Fluid fitting
09581273 ยท 2017-02-28
Assignee
Inventors
Cpc classification
F16L37/47
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16L19/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16L37/407
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16L37/50
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16L55/07
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F16L37/47
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16L27/073
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16L55/07
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A fluid fitting of an embodiment mainly includes a socket part, a spherical valve inserted in the socket part, and a plug part configured to be inserted at a tip portion thereof into the spherical valve. Moreover, the plug part is fixed in the direction of turn by engaging an expanded-diameter portion of the plug part with a recess of the socket part. Thus, the plug part is prevented from being detached from the socket part while the fluid fitting is in use.
Claims
1. A fluid fitting to be interposed between paths for supplying a fluid, comprising: a socket part; and a plug part inserted at a tip portion thereof in the socket part, wherein the socket part comprises, a first base part of a cylindrical shape having an opening portion extending from a tip portion to a side portion thereof, the opening portion including at the tip portion of the first base part a reduced-diameter opening portion, an expanded-diameter opening portion and a recess defined by an inclined surface connecting the reduced-diameter opening portion and the expanded-diameter opening portion, a second base part of a cylindrical shape having a tip portion thereof inserted in the first base part, and a spherical valve of a spherical shape which is incorporated in the first base part and in which an insertion hole for inserting the tip portion of the plug part is formed, the fluid fitting is set in a blocking state where supply of the fluid is blocked, by turning the spherical valve to orient the insertion hole to a lateral side of the socket part, the fluid fitting is set in a communicating state where the socket part and the plug part communicate with each other, by inserting the tip portion of the plug part into the opening portion of the spherical valve and turning the plug part along the opening portion, the fluid fitting is set in a fixed state where the plug part is fixed so as not to be turned, by moving the plug part in an axial direction of the socket part away from the socket part toward the recess to thereby engage an expanded-diameter portion of the plug part with an inner wall of the first base part, and the fluid fitting transitions from the blocking state to the communicating state, and the fluid fitting transitions from the communicating state to the fixed state such that the plug part is moved toward the recess by a flow of the fluid flowing through the paths.
2. The fluid fitting according to claim 1, wherein the socket part further includes a packing disposed inside the first base part between the spherical valve and the tip portion of the second base part, and the packing is made of a rubber material.
3. The fluid fitting according to claim 1, wherein in the communicating state, the axial direction of the socket part and an axial direction of the plug part substantially coincide with each other.
4. The fluid fitting according to claim 1, wherein in the fixed state, the expanded-diameter portion of the plug part is fitted to the recess formed by partly indenting the inner wall of the first base part.
5. The fluid fitting according to claim 4, wherein a half or more of the expanded-diameter portion of the plug part in a circumferential direction is fitted to the recess of the first base part.
6. The fluid fitting according to claim 1, wherein an O-ring is disposed in an inner wall of the spherical valve.
7. The fluid fitting according to claim 1, wherein in a transition from the fixed state to the communicating state, a hole portion penetrating through a side wall of the first base part and the insertion hole of the spherical valve communicate with each other, so that the fluid filled in the path on the plug part side is discharged to an outside through the hole portion.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1)
(2)
(3)
(4)
(5)
DESCRIPTION OF THE INVENTION
(6) The configuration of a fluid fitting 10 according to an embodiment will be described with reference to
(7) The fluid fitting 10 of this embodiment mainly includes a socket part 12, a spherical valve 20 inserted in the socket part 12, and a plug part 14 configured to be inserted at a tip portion thereof into the spherical valve 20. The fluid fitting 10 essentially serves to connect hoses (paths) which connect a fluid supply source such as a compressor and a fluid using device such as a nail gun, by being interposed between these hoses. This embodiment will describe a case where compressed air is employed as the fluid that flows through the fluid fitting 10, but a gas other than air or a liquid may instead be employed.
(8) The following description will be given by using X, Y, and Z directions when appropriate. The X and Y directions each represent the radial direction of the pipe part of the fluid fitting 10, and the Z direction represents the axial direction of the pipe part of the fluid fitting. In the fluid fitting 10 of this embodiment, compressed air flows from the Z side to the +Z side. Specifically, the socket part 12 is connected to compressed-air supplying means such as a compressor through a hose, while the plug part 14 is connected to compressed-air using means such as a nail gun through a hose. Here, in the fluid fitting 10 in the state shown in
(9) The socket part 12 is a member having a substantially cylindrical shape with its axial line 34 extending along the Z direction, and is formed of a first base part 16 and a second base part 18 connected to each other. Further, in the first base part 16, an opening portion 22 is formed which is opened at an end portion of the first base part 16 on the Z side. The first base part 16 incorporates the spherical valve 20 and a packing 26. The configuration of the socket part 12 will be described later with reference to
(10) The plug part 14 is a member having a substantially cylindrical shape with its axial line 34 extending along the Z direction, and its end portion on the +Z side is inserted in the spherical valve 20 in the socket part 12. The configuration in which the plug part 14 is inserted and fitted in the socket part 12 will be described later with reference to
(11) The configuration of the above socket part 12 will be described in detail with reference to
(12) Referring to
(13) The first base part 16 incorporates the spherical valve 20 and the packing 26. Moreover, the opening portion 22 is formed which is opened continuously from the end of the first base part 16 on the Z side to a side portion thereof. The plug part 14 is turned in a later-described manner along this opening portion 22.
(14) The spherical valve 20 is of a metallic material such as stainless steel cut in such a way as to have a spherical outer shape. An insertion hole 32 is formed in the spherical valve 20. The insertion hole 32 penetrates through the spherical valve 20 from the +Y side to the Y side in the state shown in
(15) The packing 26 is made of a rubber-based material or a plastic-based material molded in an annular shape. The main surface of the packing 26 on the +Z side is a flat surface and is in contact with the end of the second base part 18 on the Z side. Moreover, the main surface of the packing 26 on the Z side is a spherically curved surface and is in contact with the surface of the spherical valve 20. As the material of the packing 26, a rubber-based material (elastomer) is preferable in view of airtightness, and acrylonitrile butadiene rubber (NBR) may be employed, for example.
(16) Referring to
(17) Part of the joint of the reduced-diameter portion 46 and the expanded-diameter portion 44 is expanded outwardly in the radial direction to thereby form a recess 28 there. This recess 28 serves to fix the expanded-diameter portion 30 of the plug part 14 shown in
(18) Moreover, the inner wall of the first base part 16 on the Z side from the expanded-diameter portion 44 has a curved surface which comes into surface contact with the outer surface of the above-described spherical valve 20.
(19) A method of connection in the above-described fluid fitting 10 will be described with reference to
(20) The state of the fluid fitting 10 of this embodiment ranges from a blocking state where the socket part 12 and the plug part 14 are separated from each other and do therefore not communicate with each other, to a communicating state where the socket part 12 and the plug part 14 communicate with each other as a result of inserting the plug part 14 into the socket part 12 and turning the plug part 14, to a fixed state where the plug part 14 is fixed in the direction of the turn as a result of moving the plug part 14 in a direction away from the socket part 12.
(21) The blocking state will be described with reference to
(22) The diameter of the tip portion of the plug part 14 is set slightly smaller than the inner diameter of the opening portion 22 so that the tip portion can be inserted in the insertion hole 32 of the spherical valve 20. Moreover, the expanded-diameter portion 30 and the reduced-diameter portion 48 are formed continuously with each other on the tip portion of the plug part 14. The plug part 14 is fixed to the socket part 12 in the axial direction when the constriction formed by the expanded-diameter portion 30 and the reduced-diameter portion 48 is engaged with the recess 28 (see
(23) Then, referring to
(24) Referring to
(25)
(26) The fixed state where the plug part 14 is fixed in the direction of the turn will be described with reference to
(27) Referring to
(28) Referring to
(29) Here, the movement of the plug part 14 may be done by the compressive force of compressed air supplied to the flow path 40 or the like, or by the user's operation on the plug part 14.
(30) In the above description, the method of connection in the fluid fitting 10 via sequential transitions from the blocking state through the communicating state to the fixed state is explained. The reversed steps are employed for separating the fluid fitting 10. That is, the fluid fitting 10 is separated via transitions from the fixed state through the communicating state to the blocking state.
(31) Specifically, referring to
(32) Then, as shown in
(33) Lastly, as shown in
(34) The fluid fitting of this embodiment described above can be modified as follows, for example.
(35) Referring to
(36) According to the present invention, by inserting the tip portion of the plug part into the insertion hole of the spherical valve incorporated in the socket part and by turning the plug part, the socket part and the plug part are set in the communicating state. Further, the expanded-diameter portion of the plug part is engaged with the inner wall of the socket part. This engagement structure prevents the plug part from being turned about the socket part and these two parts from being detached from each other while the fluid fitting is in use.