SEMI-AUTOMATIC SCANNER FOR ULTRASONIC INSPECTION OF BRANCH PIPE WELD
20210364475 · 2021-11-25
Assignee
- Korea Inspection Eng.Co.,Ltd (Seoul, KR)
- FOUNDATION FOR RESEARCH AND BUSINESS, SEOUL NATIONAL UNIVERSITY OF SCIENCE AND TECHNOLOGY (Seoul, KR)
Inventors
- Seong Jin LIM (Seoul, KR)
- In Gon JUNG (Gyeonggi-do, KR)
- Min Jung PARK (Gyeonggido, KR)
- Ik Keun Park (Seoul, KR)
- Tae Sung PARK (Seoul, KR)
Cpc classification
International classification
Abstract
The present invention relates to a semi-automatic scanner for ultrasonic inspection of a branch pipe weld that has a small size and is able to perform an inspection while moving in a state of being attached to a test object by a magnetic force, thereby being applied to fittings having various shapes, such as a branch pipe and an elbow. The semi-automatic scanner for ultrasonic inspection according to the present invention includes a probe configured to inspect a weld by irradiating ultrasonic waves onto a surface of a test object, a probe holder configured to couple the probe by applying an elastic force so as to be pressed against the surface of the test object, an installation bracket having a rod shape, to which the probe holder is coupled so as to be laterally movable, four wheel units installed on both front and rear side surfaces of the installation bracket so as to be vertically slidable, and four magnet parts, each of which is installed on one of the four wheel units and presses the one of the wheel units against the test object with a magnetic force.
Claims
1. A semi-automatic scanner for ultrasonic inspection, comprising: a probe configured to inspect a weld by irradiating ultrasonic waves onto a surface of a test object; a probe holder configured to couple the probe by applying an elastic force so as to be pressed against the surface of the test object; an installation bracket having a rod shape to which the probe holder is coupled so as to be laterally movable; four wheel units installed on both front and rear side surfaces of the installation bracket so as to be vertically slidable; and four magnet parts, each of which is installed on one of the four wheel units and presses the one of the wheel units against the test object with a magnetic force.
2. The semi-automatic scanner of claim 1, wherein the wheel unit includes: a vertical movement guide installed on one side surface of the installation bracket so as to be perpendicular to a length direction of the installation bracket; a vertical movement part installed to surround the vertical movement guide and slide along the vertical movement guide; an elastic pressing part installed between the vertical movement part and the vertical movement guide and configured to press the vertical movement part downward with an elastic force; and a wheel installed at a lower side end portion of the vertical movement part so as to be freely rotatable.
3. The semi-automatic scanner of claim 2, wherein the magnet part is installed on an outer surface of the wheel so as to be rotatable together with the wheel.
4. The semi-automatic scanner of claim 3, wherein the magnet part is formed in a disk shape having a diameter smaller than that of the wheel.
5. The semi-automatic scanner of claim 1, wherein the probe holder includes: a lateral guide part installed in the installation bracket in a direction perpendicular to a length direction of the installation bracket to guide lateral movement of the probe; a vertical movement guide part installed to vertically stand at the lateral guide part so as to be laterally movable; a vertical movement bracket installed to surround the vertical movement guide part to vertically move along the vertical movement guide part; an elastic pressing part installed between the vertical movement bracket and the vertical movement guide part and configured to press the vertical movement bracket downward using an elastic force; and a probe coupling part coupled to a front surface of the vertical movement bracket so as to be freely rotatable and configured to couple both side surfaces of the probe so as to be freely rotatable.
Description
DESCRIPTION OF DRAWINGS
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MODES OF THE INVENTION
[0027] Hereinafter, specific embodiments of the present invention will be described in detail with reference to the accompanying drawings.
[0028] As shown in
[0029] First, the ultrasonic probe 100 is a component that inspects a weld by irradiating ultrasonic waves onto a surface of a test object. In the present embodiment, as the ultrasonic probe 100, a generally used ultrasonic probe may be adopted, and the ultrasonic probe 100 may have a size and structure so as to be easily coupled to the probe holder 200 to be described below. Specifically, the ultrasonic probe 100 may include a probe 110 and a wedge 120. Rotation coupling portions (not shown in the drawing) may be formed to protrude from both side portions of the wedge 120 so as to be rotatably coupled to the probe holder 200, or rotation coupling grooves may be formed to be engraved on the both side portions.
[0030] Next, as shown in
[0031] First, as shown in
[0032] Coupling protrusions 214 are formed on both side surfaces of the lateral guide part 210 such that the installation bracket 300 is coupled.
[0033] Next, as shown in
[0034] A pair of lateral guide part locking steps 222 are formed on an upper surface of the vertical movement guide part 220 to be spaced a predetermined width from each other such that a lower portion of the lateral guide part 210 is inserted therebetween. In a state in which the vertical movement guide part 220 is coupled to the lateral guide part 210, as shown in
[0035] In this case, when the vertical movement guide part 220 is to be laterally moved along the lateral guide part 210, the coupling screw is loosened to move the vertical movement guide part 220. When an inspection is being performed, the coupling screw is firmly tightened to fix the vertical movement guide part 220 so as to be unmovable.
[0036] Next, as shown in
[0037] As shown in
[0038] In addition, plunger installation holes (not shown in the drawing) are formed to pass through both side surfaces of the coupling protrusion 232 in a direction toward the coupling groove, and ball plungers 234 to be described below are inserted into and installed in the plunger installation holes.
[0039] Next, the elastic pressing part (not shown in the drawing) is installed between the vertical movement bracket 230 and the vertical movement guide part 220. The elastic pressing part is a component that presses the vertical movement bracket 230 in a downward direction using an elastic force. Due to the elastic pressing part (not shown in the drawing), the vertical movement bracket 230 always remains pressed downward by a constant elastic force, and when a force exceeding the elastic force is applied, the vertical movement bracket 230 moves upward along the vertical movement guide part 220.
[0040] Next, as shown in
[0041] In the present embodiment, as shown in
[0042] Meanwhile, in the present embodiment, the ultrasonic probe 100 is detachably coupled to the probe coupling part 240 in a one-touch manner. Here, the term “one-touch manner” refers to a manner in which the ultrasonic probe 100 is coupled to or detached from the probe coupling part 240 through one operation of pressing the ultrasonic probe 100 in a direction toward the probe coupling part 240 or a direction opposite to the probe coupling part 240.
[0043] As described above, when the ultrasonic probe 100 is coupled to the probe coupling part 240 in a one-touch manner, and when the specification of the ultrasonic probe 100 is changed as needed in an inspection process, the ultrasonic probe 100 can be easily replaced through a simple operation.
[0044] To this end, as described above, the coupling groove is formed in the vertical movement bracket 230, and the coupling portion 242 is formed to protrude from a rear end of the probe coupling part 240. As shown in
[0045] As described above, a pair of ball plungers 234 pass through the plunger installation holes formed in the vertical movement bracket 230 and are installed to enter through side portions of the coupling groove as shown in
[0046] Next, as shown in
[0047] In the present embodiment, as shown in
[0048] Specifically, the installation bracket 300 has a structure in which one end thereof is coupled to the coupling protrusion 214 in a manner of surrounding the coupling protrusion 214 from above and below. The installation bracket 300 itself has a rod structure having a rectangular cross-sectional shape.
[0049] In the present embodiment, a grip portion 330 may be further provided to connect upper surfaces of the pair of installation brackets 310 and 320 which are symmetrically coupled to both sides of the lateral guide part 210 with the lateral guide part 210 interposed therebetween. The grip portion 330 has an overall shape of “”, serves as a grip that may be gripped when the semi-automatic scanner for ultrasonic inspection according to the present embodiment is moved, and concurrently performs a function of firmly coupling the pair of installation brackets 310 and 320 installed to be separated at both side of the lateral guide part 210.
[0050] A plurality of screw holes or the like for installing the wheel unit 400 are formed in both side surfaces of the installation bracket 300.
[0051] Next, as shown in
[0052] To this end, in the present embodiment, as shown in
[0053] First, the vertical movement guide 410 is installed on one side surface of the installation bracket 300 so as to be perpendicular to a length direction of the installation bracket 300. The vertical movement guide 410 is a component that guides a vertical movement direction of the vertical movement part 420. Specifically, as shown in
[0054] Next, as shown in
[0055] Next, the elastic pressing part (not shown in the drawing) is installed between the vertical movement part 420 and the vertical movement guide 410. The elastic pressing part is a component that presses the vertical movement part 420 in a downward direction with a constant elastic force. Therefore, the wheel 430 always remains pressed downward by an elastic force, and when a force exceeding the elastic force is applied, the wheel 430 moves upward.
[0056] Next, as shown in
[0057] Meanwhile, in the semi-automatic scanner 1 for ultrasonic inspection according to the present embodiment, as shown in
[0058] In particular, in the present embodiment, as shown in
[0059] Next, as shown in
[0060] In the present embodiment, as shown in
[0061] In this case, when the magnet part 500 is formed in a disc shape having a diameter smaller than that of the wheel 430 as shown in
TABLE-US-00001 [Descriptions of Reference Numerals] 1: semi-automatic scanner for ultrasonic 100: ultrasonic probe inspection 200: probe holder 300: installation bracket 400: wheel unit 500: magnet part 600: encoder