WO2015083602A1 - 流体関連機能装置 - Google Patents
流体関連機能装置 Download PDFInfo
- Publication number
- WO2015083602A1 WO2015083602A1 PCT/JP2014/081345 JP2014081345W WO2015083602A1 WO 2015083602 A1 WO2015083602 A1 WO 2015083602A1 JP 2014081345 W JP2014081345 W JP 2014081345W WO 2015083602 A1 WO2015083602 A1 WO 2015083602A1
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- WO
- WIPO (PCT)
- Prior art keywords
- inner hole
- fluid
- space
- cap member
- grooves
- Prior art date
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Classifications
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F16—ENGINEERING ELEMENTS AND UNITS; GENERAL MEASURES FOR PRODUCING AND MAINTAINING EFFECTIVE FUNCTIONING OF MACHINES OR INSTALLATIONS; THERMAL INSULATION IN GENERAL
- F16K—VALVES; TAPS; COCKS; ACTUATING-FLOATS; DEVICES FOR VENTING OR AERATING
- F16K27/00—Construction of housing; Use of materials therefor
- F16K27/10—Welded housings
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- B—PERFORMING OPERATIONS; TRANSPORTING
- B21—MECHANICAL METAL-WORKING WITHOUT ESSENTIALLY REMOVING MATERIAL; PUNCHING METAL
- B21D—WORKING OR PROCESSING OF SHEET METAL OR METAL TUBES, RODS OR PROFILES WITHOUT ESSENTIALLY REMOVING MATERIAL; PUNCHING METAL
- B21D39/00—Application of procedures in order to connect objects or parts, e.g. coating with sheet metal otherwise than by plating; Tube expanders
- B21D39/04—Application of procedures in order to connect objects or parts, e.g. coating with sheet metal otherwise than by plating; Tube expanders of tubes with tubes; of tubes with rods
- B21D39/046—Connecting tubes to tube-like fittings
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- B—PERFORMING OPERATIONS; TRANSPORTING
- B23—MACHINE TOOLS; METAL-WORKING NOT OTHERWISE PROVIDED FOR
- B23K—SOLDERING OR UNSOLDERING; WELDING; CLADDING OR PLATING BY SOLDERING OR WELDING; CUTTING BY APPLYING HEAT LOCALLY, e.g. FLAME CUTTING; WORKING BY LASER BEAM
- B23K11/00—Resistance welding; Severing by resistance heating
- B23K11/002—Resistance welding; Severing by resistance heating specially adapted for particular articles or work
-
- B—PERFORMING OPERATIONS; TRANSPORTING
- B23—MACHINE TOOLS; METAL-WORKING NOT OTHERWISE PROVIDED FOR
- B23K—SOLDERING OR UNSOLDERING; WELDING; CLADDING OR PLATING BY SOLDERING OR WELDING; CUTTING BY APPLYING HEAT LOCALLY, e.g. FLAME CUTTING; WORKING BY LASER BEAM
- B23K11/00—Resistance welding; Severing by resistance heating
- B23K11/14—Projection welding
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- B—PERFORMING OPERATIONS; TRANSPORTING
- B23—MACHINE TOOLS; METAL-WORKING NOT OTHERWISE PROVIDED FOR
- B23K—SOLDERING OR UNSOLDERING; WELDING; CLADDING OR PLATING BY SOLDERING OR WELDING; CUTTING BY APPLYING HEAT LOCALLY, e.g. FLAME CUTTING; WORKING BY LASER BEAM
- B23K11/00—Resistance welding; Severing by resistance heating
- B23K11/16—Resistance welding; Severing by resistance heating taking account of the properties of the material to be welded
- B23K11/20—Resistance welding; Severing by resistance heating taking account of the properties of the material to be welded of different metals
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- H—ELECTRICITY
- H01—ELECTRIC ELEMENTS
- H01H—ELECTRIC SWITCHES; RELAYS; SELECTORS; EMERGENCY PROTECTIVE DEVICES
- H01H35/00—Switches operated by change of a physical condition
- H01H35/24—Switches operated by change of fluid pressure, by fluid pressure waves, or by change of fluid flow
- H01H35/34—Switches operated by change of fluid pressure, by fluid pressure waves, or by change of fluid flow actuated by diaphragm
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- B—PERFORMING OPERATIONS; TRANSPORTING
- B23—MACHINE TOOLS; METAL-WORKING NOT OTHERWISE PROVIDED FOR
- B23K—SOLDERING OR UNSOLDERING; WELDING; CLADDING OR PLATING BY SOLDERING OR WELDING; CUTTING BY APPLYING HEAT LOCALLY, e.g. FLAME CUTTING; WORKING BY LASER BEAM
- B23K2103/00—Materials to be soldered, welded or cut
- B23K2103/18—Dissimilar materials
- B23K2103/22—Ferrous alloys and copper or alloys thereof
Definitions
- the present invention relates to fluid-related functions such as a pressure switch connected to a pipe or the like through which a fluid such as a refrigerant flows, a pressure sensitive device such as a pressure sensor, and a valve device that controls the flow rate of the fluid flowing through the pipe or the like.
- the present invention relates to a fluid-related functional device.
- the conventional pressure switch 801 includes a brass joint 810 and a stainless steel lid member 820.
- the joint 810 and the lid member 820 are diffused by projection welding (resistance welding). It is joined.
- the joint 810 is connected to a pipe of a fluid circuit (not shown), and the fluid is introduced into the lid member 820 through the inner hole 812 at the center of the joint 810 and the through hole 822 of the lid member 820.
- the pressure switch 801 is provided with an outer projection 815 (projection) and an inner projection 816 for projection welding.
- the spatter generated when the outer protrusion 815 is joined to the lid member 820 by projection welding is confined in a space formed between the outer protrusion 815 and the inner protrusion 816.
- the pressure switch 801 is formed so that the inner protrusion 816 has a lower protrusion height than the outer protrusion 815 so that the inner protrusion 816 is not welded together with the outer protrusion 815 during projection welding.
- a gap is provided between 816 and the lid member 820. However, if this gap is large, spatter that should be confined in the space may flow out into the pipe. If this gap is small, the inner projection 816 is welded, and spatter generated at that time is sputtered into the pipe. There is a possibility that it may flow out, and there is a problem that it is difficult to adjust the gap.
- the following can be considered as a structure for solving such a problem.
- the pressure switch 901 shown in FIG. 17 includes a brass joint 910 and a stainless cap member 920.
- the joint 910 includes, on a flat surface 912, a cylindrical portion 913 communicating with the conduction path 911b, and an annular mountain-shaped projection 917 that is disposed concentrically with the cylindrical portion 913 and is projection welded to the cap member 920.
- the cap member 920 has an inner hole 924 through which the cylindrical portion 913 is inserted at the center.
- the joint 910 and the cap member 920 are assembled as follows. First, the projection 917 of the joint 910 and the cap member 920 are joined by projection welding in a state where the cylindrical portion 913 of the joint 910 is inserted into the inner hole 924 of the cap member 920. Then, a load is applied to the peripheral portion 915 of the inner hole 914 of the cylindrical portion 913 toward the outside centering on the axis L, so that the peripheral portion 915 overlaps the peripheral portion 925 of the inner hole 924 of the cap member 920 over the entire circumference. Caulking.
- spatter generated during projection welding between the joint 910 and the cap member 920 is stored in the space ⁇ between the joint 910 and the cap member 920 inside the annular projection 917 and is also cylindrical.
- the peripheral portion 915 of the portion 913 is confined in the space ⁇ by being caulked by the peripheral portion 925. Therefore, it is possible to suppress spatter outflow into the fluid circuit during actual operation when the pressure switch 901 is connected to the piping of the fluid circuit.
- the pressure switch 901 described above is caulked so that the peripheral portion 915 of the inner hole 914 of the cylindrical portion 913 overlaps the peripheral portion 925 of the inner hole 924 of the cap member 920 over the entire periphery, these peripheral portions 915. And the peripheral portion 925 are not completely sealed. Therefore, as shown in FIG. 18, the fluid R gradually enters from the caulking portion and accumulates in the space ⁇ as shown in FIG. Sometimes. In the state where the fluid R is accumulated in the space ⁇ , for example, when the temperature of the fluid flowing in the piping changes due to the operation switching of the fluid circuit or the like, the fluid R in the space ⁇ expands due to vaporization. There was a risk that the pressure in the space ⁇ would increase, causing deformation of the joint 910 and the cap member 920.
- an object of the present invention is to provide a fluid-related functional device capable of suppressing deformation of a connection member or a case component that may be caused by expansion of a fluid accumulated in a space confining spatter during resistance welding. To do.
- the invention described in claim 1 is formed with a metal connecting member in which an inner hole through which a fluid flows is formed, and an inner hole arranged to overlap the inner hole.
- a fluid-related functional device in which the connection member and the case component are joined by projection welding applied in an annular shape surrounding each inner hole, and the projection welding is performed.
- the peripheral portion of the inner hole in one of them is caulked to the other over the entire circumference, and the connection member
- at least one of the case parts is provided with a communication path that communicates the inside and outside of the space, and the communication path allows the passage of the fluid and is generated by the resistance welding.
- It is a fluid-related functional device according to claim which is formed so as to restrict the passage of data.
- the invention described in claim 2 is formed with a metal connecting member in which an inner hole through which a fluid flows is formed, and an inner hole arranged so as to overlap the inner hole.
- a fluid-related functional device in which the connection member and the case component are joined by projection welding applied in an annular shape surrounding each inner hole, and the projection welding is performed. So that a closed space is formed between the connecting member and the case part inside the part where the peripheral edge portion of the inner hole is caulked to the other over the entire circumference.
- a communication passage is provided that passes through an annular contact region between the connection member formed by caulking the peripheral portion of the inner hole to the other side and the case part and communicates the inside and outside of the space;
- Killen passage is a fluid-related function apparatus characterized by being formed so as to restrict the passage of sputtering caused by acceptable and the resistance welding passage of the fluid.
- the invention described in claim 3 is characterized in that, in the invention described in claim 2, the communication path is constituted by one or a plurality of grooves formed in the connection member or the case part. To do.
- the invention described in claim 4 is the invention described in claim 3, wherein a plurality of the grooves are provided, and the grooves are arranged at intervals in the entire circumferential direction of the contact region. It is what.
- the invention described in claim 5 is characterized in that, in the invention described in claim 3, a plurality of the grooves are provided, and the grooves are arranged in a lattice shape at least over the entire contact area. It is.
- the invention described in claim 6 is the invention described in claim 2, wherein the communication path is connected to a recess by roughening applied to at least one of the connection member and the case part. It is characterized by being comprised.
- the invention described in claim 7 is characterized in that, in the invention described in claim 6, the roughening process is performed over at least the entire contact area.
- a metal connection member in which an inner hole through which a fluid flows is formed, and a metal connection member in which an inner hole arranged to overlap with the inner hole of the connection member is formed.
- case parts The connecting member and the case component are joined by projection welding applied in an annular shape surrounding each inner hole.
- the peripheral portion of the inner hole in one of these is caulked to the other over the entire circumference.
- At least one of the connection member and the case part is provided with a communication path that communicates the inside and outside of the space between the connection member and the case part.
- the communication path is formed so as to allow passage of fluid and restrict passage of spatter caused by resistance welding.
- spatter generated during resistance welding is confined in the space formed between the connection member and the case component, and fluid can flow inside and outside the space through the communication path. Thereby, even when the fluid accumulated in the space confining the spatter during resistance welding expands and the pressure in the space rises, the pressure can be released from the communication path. Therefore, it is possible to suppress the deformation of the connection member and the case component that may be caused by the expansion of the fluid accumulated in the space for confining the spatter during resistance welding.
- a metal connection member in which an inner hole through which a fluid flows is formed, and a metal connection member in which an inner hole arranged to overlap with the inner hole of the connection member is formed.
- case parts The connecting member and the case component are joined by projection welding applied in an annular shape surrounding each inner hole.
- the peripheral portion of the inner hole in one of these is caulked to the other over the entire circumference.
- the space between the connection member and the case part passes through the annular contact region between the connection member and the case part, which is in contact with the peripheral edge portion of the inner hole in one of the connection member and the case part.
- a communication path is provided for communication between the inside and the outside of the vehicle. The communication path is formed so as to allow passage of fluid and restrict passage of spatter caused by resistance welding.
- spatter generated during resistance welding is confined in the space formed between the connection member and the case component, and fluid can flow inside and outside the space through the communication path. Thereby, even when the fluid accumulated in the space confining the spatter during resistance welding expands and the pressure in the space rises, the pressure can be released from the communication path. Therefore, it is possible to suppress the deformation of the connection member and the case component that may be caused by the expansion of the fluid accumulated in the space for confining the spatter during resistance welding.
- the communication path is constituted by one or a plurality of grooves formed in the connection member or the case part. Since it did in this way, a communicating path can be comprised by the groove
- a plurality of grooves constituting the communication path are provided, and these grooves are arranged at intervals in the entire circumferential direction of the contact region. Since it did in this way, since the several communicating path is arrange
- a plurality of grooves constituting the communication path are provided, and these grooves are arranged in a lattice shape over at least the entire contact region. Since it did in this way, since the several communicating path is arrange
- the communication path is formed by connecting the concave portions formed by roughening applied to at least one of the connection member and the case part. Since it did in this way, for example, it is a communication path by connecting a plurality of concave parts among innumerable convex parts and concave parts formed by roughening that can be easily performed such as sandblasting, etching, laser processing, scratching, etc. Can be configured. Therefore, it is possible to more easily suppress the deformation of the connection member and the case component that may be caused by the expansion of the fluid accumulated in the space confining the spatter during resistance welding.
- the roughening process is performed over at least the entire contact area.
- the communication path is formed in a substantially mesh shape in the entire contact area, that is, the plurality of communication paths are substantially evenly arranged in the circumferential direction of the space formed between the connection member and the case part. Since it becomes the structure similar to the structure arrange
- FIG. 1 It is a longitudinal cross-sectional view of the pressure switch which concerns on the 1st Embodiment of this invention.
- A is sectional drawing before joining of the joint of a pressure switch of FIG. 1, and a cap member
- (b) is sectional drawing after joining.
- A) is a plan view of the cap member of the pressure switch of FIG. 1, and (b) is a sectional view taken along line XX of (a). It is sectional drawing to which the space vicinity between the coupling and cap member in the pressure switch of FIG. 1 was expanded.
- FIG. 1 It is a figure which shows the structure of the modification (modification 1) of the pressure switch of 1st Embodiment, Comprising: (a) is sectional drawing before joining of a coupling and a cap member, (b) is sectional after joining.
- FIG. 2 It is a figure which shows the structure of the modification (modification 2) of the pressure switch of 1st Embodiment, Comprising: (a) is sectional drawing before joining of a coupling and a cap member, (b) is sectional after joining.
- FIG. It is a figure which shows the structure of the modification (modification 3) of the pressure switch of 1st Embodiment, Comprising: (a) is sectional drawing before joining of a coupling and a cap member, (b) is sectional after joining.
- FIG. It is a figure which shows the structure of the modification (modification 4) of the pressure switch of 1st Embodiment, Comprising: (a) is sectional drawing before joining of a coupling and a cap member, (b) is sectional after joining.
- FIG. It is a figure which shows the structure of the modification (modification 5) of the pressure switch of 1st Embodiment, Comprising: (a) is sectional drawing before joining of a coupling and a cap member, (b) is sectional after joining.
- FIG. 1 is a longitudinal sectional view of a pressure switch according to a first embodiment of the present invention.
- FIG. 2A is a cross-sectional view before joining the joint and cap member of the pressure switch of FIG. 1
- FIG. 2B is a cross-sectional view after joining.
- 3A is a plan view of the cap member of the pressure switch of FIG. 1
- FIG. 3B is a cross-sectional view taken along line XX of FIG.
- FIG. 4 is an enlarged cross-sectional view of the vicinity of the space between the joint and the cap member in the pressure switch of FIG.
- This pressure switch is an example of a pressure sensitive device.
- the pressure switch is connected to a pipe through which a fluid to be detected such as a refrigerant flows to form a fluid circuit, and is opened / closed (off / on) according to the pressure of the fluid.
- the pressure switch 1 includes a brass joint 10 as a connection member, a stainless cap member 20 as a case component, a disc 30, a stopper 40, and a switch. It has the part 50 and the outer cover 60 which consists of a stainless steel thin plate.
- the joint 10 has a main body 11 with a flat surface 12 facing a cap member 20 described later. Inside the main body 11, a female screw 11a for screwing into a pipe (not shown) is formed. Further, the flat surface 12 of the joint 10 is provided with a cylindrical portion 13 and a projection 17 as an annular portion.
- the cylindrical portion 13 is formed in a cylindrical shape whose axis is overlapped with the axis L, and an inner hole 14 is opened inside thereof.
- the inner hole 14 communicates with the screw chamber 11 ⁇ / b> A of the main body part 11 through the conduction path 11 b of the main body part 11.
- the projection 17 is formed so as to protrude in an annular mountain shape with the axis L as the center.
- the projection 17 is disposed at a position away from the cylindrical portion 13 so as to surround the periphery of the cylindrical portion 13.
- the cap member 20 includes a bowl-shaped bowl-shaped part 21 and an annular flange part 22 on the outer periphery thereof, and a circular inner hole 24 is formed at the center of the bowl-shaped part 21. .
- the diameter of the inner hole 24 is larger than the outer diameter of the cylindrical portion 13 and smaller than the inner diameter of the projection 17.
- the joint 10 and the cap member 20 are joined by projection welding and caulking.
- the vicinity of the welded portion and the caulking portion has a rotationally symmetric shape with the axis L as the rotation axis.
- the cylindrical portion 13 of the joint 10 is inserted into the inner hole 24 of the cap member 20.
- the inner hole 14 of the cylindrical portion 13 and the inner hole 24 of the cap member 20 are arranged so as to be coaxially overlapped, and the screw chamber 11 ⁇ / b> A communicates with the inside of the flange-shaped portion 21 of the cap member 20.
- the projection 17 is brought into contact with an annular portion 21 a that surrounds the inner hole 24 on the surface of the flange-shaped portion 21 on the side of the joint 10 (a surface facing downward in the drawing) and is spaced from the inner hole 24.
- the annular portion 21a and the projection 17 are joined by projection welding. This projection welding is performed in an annular shape surrounding the inner hole 14 of the joint 10 and the inner hole 24 of the cap member 20.
- peripheral part 15 of the inner hole 14 of the cylindrical part 13 is caulked so that it may overlap with the peripheral part 25 of the inner hole 24 of the cap member 20 by applying a load toward the outer side centering on the axis L. .
- the peripheral part 15 of the inner hole 14 of the cylindrical part 13 is press-contacted with the peripheral part 25 of the inner hole 24 of the cap member 20, and it seals so that the said space (beta) may become a closed space.
- spatter generated during projection welding between the joint 10 and the cap member 20 is stored in the space ⁇ .
- the space ⁇ is sealed by caulking the peripheral portion 15 of the inner hole 14 of the cylindrical portion 13, and the spatter is confined in the space ⁇ .
- a plurality of grooves 27 having a V-shaped cross section extending radially from the center of the peripheral portion 25 are formed in the peripheral portion 25 of the inner hole 24 of the cap member 20. ing.
- the plurality of grooves 27 traverse (pass through) the annular contact region T between the peripheral portion 15 of the inner hole 14 of the cylindrical portion 13 and the peripheral portion 25 of the inner hole 24 of the cap member 20 by caulking. ) Is formed.
- the plurality of grooves 27 are arranged at equal intervals over the entire circumferential direction of the contact region T.
- the plurality of grooves 27 are preferably arranged at equal intervals in the entire circumferential direction of the contact region T, but may be configured to be arranged at different intervals in the entire circumferential direction of the contact region T. Alternatively, a configuration in which only one groove 27 is provided may be used.
- the plurality of grooves 27 are formed so that the groove width and groove depth are equal to or less than the maximum diameter (for example, 0.8 mm) that is allowed to flow out to the pipe in the spatter generated by the projection welding.
- the plurality of grooves 27 are arranged such that one end of the groove 27 is located on the inner side of the bowl-shaped portion 21 when the peripheral portion 15 of the inner hole 14 of the cylindrical portion 13 is overlapped with the peripheral portion 25 of the inner hole 24 of the cap member 20.
- the length is such that it is exposed.
- both the groove width and the groove depth are 0.2 mm. As shown in FIG.
- the plurality of communication paths 65 regulate the passage of spatter generated by projection welding (resistance welding) existing in the space ⁇ . Specifically, since the plurality of communication passages 65 are constituted by the plurality of grooves 27, the thickness (inner diameter) is equal to or less than the maximum diameter allowed to flow out to the pipe to which the pressure switch 1 is connected. Therefore, the passage of the spatter exceeding the maximum diameter is restricted.
- the disk 30 is made of, for example, a metal such as thin film stainless steel, and is formed in a disk shape in which the central portion is formed in a spherical shape with a large curvature radius and the outer peripheral portion is flattened.
- the disc 30 is disposed so as to overlap the upper side of the cap member 20 in the figure so that the central portion thereof is convex toward the cap member 20 side.
- the pressure chamber 29 is formed between the bowl-shaped portion 21 and the disk 30 by overlapping the disk 30 on the cap member 20.
- the stopper 40 is made of, for example, a metal such as stainless steel, and is formed in an annular shape having substantially the same outer diameter as the disk 30 and having an opening 41 in the center. The stopper 40 is disposed so as to overlap the upper side of the disk 30 in the drawing.
- the switch unit 50 includes a guide 51 having a shaft hole 51 a formed at the center, a drive shaft 52 fitted in the shaft hole 51 a of the guide 51, and a cylindrical terminal block 53 fitted around the guide 51.
- a first terminal 54 and a second terminal 55 are fixed to the terminal block 53, and a contact plate 54 a is attached to the first terminal 54.
- a first contact 54 b is attached to the contact plate 54 a, and a second contact 55 a is attached to the second terminal 55.
- the switch unit 50 is in a closed state (normally closed) in which the first contact 54b is in contact with the second contact 55a at a normal time lower than a preset set pressure.
- the outer cover 60 is made of, for example, a thin plate made of stainless steel or copper, and the outer peripheral portions of the cap member 20, the disc 30, the stopper 40, and the terminal block 53 are fixed by caulking.
- the fluid flowing through the pipe is introduced into the pressure chamber 29 of the cap member 20 through the joint 10, and the disk 30 is deformed according to the pressure of the fluid to push the drive shaft 52.
- the pressure is equal to or higher than the preset pressure set in advance, the first contact 54b is separated from the second contact 55a in conjunction with the drive shaft 52, and the switch is opened (off). Thereby, it can be detected that the pressure of the fluid has reached the set pressure.
- the pressure switch 1 is connected to a pipe through which a fluid to be detected flows to form a fluid circuit together with the pipe, and is opened / closed (off / on) according to the pressure of the fluid. Then, during actual operation of the fluid circuit, fluid flows into or out of the space ⁇ between the joint 10 and the cap member 20 through the plurality of communication passages 65. At this time, the plurality of communication passages 65 restrict the spatter generated during projection welding existing in the space ⁇ from passing and suppress the spatter from flowing out of the space ⁇ .
- the fluid in the space ⁇ expands due to vaporization.
- the increase in pressure in the space ⁇ is suppressed by the expansion of the fluid R escaping from the plurality of communication paths 65 to the outside of the space ⁇ .
- the metal joint 10 in which the inner hole 14 through which the fluid flows is formed, and the inner hole 24 arranged coaxially with the inner hole 14 of the joint 10 are formed.
- the connecting member 10 and the cap member 20 are joined by projection welding applied in an annular shape surrounding the inner holes 14 and 24.
- the peripheral portion 15 of the inner hole 14 of the joint 10 is caulked to the cap member 20 over the entire circumference so that a closed space ⁇ is formed between the joint 10 and the cap member 20 inside the projection 17.
- the communication passage 65 is formed to allow passage of fluid and restrict passage of spatter generated by resistance welding.
- spatter generated during resistance welding is confined in the space ⁇ formed between the joint 10 and the cap member 20, and fluid can flow through the communication path 65 in and out of the space ⁇ . It becomes.
- the pressure in the space ⁇ increases, the pressure can be released from the communication path 65 to the outside of the space ⁇ . Therefore, it is possible to suppress deformation of the joint 10 and the cap member 20 that may occur due to the expansion of the fluid accumulated in the space ⁇ that confines the spatter during resistance welding.
- the communication path 65 is constituted by a plurality of grooves 27 formed in the cap member 20. Since it did in this way, the communicating path 65 can be comprised by the groove
- a plurality of grooves 27 constituting the communication path 65 are provided, and these grooves 27 are arranged at intervals in the entire circumferential direction of the contact region T. Since it did in this way, since the some communicating path 65 is equally arrange
- FIG. 5 is a diagram illustrating a configuration of a modified example (modified example 1) of the pressure switch of the first embodiment, in which (a) is a cross-sectional view before joining the joint and the cap member, and (b) It is sectional drawing after joining.
- a cylindrical portion 23 having a cylindrical shape centering on the axis L is formed in the flange portion 21 of the cap member 20.
- An inner hole 24 is opened at the center of the cylindrical portion 23.
- the cylindrical portion 13 of the joint 10 is inserted into the inner hole 24 of the cylindrical portion 23 of the cap member 20.
- the inner hole 14 of the cylindrical portion 13 of the joint 10 and the inner hole 24 of the cylindrical portion 23 of the cap member 20 are coaxially stacked, and the screw chamber 11A communicates with the inside of the flange-shaped portion 21 of the cap member 20. Is done.
- the cylindrical portion 23 has an inner diameter larger than the outer diameter of the cylindrical portion 13 so that a space ⁇ is formed between the cylindrical portion 13 of the joint 10 and the cylindrical portion 23 of the cap member 20. It is formed protruding from. And as shown in FIG.5 (b), in the cyclic
- the cylindrical portion 23 corresponds to an annular portion of the cap member 20 that is projection welded.
- peripheral part 15 of the inner hole 14 of the cylindrical part 13 is caulked so that it may overlap with the peripheral part 25 of the inner hole 24 of the cap member 20 by applying a load toward the outer side centering on the axis L. .
- the peripheral portion 15 of the inner hole 14 of the cylindrical portion 13 is pressed against the peripheral portion 25 of the inner hole 24 of the cap member 20, and the space ⁇ between the cylindrical portion 13 of the joint 10 and the cylindrical portion 23 of the cap member 20 is increased. Sealed to be a closed space.
- a plurality of grooves 27 similar to those in the first embodiment described above are formed in the peripheral portion 25 of the cap member 20. Then, when the peripheral portion 15 of the inner hole 14 of the cylindrical portion 13 is caulked to overlap the peripheral portion 25 of the inner hole 24 of the cap member 20, a part of the openings of the plurality of grooves 27 is blocked, and the space A plurality of communication passages 65 communicating between the inside and outside of ⁇ (specifically, the space ⁇ and the pressure chamber 29) are formed.
- spatter generated during resistance welding is confined in the space ⁇ formed between the joint 10 and the cap member 20, and the fluid flows through the communication path 65. It becomes possible to circulate inside and outside the space ⁇ .
- FIG. 6 is a diagram illustrating a configuration of a modification (modification 2) of the pressure switch of the first embodiment, in which (a) is a cross-sectional view before joining the joint and the cap member, and (b) It is sectional drawing after joining.
- the cylindrical portion 13 of the joint 10 is formed shorter than that of the first embodiment. 6 (b), the cylindrical portion 13 of the joint 10 is crushed in the length direction (vertical direction in the drawing) when a load is applied in the direction of the axis L, and the inner hole 14 of the cylindrical portion 13 is collapsed.
- the peripheral edge portion 15 of the cap member 20 is expanded in diameter within the inner hole 24 of the cap member 20 and is caulked so as to overlap the peripheral surface 24 a of the inner hole 24.
- the peripheral portion 15 of the inner hole 14 of the cylindrical portion 13 is pressed against the peripheral surface 24a of the inner hole 24 of the cap member 20, and the space ⁇ is sealed so as to be a closed space.
- the peripheral surface 24a of the inner hole 24 of the cap member 20 is formed with a plurality of grooves 27 having a V-shaped cross section extending in the penetrating direction of the inner hole 24 (vertical direction in the figure).
- the plurality of grooves 27 are formed so as to cross (pass) the annular contact region between the peripheral portion 15 of the cylindrical portion 13 and the peripheral surface 24a of the inner hole 24 of the cap member 20 in the direction of the axis L.
- channel 27 is arrange
- the plurality of grooves 27 are formed in the same manner as the first embodiment described above in terms of groove width and groove depth. Then, when the peripheral portion 15 of the inner hole 14 of the cylindrical portion 13 is caulked to overlap the peripheral surface 24a of the inner hole 24 of the cap member 20, the openings of the plurality of grooves 27 are blocked, and the inside and outside of the space ⁇ (Specifically, a plurality of communication passages 65 communicating with the space ⁇ and the pressure chamber 29) are formed.
- spatter generated during resistance welding is confined in the space ⁇ formed between the joint 10 and the cap member 20, and the fluid flows through the communication path 65. It becomes possible to distribute inside and outside the space ⁇ .
- FIG. 7 is a diagram illustrating a configuration of a modified example (modified example 3) of the pressure switch of the first embodiment, in which (a) is a cross-sectional view before joining the joint and the cap member, and (b) It is sectional drawing after joining.
- the inner portion of the cylindrical portion 13 is changed. Except for applying a load to the peripheral portion 15 of the hole 14 toward the outside centering on the axis L, the peripheral portion 15 is enlarged in diameter and caulked so as to overlap the peripheral surface 24a of the inner hole 24 of the cap member 20.
- the configuration is the same as that of the second modification.
- spatter generated during resistance welding is confined in the space ⁇ formed between the joint 10 and the cap member 20, and the fluid flows through the communication path 65. It becomes possible to distribute inside and outside the space ⁇ .
- FIG. 8 is a diagram illustrating a configuration of a modified example (modified example 4) of the pressure switch of the first embodiment, in which (a) is a cross-sectional view before joining the joint and the cap member, and (b) It is sectional drawing after joining.
- an inner hole 14 penetrating from the screw chamber 11A to the flat surface 12 is formed in the main body 11 of the joint 10.
- a cylindrical portion 23 having a cylindrical shape centering on the axis L is formed in the flange portion 21 of the cap member 20.
- An inner hole 24 is opened at the center of the cylindrical portion 23.
- the peripheral portion 25 of the cylindrical portion 23 of the cap member 20 is inserted into the inner hole 24 of the joint 10.
- the peripheral portion 25 of the inner hole 24 of the cylindrical portion 23 of the cap member 20 is loaded toward the outside with the axis L as the center, so that the peripheral portion 25 becomes a joint.
- the inner diameter of the inner hole 14 is increased so as to overlap the peripheral surface 14 a of the inner hole 14.
- the peripheral edge portion 25 of the inner hole 24 of the cylindrical portion 23 of the cap member 20 is pressed against the peripheral surface 14a of the inner hole 14 of the joint 10, and the space ⁇ between the joint 10 and the cap member 20 becomes a closed space. It is sealed as follows.
- a plurality of grooves 19 having a V-shaped cross section are formed on the peripheral surface 14a of the inner hole 14 of the joint 10 so as to extend in the penetrating direction of the inner hole 14 (vertical direction in the figure).
- the plurality of grooves 19 cross an annular contact region in the direction of the axis L between the peripheral surface 14a of the inner hole 14 of the joint 10 and the peripheral portion 25 of the inner hole 24 of the cylindrical portion 23 of the cap member 20 by caulking. It is formed to (pass).
- channel 19 is arrange
- the plurality of grooves 19 are formed in the same manner as the plurality of grooves 27 of the first embodiment described above in terms of groove width and groove depth.
- the peripheral portion 25 of the inner hole 24 of the cylindrical portion 23 is caulked to overlap the peripheral surface 14 a of the inner hole 14 of the joint 10, a part of the openings of the plurality of grooves 19 is blocked, and the space ⁇
- a plurality of communication passages 65 are formed to communicate the inside and outside (specifically, the space ⁇ and the inner hole 14).
- spatter generated during resistance welding is confined in the space ⁇ formed between the joint 10 and the cap member 20, and the fluid flows through the communication path 65. It becomes possible to distribute inside and outside the space ⁇ .
- FIG. 9 is a diagram illustrating a configuration of a modified example (modified example 5) of the pressure switch according to the first embodiment, in which (a) is a cross-sectional view before joining the joint and the cap member, and (b) It is sectional drawing after joining.
- a pedestal portion 18 having a circular shape in plan view is formed inside the projection 17 of the flat surface 12 of the joint 10.
- the pedestal 18 has an inner hole 14.
- the peripheral portion 25 of the inner hole 24 of the cap member 20 is bent and deformed toward the pedestal 18 side of the joint 10 when a load is applied in the direction of the axis L, and the cap member
- the peripheral portion 25 of the 20 inner holes 24 is caulked so as to overlap the peripheral portion 18 a of the pedestal 18.
- the peripheral portion 25 of the inner hole 24 of the cap member 20 is pressed against the peripheral portion 18a of the pedestal portion 18, and the space ⁇ between the joint 10 and the cap member 20 is sealed so as to be a closed space.
- the inner hole 14 of the base portion 18 of the joint 10 and the inner hole 24 of the cylindrical portion 23 of the cap member 20 are disposed so as to overlap in the direction of the axis L, and the screw chamber 11A and the flange portion 21 of the cap member 20 are disposed.
- the inside communicates.
- a plurality of grooves 19 having a V-shaped cross section extending in the radial direction of the pedestal portion 18 are formed in the peripheral portion 18 a of the pedestal portion 18 of the joint 10.
- the plurality of grooves 19 radially traverse (pass) the annular contact region between the peripheral portion 18a of the base portion 18 of the joint 10 and the peripheral portion 25 of the inner hole 24 of the cap member 20 by caulking. Is formed.
- channel 19 is arrange
- the plurality of grooves 19 are formed in the same manner as the plurality of grooves 27 of the first embodiment described above in terms of groove width and groove depth. Then, when the peripheral portion 25 of the inner hole 24 of the cap member 20 is caulked and overlapped with the peripheral portion 18a of the base portion 18 of the joint 10, a part of the openings of the plurality of grooves 19 is blocked, and the space ⁇ A plurality of communication passages 65 communicating with the inside and outside (specifically, the space ⁇ and the pressure chamber 29) are formed.
- the spatter generated during resistance welding is confined in the space ⁇ formed between the joint 10 and the cap member 20, and the fluid flows through the communication path 65. It becomes possible to distribute inside and outside the space ⁇ .
- FIG. 10 is a view showing a configuration of a modified example (modified example 6) of the pressure switch according to the first embodiment, wherein (a) is a cross-sectional view before joining the copper tube and the cap member, and (b).
- FIG. 3 is a cross-sectional view after joining.
- a copper tube 10A that is a copper-based member as a connecting member is provided instead of the joint 10. Except for this, the configuration is the same as that of the first embodiment.
- This copper pipe 10A has a main body part 11 with a flat surface 12 facing the cap member 20, and the inside of the main body part 11 is a pipe line 11B.
- the cylindrical portion 13 and the projection 17 of the copper tube 10A have the same configuration as in the first embodiment.
- spatter generated during resistance welding is confined in the space ⁇ formed between the copper tube 10A and the cap member 20, and the fluid flows through the communication path 65. It becomes possible to circulate inside and outside the space ⁇ .
- FIG. 11 is a longitudinal sectional view of an on-off valve according to the second embodiment of the present invention.
- This on-off valve is an example of a valve device, and is connected to a pipe through which a fluid such as a refrigerant flows to constitute a fluid circuit, and allows or restricts the flow of the fluid by opening and closing the valve body.
- the on-off valve 2 includes a brass housing 70 that is a copper-based member as a connecting member, and a stainless case 80.
- the housing 70 has a main body 71 with a flat surface 72 facing a case 80 described later.
- a valve chamber 78 and a valve port 79 opened to the valve chamber 78 are formed inside the main body 71.
- a first joint pipe X1 and a second joint pipe X2 are attached to the housing 70, and the first joint pipe X1 and the second joint pipe X2 are communicated with each other through a valve chamber 78 and a valve port 79.
- a valve body (not shown) is provided in the valve chamber 78, and a drive mechanism (not shown) for driving the valve body is provided in a case main body 82 of the case 80 described later.
- a flat surface 72 of the housing 70 is provided with a cylindrical portion 73 and a projection 77 as an annular portion.
- the cylindrical portion 73 is formed in a cylindrical shape whose axis is overlapped with the axis L, and an inner hole 74 is opened inside thereof.
- the inner hole 74 communicates with the valve chamber 78 of the main body 71.
- the projection 77 is formed so as to protrude in an annular mountain shape with the axis L as the center.
- the projection 77 is arranged at a position away from the cylindrical portion 73 so as to surround the cylindrical portion 73.
- the case 80 has a disk-shaped case part 81 and a cylindrical case body 82.
- the case main body 82 that houses the drive mechanism and the like is fixed to the case component 81 by welding or the like.
- a circular inner hole 84 is opened at the center of the case component 81. The diameter of the inner hole 84 is larger than the outer diameter of the cylindrical portion 73 and smaller than the inner diameter of the projection 77.
- the housing 70 and the case component 81 are joined by projection welding and caulking, as in the first embodiment described above. Also in the present embodiment, the vicinity of the welded portion and the caulking portion has a rotationally symmetric shape with the axis L as the rotation axis.
- the cylindrical portion 73 of the housing 70 is inserted into the inner hole 84 of the case component 81.
- the inner hole 74 of the cylindrical part 73 and the inner hole 84 of the case component 81 are disposed so as to be coaxially overlapped.
- the projection 77 is brought into contact with an annular portion 81a surrounding the inner hole 84 on the surface of the case part 81 on the housing 70 side (surface facing downward in the drawing) and spaced from the inner hole 84,
- the annular portion 81a and the projection 77 are joined by projection welding. This projection welding is performed in an annular shape surrounding the inner hole 74 of the housing 70 and the inner hole 84 of the case component 81.
- a weld ⁇ is formed between the projection 77 and the annular portion 81a. Further, since the projection 77 is formed so as to protrude from the flat surface 72, the flat surface 72 of the housing 70, the cylindrical portion 73 and the projection 77, and between the housing 70 and the case part 81 on the radially inner side of the projection 77, and A space ⁇ surrounded by the housing 70 side surface of the case component 81 is formed.
- peripheral part 75 of the inner hole 74 of the cylindrical part 73 is caulked so that it may overlap with the peripheral part 85 of the inner hole 84 of the case component 81 by applying a load toward the outer side centering on the axis L. .
- the peripheral part 75 of the inner hole 74 of the cylindrical part 73 is press-contacted with the peripheral part 85 of the inner hole 84 of the case component 81, and it seals so that the said space (beta) may become a closed space.
- spatter generated during projection welding between the housing 70 and the case component 81 is stored in the space ⁇ .
- the space ⁇ is sealed by caulking the peripheral portion 75 of the inner hole 74 of the cylindrical portion 73, and the spatter is confined in the space ⁇ .
- a plurality of grooves 87 having a V-shaped cross section extending radially from the center of the peripheral portion 85 are formed in the peripheral portion 85 of the inner hole 84 of the case component 81.
- the plurality of grooves 87 are annular contact areas between the peripheral portion 75 of the inner hole 74 of the cylindrical portion 73 and the peripheral portion 85 of the inner hole 84 of the case component 81 by caulking, as in the first embodiment described above. Is formed so as to cross (pass) in the radial direction.
- the plurality of grooves 87 are arranged at equal intervals over the entire circumferential direction of the contact area.
- the plurality of grooves 87 are preferably arranged at equal intervals in the entire circumferential direction of the contact region, but may be configured to be arranged at different intervals in the entire circumferential direction of the contact region. Alternatively, a configuration in which only one groove 87 is provided may be used.
- the plurality of grooves 87 are formed so that the groove width and the groove depth are not more than the maximum diameter (for example, 0.8 mm) that is allowed to flow out to the pipe in the spatter generated by the projection welding.
- the plurality of grooves 87 are such that one end of the groove 87 is exposed to the inside of the case body 82 when the peripheral portion 75 of the inner hole 74 of the cylindrical portion 73 is overlapped with the peripheral portion 85 of the inner hole 84 of the case component 81. It is formed in the length to do. In this embodiment, both the groove width and the groove depth are 0.2 mm.
- the plurality of communication paths 95 regulate the passage of spatter generated by projection welding (resistance welding) existing in the space ⁇ . Specifically, since the plurality of communication passages 95 are constituted by the plurality of grooves 87, the thickness (inner diameter) is equal to or less than the maximum diameter allowed to flow out to the pipe to which the on-off valve 2 is connected. Therefore, the passage of the spatter exceeding the maximum diameter is restricted.
- the on-off valve 2 constitutes a fluid circuit together with the pipe by being connected to the pipe through which the fluid flows, and permits or regulates the flow of the fluid by opening and closing the valve body. Then, during actual operation of the fluid circuit, fluid flows into or out of the space ⁇ between the housing 70 and the case component 81 through the plurality of communication passages 95. At this time, the plurality of communication passages 95 restrict passage of spatter generated during projection welding existing in the space ⁇ , and suppress spatter from flowing out of the space ⁇ .
- the fluid in the space ⁇ expands due to vaporization.
- the expansion of the fluid escapes from the plurality of communication paths 95 to the outside of the space ⁇ , thereby suppressing an increase in pressure in the space ⁇ .
- the metal housing 70 in which the inner hole 74 through which the fluid flows is formed, and the inner hole 84 that is disposed so as to be coaxial with the inner hole 74 of the housing 70 are formed.
- the housing 70 and the case component 81 are joined by projection welding applied in an annular shape surrounding the respective inner holes 74 and 84.
- the peripheral part 75 of the inner hole 74 of the housing 70 is caulked to the case part 81 over the entire circumference so that a closed space ⁇ is formed between the housing 70 and the case part 81 inside the projection 77.
- a communication passage 95 that passes through an annular contact region between the housing 70 and the case part 81 formed by caulking the peripheral portion 75 of the inner hole 74 of the housing 70 to the case part 81 and communicates the inside and outside of the space ⁇ . Is provided.
- the communication passage 95 is formed to allow passage of fluid and restrict passage of spatter caused by resistance welding.
- spatter generated during resistance welding is confined in the space ⁇ formed between the housing 70 and the case component 81, and fluid can flow inside and outside the space ⁇ through the communication path 95. It becomes.
- the pressure in the space ⁇ increases, the pressure can be released from the communication path 95 to the outside of the space ⁇ . Therefore, it is possible to suppress deformation of the housing 70 and the case component 81 that may occur due to the expansion of the fluid accumulated in the space ⁇ that confines the spatter during resistance welding.
- the communication path 95 is constituted by a plurality of grooves 87 formed in the case part 81. Since it did in this way, the communicating path 95 can be comprised by the groove
- a plurality of grooves 87 constituting the communication path 95 are provided, and these grooves 87 are arranged at intervals in the entire circumferential direction of the contact area.
- the plurality of communication passages 95 are evenly arranged in the circumferential direction of the space ⁇ formed between the housing 70 and the case component 81, so that the pressure in the space ⁇ is changed in the circumferential direction. Can be evenly escaped. Therefore, it is possible to further suppress the deformation of the connection member and the case component that may be caused by the expansion of the fluid accumulated in the space ⁇ that confines the spatter during resistance welding.
- the fluid-related functional device of the present invention is not limited to the configuration of the above embodiment.
- a plurality of grooves 27 having a V-shaped cross section extending radially from the center of the peripheral portion 25 are formed in the peripheral portion 25 of the inner hole 24 of the cap member 20.
- the plurality of communication passages 65 are formed by the grooves 27, the present invention is not limited to this. This modification will be described with reference to FIGS.
- FIG. 12 is a plan view showing a configuration of a modified example (a plurality of grooves arranged in a lattice pattern) of the cap member included in the pressure switch of the first embodiment.
- FIG. 13 is a plan view showing a configuration of another modified example (roughening process) of the cap member provided in the pressure switch of the first embodiment.
- a plurality of grooves 28 having a V-shaped cross section are formed in the peripheral portion 25 of the inner hole 24 of the cap member 20 as schematically shown in FIG.
- a plurality of communication paths may be configured by the plurality of grooves 28 arranged in a lattice shape.
- the plurality of grooves 28 arranged in a lattice form are the entire annular contact region T between the peripheral portion 15 of the inner hole 14 of the cylindrical portion 13 and the peripheral portion 25 of the inner hole 24 of the cap member 20 by caulking.
- the plurality of communication passages constituted by the plurality of grooves arranged in a lattice shape are formed so as to pass through the contact region T.
- the plurality of communication passages are arranged substantially evenly in the circumferential direction of the space ⁇ formed between the joint 10 and the cap member 20, so that the pressure in the space ⁇ is changed in the circumferential direction. Can be escaped almost equally. Therefore, it is possible to further suppress deformation of the joint 10 and the cap member 20 that may occur due to expansion of the fluid accumulated in the space ⁇ that confines the spatter during resistance welding.
- a sandblasting process, an etching process, or a laser beam is formed on the peripheral portion 25 of the inner hole 24 of the cap member 20.
- the concave portion of the roughened portion S may be connected to form a communication path.
- This roughening process is performed so that the communication path formed thereby allows passage of fluid and restricts passage of spatter generated by resistance welding, and the maximum height of the surface roughness is Rz100- Rz is preferably about 800.
- the roughening process includes the entire annular contact region T between the peripheral portion 15 of the inner hole 14 of the cylindrical portion 13 and the peripheral portion 25 of the inner hole 24 of the cap member 20 by caulking. It is given to.
- the communicating path is formed in a substantially mesh shape in the entire contact region T, that is, a plurality of communicating paths are formed in the circumferential direction of the space ⁇ formed between the joint 10 and the cap member 20. Since it becomes the structure similar to the structure arrange
- the cap member 20 is provided with the plurality of grooves 27, the plurality of grooves 28, and the roughened portion S. 10 may be provided.
- the communication path 65 that passes through the contact region between the joint 10 and the cap member 20 and communicates the inside and the outside of the space ⁇ is provided.
- the present invention is not limited to this.
- FIG. 14 even if it is the structure provided with the communicating path 66 which penetrates the cylindrical part 13 of the coupling 10 and connects the space ⁇ and the inside of the coupling 10 (that is, the inner hole 14).
- a configuration may be provided in which a communication path 66 is provided that penetrates the flange-shaped portion 21 of the cap member 20 and communicates the space ⁇ with the inside of the cap member 20.
- the communication path 66 configured as described above connects the space ⁇ and the flow path through which the fluid flows, allows passage of the fluid, and restricts passage of spatter generated by resistance welding.
- These communication paths 66 may be provided in both the joint 10 and the cap member 20.
- At least one of the joint 10 and the cap member 20 is provided with a communication path 66 that communicates the inside and the outside of the space ⁇ .
- the communication path 66 allows passage of fluid and prevents spatter generated by resistance welding. As long as it is the structure currently formed so that it may regulate, it may be the communicating path 66 which penetrates the joint 10 or the cap member 20, and the structure is arbitrary. The same applies to the second embodiment.
- the pressure switch which is a pressure sensitive device has been described as an example, but the structure of the joint 10 and the cap member 20 is the same structure in the pressure sensor.
- the present invention may be applied to a pressure sensor that is a pressure sensitive device.
- the on-off valve that is a valve device has been described as an example. Also good.
- the present invention can be applied to a pressure sensitive device, a valve device, and other devices having functions related to fluid.
- connection member configured using a copper-based member as a material and the case component configured using stainless steel as a material are resistance-welded, but the present invention is not limited to this. As long as resistance welding is possible, the metal materials constituting the connecting member and the case component are arbitrary as long as the object of the present invention is not violated.
- annular portion where the projection welding is performed on the connection member and the case part may be configured to protrude only at least one of the annular portions of the connection member and the case part, or both annular portions may be A protruding configuration may be used.
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Abstract
Description
次に、本発明の第1の実施形態に係る圧力スイッチについて、図1~図4を参照して説明する。
次に、上述した第1の実施形態に係る圧力スイッチの変形例について、図5~図10を参照して説明する。
図5は、第1の実施形態の圧力スイッチの変形例(変形例1)の構成を示す図であって、(a)は継手及びキャップ部材の接合前の断面図であり、(b)は接合後の断面図である。
図6は、第1の実施形態の圧力スイッチの変形例(変形例2)の構成を示す図であって、(a)は継手及びキャップ部材の接合前の断面図であり、(b)は接合後の断面図である。
図7は、第1の実施形態の圧力スイッチの変形例(変形例3)の構成を示す図であって、(a)は継手及びキャップ部材の接合前の断面図であり、(b)は接合後の断面図である。
図8は、第1の実施形態の圧力スイッチの変形例(変形例4)の構成を示す図であって、(a)は継手及びキャップ部材の接合前の断面図であり、(b)は接合後の断面図である。
図9は、第1の実施形態の圧力スイッチの変形例(変形例5)の構成を示す図であって、(a)は継手及びキャップ部材の接合前の断面図であり、(b)は接合後の断面図である。
図10は、第1の実施形態の圧力スイッチの変形例(変形例6)の構成を示す図であって、(a)は銅管及びキャップ部材の接合前の断面図であり、(b)は接合後の断面図である。
次に、本発明の第2の実施形態に係る開閉弁について、図11を参照して説明する。
1 圧力スイッチ(流体関連機能装置)
10 継手(接続部材)
13 円筒部
14 内孔
15 周縁部分
17 プロジェクション
19 複数の溝
20 キャップ部材(ケース部品)
21a 環状部分
24 内孔
25 周縁部分
27 複数の溝
29 圧力室
65 連通路
T 接触領域
(第2の実施形態)
2 開閉弁(流体関連機能装置)
70 ハウジング(接続部材)
73 円筒部
74 内孔
75 周縁部分
77 プロジェクション
80 ケース
81 ケース部品
81a 環状部分
82 ケース本体
84 内孔
85 周縁部分
87 複数の溝
95 連通路
Claims (7)
- 流体が流通する内孔が形成された金属製の接続部材と、前記内孔と重ねて配置される内孔が形成された金属製のケース部品とを備え、前記接続部材と前記ケース部品とが、それぞれの内孔を囲む環状に施されたプロジェクション溶接によって接合された流体関連機能装置であって、
前記プロジェクション溶接が施された箇所の内側において前記接続部材及び前記ケース部品の間に閉じた空間が形成されるように、これらのうちの一方における前記内孔の周縁部分が、全周にわたって他方にかしめられ、
前記接続部材及び前記ケース部品の少なくとも一方に、前記空間の内外を連通する連通路が設けられ、
前記連通路が、前記流体の通過を許容しかつ前記抵抗溶接により生じるスパッタの通過を規制するように形成されている
ことを特徴とする流体関連機能装置。 - 流体が流通する内孔が形成された金属製の接続部材と、前記内孔と重ねて配置される内孔が形成された金属製のケース部品とを備え、前記接続部材と前記ケース部品とが、それぞれの内孔を囲む環状に施されたプロジェクション溶接によって接合された流体関連機能装置であって、
前記プロジェクション溶接が施された箇所の内側において前記接続部材及び前記ケース部品の間に閉じた空間が形成されるように、これらのうちの一方における前記内孔の周縁部分が、全周にわたって他方にかしめられ、
前記一方における前記内孔の周縁部分が前記他方にかしめられてなる前記接続部材と前記ケース部品との環状の接触領域を通過して前記空間の内外を連通する連通路が設けられ、
前記連通路が、前記流体の通過を許容しかつ前記抵抗溶接により生じるスパッタの通過を規制するように形成されている
ことを特徴とする流体関連機能装置。 - 前記連通路が、前記接続部材又は前記ケース部品に形成された1又は複数の溝により構成されていることを特徴とする請求項2に記載の流体関連機能装置。
- 前記溝が複数設けられ、これら溝が前記接触領域の周方向の全体に間隔をあけて配置されていることを特徴とする請求項3に記載の流体関連機能装置。
- 前記溝が複数設けられ、これら溝が少なくとも前記接触領域の全体にわたり格子状に配置されていることを特徴とする請求項3に記載の流体関連機能装置。
- 前記連通路が、前記接続部材及び前記ケース部品のうちの少なくとも一方に施された粗面化加工による凹部が連なって構成されていることを特徴とする請求項2に記載の流体関連機能装置。
- 前記粗面化加工が、少なくとも前記接触領域の全体にわたり施されていることを特徴とする請求項6に記載の流体関連機能装置。
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JPH01143473A (ja) | 1987-11-30 | 1989-06-06 | Hitachi Ltd | 固体撮像装置 |
US4955407A (en) | 1988-03-08 | 1990-09-11 | Jidosha Kiki Co., Ltd. | Check valve insertable into a hose |
JP4223851B2 (ja) | 2003-03-31 | 2009-02-12 | ミツミ電機株式会社 | 小型カメラモジュール |
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JPH01143473U (ja) * | 1988-03-25 | 1989-10-02 | ||
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JP2006205231A (ja) * | 2005-01-28 | 2006-08-10 | Saginomiya Seisakusho Inc | 流体制御機器または流体計測機器における蓋部材と接手との接合方法 |
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CN105659349A (zh) | 2016-06-08 |
JPWO2015083602A1 (ja) | 2017-03-16 |
JP6083721B2 (ja) | 2017-02-22 |
US9995409B2 (en) | 2018-06-12 |
US20160305567A1 (en) | 2016-10-20 |
CN105659349B (zh) | 2017-11-24 |
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