TECHNICAL FIELD
[0001] The present disclosure relates to a rotary compressor and a refrigeration apparatus.
BACKGROUND ART
[0002] Patent Document 1 discloses a compressor including a front head, a first cylinder
having a first cylinder chamber, a partition plate, a second cylinder having a second
cylinder chamber, and a rear head. A first suction pipe is connected to the first
cylinder, and a second suction pipe is connected to the second cylinder. Refrigerant
gas is sucked into the first cylinder chamber and the second cylinder chamber from
an accumulator via the first suction pipe and the second suction pipe.
CITATION LIST
PATENT DOCUMENT
SUMMARY OF THE INVENTION
TECHNICAL PROBLEMS
[0004] For the higher efficiency of the compressor, reducing a leakage loss by thinning
the first and second cylinders has been demanded.
[0005] However, thinning the first and second cylinders reduces the distance between the
first and second suction pipes, which may decrease the strength of the casing around
connections with the first and second suction pipes.
[0006] An object of the present disclosure is to increase the efficiency of the compressor
and increase the distance between the first suction pipe and the second suction pipe.
SOLUTION TO THE PROBLEMS
[0007] A first aspect of the present disclosure is directed to a rotary compressor including:
a rotary compressor including: a stack of a first head (31), a first cylinder (40)
having a first cylinder chamber (41), a middle plate (32), a second cylinder (50)
having a second cylinder chamber (51), and a second head (33); a first piston (45)
that eccentrically rotates in the first cylinder chamber (41); and a second piston
(55) that eccentrically rotates in the second cylinder chamber (51), the rotary compressor
including: a first suction pipe (15) that is connected to the first cylinder (40)
and sucks a fluid into the first cylinder chamber (41); an in-head suction passage
(70) that is provided in the second head (33) and communicates with the second cylinder
chamber (51); and a second suction pipe (16) that is connected to the second head
(33) and sucks a fluid into the second cylinder chamber (51) through the in-head suction
passage (70).
[0008] According to the first aspect, the distance between the first suction pipe (15) and
the second suction pipe (16) can be increased as compared with the case in which the
second suction pipe (16) is connected to the second cylinder (50). This can reduce
the thicknesses of the first cylinder (40) and the second cylinder (50) to reduce
the leakage loss, making it possible to increase the efficiency of the rotary compressor.
[0009] A second aspect of the present disclosure is an embodiment of the first aspect. In
the rotary compressor of the second aspect, the first head (31) has a threaded hole
(36), the first cylinder (40), the middle plate (32), the second cylinder (50), and
the second head (33) each have a through hole (37) located to correspond to the threaded
hole (36), and a bolt (35) is inserted from the second head (33) side to fasten the
first head (31), the first cylinder (40), the middle plate (32), the second cylinder
(50), and the second head (33).
[0010] According to the second aspect, when tightened, the bolt (35) causes the second cylinder
(50) near the seat surface of the bolt (35) to have a tightening strain greater than
a tightening strain of the first cylinder (40). On the other hand, when the fluid
is sucked into the second cylinder (50) from the second head (33) side, the low-temperature
fluid is heated while passing through the in-head suction passage (70), which reduces
the difference in temperature distribution between the second cylinder (50) and the
fluid. This causes a thermal strain of the second cylinder (50) due to thermal expansion
to be lower than a thermal strain of the first cylinder (40).
[0011] Thus, the leakage loss in the second cylinder (50), which is near the seat surface
of the bolt (35), can be reduced by setting the clearance between the second cylinder
(50) and the second piston (55) small in consideration of the influence of the tightening
strain and the thermal strain.
[0012] A third aspect of the present disclosure is an embodiment of the first aspect. In
the rotary compressor of the third aspect, the first cylinder (40) has a threaded
hole (36), the middle plate (32), the second cylinder (50), and the second head (33)
each have a through hole (37) located to correspond to the threaded hole (36), and
a bolt (35) is inserted from the second head (33) side to fasten the first cylinder
(40), the middle plate (32), the second cylinder (50), and the second head (33).
[0013] According to the third aspect, the leakage loss in the second cylinder (50), which
is near the seat surface of the bolt (35), can be reduced by setting the clearance
between the second cylinder (50) and the second piston (55) small in consideration
of the influence of the tightening strain and the thermal strain.
[0014] A fourth aspect of the present disclosure is an embodiment of any one of the first
to third aspects. In the rotary compressor of the fourth aspect, the in-head suction
passage (70) includes: a first passage (71) extending in a radial direction; and a
second passage (72) extending in an axial direction to allow the first passage (71)
and the second cylinder chamber (51) to communicate with each other.
[0015] According to the fourth aspect, the low-temperature fluid that has flowed into the
in-head suction passage (70) from the second suction pipe (16) is heated when passing
through the first passage (71) and the second passage (72), and then flows into the
second cylinder chamber (51) in the radial direction. This can reduce direct spraying
of the low-temperature fluid on the second piston (55).
[0016] A fifth aspect of the present disclosure is directed to a refrigeration apparatus
including: the rotary compressor (10) of any one of the first to fourth aspects; and
a fluid circuit (1a) through which a fluid compressed by the rotary compressor (10)
flows.
[0017] According to the fifth aspect, a refrigeration apparatus including the rotary compressor
(10) can be provided.
BRIEF DESCRIPTION OF THE DRAWINGS
[0018]
FIG. 1 is a refrigerant circuit diagram illustrating a configuration of a refrigeration
apparatus according to a first embodiment.
FIG. 2 is a longitudinal sectional view illustrating a configuration of a rotary compressor.
FIG. 3 is a transverse sectional view illustrating a configuration of a first cylinder
and a first piston.
FIG. 4 is a transverse sectional view illustrating a configuration of a second cylinder
and a second piston.
FIG. 5 is a longitudinal sectional view illustrating a configuration of a rotary compressor
according to a second embodiment.
DESCRIPTION OF EMBODIMENT
«First Embodiment»
[0019] As illustrated in FIG. 1, a rotary compressor (10) is provided in a refrigeration
apparatus (1). The refrigeration apparatus (1) includes a refrigerant circuit (1a)
which is a fluid circuit filled with a refrigerant. The refrigerant circuit (1a) includes
a rotary compressor (10), a radiator (3), a decompression mechanism (4), and an evaporator
(5). The decompression mechanism (4) is, for example, an expansion valve. The refrigerant
circuit (1a) performs a vapor compression refrigeration cycle.
[0020] The refrigeration apparatus (1) is an air conditioner. The air conditioner may be
any of a cooling-only apparatus, a heating-only apparatus, or an air conditioner switchable
between cooling and heating. In this case, the air conditioner has a switching mechanism
(e.g., a four-way switching valve) configured to switch the direction of circulation
of the refrigerant. The refrigeration apparatus (1) may be a water heater, a chiller
unit, or a cooling apparatus configured to cool air in an internal space. The cooling
apparatus cools the air in a refrigerator, a freezer, or a container, for example.
[0021] As illustrated in FIG. 2, the rotary compressor (10) includes a casing (11), a drive
mechanism (20), and a compression mechanism (30). The drive mechanism (20) and the
compression mechanism (30) are housed in the casing (11).
[0022] The casing (11) is configured as a vertically long cylindrical closed container.
The casing (11) includes a barrel (12), a bottom end plate (13), and a top end plate
(14). The barrel (12) is in the shape of a cylinder extending in the vertical direction,
with both axial ends open. The bottom end plate (13) is fixed to the lower end of
the barrel (12). The top end plate (14) is fixed to the upper end of the barrel (12).
[0023] A first suction pipe (15) and a second suction pipe (16) pass through, and are fixed
to, the barrel (12). A discharge pipe (17) passes through, and is fixed to, the top
end plate (14).
[0024] The casing (11) has an oil reservoir (18) at its bottom. The oil reservoir (18) is
formed by the bottom end plate (13) and an inner wall of a lower portion of the barrel
(12). The oil reservoir (18) stores oil for lubricating the sliding portions of the
compression mechanism (30) and a drive shaft (25).
<Drive Mechanism>
[0025] The drive mechanism (20) includes a motor (21) and a drive shaft (25). The motor
(21) is disposed above the compression mechanism (30). The motor (21) includes a stator
(22) and a rotor (23).
[0026] The stator (22) is fixed to the inner peripheral surface of the barrel (12) of the
casing (11). The rotor (23) extends to penetrate the stator (22) in the vertical direction.
The drive shaft (25) passes through the axis of the rotor (23) and is fixed to the
rotor (23). The drive shaft (25) is driven to rotate together with the rotor (23)
when the motor (21) is energized.
[0027] The drive shaft (25) is arranged on the axis of the barrel (12) of the casing (11).
An oil supply pump (25a) is provided at the lower end of the drive shaft (25). The
oil supply pump (25a) conveys the oil collected in the oil reservoir (18). The conveyed
oil is supplied to the sliding portions of the compression mechanism (30) and the
drive shaft (25) through an oil passage (25b) in the drive shaft (25).
[0028] The drive shaft (25) includes a main shaft portion (26), a first eccentric portion
(27), and a second eccentric portion (28). An upper part of the main shaft portion
(26) is fixed to the rotor (23) of the motor (21). The first eccentric portion (27)
is disposed above the second eccentric portion (28). The axes of the first eccentric
portion (27) and the second eccentric portion (28) are eccentric from the axis of
the main shaft portion (26) by a predetermined amount.
[0029] Part of the main shaft portion (26) above the first eccentric portion (27) is rotatably
supported by a front head (31) described later. Part of the main shaft portion (26)
below the second eccentric portion (28) is rotatably supported by a rear head (33)
described later.
<Compression Mechanism>
[0030] In the example shown in FIG. 2, the compression mechanism (30) is a two-cylinder
rotary fluid machine. The compression mechanism (30) is disposed below the motor (21).
The compression mechanism (30) includes a front head (31) as a first head, a first
cylinder (40), a middle plate (32), a second cylinder (50), and a rear head (33) as
a second head.
[0031] The front head (31), the first cylinder (40), the middle plate (32), the second cylinder
(50), and the rear head (33) are stacked in this order from top to bottom and fixed
with a bolt (35).
[0032] Specifically, the front head (31) is provided with a threaded hole (36). The first
cylinder (40), the middle plate (32), the second cylinder (50), and the rear head
(33) are each provided with a through hole (37) located to correspond to the threaded
hole (36).
[0033] The bolt (35) is inserted into the holes from the rear head (33) side and fastens
the front head (31), the first cylinder (40), the middle plate (32), the second cylinder
(50), and the rear head (33).
[0034] The front head (31) is fixed to the barrel (12) of the casing (11). The front head
(31) is stacked on top of the first cylinder (40). The front head (31) is arranged
to cover a first cylinder chamber (41) of the first cylinder (40) from above. The
main shaft portion (26) of the drive shaft (25) is inserted in the front head (31)
to pass through the center of the front head (31). The front head (31) rotatably supports
the drive shaft (25). The front head (31) has a first discharge passage (49) penetrating
the front head (31) in the axial direction (see FIG. 3).
[0035] The first cylinder (40) is configured as a flat, substantially annular member. As
illustrated in FIG. 3, the first cylinder (40) includes a first cylinder chamber (41),
a first suction passage (42), and a first blade chamber (43).
[0036] The first cylinder chamber (41) is provided in a center portion of the first cylinder
(40). The first suction passage (42) extends from the inner wall surface of the first
cylinder chamber (41) toward the outside in the radial direction of the first cylinder
(40). The first suction passage (42) opens on the outer surface of the first cylinder
(40). The first suction pipe (15) is connected to an inlet end of the first suction
passage (42). An outlet end of the first suction passage (42) communicates with the
first cylinder chamber (41).
[0037] The first cylinder chamber (41) houses a first piston (45). The first piston (45)
includes a first piston body (46) and a first blade (47). The first piston body (46)
is formed in an annular shape. The first eccentric portion (27) of the drive shaft
(25) fits into the first piston body (46). The first blade (47) extends radially outward
from the first piston body (46). The first blade (47) is supported by a pair of first
bushes (48). The first blade (47) divides the inside of the first cylinder chamber
(41) into a low-pressure chamber and a high-pressure chamber.
[0038] The first piston (45) rotates eccentrically in the first cylinder chamber (41) when
the drive shaft (25) is driven to rotate. When the volume of the low-pressure chamber
gradually increases with the eccentric rotation of the first piston (45), the refrigerant
flowing through the first suction pipe (15) is sucked through the first suction passage
(42) into the low-pressure chamber in the radial direction.
[0039] When the low-pressure chamber is isolated from the first suction passage (42), the
isolated space constitutes a high-pressure chamber. The internal pressure of the high-pressure
chamber increases as the volume of the high-pressure chamber gradually decreases.
When the internal pressure of the high-pressure chamber exceeds a predetermined pressure,
the refrigerant in the high-pressure chamber flows out of the compression mechanism
(30) through the first discharge passage (49). The high-pressure refrigerant flows
upward through the internal space of the casing (11) and passes through a core cut
(not shown) of the motor (21) or any other passage. The high-pressure refrigerant
that has flowed upward of the motor (21) is transferred to the refrigerant circuit
through the discharge pipe (17).
[0040] The first blade chamber (43) is located radially outward of the first cylinder chamber
(41) and away from the first cylinder chamber (41). The first blade chamber (43) penetrates
into the first cylinder (40) in the thickness direction of the first cylinder (40).
A tip portion of the first blade (47) is housed in the first blade chamber (43). The
first blade (47) swings in the first blade chamber (43) with the eccentric rotation
of the first piston body (46).
[0041] As illustrated in FIG. 2, the middle plate (32) is sandwiched between the first cylinder
(40) and the second cylinder (50). The middle plate (32) is disposed to cover the
first cylinder chamber (41) of the first cylinder (40) from below. The middle plate
(32) is disposed to cover a second cylinder chamber (51) of the second cylinder (50)
from above.
[0042] As also illustrated in FIG. 4, the second cylinder (50) is configured as a flat,
substantially annular member. The second cylinder (50) includes the second cylinder
chamber (51), a second suction passage (52), and a second blade chamber (53).
[0043] The second cylinder chamber (51) is provided in the center of the second cylinder
(50). The second suction passage (52) extends from the inner wall surface of the second
cylinder chamber (51) toward the outside in the radial direction of the second cylinder
(50). The second suction passage (52) opens on a surface of the second cylinder (50)
(a lower surface in FIG. 2) facing the rear head (33).
[0044] An inlet end of the second suction passage (52) communicates with an in-head suction
passage (70) of the rear head (33), which will be described later. An outlet end of
the second suction passage (52) communicates with the second cylinder chamber (51).
[0045] The second cylinder chamber (51) houses a second piston (55). The second piston (55)
includes a second piston body (56) and a second blade (57). The second piston body
(56) is formed in an annular shape. The second eccentric portion (28) of the drive
shaft (25) fits into the second piston body (56). The second blade (57) extends radially
outward from the second piston body (56). The second blade (57) is supported by a
pair of second bushes (58). The second blade (57) divides the inside of the second
cylinder chamber (51) into a low-pressure chamber and a high-pressure chamber.
[0046] The action of the second piston (55) is substantially the same as the action of
the first piston (45), and will not be described below.
[0047] The second blade chamber (53) is located radially outward of the second cylinder
chamber (51) and away from the second cylinder chamber (51). The second blade chamber
(53) penetrates into the second cylinder (50) in the thickness direction of the second
cylinder (50). A tip portion of the second blade (57) is housed in the second blade
chamber (53). The second blade (57) swings in the second blade chamber (53) with the
eccentric rotation of the second piston body (56).
[0048] As illustrated in FIG. 2, the rear head (33) is stacked on the bottom of the second
cylinder (50). The rear head (33) is disposed to cover the second cylinder chamber
(51) of the second cylinder (50) from below. The main shaft portion (26) of the drive
shaft (25) is inserted in the rear head (33) to pass through the center of the rear
head (33). The rear head (33) rotatably supports the drive shaft (25).
[0049] The rear head (33) is provided with the in-head suction passage (70). The in-head
suction passage (70) includes a first passage (71) and a second passage (72). The
first passage (71) extends outward in the radial direction of the rear head (33).
The first passage (71) opens on the outer surface of the rear head (33). An inlet
end of the first passage (71) is connected to the second suction pipe (16). The second
passage (72) is provided at an outlet end of the first passage (71).
[0050] The second passage (72) extends upward in the axial direction and opens on the top
surface of the rear head (33). An outlet end of the second passage (72) communicates
with the second cylinder chamber (51) via the second suction passage (52) of the second
cylinder (50).
[0051] This configuration can increase the distance between the first suction pipe (15)
and the second suction pipe (16) as compared with the case in which the second suction
pipe (16) is connected to the second cylinder (50). This can reduce the thicknesses
of the first cylinder (40) and the second cylinder (50) to reduce a leakage loss,
making it possible to increase the efficiency of the rotary compressor (10).
[0052] The low-temperature refrigerant that has flowed into the in-head suction passage
(70) from the second suction pipe (16) is heated when passing through the first passage
(71) and the second passage (72), and then flows into the second cylinder chamber
(51). This can reduce direct spraying of the low-temperature refrigerant on the second
piston (55).
[0053] As indicated by the arrows in FIG. 2, the refrigerant is sucked into the second cylinder
chamber (51) via the second suction pipe (16), the in-head suction passage (70) of
the rear head (33), and the second suction passage (52) of the second cylinder (50).
[0054] The rear head (33) has a second discharge passage (59) penetrating the rear head
(33) in the axial direction (see FIG. 4). When the internal pressure of the high-pressure
chamber in the second cylinder chamber (51) exceeds a predetermined pressure with
the rotation of the second piston (55), the refrigerant in the high-pressure chamber
flows out of the compression mechanism (30) through the second discharge passage (59).
[0055] The bolt (35) is inserted into the through holes (37) from the rear head (33) side
and tightened in the threaded hole (36) of the front head (31). When tightened, the
bolt (35) causes the second cylinder (50) near the seat surface of the bolt (35) to
have a tightening strain δ3 which is greater than a tightening strain 61 of the first
cylinder (40) (δ1 < δ3).
[0056] On the other hand, when the fluid is sucked into the second cylinder (50) from the
second head (33) side, the low-temperature fluid is heated while passing through the
in-head suction passage (70), which reduces the difference in temperature distribution
between the second cylinder (50) and the fluid. This causes a thermal strain δ4 of
the second cylinder (50) due to thermal expansion to be lower than a thermal strain
δ2 of the first cylinder (40) (δ2 > δ4).
[0057] Thus, the leakage loss in the second cylinder (50), which is near the seat surface
of the bolt (35), can be reduced by setting the clearance between the second cylinder
(50) and the second piston (55) small in consideration of the influence of the tightening
strain and the thermal strain.
<Configuration of Accumulator>
[0058] An accumulator (60) is connected to the upstream side of the rotary compressor (10).
The accumulator (60) temporarily stores the refrigerant that is to be sucked into
the rotary compressor (10) and performs gas-liquid separation for a liquid refrigerant
and oil contained in a gas refrigerant.
[0059] The accumulator (60) includes a closed container (61), an inlet pipe (62), a first
outlet pipe (63), and a second outlet pipe (64). The inlet pipe (62) allows the refrigerant
to flow into the closed container (61). The outlet pipe (63) allows the refrigerant
to flow out of the closed container (61).
[0060] The closed container (61) is configured as a vertically long cylindrical member.
The inlet pipe (62) is connected to the top of the closed container (61). A lower
end of the inlet pipe (62) opens in the internal space of the closed container (61)
near the top of the closed container (61).
[0061] The first outlet pipe (63) and the second outlet pipe (64) are connected to the bottom
of the closed container (61). Each of the first outlet pipe (63) and the second outlet
pipe (64) has an upper end portion extending upward in the internal space of the closed
container (61) and opens near the top of the closed container (61).
[0062] The first outlet pipe (63) has a lower end portion that extends downward from the
lower end of the closed container (61), bends toward the first suction pipe (15) of
the rotary compressor (10), and is connected to the first suction pipe (15). The second
outlet pipe (64) has a lower end portion that extends downward from the lower end
of the closed container (61), bends toward the second suction pipe (16) of the rotary
compressor (10), and is connected to the second suction pipe (16).
-Advantages of First Embodiment-
[0063] According to the features of this embodiment, the distance between the first suction
pipe (15) and the second suction pipe (16) can be increased as compared with the case
in which the second suction pipe (16) is connected to the second cylinder (50). This
can reduce the thicknesses of the first cylinder (40) and the second cylinder (50)
to reduce the leakage loss, making it possible to increase the efficiency of the rotary
compressor.
[0064] Further, connecting the first suction pipe (15) to the first cylinder (40) can reduce
suction and heating of the refrigerant in the first cylinder chamber (41). This can
improve the efficiency of the rotary compressor (10) as compared with the case in
which the first suction pipe (15) is connected to the first head (31) and the second
suction pipe (16) is connected to the second head (33).
[0065] According to the features of this embodiment, when tightened, the bolt (35) causes
the second cylinder (50) near the seat surface of the bolt (35) to have a tightening
strain greater than a tightening strain of the first cylinder (40). On the other hand,
when the fluid is sucked into the second cylinder (50) from the second head (33) side,
the low-temperature fluid is heated while passing through the in-head suction passage
(70), which reduces the difference in temperature distribution between the second
cylinder (50) and the fluid. This causes a thermal strain of the second cylinder (50)
due to thermal expansion to be lower than a thermal strain of the first cylinder (40).
[0066] Thus, the leakage loss in the second cylinder (50), which is near the seat surface
of the bolt (35), can be reduced by setting the clearance between the second cylinder
(50) and the second piston (55) small in consideration of the influence of the tightening
strain and the thermal strain.
[0067] Further, connecting the first suction pipe (15) to the first cylinder (40) located
near the first head (31) provided with the threaded hole (36) can reduce a suction
pressure loss of the refrigerant. This can reduce the loss of the compression mechanism
(30) as a whole, making it possible to improve the efficiency of the rotary compressor
(10).
[0068] According to the features of this embodiment, the low-temperature fluid that has
flowed into the in-head suction passage (70) from the second suction pipe (16) is
heated when passing through the first passage (71) and the second passage (72), and
then flows into the second cylinder chamber (51) in the radial direction. This can
reduce direct spraying of the low-temperature fluid on the second piston (55).
[0069] According to the features of this embodiment, the refrigeration apparatus includes
the rotary compressor (10) and the fluid circuit (1a) through which the fluid compressed
by the rotary compressor (10) flows. This can provide a refrigeration apparatus including
the rotary compressor (10).
«Second Embodiment»
[0070] In the following description, the same reference characters designate the same components
as those of the first embodiment, and the description is focused only on the difference.
[0071] As illustrated in FIG. 5, a compression mechanism (30) is disposed below the motor
(21). The compression mechanism (30) includes a front head (31), a first cylinder
(40), a middle plate (32), a second cylinder (50), and a rear head (33).
[0072] The front head (31), the first cylinder (40), the middle plate (32), the second cylinder
(50), and the rear head (33) are stacked in this order from top to bottom and fixed
with bolts (35).
[0073] Specifically, the first cylinder (40) has a threaded hole (36). The front head (31),
the middle plate (32), the second cylinder (50), and the rear head (33) are each provided
with a through hole (37) located to correspond to the threaded hole (36). The front
head (31) has a counterbore located to correspond to the through hole (37).
[0074] The lower one of the bolts (35) is inserted into the holes from the rear head (33)
side and fastens the first cylinder (40), the middle plate (32), the second cylinder
(50), and the rear head (33). The upper one of the bolts (35) is inserted into the
holes from the front head (31) side and fastens the front head (31) and the first
cylinder (40).
-Advantages of Second Embodiment-
[0075] According to the features of this embodiment, the leakage loss in the second cylinder
(50), which is near the seat surface of the bolt (35), can be reduced by setting the
clearance between the second cylinder (50) and the second piston (55) small in consideration
of the influence of the tightening strain and the thermal strain.
<<Other Embodiments>>
[0076] While the embodiments and variations have been described above, it will be understood
that various changes in form and details can be made without departing from the spirit
and scope of the claims. The elements according to embodiments, the variations thereof,
and the other embodiments may be combined and replaced with each other. In addition,
the expressions of "first," "second," "third," ... , in the specification and claims
are used to distinguish the terms to which these expressions are given, and do not
limit the number and order of the terms.
INDUSTRIAL APPLICABILITY
[0077] As can be seen from the foregoing description, the present disclosure is useful for
a rotary compressor and a refrigeration apparatus.
DESCRIPTION OF REFERENCE CHARACTERS
[0078]
- 1
- Refrigeration Apparatus
- 1a
- Fluid Circuit
- 10
- Rotary Compressor
- 15
- First Suction Pipe
- 16
- Second Suction Pipe
- 31
- Front Head (First Head)
- 32
- Middle Plate
- 33
- Rear Head (Second Head)
- 35
- Bolt
- 36
- Threaded Hole
- 37
- Through Hole
- 40
- First Cylinder
- 41
- First Cylinder Chamber
- 45
- First Piston
- 50
- Second Cylinder
- 51
- Second Cylinder Chamber
- 55
- Second Piston
- 70
- In-Head Suction Passage
- 71
- First Passage
- 72
- Second Passage