Screw compressor
09771952 · 2017-09-26
Assignee
Inventors
Cpc classification
F04C13/005
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04C18/52
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04C2240/806
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04C18/16
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04C2210/62
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D29/70
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04C29/12
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04C29/0092
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F04D29/70
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04C18/52
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04C29/12
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04C18/16
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A screw compressor includes a casing, a screw rotor, a low-pressure-side bearing, and a low-pressure-side bearing holder holding the low-pressure-side bearing. The screw rotor is housed in the casing to form a compression mechanism to compress a refrigerant. The low-pressure-side bearing is arranged in a low-pressure-side region inside the casing and rotatably supports a drive shaft of the screw rotor. The casing has a suction port with an opening facing the low-pressure-side bearing holder as viewed along an axial direction. A filter member is attached to the suction port to filter out contaminants contained in the refrigerant being sucked into the casing. The filter member has a cylindrical shape with a bottom. A peripheral portion of the filter member adjacent to an opening of the filter member is fixed to the suction port. The bottom of the filter member is fixed to the low-pressure-side bearing holder.
Claims
1. A screw compressor comprising: a casing; a screw rotor housed in the casing to form a compression mechanism to compress a refrigerant; a low-pressure-side bearing arranged in a low-pressure-side region inside the casing and rotatably supporting a drive shaft of the screw rotor; and a low-pressure-side bearing holder holding the low-pressure-side bearing, the casing having a suction port, with an opening of the suction port facing the low-pressure-side bearing holder as viewed along an axial direction, a filter member being attached to the suction port to filter out contaminants contained in the refrigerant being sucked into the casing, and the filter member having a mesh filter body having a cylindrical shape with a bottom, a peripheral portion of the filter member adjacent to an opening thereof being fixed to the suction port, a mesh portion at the bottom of the filter member being fixed to the low-pressure-side bearing holder, and the filter member being positioned such that the bottom of the filter body overlaps with the drive shaft as viewed in an axial direction of the drive shaft.
2. The screw compressor of claim 1, wherein a reinforcing member is attached to the bottom of the filter member and fastened to the low-pressure-side bearing holder with a fastening bolt.
3. The screw compressor of claim 2, wherein an annular frame extends along a peripheral edge of the bottom of the filter member and is attached to the bottom of the filter member, the reinforcing member is configured as a plate-shaped member and extends along the bottom of the filter member in a radial direction, and the reinforcing member is attached to, and extends across, the frame, and is thereby attached to the bottom of the filter member.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1)
(2)
(3)
(4)
(5) Portions (a) to (c) of
(6)
DESCRIPTION OF EMBODIMENTS
(7) Embodiments of the present invention will be described below with reference to the drawings. Note that the following embodiments are merely preferred examples in nature, and are not intended to limit the scope, applications, and use of the invention.
(8)
(9) The inside of the casing (11) is divided into a low-pressure space (S1) into which a low-pressure gaseous refrigerant flows, and a high-pressure space (S2) into which a high-pressure gaseous refrigerant that has been discharged from the compression mechanism (20) flows.
(10) The motor (12) includes a stator (13) and a rotor (14). The stator (13) is fixed to the inner peripheral surface of the casing (11) in the low-pressure space (S1). The drive shaft (21), of which one end portion is coupled to the rotor (14), rotates along with the rotor (14).
(11) The compression mechanism (20) includes a cylindrical wall (16) provided inside the casing (11), a screw rotor (40) arranged inside the cylindrical wall (16), and two gate rotors (50) meshing with the screw rotor (40).
(12) The screw rotor (40) is a metallic member with a generally circular cylindrical shape. The outside diameter of the screw rotor (40) is set to be slightly smaller than the inside diameter of the cylindrical wall (16) such that the outer peripheral surface of the screw rotor (40) is in sliding contact with the inner peripheral surface of the cylindrical wall (16). The screw rotor (40) has, on its outer peripheral portion, a plurality of helical grooves (41) which helically extend from one axial end toward the other axial end of the screw rotor (40).
(13) The screw rotor (40) is penetrated by the drive shaft (21). The screw rotor (40) is coupled to the drive shaft (21) by means of a key (22).
(14) Each gate rotor (50) has a plurality of gates (51) which extend radially (see
(15) In
(16) In the compression mechanism (20), spaces surrounded by the inner peripheral surface of the cylindrical wall (16), the helical grooves (41) of the screw rotor (40), and the gates (51) of the gate rotors (50) serve as compression chambers (23). The suction side ends of the helical grooves (41) of the screw rotor (40) are opened to the low-pressure space (S1). These openings of the helical grooves serve as a suction section (24) of the compression mechanism (20).
(17) One end portion of the drive shaft (21) is rotatably supported by a low-pressure-side bearing (66) which is arranged in the low-pressure space (S1). The low-pressure-side bearing (66) is held by a low-pressure-side bearing holder (65). The other end portion of the drive shaft (21) is rotatably supported by a high-pressure-side bearing (61) arranged on the high-pressure side of the compression mechanism (20). The high-pressure-side bearing (61) is held by a high-pressure-side bearing holder (60) which is fitted into the cylindrical wall (16) of the casing (11).
(18) The casing (11) has a suction port (11a) beside the low-pressure space (S1). As viewed in the axial direction, the suction port (11a) is positioned such that its opining faces the low-pressure-side bearing holder (65). (In
(19) The filter member (30) includes a mesh filter body (31) which is in a cylindrical shape having a bottom, and a flange (32) which projects radially outward from a peripheral portion adjacent to the opening of the filter body (31).
(20) The filter body (31) is designed to have such a length that when the filter body (31) is inserted into the casing (11) through the suction port (11a), the bottom of the filter body (31) is in contact with the low-pressure-side bearing holder (65).
(21) The flange (32) is in contact with the peripheral portion of the suction port (11a) when the bottom of the filter body (31) is in contact with the low-pressure-side bearing holder (65). The flange (32) retained between the peripheral portion of the suction port (11a) of the casing (11) and a ring-like fixing lid (38). The fixing lid (38) is fastened to the casing (11) with fastening bolts (35). In this manner, the peripheral portion of the filter member (30) adjacent to its opening is fixed to the suction port (11a).
(22)
(23) The frame (33) extends along the peripheral edge of the bottom of the filter body (31), which allows for increasing the stiffness of the bottom of the filter body (31).
(24) The reinforcing member (34) is configured as a plate-like member which extends in the radial direction of the filter body (31). The reinforcing member (34) has, at its center, an insertion hole (34a) through which the axis of another fastening bolt (35) is inserted. The bottom of the filter body (31) also has a hole which corresponds to the insertion hole (34a). The low-pressure-side bearing holder (65) has a screw hole (not shown) which corresponds to the insertion hole (34a).
(25) As shown in
(26) The casing (11) has, in its high-pressure space (S2), a discharge port (11b). In
(27) —Operation—
(28) The operation of the screw compressor (10) will now be described below. As shown in
(29) In Portion (a) of
(30) When the screw rotor (40) further rotates, the compression mechanism enters the state shown in Portion (b) of
(31) When the screw rotor (40) further rotates, the compression mechanism enters the state shown in Portion (c) of
(32) <<Variation>>
(33)
(34) The reinforcing member (34) is configured as a square plate with which the head of a fastening bolt (35) is to be in contact. The reinforcing member (34) has, at its center, an insertion hole (34a) through which the axis of the fastening bolt (35) is inserted. Thus, since the portion reinforced by the reinforcing member (34) is minimized, a large effective filter area is ensured, which allows for reducing the pressure loss of the refrigerant.
(35) Though
INDUSTRIAL APPLICABILITY
(36) As can be seen from the foregoing description, the present invention prevents a filter member in a cylindrical shape having a bottom from being buckled and deformed when an external pressure is applied to the filter member, which is so advantageous in practice that the present invention is very useful and has a broad range of industrial applicability.