IP Library › Granted Patent US 12,540,692
Granted Patent B2
US 12,540,692 · App. 18/517,598 · Granted Feb 3, 2026

Method and device for measurement method of axial force of a tube fitting

Inventors: Takahiro Gunji (Koga, JP); Atsushi Kurosawa (Koga, JP)
Assignee: Sanoh Industrial Co., Ltd.
F16L19/025B32B1/08B60T17/043F16L19/0243F16L19/0283F16L58/04F16L58/184B32B2597/00
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Quick Facts
Patent No.
US 12,540,692
App. No.
18/517,598
Granted
Feb 3, 2026
Kind
B2
Abstract

An axial force measurement device includes a frame, a tightening actuation unit that performs tightening operation upon a screw type tube fitting installed upon a tube upon which is formed an annular portion projecting in the radially outward direction from the tube, a testing member, and a mating member holding unit that holds the testing member into which the tube fitting is screwed and that is coupled to the tube. The tightening actuation unit and the mating member holding unit are provided to the frame in line along the direction of a reference axis that extends in the direction of the center line of the tube fitting and the tube axis of the tube. The testing member has a first part that engages with the tube fitting, and a second part against which the annular portion of the tube is pressed.

Claims (13)

1 . An axial force measurement device ( 100 ) including:

a frame ( 101 );

a tightening actuation unit ( 102 ) that performs tightening operation upon a screw type tube fitting installed upon a tube upon which is formed an annular portion projecting in the radially outward direction from the tube;

a testing member (TM); and

a mating member holding unit ( 103 ) that holds the testing member (TM) into which the tube fitting is screwed and that is coupled to the tube, with the tightening actuation unit ( 102 ) and the mating member holding unit ( 103 ) being provided to the frame ( 101 ) in line along the direction of a reference axis that extends in the direction of the center line of the tube fitting and the tube axis of the tube,

wherein the axial force measurement device ( 100 ) is characterized in that the testing member (TM) has:

a first part (TMa) through which is pierced a screw hole in which an internal thread that engages with the tube fitting is formed; and

a second part (TMb) having a bottom portion against which the annular portion of the tube is pressed; and the mating member holding unit ( 103 ) holds the first part (TMa) and the second part (TMb) in a state in which the screw hole of the first part (TMa) and the bottom portion of the second part (TMb) are concentrically abutted against one another, and

wherein one of the first part (TMa) and the second part (TMb) is held by the mating member holding unit ( 103 ) in a state in which it cannot shift along the direction of the reference axis, while movement of the other of the first part (TMa) and the second part (TMb) is restricted in the direction of the reference axis in a state in which a load cell that outputs a signal corresponding to the load in the reference axis direction is interposed.

2 . The axial force measurement device ( 100 ) according to claim 1 , wherein the mating member holding unit ( 103 ) has a first jig ( 103 a ) that, along with holding either one of the first part (TMa) and the second part (TMb), is fixed to the frame ( 101 ), and a second jig ( 103 b ) of which movement, along with holding the other one of the first part (TMa) and the second part (TMb), is restrained in the direction of the reference axis with the load cell being imposed.

3 . A measurement method of axial force of a tube fitting, where the axial force generated upon a screw type tube fitting is measured, the tube fitting being screwed into a testing member (TM) in a state that the tube fitting is installed upon a tube upon which is formed an annular portion projecting radially outward from the tube, the measurement method is characterized by including:

a first step of providing as the testing member (TM), a first part (TMa) through which is pierced a screw hole in which an internal thread that engages with the tube fitting is formed and a second part (TMb) having a bottom portion against which the annular portion of the tube is pressed in line along a direction of a reference axis extending in a direction of a tube axis of the tube, so that the screw hole and the bottom portion are in a concentric state;

a second step of holding one of the first and second parts (TMa, TMb) provided in line along the direction of the reference axis in a state in which the one of the first and second parts (TMa, TMb) cannot shift in the direction of the reference axis, and of screwing into the first part (TMa), the tube fitting installed upon the tube in a state that the other one of the first and second parts (TMa, TMb) is restricted in the direction of the reference axis; and a third step of measuring as the axial force of the tube fitting, a load imposed upon the other one of the first and second parts (TMa, TMb) in the direction of the reference axis.

Priority Claims (1)
JP 2019-045239 · Feb 22, 2019 · national
Continuity (2)
Division 16794969 · Feb 19, 2020
Related Publication 20240093812A1 · Mar 21, 2024
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