REG NASA-LLIS-0765-2000 Lessons Learned - Ultrasonic Testing of Aerospace Materials.pdf
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1、Best Practices Entry: Best Practice Info:a71 Committee Approval Date: 2000-04-05a71 Center Point of Contact: MSFCa71 Submitted by: Wilson HarkinsSubject: Ultrasonic Testing of Aerospace Materials Practice: Three general methods of ultrasonic testing can be used singly or in combination with each oth
2、er to identify cracks, debonds, voids, or inclusions in aerospace materials. Each has its own unique application and all require certain precautions or techniques to identify potentially flawed hardware. This practice describes selected principles that are essential in reliable ultrasonic testing.Pr
3、ograms that Certify Usage: This practice has been used on Space Shuttle External Tank, Solid Rocket Booster, Space Shuttle Main Engine, and in-house manufacturing technology programs.Center to Contact for Information: MSFCImplementation Method: This Lesson Learned is based on Reliability Practice nu
4、mber PT-TE-1422 from NASA Technical Memorandum 4322A, NASA Reliability Preferred Practices for Design and Test.Careful attention to detail in ultrasonic testing can result in the identification of very small cracks, debonds, voids or inclusions in aerospace hardware that could be detrimental to miss
5、ion performance. New ultrasonic technologies are enhancing the accuracy, speed, and cost-effectiveness of this method of nondestructive testing.Implementation:Provided by IHSNot for ResaleNo reproduction or networking permitted without license from IHS-,-,-As schematically illustrated on Figures 1,
6、2, and 3 there are three principal methods of ultrasonic testing of aerospace materials: (1) the pulse-echo method; (2) the through-transmission method; and (3) the pitch-catch method. These three ultrasonic methods use pulses of energy during testing operations. These methods and their principal us
7、e in support of MSFC projects and technology programs are described below:1. The pulse-echo method (Figure 1). In the pulse-echo method, a piezoelectric transducer with its longitudinal axis located perpendicular to and mounted on or near the surface of the test material is used to transmit and rece
8、ive ultrasonic energy. The ultrasonic waves are reflected by the opposite face of the material or by discontinuities, layers, voids, or inclusions in the material, and received by the same transducer where the reflected energy is converted into an electrical signal. The electrical signal is computer
9、 processed for display on a video monitor or TV screen. The display can show the relative thickness of the material, depth into the material where flaws are located, and (with proper scanning hardware and software), where the flaws are located in the X-Y plane. In aerospace applications, the pulse-e
10、cho method is used primarily for the detection of flaws in metals, but has been used for first and second bondline interrogation in solid rocket motors (each transmitted/received wave in Figure 1 represents a pulse of energy).refer to D descriptionD 2. The through-transmission method (Figure 2). In
11、the through-transmission method, an ultrasonic transmitter is used on one side of the material while a detector is placed on the opposite side. Scanning of the material using this method will result in the location of defects, flaws, and inclusions in the X-Y plane. This method is used for nondestru
12、ctive testing of multi-layered and multicomponent materials as encountered in solid rocket motor case/insulation/liner/propellants, in composite materials, and on highly attenuative materials. (Each transmitted/received wave in Figure Provided by IHSNot for ResaleNo reproduction or networking permit
13、ted without license from IHS-,-,-2 represents a pulse of energy.)refer to D descriptionD 3. The pitch-catch method (Figure 3). The pitch-catch method, in which the ultrasonic energy is transmitted at any angle to the surface of the material and received as reflected energy returning at the reflected
14、 angle, is used primarily for cylindrical tubes and other nonlinear parallel sided surfaces. The pitch-catch method can determine depths of the flaw in the material as well as detect the location in the X-Y plane through scanning. (Each transmitted/received wave in Figure 3 represents a pulse of ene
15、rgy.)Provided by IHSNot for ResaleNo reproduction or networking permitted without license from IHS-,-,-refer to D descriptionD All three methods are most effective on parallel sided surfaces, but techniques are being developed to inspect variable thickness materials or parts if and when the variatio
16、n in thickness relative to the X-Y plane is known precisely.Precautions to be observed in ultrasonic testing include: (1) acoustical impedance matching of the sensors with the subject test material through the use of the correct coupling media; (2) use of air-coupling for moisture-sensitive material
17、s; (3) resolution requirements needed to discriminate between adjacent anomalies; and (4) the use of electronic methods wherever possible to make corrections in distance inaccuracies encountered due to ultrasonic beam spreading; (5) characteristics of the transducer(s); and (6) the dependence of res
18、olution on index, scan speed, repetition frequency, computer speed, etc., when using automated scanning.Water has been the best coupling media because of its ready availability, low viscosity, and its relatively safe use with most spacecraft construction materials. When immersion in water is not pra
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