) and the inner wall (30) are substantially
parallel to one another between the first compression stage (22) and the second compression
stage (24), optionally wherein an array of static diffuser vanes (38) is arranged
in the main refrigerant flow path (32) between the first compression stage (22) and
the second compression stage (24).
5. The refrigerant compressor (14) as recited in any preceding claim, wherein the second
compression stage (24) includes an impeller (40) configured to turn a substantial
axial flow to a substantial radial flow.
6. The refrigerant compressor (114) as recited in any preceding claim, wherein the main
refrigerant flow path (132) makes a substantially 180 degree turn between the first
(122) and second (124) compression stages.
7. The refrigerant compressor (114) as recited in claim 6, wherein the main refrigerant
flow (132) path includes a cross-over bend (192) between the first (122) and second
(124) compression stages, optionally wherein deswirl vanes (196) are arranged within
the main refrigerant flow path (132) downstream of the cross-over bend (192) and upstream
of the second compression stage (124).
8. The refrigerant compressor (14) as recited in any preceding claim, wherein the refrigerant
compressor (14) is used in a heating, ventilation, and air conditioning (HVAC) chiller
system.
9. A refrigerant system (10) comprising:
a main refrigerant loop (12) including a compressor (14), a condenser (16), an evaporator
(18), and an expansion device (20), wherein the compressor (14) includes:
a first compression stage (22) arranged in a main refrigerant flow path (32), wherein
the first compression stage (22) is a mixed compression stage having both axial and
radial components; and
a second compression stage (24) arranged in the main refrigerant flow path (32) downstream
of the first compression stage (22),
wherein the second compression stage (24) is a radial compression stage.
10. The refrigerant system (10) as recited in claim 9, wherein the first compression stage
(22) is arranged such that fluid is configured to flow therethrough along a direction
inclined relative to an axis of rotation of the refrigerant compressor (14) at an
angle of less than 45° relative to the axis of rotation (A) of the refrigerant compressor
(14).
11. The refrigerant system (10) as recited in claim 9 or 10, wherein:
the main refrigerant flow path (32) is defined between an outer wall (28) and an inner
wall (30), and
the outer wall (28) and the inner wall (30) are curved within the first compression
stage (22) such that the outer wall (28) and inner wall (30) are concave when viewed
from a radially outer location.
12. The refrigerant system (10) as recited in any one of claims 9 to 11, wherein an array
of static diffuser vanes (38) is arranged in the main refrigerant flow path (32) between
the first compression stage (22) and the second compression stage (24).
13. The refrigerant system as recited in any one of claims 9 to 12, wherein the second
compression stage (24) includes an impeller (40) configured to turn a substantial
axial flow to a substantial radial flow.
14. The refrigerant system (10) as recited in any one of claims 9 to 13, wherein the main
refrigerant flow path (132) makes a substantially 180 degree turn between the first
(122) and second (124) compression stages.
15. The refrigerant system (10) as recited in any one of claims 9 to 14, wherein the refrigerant
system (10) is a heating, ventilation, and air conditioning (HVAC) chiller system.