Compressor
11466683 ยท 2022-10-11
Assignee
Inventors
Cpc classification
F04B39/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04C18/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04C29/026
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04C29/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04C2240/40
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04C29/0021
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04C2240/60
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04C2240/807
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04C18/356
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B39/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04C23/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04C23/008
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F04C18/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04C23/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04C18/356
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A compressor includes a motor, a balance weight and a partition. The motor includes a rotor having a first end surface and a second end surface. The balance weight is disposed on the first end surface or the second end surface. The partition is disposed on the first end surface or the second end surface. The rotor has a through hole extending from the first end surface to the second end surface. The partition divides, from the through hole, at least one of a front region and a rear region. The front region is located in front of a front edge of the balance weight in a rotational direction of the rotor. The rear region is located behind a rear edge of the balance weight in the rotational direction of the rotor.
Claims
1. A compressor comprising: a motor including a rotor having a first end surface and a second end surface; a balance weight disposed on the first end surface or the second end surface; and a partition disposed on the first end surface or the second end surface, the partition being integrated with the balance weight, the partition being as thick as the balance weight, the rotor having a plurality of through holes, each of the plurality of through holes extending from the first end surface to the second end surface, the rotor including a first cylindrical portion and a second cylindrical portion, the second cylindrical portion being located on an outer side with respect to the first cylindrical portion, the plurality of through holes being disposed at the first cylindrical portion, the partition covering the first cylindrical portion at either the first end surface or the second end surface, the balance weight being disposed on the second cylindrical portion, and the partition dividing, from all of the plurality of through holes, both of a front region located in front of a front edge of the balance weight in a rotational direction of the rotor and a rear region located behind a rear edge of the balance weight in the rotational direction of the rotor.
2. The compressor according to claim 1, wherein the plurality of through holes communicate with a plurality of holes in the partition.
3. The compressor according to claim 1, further comprising: a porous member covering e plurality of through holes.
4. The compressor according to claim 3, further comprising: a cover having a cylindrical shape, the cover being fixed to the balance weight or the rotor, and the cover covering the balance weight.
5. The compressor according to claim 1, further comprising: a cover having a cylindrical shape, the cover being fixed to the balance weight or the rotor, and the cover covering the balance weight.
6. The compressor according to claim 1, wherein the compressor is either a rotary compressor or a scroll compressor.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1)
(2)
(3)
(4)
(5)
(6)
(7)
(8)
(9)
(10)
(11)
(12)
DETAILED DESCRIPTION OF EMBODIMENT(S)
First Embodiment
(13) (1) General Configuration
(14)
(15) (2) Specific Configuration
(16) (2-1) Casing 20
(17) The casing 20 accommodates the constituent components of the compressor 10 and a refrigerant and has strength capable of enduring a high pressure of the refrigerant. The casing 20 includes a cylindrical portion 21, an upper portion 22, and a lower portion 23 that are joined together. The casing 20 has on its lower inside an oil reservoir 20s. The oil reservoir 20s stores a refrigerating machine oil L.
(18) (2-2) Motor 30
(19) The motor 30 is configured to receive electric power and to generate power for the compression mechanism 40. The motor 30 includes a stator 31 and a rotor 32. The stator 31 is directly or indirectly fixed to the casing 20. The rotor 32 is rotatable by magnetic interaction with the stator 31.
(20) The stator 31 has on its outer periphery a core cut portion 31a. The core cut portion 31a defines a clearance between the casing 20 and the stator 31. This clearance functions as a refrigerant passage.
(21) The rotor 32 has a first end surface E1 on the upper side and a second end surface E2 on the lower side. The rotor 32 also has through holes 32p. Each of the through holes 32p extends from the first end surface E1 to the second end surface E2 of the rotor 32 in a direction along the rotational axis of the rotor 32. The through holes 32p also function as refrigerant passages.
(22) A lower balance weight 33a is disposed on the second end surface E2 of the rotor 32. The lower balance weight 33a has an asymmetric shape with respect to the rotational axis of the rotor 32. The lower balance weight 33a stabilizes the rotation by adjusting the centers of gravity of the rotor 32 and crank shaft 35.
(23) A lower cover 34 is fixed to the lower balance weight 33a. The lower cover 34 covers the asymmetric shape of the lower balance weight 33a, thereby suppressing the stirring of the refrigerant by the lower balance weight 33a during the rotation of the rotor 32.
(24) The lower cover 34 has a plurality of holes 34p (
(25) (2-3) Crank Shaft 35
(26) The crank shaft 35 is configured to transmit to the compression mechanism 40 power generated by the motor 30. The crank shaft 35 rotates together with the rotor 32. The crank shaft 35 includes a main shaft portion 36 and an eccentric portion 37. The main shaft portion 36 is fixed to the rotor 32 to rotate concentrically with the rotor 32. The eccentric portion 37 is eccentric from the main shaft portion 36, and is coupled to the compression mechanism 40. When the crank shaft 35 rotates, the eccentric portion 37 revolves.
(27) The main shaft portion 36 includes an upper balance weight 38 located near the first end surface E1 of the rotor 32. The upper balance weight 38 stabilizes the rotation by adjusting the centers of gravity of the rotor 32 and crank shaft 35. As illustrated in
(28) (2-4) Compression Mechanism 40
(29) Referring back to
(30) (2-5) First Support 27, Second Support 28
(31) The first support 27 supports the main shaft portion 36 of the crank shaft 35 in a rotatable manner. The first support 27 is directly or indirectly fixed to the casing 20. The first support 27 may directly or indirectly support the fixed scroll 41.
(32) The second support 28 supports the main shaft portion 36 of the crank shaft 35 in a rotatable manner. The second support 28 is directly or indirectly fixed to the casing 20.
(33) (2-6) Suction Pipe 51, Discharge Pipe 52
(34) The casing 20 is provided with the suction pipe 51 through which the refrigerant is sucked into the casing 20, and the discharge pipe 52 through which the refrigerant is discharged from the casing 20.
(35) The suction pipe 51 is disposed for sucking the low-pressure gas refrigerant and guiding the low-pressure gas refrigerant to the compression chamber 43. The suction pipe 51 is fixed to the upper portion 22.
(36) The discharge pipe 52 is disposed for discharging to the outside from the casing 20 the high-pressure gas refrigerant flowing into the space in the casing 20 through the discharge port 44. The discharge pipe 52 is fixed to the cylindrical portion 21.
(37) (3) Flow of Refrigerant
(38) The refrigerant, which is compressed by the compression mechanism 40, is discharged from the compression mechanism 40 through the discharge port 44. As illustrated in
(39) (4) Detailed Structure of Lower Balance Weight 33a and the Surroundings
(40)
(41) As illustrated in
(42) As illustrated in
(43) The partition 33b divides both the front region Q1 and the rear region Q2 from the through holes 32p. The refrigerant flowing through each through hole 32p is thus less susceptible to the influence of the positive pressure in the front region Q1 and the negative pressure in the rear region Q2.
(44) (5) Features
(45) (5-1)
(46) If there is no partition 33b, the positive pressure and the negative pressure affect the refrigerant flowing through each through hole 32p. Specifically, the positive pressure increases the velocity of an upward flow in each through hole 32p. The negative pressure decreases the velocity of the upward flow in each through hole 32p or changes the upward flow to a downward flow.
(47) According to the configuration described in the first embodiment, the partition 33b divides both the front region Q1 and the rear region Q2 from the through holes 32p. The refrigerant flowing through each through hole 32p is thus less susceptible to the influence of the positive pressure in the front region Q1 or the negative pressure in the rear region Q2. In other words, all the through holes 32p allow passage of the upward flow of the refrigerant. This configuration thus secures a sectional area of the passage of the upward flow, thereby suppressing oil loss.
(48) (5-2)
(49) The partition 33b is integrated with the lower balance weight 33a. This configuration thus facilitates the assembly of the motor 30.
(50) (5-3)
(51) The through holes 32p communicate with the holes 33p in the partition 33b. The partition 33b is disposed between the crank shaft 35 and the lower balance weight 33a. Since the through holes 32p are located near the crank shaft 35, the through holes 32p are less likely to obstruct the flow of a magnetic field of an electromagnetic steel plate at an outer edge of the rotor 32.
(52) (5-4)
(53) The lower cover 34 has the cylindrical shape, and covers the lower balance weight 33a. The lower cover 34 thus covers the asymmetric shape of the lower balance weight 33a. This configuration therefore suppresses the stirring of the refrigerant and the refrigerating machine oil L by the lower balance weight 33a. (6) Modifications
(54) (6-1) Modification 1A
(55) In the first embodiment, the partition 33s divides both the front region Q1 and the rear region Q2 from the through holes 32p. Alternatively, the partition 33s may divide only the rear region Q2 from the through holes 32p.
(56) According to this configuration, the through holes 32p are less susceptible to the influence of the negative pressure in the rear region Q2. The upward flow of the refrigerant in the rotor is therefore less likely to change to the downward flow.
(57) (6-2) Modification 1B
(58) In the first embodiment, the crank shaft 35 includes the upper balance weight 38. Alternatively, the rotor 32 may include the upper balance weight 38 similar in structure to the lower balance weight 33a. In addition, the partition adjacent to the upper balance weight 38 may divide only the front region Q1 from the through holes 32p.
(59) According to this structure, the through holes 32p are less susceptible to the influence of the positive pressure in the front region Q1 on the first end surface E1 of the rotor 32. The upward flow of the refrigerant in the rotor is therefore less likely to change to the downward flow.
(60) (6-3) Modification 1C
(61) In the first embodiment, the partition 33b of the rotor 32 is integrated with the lower balance weight 33a. Alternatively, the partition 33b may be separated from the lower balance weight 33a. For example, the partition 33b may be integrated with the lower cover 34.
(62) (6-4) Modification 1D
(63) In the first embodiment, the lower cover 34 is fixed to the lower balance weight 33a. Alternatively, the lower cover 34 may be fixed to the rotor 32.
(64) (6-5) Modification 1E
(65) In the first embodiment, the compressor 10 is a scroll compressor. Alternatively, the compressor 10 may be a rotary compressor.
Second Embodiment
(66) (1) Configuration
(67)
(68) In the second embodiment, the lower balance weight 133a is integrated with a partition 133b and a partition wall 133s. The lower balance weight 133a is equal in height to the partition wall 133s, but is different in height from the partition 133b. The partition 133b is surrounded with the lower balance weight 133a and the partition wall 133s. In the second embodiment, a lower cover 134 has one hole 134h. A crank shaft 135 passes through the hole 134h. An area of a clearance defined by the crank shaft 135 and the lower cover 134 is set to be smaller than a total sectional area of through holes 132p.
(69) (2) Features
(70) The area of the clearance between the crank shaft 135 and the lower cover 134 is smaller than the total sectional area of the through holes 132p. According to this configuration, the flow rate of a refrigerant is regulated in accordance with the size of the hole 134h in the lower cover 134. The flow rate of the refrigerant is accordingly controlled based on the shape of the lower cover 134 without depending on the structure of the through holes 132p in a rotor 132.
(71) (3) Modifications
(72) (3-1) Modification 2A
(73)
(74) According to this configuration, the holes 133p are covered with the porous member 161. The porous member 161 thus captures a refrigerating machine oil L passing therethrough together with a refrigerant, leading to a further reduction in oil loss. The refrigerating machine oil L captured by the porous member 161 is discharged through the oil discharge groove 133e and the oil discharge hole 133f, and then returns to an oil reservoir 20s through a hole 134h in a lower cover 134.
(75) (3-2) Others
(76) The modifications of the first embodiment may be applied to the second embodiment.
Third Embodiment
(77) (1) Configuration
(78)
(79) (2) Features
(80) The through holes 232p in the rotor 232 are exposed. A lower balance weight 233a is thus produced with a smaller amount of the material.
(81) (3) Modifications
(82) The modifications of the first or second embodiment may be applied to the third embodiment.
(83) <Closing>
(84) The foregoing description concerns embodiments of the disclosure. It will be understood that numerous modifications and variations may be made without departing from the gist and scope of the disclosure in the appended claims.
REFERENCE SIGNS LIST
(85) 10: compressor 30: motor 32, 132, 232: rotor 32p, 132p, 232p: through hole 33a, 133a, 233a: lower balance weight 33b, 133b: partition 33c: front end 33d: rear end 33p, 133p: hole 133s, 233s: partition wall 34, 134, 234: lower cover 134h, 234h: hole 34p: hole 35, 135, 235: crank shaft 38: upper balance weight 39: upper cover 40: compression mechanism 161: porous member E1: first end surface E2: second end surface L: refrigerating machine oil Q1: front region Q2: rear region R: rotational direction T: trajectory space
CITATION LIST
Patent Literature
(86) Patent Literature 1: Japanese Patent No. 5,025,556