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US20090021253A1 - Method and device for long-range guided-wave inspection of fire side of waterwall tubes in boilers - Google Patents

Method and device for long-range guided-wave inspection of fire side of waterwall tubes in boilers
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Publication number
US20090021253A1
US20090021253A1US11/778,256US77825607AUS2009021253A1US 20090021253 A1US20090021253 A1US 20090021253A1US 77825607 AUS77825607 AUS 77825607AUS 2009021253 A1US2009021253 A1US 2009021253A1
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United States
Prior art keywords
waterwall
tube
sensor probe
magnetostrictive sensor
plate
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US11/778,256
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US7474092B1 (en
Inventor
Hegeon Kwun
Hirotoshi Matsumoto
James F. Crane
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Southwest Research Institute SwRI
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Southwest Research Institute SwRI
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Assigned to SOUTHWEST RESEARCH INSTITUTEreassignmentSOUTHWEST RESEARCH INSTITUTEASSIGNMENT OF ASSIGNORS INTEREST (SEE DOCUMENT FOR DETAILS).Assignors: CRANE, JAMES F., KWUN, HEGEON
Assigned to SOUTHWEST RESEARCH INSTITUTEreassignmentSOUTHWEST RESEARCH INSTITUTEASSIGNMENT OF ASSIGNORS INTEREST (SEE DOCUMENT FOR DETAILS).Assignors: MATSUMOTO, HIROTOSHI
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Publication of US7474092B1publicationCriticalpatent/US7474092B1/en
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Abstract

Methods and devices for inspecting waterwall tubes for the detection of fire side damage over a long length of the tube are described. The system of the invention uses a magnetostrictive strip and a flat coil-type plate magnetostrictive sensor (MsS) that are held in place on the waterwall using a specially designed frame and an electromagnetic circuit. The magnetostrictive strip and plate type MsS are positioned against a tube in the waterwall using an elastomeric pad or a fluid filled bladder to achieve close contact and good mechanical coupling between the magnetostrictive strip and the tube surface. When current activated, the electromagnet holds the entire assembly in place and provides a DC bias magnetic field required for plate magnetostrictive sensor probe operation. Long-range guided-waves are pulsed into the tube and reflected signals are detected within the same sensor structure. The received signal data representative of a long section of the tube under investigation is then analyzed for the presence of anomalies and defects. When data acquisition for a particular tube or tube section is completed the electromagnet is turned off and the entire device is moved to the next tube in the waterwall.

Description

Claims (18)

18. A method for long-range torsional guided-wave inspection of the fire side of a waterwall tube, the method comprising the steps of:
preparing the external surface of the waterwall tube to provide mechanical compliance between the waterwall tube and a sensor probe to be placed in contact therewith;
providing and positioning a plate magnetostrictive sensor probe over the prepared external surface of the waterwall tube along a portion of a circumference of the tube;
providing a strip of magnetostrictive material between the plate magnetostrictive sensor probe and the prepared external surface of the waterwall tube;
providing and positioning a compressible/expandable bladder over the plate magnetostrictive sensor probe;
providing and positioning a rigid inverted U-shaped frame over the compressible/ expandable bladder and plate magnetostrictive sensor probe;
providing and activating an electromagnet across the plate magnetostrictive sensor probe to draw and maintain the sensor probe into contact with the external surface of the waterwall tube;
establishing a bias magnetic field within the magnetostrictive strip to optimize torsional wave magnetostrictive sensor operation using the activated electromagnet; and
connecting the magnetostrictive sensor probe to magnetostrictive sensor instrumentation and generating and receiving interrogation signals into and from the waterwall tube under inspection.
US11/778,2562007-07-162007-07-16Method and device for long-range guided-wave inspection of fire side of waterwall tubes in boilersActiveUS7474092B1 (en)

Priority Applications (1)

Application NumberPriority DateFiling DateTitle
US11/778,256US7474092B1 (en)2007-07-162007-07-16Method and device for long-range guided-wave inspection of fire side of waterwall tubes in boilers

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Application NumberPriority DateFiling DateTitle
US11/778,256US7474092B1 (en)2007-07-162007-07-16Method and device for long-range guided-wave inspection of fire side of waterwall tubes in boilers

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US7474092B1 US7474092B1 (en)2009-01-06
US20090021253A1true US20090021253A1 (en)2009-01-22

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Cited By (9)

* Cited by examiner, † Cited by third party
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US20100052670A1 (en)*2008-08-292010-03-04Southwest Research InstituteMagnetostrictive Sensor Probe for Guided-Wave Inspection and Monitoring of Wire Ropes/Cables and Anchor Rods
US20120053895A1 (en)*2010-08-182012-03-01Noam AmirMethod and system for evaluating the condition of a collection of similar elongated hollow objects
CN105548372A (en)*2015-12-092016-05-04镇江天颐装备科技有限公司Pipeline guided-wave transducer based on giant magnetostrictive material, and manufacture and use method
US20170030848A1 (en)*2015-07-282017-02-02Fbs, Inc.Magnetostrictive multi-frequency guided wave ice sensing probe
US20170115204A1 (en)*2015-10-272017-04-27Southwest Research InstituteMagnetostrictive Probe With Mechanical and Fluid Coupling for Guided Wave Testing of Tubular Structures
CN109444271A (en)*2018-12-032019-03-08南京江淳机电装备科技有限公司A kind of ultra-magnetic telescopic guided wave small transducers for pipe surface coupling
US11320549B2 (en)*2020-05-222022-05-03Carl Israel LarkinVibrating pipe locator
KR102573897B1 (en)*2023-05-122023-09-04케이피이엔지 주식회사Phased Array Ultrasonic Inspection System
KR102613137B1 (en)*2023-08-102023-12-13고려공업검사 주식회사PAUT inspection device for tubes having welding part

Families Citing this family (10)

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Publication numberPriority datePublication dateAssigneeTitle
US7997139B2 (en)*2007-12-032011-08-16Fbs, Inc.Guided wave pipeline inspection system and method with enhanced natural focusing techniques
US8358126B2 (en)*2010-01-142013-01-22Southwest Research InstituteMagnetostrictive sensor for tank floor inspection
KR101892679B1 (en)*2011-02-242018-08-29에어 프로덕츠 앤드 케미칼스, 인코오포레이티드Gasification reactor
US20120318038A1 (en)*2011-06-172012-12-20TransducerWorksUltrasound transducer test apparatus and applications thereof
EP2597445A1 (en)2011-11-222013-05-29Pii LimitedMethod for pipeline inspection
US9995716B2 (en)*2012-10-122018-06-12General Electric Technology GmbhMethod for determining boiler tube cold side cracking and article for accomplishing the same
US9689671B2 (en)*2013-01-302017-06-27University Of CincinnatiMeasuring wall thickness loss for a structure
KR101723485B1 (en)2014-11-102017-04-07영남대학교 산학협력단Method and Apparatus for Circumferential Wave Resonance Inspection of Boiler Waterwall Tubes
JP6758083B2 (en)*2016-05-122020-09-23株式会社日立製作所 Piping inspection equipment
CN111537617A (en)*2020-04-022020-08-14广西电网有限责任公司电力科学研究院 GIS casing defect detection method based on magnetostrictive torsional guided waves

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US5359898A (en)*1991-06-041994-11-01The Babcock & Wilcox CompanyHydrogen damage confirmation with EMATs
US5526691A (en)*1993-07-121996-06-18The Babcock & Wilcox CompanyDetection of corrosion fatigue cracks in membrane boiler tubes
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US6125703A (en)*1998-06-262000-10-03Mcdermott Technology, Inc.Detection of corrosion fatigue in boiler tubes using a spike EMAT pulser
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US6205859B1 (en)*1999-01-112001-03-27Southwest Research InstituteMethod for improving defect detectability with magnetostrictive sensors for piping inspection
US6497151B1 (en)*1999-12-202002-12-24U.S. Pipe & Foundry CompanyNon-destructive testing method and apparatus to determine microstructure of ferrous metal objects
US6624628B1 (en)*1999-03-172003-09-23Southwest Research InstituteMethod and apparatus generating and detecting torsional waves for long range inspection of pipes and tubes
US20030183537A1 (en)*2002-04-022003-10-02David EdenMethod of spatial monitoring and controlling corrosion of superheater and reheater tubes
US6925881B1 (en)*2002-01-172005-08-09Southwest Research InstituteTime shift data analysis for long-range guided wave inspection
US20050179430A1 (en)*2004-02-162005-08-18Park Chan IiTransducer for generating and measuring torsional waves, and apparatus and method for structural diagnosis using the same
US6967478B2 (en)*2001-05-302005-11-22Advanced Engineering Solutions, Ltd.Pipe condition detecting apparatus

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GB2378756A (en)2001-07-162003-02-19Thames Water UtilitiesApparatus for detecting leaks in or determing the nature of a pipe.

Patent Citations (12)

* Cited by examiner, † Cited by third party
Publication numberPriority datePublication dateAssigneeTitle
US5359898A (en)*1991-06-041994-11-01The Babcock & Wilcox CompanyHydrogen damage confirmation with EMATs
US5581037A (en)*1992-11-061996-12-03Southwest Research InstituteNondestructive evaluation of pipes and tubes using magnetostrictive sensors
US5526691A (en)*1993-07-121996-06-18The Babcock & Wilcox CompanyDetection of corrosion fatigue cracks in membrane boiler tubes
US6125703A (en)*1998-06-262000-10-03Mcdermott Technology, Inc.Detection of corrosion fatigue in boiler tubes using a spike EMAT pulser
US6164140A (en)*1998-10-092000-12-26Kalinoski; Richard W.Solid state transducer for Coriolis flowmeter
US6205859B1 (en)*1999-01-112001-03-27Southwest Research InstituteMethod for improving defect detectability with magnetostrictive sensors for piping inspection
US6624628B1 (en)*1999-03-172003-09-23Southwest Research InstituteMethod and apparatus generating and detecting torsional waves for long range inspection of pipes and tubes
US6497151B1 (en)*1999-12-202002-12-24U.S. Pipe & Foundry CompanyNon-destructive testing method and apparatus to determine microstructure of ferrous metal objects
US6967478B2 (en)*2001-05-302005-11-22Advanced Engineering Solutions, Ltd.Pipe condition detecting apparatus
US6925881B1 (en)*2002-01-172005-08-09Southwest Research InstituteTime shift data analysis for long-range guided wave inspection
US20030183537A1 (en)*2002-04-022003-10-02David EdenMethod of spatial monitoring and controlling corrosion of superheater and reheater tubes
US20050179430A1 (en)*2004-02-162005-08-18Park Chan IiTransducer for generating and measuring torsional waves, and apparatus and method for structural diagnosis using the same

Cited By (14)

* Cited by examiner, † Cited by third party
Publication numberPriority datePublication dateAssigneeTitle
US8098065B2 (en)*2008-08-292012-01-17Southwest Research InstituteMagnetostrictive sensor probe for guided-wave inspection and monitoring of wire ropes/cables and anchor rods
US20100052670A1 (en)*2008-08-292010-03-04Southwest Research InstituteMagnetostrictive Sensor Probe for Guided-Wave Inspection and Monitoring of Wire Ropes/Cables and Anchor Rods
US20120053895A1 (en)*2010-08-182012-03-01Noam AmirMethod and system for evaluating the condition of a collection of similar elongated hollow objects
US10099791B2 (en)*2015-07-282018-10-16Fbs, Inc.Magnetostrictive multi-frequency guided wave ice sensing probe
US20170030848A1 (en)*2015-07-282017-02-02Fbs, Inc.Magnetostrictive multi-frequency guided wave ice sensing probe
US20170115204A1 (en)*2015-10-272017-04-27Southwest Research InstituteMagnetostrictive Probe With Mechanical and Fluid Coupling for Guided Wave Testing of Tubular Structures
US9714922B2 (en)*2015-10-272017-07-25Southwest Research InstituteMagnetostrictive probe with mechanical and fluid coupling for guided wave testing of tubular structures
CN105548372A (en)*2015-12-092016-05-04镇江天颐装备科技有限公司Pipeline guided-wave transducer based on giant magnetostrictive material, and manufacture and use method
CN109444271A (en)*2018-12-032019-03-08南京江淳机电装备科技有限公司A kind of ultra-magnetic telescopic guided wave small transducers for pipe surface coupling
US20220260739A1 (en)*2019-04-082022-08-18Carl Israel LarkinVibrating pipe locator
US11971512B2 (en)*2019-04-082024-04-30Carl Israel LarkinVibrating pipe locator
US11320549B2 (en)*2020-05-222022-05-03Carl Israel LarkinVibrating pipe locator
KR102573897B1 (en)*2023-05-122023-09-04케이피이엔지 주식회사Phased Array Ultrasonic Inspection System
KR102613137B1 (en)*2023-08-102023-12-13고려공업검사 주식회사PAUT inspection device for tubes having welding part

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Owner name:SOUTHWEST RESEARCH INSTITUTE, TEXAS

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