LIQUID RECEIVER, AND VEHICLE-USE AIR CONDITIONING DEVICE CONDENSER INCLUDING THE LIQUID RECEIVER
20220282894 ยท 2022-09-08
Assignee
Inventors
Cpc classification
F25B2400/162
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25B2500/01
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25B2339/0441
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F2220/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25B2339/0446
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28D1/05366
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25B2500/221
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25B39/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25B43/003
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F25B39/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A stopper includes a filtering unit that is housed in an interior of a liquid receiver main body and through which a refrigerant passes, a fixed portion that includes on an outer peripheral face thereof a screw portion that is screwed into an inner peripheral face of the liquid receiver main body, a sealing member that is brought into contact with the inner peripheral face of the liquid receiver main body, thereby preventing a leakage of a refrigerant to the fixed portion from between the filtering unit and the liquid receiver main body, and a movable connection portion that is provided between the filtering unit and the fixed portion and links the filtering unit to the fixed portion in such a way that the filtering unit is not caused to follow a rotation of the fixed portion, and in such a way that the filtering unit is caused to follow an axial direction movement of the fixed portion.
Claims
1. A liquid receiver, comprising: a liquid receiver main body that is formed in a tubular form and stores a refrigerant in an interior; and a stopper that is inserted into a one side aperture portion provided in a one side end portion in a longitudinal direction of the liquid receiver main body, thereby blocking off the one side aperture portion, wherein the stopper includes a filtering unit that is housed in the interior of the liquid receiver main body and through which the refrigerant passes, a fixed portion that includes on an outer peripheral face thereof a screw portion that is screwed into an inner peripheral face of the one side aperture portion of the liquid receiver main body, a sealing member that is brought into contact with an inner peripheral face of the liquid receiver main body, thereby preventing a leakage of a refrigerant to the fixed portion from between the filtering unit and the liquid receiver main body, and a movable connection portion that is provided between the filtering unit and the fixed portion and links the filtering unit to the fixed portion in such a way that the filtering unit is not caused to follow a rotation of the fixed portion, and in such a way that the filtering unit is caused to follow an axial direction movement of the fixed portion.
2. The liquid receiver according to claim 1, wherein the filtering unit is an injection molded article, and has a bearing face that supports the sealing member, and the bearing face is formed in a position deviating from a partitioning line of dies that mold the filtering unit.
3. The liquid receiver according to claim 1, wherein the stopper has an intermediate portion between the filtering unit and the fixed portion, the intermediate portion is fixed with respect to the filtering unit and is linked to the fixed portion via the movable connection portion, and the sealing member is provided between the filtering unit and the intermediate portion.
4. The liquid receiver according to claim 3, wherein the stopper further includes another sealing member that is brought into contact with the inner peripheral face of the liquid receiver main body, thereby preventing a leakage of a refrigerant to the fixed portion from between the intermediate portion and the liquid receiver main body, and the other sealing member is provided between the intermediate portion and the fixed portion.
5. The liquid receiver according to claim 4, wherein the intermediate portion is an injection molded article, and has a bearing face that supports the sealing member and another bearing face that supports the other sealing member, and the bearing face and the other bearing face are formed in positions deviating from a partitioning line of dies that mold the intermediate portion.
6. The liquid receiver according to claim 1, wherein the sealing member comes into contact with a stepped portion formed on the inner peripheral face of the liquid receiver main body, and is compressed in an axial direction.
7. The liquid receiver according to claim 6, wherein the stepped portion is configured to have a tapered face.
8. A vehicle-use air conditioning device condenser including the liquid receiver according to claim 1.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DESCRIPTION OF THE PREFERRED EMBODIMENTS
[0042] Hereafter, an embodiment of the present invention will be described, based on the drawings.
[0043] A vehicle-use air conditioning device condenser 100 that integrally includes a liquid receiver 1 according to the present invention is shown in
[0044] To describe a structure of a condenser more specifically, the condenser 100 is configured to have a pair of header pipes 101 and 102, a multiple of tubes 103 installed between the header pipes 101 and 102, and a corrugated fin 104 fixed in each gap between tubes.
[0045] Each of the header pipes 101 and 102 is formed in an approximately cylindrical form by extrusion molding or by rolling a flat plate form member, and aperture portions formed in either longitudinal direction end portion are blocked off by cap members 101a, 101b, 102a, and 102b. Also, partitioning walls 101c and 101d, which partition an internal space into multiple spaces (for example, three spaces 101s1, 101s2, and 101s3) in the longitudinal direction, are provided in the one header pipe 101, and a partitioning wall 102c, which partitions an internal space into multiple spaces (for example, two spaces 102s1 and 102s2) in the longitudinal direction, is provided in the other header pipe 102. The partitioning wall 101d of the one header pipe 101 and the partitioning wall 102c of the other header pipe 102 are disposed in positions of the same height, and a heat exchanging unit configured of the tube 103 and the corrugated fin 104 has a portion farther to an upper side than the partitioning walls 101d and 102c as the condensing unit A, through which a refrigerant including a gaseous phase flows, and has a portion farther to a lower side than the partitioning walls 101d and 102c as the supercooling unit B, through which a liquid phase refrigerant flows.
[0046] The tube 103 is formed in a flattened form by extrusion molding, an interior is divided into a multiple of passages extending in a longitudinal direction, one end portion is inserted into and fixed to the one header pipe 101 at predetermined intervals, and another end portion is inserted into and fixed to the other header pipe 102 at predetermined intervals. Also, a refrigerant inlet 105 that communicates with the space 101s1 is provided in a vicinity of an upper end of the one header pipe 101, and a refrigerant outlet 106 that communicates with the space 102s2 is provided in a vicinity of a lower end of the other header pipe 102.
[0047] The liquid receiver 1 is fixed by brazing across brackets 107 and 108 in the longitudinal direction of the header pipe 101 to an outer peripheral face of the one header pipe 101 on a side opposite to the side on which the tube 103 is inserted and fixed, as also shown in
[0048] The liquid receiver 1 is configured mainly of an aluminum alloy, and includes the liquid receiver main body 2, which is formed in a cylindrical form and stores a refrigerant in an interior thereof, and an upper side aperture portion (an other side aperture portion) 2b provided in a longitudinal direction upper side end portion is blocked off by a cap member 3 being fixed by brazing. Also, a lower side aperture portion (a one side aperture portion) 2a provided in a longitudinal direction lower side end portion is blocked off by a stopper 4 to be described hereafter. Further, a space between the cap member 3 and the stopper 4 of the liquid receiver main body 2 is filled with a drying agent 5.
[0049] A refrigerant outflow hole 101e is formed in a side wall in a vicinity of an upper side of the partitioning wall 101d of the one header pipe 101, a refrigerant inflow hole 2c is formed in a side wall of the liquid receiver main body 2 corresponding to the position of the refrigerant outflow hole 101e, the refrigerant outflow hole 101e and the refrigerant inflow hole 2c correspond via a through hole 108a provided in the bracket 108, and a refrigerant that flows into the space 101s2 of the one header pipe 101 is sent to the space in the liquid receiver 1 filled with the drying agent 5.
[0050] Also, a refrigerant inflow hole 101f is formed farther to the lower side than the partitioning wall 101d in the side wall of the one header pipe 101, a refrigerant outflow hole 2d is formed in the side wall of the liquid receiver main body 2 corresponding to the position of the refrigerant inflow hole 101f, and the refrigerant inflow hole 101f and the refrigerant outflow hole 2d correspond via a through hole 108b provided in the bracket 108. The refrigerant outflow hole 2d is provided in a position facing a side portion of a filtering unit 41, to be described hereafter, of the stopper 4, because of which a refrigerant that has flowed into the liquid receiver 1 from the header pipe 101 flows out into the space 101s3 of the one header pipe 101 that communicates with the supercooling unit B after passing through the drying agent 5 and the filtering unit 41.
[0051] As also shown in
[0052] The filtering unit 41 is manufactured by a tubular mesh member 41a being insert molded with a resin, a bottom wall 41b is formed in such a way as to block off one axial direction end (a lower end) of the mesh member 41a, a circular frame 41c is provided on an aperture edge of the mesh member 41a in such a way that another end (an upper end) is opened, the circular frame 41c and the bottom wall 41b are joined by a rib 41d spanning in the axial direction, and the mesh member 41a is exposed except for a portion wherein the rib 41d is formed on a peripheral face. Consequently, a refrigerant flows into an inner side of the filtering unit 41 via an aperture portion of the filtering unit 41 (an inner side of the circular frame 41c), the flow is changed to a radial direction after colliding with the bottom wall 41b, and the refrigerant passes through the mesh member 41a and flows out in the radial direction.
[0053] The fixed portion 42 is formed in a cylindrical form, and includes on an outer peripheral face a screw portion 42a formed of an external thread that screws into an internal thread 2f formed on an inner peripheral face of the lower side aperture portion (the one side aperture portion) 2a of the liquid receiver main body 2, and a flange portion 42b that comes into contact with a peripheral edge of an opened end of the lower side aperture portion 2a of the liquid receiver main body 2 (a lower end of the liquid receiver main body 2) is formed integrated with an end edge of the screw portion 42a. Also, a tool fitting hole 42c, into which a tool that causes the fixed portion 42 to rotate is inserted, is formed in a bottom face of the fixed portion 42. Furthermore, a circular wall 42d that is brought into contact with the bottom wall 41b of the filtering unit 41 is provided on a side of the fixed portion 42 opposite to that of the flange portion 42b.
[0054] Further, a bearing face 41e formed of a stepped portion that supports the sealing member 43 is formed on a lower face peripheral edge that is the bottom wall 41b of the filtering unit 41, and with which a leading end of the circular wall 42d comes into contact, and the bearing face 41e is caused to support the sealing member 43 and bring the sealing member 43 into contact with the inner peripheral face of the liquid receiver main body 2, whereby a leakage of a refrigerant into the fixed portion 42 from between the filtering unit 41 and the liquid receiver main body 2 (the gap formed by the outer peripheral face of the filtering unit 41 and the inner peripheral face of the liquid receiver main body 2) is prevented.
[0055] The movable connection portion 44 is configured to have an engagement projection 46, which is provided upright in a center of a bottom face 45a of a connection concavity 45 enclosed by the circular wall 42d of the fixed portion 42, and an engagement receiving portion 47, which protrudes downward from the bottom wall 41b of the filtering unit 41 and engages with the engagement projection 46 in such a way as to be able to rotate relatively.
[0056] The engagement projection 46 is configured of a cylindrical shaft portion 46a protruding from the bottom face 45a of the connection concavity 45, and an engagement portion 46b of a truncated cone form provided integrated with a leading end of the shaft portion 46a in such a way that a diameter is expanded.
[0057] The engagement receiving portion 47 has a pair of engagement arms 47a and 47b that extend downward from the bottom wall portion 41b of the filtering unit 41. The pair of engagement arms 47a and 47b are opposed across an interval that is an interval greater than the diameter of the shaft portion 46a of the engagement projection 46 and smaller than a diameter of a bottom face of the engagement portion 46b, and engagement recessed portions 48a and 48b that conform to a form of the engagement portion 46b are formed in faces opposing each other.
[0058] This means that when the engagement portion 46b of the engagement projection 46 is pushed from a leading end thereof between the pair of engagement arms 47a and 47b of the engagement receiving portion 47, the engagement arms 47a and 47b are elastically pushed apart by an outer peripheral face of the engagement portion 46b, and when a whole of the engagement portion 46b is pushed as far as an end of the space between the pair of engagement arms 47a and 47b, the pair of engagement arms 47a and 47b return to the original form owing to their own resilience (this includes not only an aspect wherein the form is restored completely, but also an aspect wherein the form is restored to an extent such that the pair of engagement arms 47a and 47b are also elastically pushed apart), and the engagement portion 46b is in a state of being engaged with the engagement recessed portions 48a and 48b in such a way as to rotate freely.
[0059] Also, in a state wherein this kind of engagement projection 46 is engaged with the engagement receiving portion 47, a leading end of the circular wall 42d of the fixed portion 42 comes into contact with the bottom wall 41b of the filtering unit 41, or is positioned in a vicinity thereof, and the sealing member 43 does not become detached from the bearing face 41e when the stopper 4 is attached to the liquid receiver main body 2. In order to ensure that the sealing member 43 does not become detached from the bearing face 41e, a diameter of an outer periphery of the circular wall 42d is greater than a diameter of the bearing face 41e.
[0060] Further, in order to attach the stopper 4, wherein the filtering unit 41 is connected to the fixed portion 42 via the movable connection portion 44 in such a way as to be able to rotate, to the lower side aperture portion 2a of the liquid receiver main body 2, the stopper 4 is inserted from the filtering unit 41 and pushed into the lower side aperture portion 2a of the liquid receiver main body 2, as shown in
[0061] Thereupon, although the sealing member 43 moves in the axial direction in a state pressed between the inner wall of the liquid receiver main body 2 and the filtering unit 41 in this process, the movable connection portion 44 is linking the filtering unit 41 and the fixed portion 42 in such a way as to rotate freely, because of which the filtering unit 41 is prevented from rotating with respect to the liquid receiver main body 2 by a frictional force between the sealing member 43 and the inner peripheral face of the liquid receiver main body 2, and by a frictional force between the sealing member 43 and the bottom wall 41b of the filtering unit 41.
[0062] In this way, the movable connection portion 44 is linking the filtering unit 41 with the fixed portion 42 in such a way as not to cause the filtering unit 41 to follow a rotation of the fixed portion 42, and in such a way as to cause the filtering unit 41 to follow an axial direction movement of the fixed portion 42, because of which the sealing member 43 is not forcibly rotated in a state pressed against the inner wall of the liquid receiver main body 2, and there is no longer a problem of a surface of the sealing member 43 being damaged, or a problem of causing uneven distortion to occur in a circumferential direction in the sealing member 43. Because of this, high airtightness provided by the sealing member 43 can be maintained. Also, the diameter of the bottom face of the engagement portion 46b of the engagement projection 46 is greater than the interval between the opposing engagement arms 47a and 47b, meaning that when removing the stopper 4 from the liquid receiver main body 2 by causing the fixed portion 42 to rotate, the filtering unit 41 can be moved toward the lower side aperture portion 2a by the engagement projection 46, and the filtering unit 41 can be prevented from remaining in the liquid receiver main body 2.
[0063] Herein, the filtering unit 41 and the engagement receiving portion 47 (the engagement arms 47a and 47b) of the movable connection portion 44 formed integrated with the filtering unit 41 are, for example, injection molded using the kinds of die shown in
[0064] Dies used here include a fixed die 51 that shapes external forms of the filtering unit 41 and the engagement arms 47a and 47b, a movable die 52 that shapes an inner side form of the filtering unit 41, a sliding die 53 that shapes a side face aperture portion of the filtering unit 41, and a loose piece 54 and a pull-out core 55 that form opposing faces of the pair of engagement arms 47a and 47b,
[0065] A filtering unit forming recessed portion 51a that forms the filtering unit 41, and a core housing hole 51b formed to be continuous with a center of the filtering unit forming recessed portion 51a, are provided in the fixed die 51. Also, a bearing face forming stepped portion 51c that forms the bearing face 41e supporting the sealing member 43 is formed in the filtering unit forming recessed portion 51a in a portion separated from a portion wherein dies come into contact (a partitioning line P between the fixed die 51 and the movable die 52 and sliding die 53) (in this example, a portion farther to a lower side of the drawing than an interface with the sliding die 53).
[0066] The loose piece 54 and the pull-out core 55 are configured by a pair of pull-out cores 55 being attached in such a way as to be able to slide and in such a way as to sandwich the loose piece 54, as also shown in
[0067] The loose piece 54 is fixed in a predetermined place in the core housing hole 51b, and includes a cylindrical portion 54a, which is formed in accordance with an inner diameter of the core housing hole 51b, and a guide wall 54b, which includes a central shaft of the cylindrical portion 54a and is formed to have a width the same as a diameter of the cylindrical portion 54a, wherein the guide wall 54b is formed to become gradually thinner as the guide wall 54b becomes distanced from the cylindrical portion 54a (both side faces of the guide wall 54b are formed in such a way as to incline with respect to an axial center), and an engagement ridge 54c that extends in an axial direction is provided on both side faces of the guide wall 54b.
[0068] The pull-out core 55 is attached in such a way as to slide freely to both side faces of the guide wall 54 of the loose piece 54, is formed to have a width and a height of the same extent as those of the guide wall 54b, comes into contact with the cylindrical portion 54a of the loose piece 54 in a state assembled with the loose piece 54 in such a way as to cause an upper end to coincide with an upper end of the guide wall 54b, and includes a semi-cylindrical portion 55a that comes into contact with an inner peripheral face of the core housing hole 51b in such a way as to be able to slide, and a sliding wall portion 55b disposed extending diagonally upward from the semi-cylindrical portion 55a. An engagement groove 55c that engages with the engagement ridge 54c in such a way as to be able to slide is formed in a face of the sliding wall portion 55b opposing the guide wall 54b, and a recessed portion forming projection 55d that forms the engagement recessed portions 48a and 48b of the engagement arms 47a and 47b is provided on a back face of the sliding wall portion 55b.
[0069] Also, a through hole 54d through which an ejector pin 56 is inserted is formed on both sides of the guide wall 54b of the cylindrical portion 54a of the loose piece 54. The ejector pin 56 is inserted through the through hole 54d, one end is brought into contact with the semi-cylindrical portion 55a of the pull-out core 55, and another end is connected to a lifting plate 58 disposed below the loose piece 54 with a compression spring 57 interposed between the two.
[0070] The heretofore described configuration is such that in order to form the filtering unit 41 and the engagement arms 47a and 47b formed integrated with the filtering unit 41, the pull-out core 55 is assembled with the loose piece 54, and a state wherein the semi-cylindrical portion 55a of the pull-out core 55 is brought into contact with the cylindrical portion 54a of the loose piece 54 by a biasing force of the compression spring 57 is adopted, as shown in
[0071] Further, in this state, the movable die 52 is caused to move toward the fixed die 51, and the sliding die 53 is caused to move toward the filtering unit forming recessed portion 51a, thereby clamping the die, as shown in
[0072] Subsequently, after the resin is cured, the movable die 52 and the sliding die 53 are separated, as shown in
[0073] Subsequently, the lifting plate 58 is pressed upward, whereby the pull-out core 55 is pressed upward by the ejector pin 56. Thereupon, the pair of pull-out cores 55 approach each other while being pressed upward, meaning that when the recessed portion forming projection 55d separates from the engagement recessed portions 48a and 48b of the engagement arms 47a and 47b, the filtering unit 41a can be removed from the fixed die 51 together with the engagement receiving portion 47 (the engagement arms 47a and 47b).
[0074] Also, the bearing face 41e of the filtering unit 41 to which the sealing member 43 is attached is formed in the bearing face forming stepped portion 51c of the filtering unit forming recessed portion 51a of the fixed die 51, and is formed in a position deviating from the partitioning line P of the dies (the fixed die 51, the movable die 52, and the sliding die 53) that mold the filtering unit 41, because of which there is no problem of burr occurring on the bearing face 41e, and bearing face molding accuracy can be secured. This means that when the sealing member (O-ring) 43 is brought into contact with the bearing face, there is no damage to the sealing member 43, and a sealing performance can be maintained.
[0075] With regard to the heretofore described configuration, an example wherein the filtering unit 41 and the fixed portion 42 are connected by the movable connection portion 44 has been shown, but as shown in
[0076] The intermediate portion 60 is such that an internal thread 60a is formed in an axial direction in an upper face thereof (a face opposing the bottom wall 41b of the filtering unit 41), and the intermediate portion 60 is fixed to the filtering unit 41 by an external thread 41f provided projecting from the bottom wall 41b of the filtering unit 41 being screwed into the internal thread 60a.
[0077] Also, the engagement receiving portion 47 (the engagement arms 47a and 47b), which protrudes toward the connection concavity 45, is formed on a lower face (a face opposing the fixed portion 42 and the connection concavity 45) of the intermediate portion 60.
[0078] Further, the O-ring 43 is supported by a bearing face 60b provided on a peripheral edge of the upper face of the intermediate portion 60 (a peripheral edge of the face that comes into contact with the bottom wall 41b of the filtering unit 41), and seals a space between the intermediate portion 60 and the liquid receiver main body 2.
[0079] As other configurations are the same as the configurations shown in
[0080] This configuration is such that the filtering unit 41 is linked to the fixed portion 42 via the intermediate portion 60, and moreover, the sealing member 43 is disposed between the intermediate portion 60, on which a rotational force when screwing in the fixed portion 42 does not act at all, and the filtering unit 41, because of which there is no longer a problem of the sealing member 43 being damaged, or a problem of uneven distortion occurring in the circumferential direction in the sealing member 43, and a high sealing performance can be secured.
[0081] A modification of
[0082] This kind of configuration is such that in addition to the sealing member 43, on which a rotational force when screwing in the fixed portion 42 does not act at all, being disposed between the intermediate portion 60 and the filtering unit 41, the other sealing member 61, which is brought into contact with the inner peripheral face of the liquid receiver main body 2, is also disposed between the intermediate portion 60 and the fixed portion 42, because of which the sealing performance can be further improved.
[0083] The intermediate portion 60 and the engagement arms 47a and 47b of the movable connection portion 44 formed integrated with the intermediate portion 60 are, for example, injection molded using the kinds of die shown in
[0084] Dies used here include a fixed die 71 that shapes external forms of a lower side half of the intermediate portion 60 and the engagement arms 47a and 47b, a relay die that shapes an upper side half of the intermediate portion 60, a core die 73 on whose outer peripheral face a thread is engraved, and the loose piece 54 and pull-out core 55 that form opposing faces of the pair of engagement arms 47a and 47b.
[0085] An intermediate portion-use recessed portion 71a that forms a lower half of the intermediate portion 60, and a core housing hole 71b formed to be continuous with a center of the intermediate portion-use recessed portion 71a, are provided in the fixed die 71. Also, a bearing face forming stepped portion 71c that forms the bearing face 60c supporting the other sealing member 61 is formed in the intermediate portion recessed-use portion 71a in a portion separated from an interface with the relay die 72 (a partitioning line P between the fixed die 71 and the relay die 72) (in this example, a portion farther to a lower side of the drawing than the interface).
[0086] An intermediate portion-use recessed portion 72a that forms an upper half of the intermediate portion 60, and a through hole 72b through which the core die 73 is inserted, are provided in the relay die 72. Also, a bearing face forming stepped portion 72c that forms the bearing face 60b supporting the sealing member 43 is formed in the intermediate portion-use recessed portion 72a in a portion separated from an interface with the fixed die 71 (a partitioning line P between the fixed die 71 and the relay die 72) (in this example, a portion farther to an upper side of the drawing than the interface).
[0087] The loose piece 54 and the pull-out core 55 being of the same configuration as in
[0088] The heretofore described configuration is such that in order to form the intermediate portion 60 and the engagement arms 47a and 47b formed integrated with the intermediate portion 60, the pull-out core 55 is assembled with the loose piece 54, and a state wherein the pull-out core 55 is brought into contact with the cylindrical portion of the loose piece 54 by a biasing force of the compression spring 57 is adopted, as shown in
[0089] In this state, the die is clamped in such a way as to obtain a state wherein the relay die 72 is caused to abut the fixed die 71, and the portion of the core die 73 in which the thread is engraved is caused to protrude into a cavity portion that forms the intermediate portion 60. Further, a molten resin is injected from an unshown gate into a cavity portion enclosed by the dies.
[0090] After the resin is cured, the core die 73 is pulled out while being caused to rotate, and the portion of the core die 73 in which the thread is engraved is removed from the intermediate portion 60, as shown in
[0091] Subsequently, as shown in
[0092] Also, as the two bearing faces 60b and 60c of the intermediate portion 60 to which the sealing members are attached are formed in positions deviating from the partitioning line P of the dies that mold the intermediate portion 60 (the fixed die 71 and the relay die 72), there is no problem of burr occurring on the molded bearing faces, and molding accuracy can be secured. This means that when the sealing members 43 and 61 are caused to be supported by the bearing faces 60b and 60c, there is no damage to the sealing members 43 and 61, and a high sealing performance can be secured.
[0093] Another sealing structure of the stopper 4 is shown in
[0094] Herein, the stepped portion 2e may be formed to be perpendicular to the inner peripheral face of the liquid receiver main body 2, but in this example, the stepped portion 2e is formed to have a taper such that an inner peripheral face broadens toward the lower side aperture portion 2a.
[0095] Consequently, in this example, the sealing member 43 can be compressed in the axial direction, because of which a high sealing performance can be secured by increasing a fastening force of the stopper 4.
[0096] The heretofore described sealing structure that compresses in the axial direction may be utilized in the stopper 4 that has the intermediate portion 60. For example, as opposed to the configuration of
[0097] Also, as opposed to the configuration of
[0098] In these examples too, the stepped portion 2e may be formed to be perpendicular to the inner peripheral face of the liquid receiver main body 2, or may be formed to have a taper, as shown in the drawings.
[0099] These configurations are also such that the sealing performance can be improved by increasing the fastening force of the stopper 4, in the same way as in
DESCRIPTION OF REFERENCE NUMERALS AND SIGNS
[0100] 1: liquid receiver [0101] 2: liquid receiver main body [0102] 2a: lower side aperture portion (one side aperture portion) [0103] 2b: upper side aperture portion (other side aperture portion) [0104] 2e: stepped portion [0105] 4: stopper [0106] 41: filtering unit [0107] 42: fixed portion [0108] 42a: screw portion [0109] 43: sealing member [0110] 44: movable connection portion [0111] 41e, 60b, 60c: bearing face [0112] 51: fixed die [0113] 52: movable die [0114] 53: sliding die [0115] 54: loose piece [0116] 55: pull-out core [0117] 60: intermediate portion [0118] 100: condenser [0119] P: partitioning line