ASTM F2537-2006(2011) Standard Practice for Calibration of Linear Displacement Sensor Systems Used to Measure Micromotion《微移动用直线位移传感器系统的刻度标准实施规范》.pdf
《ASTM F2537-2006(2011) Standard Practice for Calibration of Linear Displacement Sensor Systems Used to Measure Micromotion《微移动用直线位移传感器系统的刻度标准实施规范》.pdf》由会员分享,可在线阅读,更多相关《ASTM F2537-2006(2011) Standard Practice for Calibration of Linear Displacement Sensor Systems Used to Measure Micromotion《微移动用直线位移传感器系统的刻度标准实施规范》.pdf(4页珍藏版)》请在麦多课文档分享上搜索。
1、Designation: F2537 06 (Reapproved 2011)Standard Practice forCalibration of Linear Displacement Sensor Systems Used toMeasure Micromotion1This standard is issued under the fixed designation F2537; the number immediately following the designation indicates the year oforiginal adoption or, in the case
2、of revision, the year of last revision. A number in parentheses indicates the year of last reapproval. Asuperscript epsilon () indicates an editorial change since the last revision or reapproval.1. Scope1.1 This practice covers the procedures for calibration oflinear displacement sensors and their c
3、orresponding powersupply, signal conditioner, and data acquisition systems (lineardisplacement sensor systems) for use in measuring micromo-tion. It covers any sensor used to measure displacement thatgives an electrical voltage output that is linearly proportional todisplacement. This includes, but
4、is not limited to, linearvariable differential transformers (LVDTs) and differentialvariable reluctance transducers (DVRTs).1.2 This calibration procedure is used to determine therelationship between output of the linear displacement sensorsystem and displacement. This relationship is used to conver
5、treadings from the linear displacement sensor system intoengineering units.1.3 This calibration procedure is also used to determine theerror of the linear displacement sensor system over the range ofits use.1.4 The values stated in SI units are to be regarded asstandard. No other units of measuremen
6、t are included in thisstandard.1.5 This standard does not purport to address all of thesafety concerns, if any, associated with its use. It is theresponsibility of the user of this standard to establish appro-priate safety and health practices and determine the applica-bility of regulatory limitatio
7、ns prior to use.2. Terminology2.1 Definitions:2.1.1 calibrated range, ndistance over which the lineardisplacement sensor system is calibrated.2.1.2 calibration certificate, ncertification that the sensormeets indicated specifications for its particular grade or modeland whose accuracy is traceable t
8、o the National Institute ofStandards and Technology or another international standard.2.1.3 core, ncentral rod that moves in and out of thesensor.NOTE 1It is preferable that the sensors prevent the core from exitingthe sensor housing.2.1.4 data acquisition system, nsystem generally consist-ing of a
9、terminal block, data acquisition card, and computerthat acquire electrical signals and allows them to be capturedby a computer.2.1.5 differential variable reluctance transducer (DVRT),na linear displacement sensor made of a sensor housing anda core. The sensor housing contains a primary coil and ase
10、condary coil. Core position is detected by measuring thecoils differential reluctance.2.1.6 linear displacement sensor, nan electrical sensorthat converts linear displacement to electrical output.2.1.7 linear displacement sensor system, na system con-sisting of a linear displacement sensor, power su
11、pply, signalconditioner, and data acquisition system.2.1.8 linear variable differential transformer (LVDT), nalinear displacement sensor made of a sensor housing and acore. The sensor housing contains a primary coil and twosecondary coils. When an ac excitation signal is applied to theprimary coil,
12、voltages are induced in the secondary coils. Themagnetic core provides the magnetic flux path linking theprimary and secondary coils. Since the two voltages are ofopposite polarity, the secondary coils are connected in seriesopposing in the center, or null position. When the core isdisplaced from th
13、e null position, an electromagnetic imbalanceoccurs. This imbalance generates a differential ac outputvoltage across the secondary coils, which is linearly propor-tional to the direction and magnitude of the displacement.When the core is moved from the null position, the inducedvoltage in the second
14、ary coil, toward which the core is moved,increases while the induced voltage in the opposite secondarycoil decreases.2.1.9 null position, nthe core position within the sensorhousing where the sensor voltage output is zero (some sensorsdo not have a null position).1This practice is under the jurisdic
15、tion ofASTM Committee F04 on Medical andSurgical Materials and Devices and is the direct responsibility of SubcommitteeF04.15 on Material Test Methods.Current edition approved June 1, 2011. Published June 2011. Originallyapproved in 2006. Last previous edition approved in 2006 as F2537 06. DOI:10.15
16、20/F2537-06R11.1Copyright ASTM International, 100 Barr Harbor Drive, PO Box C700, West Conshohocken, PA 19428-2959, United States.2.1.10 offset correction, nremoval of any offset in asensors output so that at zero displacement, zero voltage isrecorded.2.1.11 percent error, nthe difference between a
17、measure-ment of a reference standard and the actual length of thereference standard divided by the actual length of the referencestandard and the result converted to a percent.2.1.12 power supply, na regulated voltage source withoutput equal to that required by the sensor for proper operation.2.1.13
18、 sensor housing, ncentral hole in a linear displace-ment sensor that senses movement of the core within it.2.1.14 signal conditioner, nelectronic equipment that actsto convert the raw electrical output from the linear displace-ment sensor into a more useful signal by amplification andfiltering.3. Su
19、mmary of Practice3.1 A linear displacement sensor is mounted in a calibrationfixture such that it can be subjected to a precise, knowndisplacement.3.2 Displacement is applied in steps over the full range ofthe linear displacement sensor and electrical readings (forexample, voltages) are collected us
20、ing the linear displacementsensor system.3.3 Each voltage reading is taken as the average of 100readings over 0.1 s, decreasing the error of the reading. Theerror in the readings is recorded as the standard deviation in thereadings. This error should be constant and independent ofdisplacement. It sh
21、ould be noted that the error in the readingsis a summation of errors in each of the linear displacementsensor system components.3.4 The calibration factor (S) is calculated as the slope ofthe voltage versus displacement curve using linear regression.3.5 Linearity of the sensor is assessed.3.6 The pe
22、rcent error is determined for each calibrationpoint collected. This percent error is evaluated together withthe tolerance of the micrometer head calibration.4. Significance and Use4.1 Linear displacement sensor systems play an importantrole in orthopedic applications to measure micromotion duringsim
23、ulated use of joint prostheses.4.2 Linear displacement sensor systems must be calibratedfor use in the laboratory to ensure reliable conversions of thesystems electrical output to engineering units.4.3 Linear displacement sensor systems should be calibratedbefore initial use, at least annually there
24、after, after any changein the electronic configuration that employs the sensor, afterany significant change in test conditions using the sensor thatdiffer from conditions during the last calibration, and after anyphysical action on the sensor that might affect its response.4.4 Verification of sensor
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