[0001] The present disclosure generally relates to compressors and, more particularly, relates
to crankcase castings used in compressors for high-pressure fluids.
[0002] Compressors are common devices for compressing various fluids into higher densities.
Compressors come in a variety of forms including, but not limited to, reciprocating,
scroll and screw compressors. With reciprocating compressors, a piston moves back
and forth within a compression cylinder to compress the working fluid within the cylinder,
while with scroll compressors, interleaved scrolls rotate relative to one another
to pressurize the fluid between the scrolls. Typically, one of the scrolls is fixed
with the other scroll eccentrically rotating about that fixed scroll, but both scrolls
can also rotate simultaneously as long as their axes of rotation are offset. Similarly,
screw compressors use multiple meshed positive-displacement helical screws to force
fluid into a smaller space.
[0003] In connection with air conditioning equipment, reciprocating compressors are often
used. The compressor is used to compress the refrigerant such as, but not limited
to, carbon dioxide (CO
2). Typically, the refrigerant is compressed to a very high pressure. This increases
the temperature of the refrigerant so that when it then passes on to a condenser and
then on to an evaporator, heat from the area to be cooled can be extracted and dissipated
to the outside ambient air.
[0004] In conventional CO
2 reciprocating compressors, the refrigerant is compressed to a very high pressure
of, for example, 500-2000 psi. This compression occurs within the crankcase of the
compressor. Not only must be the crankcase therefore be manufactured from a material
able to withstand that high pressure fluid, but current safety regulations in the
United States, the European Union and other countries require that the crankcase be
able to withstand at least five times the operating pressure of the refrigerant. This
is known as the burst pressure, and is dictated by, among other things, European Union
Safety Standard EN60335-2-34. Another applicable standard is European Union Safety
Standard EN378 which requires that the crankcase be able to withstand two to five
times the low side pressure relief valve setting of the compressor.
[0005] Prior art systems have achieved this by manufacturing the crankcase through a casting
process wherein iron is cast into the desired shape for the crankcase and housing
for the overall compressor. In order to satisfy the burst strength and pressure requirements,
such castings are manufactured with relatively thick walls. This results in a relatively
heavy compressor and adds to the overall cost of the unit. In addition, ductile cast
iron is typically required to satisfy the strength requirements, but as this is one
of the more expensive cast materials available, this necessarily adds to the expense
of the compressor.
[0006] Accordingly, it can be seen that a need exists for a high pressure compressor crankcase
casting which is lighter than those currently available, and yet is able to provide
the necessary burst strength.
[0007] US 3189255 and
EP 1469200 disclose compressors of the type defined in the pre-characterising part of claim
1.
[0008] In accordance with one aspect the invention provides a compressor, comprising: a
motor; a compression element operatively associated with the motor; a housing surrounding
the motor and the compression element, wherein the housing includes a crankcase with
connecting rods and a drive shaft within the crankcase; and characterised by at least
one bridge extending across the crankcase and spanning between opposing side walls
of the housing proximate to the compression element, the at least one bridge being
integrally cast with the housing.
[0009] This and other aspects and features of the disclosure will become more apparent upon
reading the following detailed description when taken in conjunction with the accompanied
drawings.
FIG. 1 is an isometric view of a compressor constructed in accordance with the teachings
of the disclosure;
FIG. 2 is a lateral cross-sectional view of the compressor of FIG. 1;
FIG. 3 is a longitudinal cross-sectional view of the compressor of FIG. 1
FIG. 4 is an isometric view of a casting constructed in accordance with the teachings
of the disclosure;
FIG. 5 is a longitudinal cross-sectional view of the casting of FIG. 4 taken along
line 5-5 of FIG. 4;
FIG. 6 is a lateral cross-sectional view of the casting of FIG. 4; and
FIG 7 is a bottom view of the casting of FIG. 4.
[0010] While the present disclosure is susceptible of various modifications and alternative
constructions, certain illustrative embodiments thereof will be shown and described
below in detail. It should be understood, however, that there is no intention to be
limited to the specific embodiments disclosed, but on the contrary, the intention
is to cover all modifications, alternative constructions, and equivalents falling
within the scope of the invention as defined by the claims.
[0011] Referring now to the drawings, and with particular reference to FIG. 1, a compressor
constructed in accordance with the teachings of the disclosure is generally referred
to by reference numeral 20. While the following detailed description and
drawings are made in reference to a reciprocating type of compressor, it to be understood
that the teachings of the disclosure can be used to manufacture a casting for use
with many types of compressors including, but not limited to, reciprocating, scroll
and screw compressors. In addition, while reference is made to compression of refrigerants,
of course a compressor constructed in accordance with the teaching of the disclosure
can be used to compress any type of fluid as well.
[0012] Referring again to FIG. 1, the compressor 20 is shown to include a housing or casting
22 having a power end 24 and a working end 26. As will be described in further detail
therein, the power and working ends are constructed so as to draw uncompressed fluid
into an intake 28 and produce compressed fluid at a discharge 30. With reference now
to FIGS. 2 and 3, the compressor 20 is shown in lateral and longitudinal cross-section.
Starting first with the longitudinal sectional view of FIG. 3, a motor 32 is shown
mounted within a motor compartment 34 of the housing 22, while a plurality of compression
elements 36 are mounted within a crankcase compartment 38. As will be noted, the motor
compartment 34 and crankcase compartment 38 are integrally formed together as by a
metal casting process.
[0013] The motor 32 may include a stator 40 within which a rotor 42 rotates when electrically
induced. A driveshaft 44 extends from the rotor 42 and into the crankcase compartment
38. As shown in both FIGS. 2 and 3, the driveshaft 44 terminates at a distal end 46
with one or more eccentrics 48. As one of ordinary skill in the art will understand,
the eccentrics 48 are provided so as to rotate in offset fashion relative to the driveshaft.
[0014] Accordingly, when each eccentric 48 is mounted to a connecting rod 50, which in turn
is connected a piston 52 by way of a wrist pin 54 or the like, the piston 52 is caused
to reciprocate back and forth as the driveshaft 44 rotates. Cast into the crankcase
compartment 38 are a plurality of compression cylinders 56 which are sized so as to
closely receive a piston 52 therein and allow for such reciprocating motion of the
piston 52 to compress a working fluid (not showing) such as a refrigerant like CO
2 or the like. Enclosing each cylinder 56 may be a cylinder head 58.
[0015] As best seen in FIG. 2, the crankcase compartment 38 may include first and second
generally opposed side walls 60, 62 connected by an upper or top wall 64. In order
to allow for periodic access into the crankcase compartment 38, a removable bottom
cover 66 may be connected to the crankcase compartment 38 by way of a series of fasteners
68, such as bolts or the like. In so doing, the crankcase compartment 38 is substantially
sealed. This is of importance in that the CO
2 refrigerant compressed by the compressor 20 is typically compressed to a pressure
of 500-1000 psi (∼ 3.5 - 7 MPa) or more. This is known as the operating pressure of
the working fluid. In addition, current safety regulations require that the housing
22, specifically the crankcase compartment 38, be manufactured so as to have a burst
pressure which is at least five times that of the operating pressure of the working
fluid. This equates to a burst pressure of 5000 psi (∼ 34MPA).
[0016] Conventionally, this has been accomplished by manufacturing the opposing walls 60,
62, top wall 64, and bottom cover 66 from a very thick, cast iron material. This in
turn greatly adds to the overall size, weight and cost of the compressor, especially
considering that expensive ductile cast iron is typically required. However, this
disclosure sets forth a compressor which can be manufactured from substantially less
material and with substantially thinner walls. By way of example, while the actual
wall thickness (t) will depend on the pressure to be contained, the present disclosure
allows for walls 60 and 62 to have a maximum wall thickness of 25 millimeters for
the pressure ranges set forth herein. Depending on the pressure to be contained, a
suitable range of wall thicknesses (t) is between 16 millimeters and 25 millimeters,
all representing substantial size, weight and cost reductions compared to prior art
designs.
[0017] One way the inventors are able to accomplish this is by providing a bridge 70 as
shown best in FIGS. 3, 5, 6 and 7. The bridge 70 may be integrally cast with the walls
60 and 62 and extend therebetween. More specifically, as opposed to prior art devices
which provide a crankcase compartment 38 which would be completely open between the
housing walls 60, 62, the present disclosure provides the bridge 70 spanning between
the walls 60 and 62. This in turn enables the walls 60 and 62, as well as top wall
64 and bottom cover 66 to be manufactured from relatively thin materials.
[0018] For example, the inventors have found, through finite element analysis and other
inventive experimentation, that the thickness (t) of walls 60 and 62 can be reduced
by up to twenty-nine (29) percent or more by employing the bridge 70. More specifically,
by employing the bridge 70, one tested wall had a maximum first principal stress at
a certain wall location of 219 MPa, whereas the same thickness wall but without a
bridge had a maximum first principal stress at the same wall location of 283 MPa.
Comparing these two values, this showed a stress ratio of 283/219 or 1.29, thus illustrating
the at least twenty-nine percent savings in wall thickness afforded by the present
disclosure.
[0019] Another way to measure this improvement is in terms of wall deformation. Not only
is the burst pressure an important safety requirement to avoid structural failure
of the crankcase, but by limiting wall deformation, compressor efficiency improves
in that gasket leaks between the cover 66 and casting 22 can be abated or avoided.
Here, the inventors achieved even more compelling results. Again employing finite
element analysis, the inventors found that a wall subjected to the same internal pressure
without a bridge deformed roughly 0.6 mm, whereas a wall of the same thickness but
with a bridge deformed only 0.17 mm. Comparing the two values, this means that for
a compressor without a bridge to have the same resistance to deformation, the walls
of the compressor would have to be 0.6/0.17 or 3.52 times as thick.
[0020] Referring now to FIG. 6, the shape of the bridge 70 is shown to include a substantially
linear bottom edge 72. Accordingly, as shown in FIG. 2, when the bottom cover 66 is
bolted onto the housing 22, the bottom edge 72 is in constant engagement with the
bottom cover 66. The bridge 70 therefore not only provides additional strength against
buckling between the generally opposed side walls 60 and 62, but also provides mid-span
support for the bottom cover 60 to reduce stress and allow for a thinner bottom cover
plate 66 to be used as well. The bridge 70 further includes first and second side
edges 74 and 76 which are integrally cast with the outer walls 60 and 62, as well
as a curvilinear top edge 78. A valley 80 of the curvilinear top edge 78 may be provided
within the center of the top edge 78, with lateral ends of the top edge 78 being higher
than the valley 80. This is exemplary only as the bridge can of course take other
forms and shapes as well.
[0021] In further embodiments, such as that shown in FIG. 7, more than one bridge can be
provided. In the embodiment of FIG. 7, two bridges 70 are provided but of course it
can be understood that more than two bridges can be provided as well, depending on
the overall size of the compressor 10 and the number of compression elements 36 therein.
Industrial Applicability
[0022] Based on the foregoing, it can be seen that the present disclosure sets forth a compressor
(20) and a casting (22) for a compressor (2) which is substantially lighter in weight
than prior art castings, but which still provides the necessary strength and protection
to satisfy the burst requirements of the compressor (20). Accordingly, in applications
where US, European and other nationalities dictate the compressor (20) to have a certain
burst strength, the present disclosure sets forth a way to meet such requirements
but at less cost to the manufacturer and consumer. In fact, finite element analysis
by the inventors have shown that not only is the resulting compressor (20) able to
provide such burst strength, but it also results in an at least twenty-nine percent
wall thickness (t) and thus weight savings compared to comparably sized compressors
constructed in accordance with the prior art. In addition, through the novel inclusion
of the afore-mentioned bridge (70), the casting (22) can be made from less expensive
and lighter weight materials. For example, whereas prior art compressors (20) would
have to be manufactured from ductile cast iron to provide the strength required, the
present disclosure allows the use of other materials, such as but not limited to gray
cast iron.
[0023] While only certain embodiments have been set forth, alternatives and modifications
will be apparent from the above description to those skilled in the art. These and
other alternatives are considered equivalents and within the scope of the appended
claims.
1. A compressor (20), comprising:
a motor (32);
a compression element (36) operatively associated with the motor (32);
a housing (22) surrounding the motor (32) and the compression element (36),
wherein the housing (22) includes a crankcase (38) with connecting rods (50) and a
drive shaft (44) within the crankcase (38); and
characterised by at least one bridge (70) extending across the crankcase (38) and spanning between
opposing side walls (60, 62) of the housing (22) proximate to the compression element
(36), the at least one bridge (70) being integrally cast with the housing (22).
2. The compressor (20) of claim 1, wherein the housing (22) includes side walls (60,
62) having a maximum wall thickness (I) of twenty-five millimeters, preferably a wall
thickness of between sixteen and twenty-five millimeters.
3. The compressor (20) of claim 1, wherein the compressor (20) further includes a working
fluid to be compressed, the working fluid being a refrigerant, preferably carbon dioxide.
4. The compressor (20) of claim 3, wherein the refrigerant is compressed to an operating
pressure of at least 500 psi.
5. The compressor (20) of claim 4, wherein the housing (22) has a burst pressure at least
five times the operating pressure.
6. The compressor (20) of claim 1, further including a bottom cover (66) removable from
the crankcase (38), the bridge (70) extending across and in contact with the bottom
cover (66).
7. The compressor (20) of claim 1, wherein the compressor (20) is a reciprocating compressor
(20).
8. The compressor (20) of claim 7, wherein the compression element (36) is a piston (52).
9. The compressor (20) of claim 1, wherein the housing (22) is made of gray cast iron.
1. Kompressor (20), umfassend:
einen Motor (32);
ein Kompressionselement (36), das mit dem Motor (32) wirkverbunden ist;
ein Gehäuse (22), das den Motor (32) und das Kompressionselement (36) umgibt,
wobei das Gehäuse (22) ein Kurbelgehäuse (38) mit Pleuelstangen (50) und einer Antriebswelle
(44) innerhalb des Kurbelgehäuses (38) beinhaltet; und
gekennzeichnet durch zumindest eine Brücke (70), die sich quer durch das Kurbelgehäuse (38) erstreckt
und zwischen gegenüberliegenden Seitenwänden (60, 62) des Gehäuses (22) nahe dem Kompressionselement
(36) aufgespannt ist, wobei die zumindest eine Brücke (70) einstückig mit dem Gehäuse
(22) gegossen ist.
2. Kompressor (20) nach Anspruch 1, wobei das Gehäuse (22) Seitenwände (60, 62) beinhaltet,
die eine maximale Wanddicke (I) von fünfundzwanzig Millimetern, vorzugsweise eine
Wanddicke zwischen sechzehn und fünfundzwanzig Millimetern aufweisen.
3. Kompressor (20) nach Anspruch 1, wobei der Kompressor (20) ferner ein zu komprimierendes
Arbeitsfluid umfasst, wobei das Arbeitsfluid ein Kältemittel ist, vorzugsweise Kohlendioxid.
4. Kompressor (20) nach Anspruch 3, wobei das Kältemittel zu einem Betriebsdruck von
zumindest 500 psi komprimiert ist.
5. Kompressor (20) nach Anspruch 4, wobei das Gehäuse (22) einen Berstdruck aufweist,
der zumindest das Fünffache des Betriebsdrucks beträgt.
6. Kompressor (20) nach Anspruch 1, ferner beinhaltend eine Bodenabdeckung (66), die
von dem Kurbelgehäuse (38) entfernbar ist, wobei sich die Brücke (70) quer über die
Bodenabdeckung (66) erstreckt und in Kontakt damit ist.
7. Kompressor (20) nach Anspruch 1, wobei der Kompressor (20) ein sich hin- und herbewegender
Kompressor (20) ist.
8. Kompressor (20) nach Anspruch 7, wobei das Kompressionselement (36) ein Kolben (52)
ist.
9. Kompressor (20) nach Anspruch 1, wobei das Gehäuse (22) aus Grauguss gefertigt ist.
1. Compresseur (20), comprenant :
un moteur (32),
un élément de compression (36) associé de manière fonctionnelle au moteur (32) ;
un boîtier (22) entourant le moteur (32) et l'élément de compression (36),
dans lequel le boîtier (22) inclut un carter (38) avec des bielles (50) et un arbre
de transmission (44) à l'intérieur du carter (38) ; et
caractérisé par au moins un organe de liaison (70) s'étendant à travers le carter (38) et se situant
entre des parois latérales opposées (60, 62) du boîtier (22) à proximité de l'élément
de compression (36), l'au moins un organe de liaison (70) étant moulé d'une seule
pièce avec le boîtier (22).
2. Compresseur (20) selon la revendication 1, dans lequel le boîtier (22) inclut des
parois latérales (60, 62) ayant une épaisseur de paroi (l) maximale de vingt-cinq
millimètres, de préférence une épaisseur de paroi entre seize et vingt-cinq millimètres.
3. Compresseur (20) selon la revendication 1, dans lequel le compresseur (20) inclut
en outre un fluide de travail à comprimer, le fluide de travail étant un fluide frigorigène,
de préférence du dioxyde de carbone.
4. Compresseur (20) selon la revendication 3, dans lequel le fluide frigorigène est comprimé
jusqu'à une pression de fonctionnement d'au moins 500 psi.
5. Compresseur (20) selon la revendication 4, dans lequel le boîtier (22) a une pression
de rupture égale à au moins cinq fois la pression de fonctionnement.
6. Compresseur (20) selon la revendication 1, incluant en outre un couvercle inférieur
(66) amovible par rapport au carter (38), l'organe de liaison (70) s'étendant à travers
et en contact avec le couvercle inférieur (66).
7. Compresseur (20) selon la revendication 1, dans lequel le compresseur (20) est un
compresseur alternatif (20).
8. Compresseur (20) selon la revendication 7, dans lequel l'élément de compression (36)
est un piston (52).
9. Compresseur (20) selon la revendication 1, dans lequel le boîtier (22) est fabriqué
en fonte grise.