IP Library Granted Patent US 8,833,168
Granted Patent B2
US 8,833,168 · App. 12/974,004 · Granted Sep 16, 2014

Ultrasonic inspection device and ultrasonic inspection method

View Patent ↗
Loading inventors, assignments & file history…
Monitor This Case
Get email alerts when status or documents change.
Order Certified Copies
Most orders are placed with the USPTO same day — all within 24 business hours.
Order via The Patent Place →
Pre-filled with this patent's details
Quick Facts
Patent No.
US 8,833,168
App. No.
12/974,004
Granted
Sep 16, 2014
Kind
B2
Abstract

An ultrasonic inspection device allows position adjustment of three-dimensional inspection data and shape data to be easily performed on a display screen and allows a defect echo and a shape echo to be quickly identified. A calculator generates the three-dimensional inspection data from waveforms stored in a data storage unit. A three-dimensional display unit displays the three-dimensional inspection data generated by the calculator and the three-dimensional shape data on an object to be inspected. The calculator corrects the relative displayed positions of the three-dimensional inspection data and the three-dimensional shape data on the basis of a coordinate system defined by points and a surface that constitute a part of the three-dimensional shape data displayed by the three-dimensional display unit, and causes the three-dimensional display unit to display the three-dimensional inspection data and the three-dimensional shape data while the three-dimensional inspection data and the three-dimensional shape data overlap each other.

Claims (37)

1. An ultrasonic inspection device comprising:

an ultrasonic probe which provides a plurality of piezoelectric elements;

a pulser which supplies transmission signals to the respective piezoelectric elements of the ultrasonic probe;

a receiver which receives signals from the respective piezoelectric elements of the ultrasonic probe;

a delay time controller which sets delay times to the transmission signals to be supplied to the piezoelectric elements and sets delay times to the signals received by the piezoelectric elements, the delay times set to the transmission signals being different from each other, the delay times set to the received signals being different from each other;

a data storage unit which stores the waveforms of ultrasonic waves received by the ultrasonic probe;

a calculator which is provided for image processing and which generates three-dimensional inspection data from the waveforms stored in the data storage unit;

a three-dimensional display unit which displays three-dimensional shape data of an object to be inspected and the three-dimensional inspection data generated by the calculator; and

a positioning correction section which corrects the relative positions of the displayed three-dimensional shape data and the displayed three-dimensional inspection data on the basis of a coordinate system defined by points and a surface represented by a part of the three-dimensional shape data displayed by the three-dimensional display unit, the positioning correction section being used to display the three-dimensional shape data and the three-dimensional inspection data while the three-dimensional shape data and the three-dimensional inspection data overlap each other,

wherein the positioning correction section:

defines a Z direction that is perpendicular to an inspection surface on which the ultrasonic probe has been placed, the inspection surface having been selected from the three-dimensional shape data displayed on the three-dimensional display unit;

redisplays the three-dimensional shape data and the three-dimensional inspection data, after positive and negative sides of the three-dimensional inspection data displayed on the three-dimensional display unit in the Z direction match positive and negative sides of the three-dimensional shape data displayed on the three-dimensional display unit in the Z direction, so that a surface that provides an incident point in the three-dimensional inspection data matches the inspection surface of the three-dimensional shape data;

sets a Z axis that has an origin that is a first point which is located on, , and selected from the three-dimensional shape data;

moves one of the three-dimensional inspection data and the three-dimensional shape data in parallel so that the origin of the three-dimensional inspection data matches the first point;

sets an X axis that has an origin that is the first point, wherein the X axis extends on a line that connects the first point to a second point which is located on, and selected from, the three-dimensional shape data;

sets a Y axis so that the X, Y and Z axes form a right handed coordinate system;

rotates the one of the three-dimensional inspection data and the three-dimensional shape data relative to the other data around the Z axis on the basis of input information on a rotational angle and updates the three-dimensional display unit; and

moves the one of the three-dimensional inspection data and the three-dimensional shape relative to the other data in parallel along the X, Y and Z axes on the basis of input information on the amount of the parallel movement and updates the three-dimensional display unit.

2. The ultrasonic inspection device according to claim 1 ,

wherein the surface which is represented by a part of the three-dimensional shape data, and which corresponds to a surface on which the ultrasonic probe has been placed, is selected in order to store the waveforms of the ultrasonic waves.

3. The ultrasonic inspection device according to claim 1 , further comprising a mouse which is connected to the calculator,

wherein the points and the surface, which are represented by the part of the three-dimensional shape data, are selected with the mouse.

4. An ultrasonic inspection method comprising the steps of:

correcting the relative displayed positions of three-dimensional shape data and three-dimensional inspection data on the basis of a coordinate system defined by points and a surface represented by a part of the three-dimensional shape data, the three-dimensional inspection data being generated from a plurality of waveforms of ultrasonic waves received by an ultrasonic probe;

displaying the three-dimensional shape data and the three-dimensional inspection data while the three-dimensional shape data and the three-dimensional inspection data overlap each other;

defining a Z direction that is perpendicular to an inspection surface on which the ultrasonic probe has been placed, the inspection surface being selected from the three-dimensional shape data displayed on a three-dimensional display screen;

redisplaying the three-dimensional shape data and the three-dimensional inspection data, after positive and negative sides of the three-dimensional inspection data displayed on the three-dimensional display screen in the Z direction match positive and negative sides of the three-dimensional shape data displayed on the three-dimensional display screen in the Z direction, with a surface that provides an incident point in the three-dimensional inspection data matching the inspection surface of the three-dimensional shape data;

setting a Z axis that has an origin that is a first point which is located on, and selected from the three-dimensional shape data;

moving one of the three-dimensional inspection data and the three-dimensional shape data in parallel so that the origin of the three-dimensional inspection data matches the first point;

setting an X axis that has an origin that is the first point, the X axis extending on a line that connects the first point to a second point which is located on, and selected from the three-dimensional shape data;

setting a Y axis so that the X, Y and Z axes form a right handed coordinate system;

rotating the one of the three-dimensional inspection data and the three-dimensional shape data relative to the other data around the Z axis on the basis of input information on an rotational angle and updating the three-dimensional display screen; and

moving one of the three-dimensional inspection data or the three-dimensional shape relative to the other data in parallel along the X, Y and Z axes on the basis of input information on the amount of the parallel movement and updating the three-dimensional display screen.

5. The ultrasonic inspection method according to claim 4 further including;

selecting the surface represented by a part of the three-dimensional shape data to correspond to a surface on which the ultrasonic probe has been placed in order to store the waveforms of the ultrasonic waves.

6. The ultrasonic inspection method according to claim 4 further including;

selecting the points and the surface represented by the part of the three-dimensional shape data using a mouse.

Assignments (4)
CORRECTIVE ASSIGNMENT TO CORRECT THE REMOVING PATENT APPLICATION NUMBER 11921683 PREVIOUSLY RECORDED AT REEL: 054975 FRAME: 0438. ASSIGNOR(S) HEREBY CONFIRMS THE ASSIGNMENT. Recorded May 26, 2023
From: MITSUBISHI HITACHI POWER SYSTEMS, LTD.
To: MITSUBISHI POWER, LTD.
Reel/Frame 063787/0867 →
CHANGE OF NAME Recorded Jan 13, 2021
From: MITSUBISHI HITACHI POWER SYSTEMS, LTD.
To: MITSUBISHI POWER, LTD.
Reel/Frame 054975/0438 →
CONFIRMATORY ASSIGNMENT Recorded Oct 8, 2014
From: HITACHI, LTD.
To: MITSUBISHI HITACHI POWER SYSTEMS, LTD.
Reel/Frame 033917/0209 →
CHANGE OF NAME Recorded May 11, 2014
From: HITACHI, LTD.
To: MITSUBISHI HITACHI POWER SYSTEMS, LTD.
Reel/Frame 032865/0800 →