Installation Guide. English. FS62 Miniature Polyimide Strain Sensor

Similar documents
Installation Guide. English. FS62 Composite Strain Sensor

Installation Guide. English. FS62 Embedded Strain Sensor

Installation Guide. English. FS62 Surface Mountable Strain Sensor

Installation Guide. English. FS62 Weldable Strain Sensor

Cold curing adhesive K-X280

7600 Isolated Digitizer and Receiver

U9C. Data sheet. Force Transducer. Special features. B en

T22. Torque transducer. Special features. Data sheet

Inductive Standard Displacement Transducers

MX1615B-R. Ultra-rugged Bridge Amplifier. Special features. Data sheet. Block diagram

MX460B-R. Rugged pulse and frequency measuring module. Data sheet. Special features. Block diagram

T40FH. Torque flange. Special features. Data sheet

M-FP ISOLATOR PIGTAILS

MX1615B R. Data Sheet. Ultra-rugged Bridge Amplifier

T10F. Data Sheet. Torque Flange. Special features. Installation example T10F. B en

Single point load cell

T40B. Torque Flange. Special features. Data sheet. Overall concept

C9C. Force Transducer. Special features. Data sheet

MX1601B-R. Ultra rugged Standard Amplifier. Data sheet. Special features. Block diagram

ISOBE5600. Data sheet. Isolated Probe Systems. - ISOBE5600 Isolation system - ISOBE5600 Transient recorder. Features and Benefits

U10M. Force Transducer. Special features. Data sheet. Mounting dimensions of the connection variants in mm [inch]

MX1601B R. Data Sheet. Ultra-rugged Standard Amplifier

MDEX. on customized sensors. Technical information. Torque transducer. CS-T-04-MDEX Special features

C10. Data sheet. Force transducer. Special features. B de

Data sheet. P3 Top Class BlueLine. P3MBP BlueLine. Ultra-high pressure transducers to 15,000 bar. Special features

T40FM. Data Sheet. Torque flange. Special features. Overall concept. B en

T22. Data Sheet. Torque transducer. Special features. Installation example with two bellows couplings. B en

E *) F 15. H 12 h9. 5.5f7 8h6. a./f approx. 0.5mm Free stroke. Displacement. Initial stroke

ni.com Sensor Measurement Fundamentals Series

WL Photonics Inc. Leading Provider of Fiber Optic Wavelength Tuning and Conditioning Solutions

Load cell. Special features. Data sheet

U15. Force transducer. Special features. Data sheet. Installed dimensions of connection variants

Single point load cell

Specifications Type WA2 WA10 WA20 WA50 WA100 WA200 WA300 WA500 Nominal displacement mm Nomi

WL Photonics Inc. Leading Provider of Fiber Optic Wavelength Tuning and Conditioning Solutions

100/200/400 t. Self-centering pendulum lead cells. Data sheet. Special features

CANHEAD. Data Sheet. Special features. Distributed measurement acquisition. B en

A suite of optical fibre sensors for structural condition monitoring

U2B. Force Transducer. Special features. Data sheet

MX840B R. Data sheet. Ultra-rugged universal amplifier CAN. Special features. Block diagram. B en

TB2. Torque reference transducer. Special features. Data sheet

Differential interrogation of FBG sensors using conventional optical time domain reflectometry

RSCC. Data Sheet. Load cells. Special features. Diagram of RSCC load cell. Design: 500 kg to 5 t. Design: 50 kg to 200 kg. B

WL Photonics Inc. Leading Provider of Fiber Optic Wavelength Tuning and Conditioning Solutions

AN EXPERIMENT RESEARCH ON EXTEND THE RANGE OF FIBER BRAGG GRATING SENSOR FOR STRAIN MEASUREMENT BASED ON CWDM

T10FS. Data Sheet. Torque Flange. Special features. Installation example T10FS. B en

Fiber-optic temperature measurement solves HV challenges in e-mobility Tech Article

Micrometre-level Deformation Monitoring of a Concrete Dam

S9M. Force Transducer. Special features. Data sheet

D.B. Singh and G.K. Suryanarayana

CHIRPED FIBER BRAGG GRATING (CFBG) BY ETCHING TECHNIQUE FOR SIMULTANEOUS TEMPERATURE AND REFRACTIVE INDEX SENSING

ERM2038 INFRARED RECEIVER MODULE

FAILURES TO MONITOR AND PREDICT. Detect early warning signs Automate monitoring of critical systems Give critical data to key decision makers

1751A 1550 nm DWDM DFB Laser Module

A thin foil optical strain gage based on silicon-on-insulator microresonators

Fiber Coupled Single Bar Diode Laser (CW)

electronics Data Sheet Industrial Amplifier Special features Dimensions (in mm; 1 mm= inches) B en

ModBox-SB-NIR Near Infra Red Spectral Broadening Unit

Miniature collimator for POF fiber: large aperture Model 011-TU2

1612A/B 1310 nm DFB Laser Module

Analog OptoLock FC300T

Customized Sensors. OEM Custom-designed Sensors...from the leader in the measurement of mechanical parameters

U2B. Data sheet. Force Transducer. Special features. B en

SIMULTANEOUS INTERROGATION OF MULTIPLE FIBER BRAGG GRATING SENSORS FOR DYNAMIC STRAIN MEASUREMENTS

OPTISENS PH 8390 Technical Datasheet

PHOTONICALLY WIRED SPACECRAFT PANELS AN ECONOMIC ANALYSIS AND DEMONSTRATOR FOR TELECOMMUNICATION SATELLITES

NIR-MPX-LN series 1000 nm band Phase Modulators

Design and applications of fiber Bragg grating sensors for structural health monitoring

InsuLogix T Portable One Channel Temperature Measurement System Manual

Thermopile Detector TPD 2T 0625 G7.2 G20 / 3142 Revision - Date: 2011/12/01

High-Power 8.0 W 9xx nm Fiber-Coupled Diode Laser 6397-L3 Series

High-Power 8xx nm Fiber-Coupled Diode Laser 2495-L3 Series

Study of multi physical parameter monitoring device based on FBG sensors demodulation system

Laboratory investigation of an intensiometric dual FBG-based hybrid voltage sensor

1751A 1550 nm DWDM DFB Laser Module

nm C-Band DWDM DFB Laser Module

1782 DWDM High Power CW Source Laser

Temposonics. Magnetostrictive Linear Position Sensors. ET Start/Stop Data Sheet. High operating temperature Compact sensor housing ATEX certified

DESIGN CHALLENGES OF A TUNABLE LASER INTERROGATOR FOR GEO-STATIONARY COMMUNICATION SATELLITES

General-purpose Foil Strain Gages KFGS Series

Data Sheet. Absolute pressure transducer Nominal (rated) pressure 10 bar to 3000 bar. Special features

Model 1782 DWDM High Power CW Source Laser

Laser Systems. !!!! iflex-iris

ELDIO. Data Sheet. edaqlite Digital Input/Output Layer. Special Features. Block Diagram. B en

ODiSI Fiber Optic Sensor Installation Guide

Dynamic Strain Measurement Using Improved Bonding Fiber Bragg Grating

PSW-002. Fiber Optic Polarization Switch. User Guide

Model 1772 DWDM High Power CW Source Laser

TechNote. T001 // Precise non-contact displacement sensors. Introduction

1622A/B CWDM DFB Laser Module

Stabilized Interrogation and Multiplexing. Techniques for Fiber Bragg Grating Vibration Sensors

OP710. Multichannel Optical Power Meter Instruction Manual. (Also supports the OP710-ANX)

Operating manual. Force transducer with strain gage measuring system C9B. A en. hvordan man bruger astrologi med tibetanske medicin

Datalogger. functions. interface. Mechanical. Power

EFFECT OF EPOXY CURING ON TILTED FIBER BRAGG GRATINGS TRANSMISSION SPECTRUM

Optical signal processing for fiber Bragg grating based wear sensors

LEAD Fiber Optics PRODUCT CATALOGUE

1754C C-Band DWDM DFB Laser Module

Artisan Scientific is You~ Source for: Quality New and Certified-Used/Pre:-awned ECJuiflment

MX1615. Data sheet. Bridge/strain gauge amplifier

Transcription:

Installation Guide English FS62 Miniature Polyimide Strain Sensor

Hottinger Baldwin Messtechnik GmbH Im Tiefen See 45 D-64239 Darmstadt Tel. +49 6151 803-0 Fax +49 6151 803-9100 info@hbm.com www.hbm.com HBM FiberSensing, S.A. Optical Business Rua Vasconcelos Costa, 277 4470-640 Maia Portugal Tel. +351 229 613 010 Fax +351 229 613 020 fibersensing@hbm.com www.hbm.com/fs Mat.: 7-2002.4255 DVS: A4255-3.3 HBM: public 05.2015 Sensor Design Version: v1.0 Hottinger Baldwin Messtechnik GmbH. Subject to modifications. All product descriptions are for general information only. They are not to be understood as a guarantee of quality or durability.

English 1 Technical Details... 4 1.1 General Information... 4 1.1.1 Overview... 4 1.1.2 Characteristics... 4 1.1.3 Applications... 5 1.1.4 Quality... 6 1.1.5 Accessories... 6 1.2 General Specifications... 7 2 Sensor Installation... 8 2.1 List of Materials... 8 2.2 Preparing the Surface... 9 2.3 Placing the Sensor... 11 2.4 Protecting the Sensor... 14 2.4.1 Cables Protection... 14 2.4.2 Moisture Protection... 14 2.4.3 Mechanical Protection... 16 3 Sensor Configuration... 18 3.1 Sensor Calibration Sheet... 18 3.1.1 General Information... 18 3.1.2 Calibration Data... 19 3.1.3 Strain Computation... 19 3.2 Temperature Effect on the Sensor... 20 3.2.1 Effect of the Temperature on the Sensor... 20 3.2.2 Effect of the Temperature on the Sensor and on the Base Material 21 FS62 A4255-3.3 HBM: public 3

Technical Details 1 Technical Details 1.1 General Information This installation guide applies to the following products: Part Number K-FS62-16-11-102 K-FS62-16-13-102 K-FS62-16-10-102 Description FS62 Miniature Polyimide Strain Sensor Laboratory FC/APC FS62 Miniature Polyimide Strain Sensor Laboratory SC/APC FS62 Miniature Polyimide Strain Sensor Laboratory NC 1.1.1 Overview The FS62 - Miniature Polyimide Strain Sensors are Fiber Bragg Grating (FBG) based sensors, designed to be bonded to surfaces and materials. 1.1.2 Characteristics : Robustness Long-term reliability ensured by innovative sensor design and careful selection of materials. : Completely passive Inherent immunity to all electromagnetic effects (EMI, RFI, sparks, etc.) and safe operation in hazardous environments. 4 A4255-3.3 HBM: public FS62

Technical Details : High multiplexing capability Connection of a large number of sensors to a single optical fiber, reducing network and installation complexity. : Remote sensing Large distance between sensors and interrogator (several kilometers). : Compatible with most interrogators Provided with calibration sheet, allowing easy and accurate configuration. : Self-referenced Based on the measurement of an absolute parameter - the Bragg wavelength - independent of power fluctuations. 1.1.3 Applications HBM FiberSensing strain sensors can be used in several strain measuring applications. They are particularly suited for structural health monitoring in large structures (SHM). : Civil Engineering : Transportation : Energy : Aeronautics : R&D FS62 A4255-3.3 HBM: public 5

Technical Details 1.1.4 Quality All HBM FiberSensing's processes are strictly controlled from development to production. Each product is subjected to high standard performance and endurance tests, individually calibrated and checked before shipping. HBM FiberSensing, S.A. concentrates all optical sensing activity of HBM and is an ISO 9001:2008 certified company. 1.1.5 Accessories The implementation of complex sensing networks in large structures is made simpler with HBM FiberSensing accessories. These include cables especially designed to resist harsh environments as in civil engineering, not only during construction, but also during the lifetime of the structure (humidity, corrosion, etc.). For the installation of HBM FiberSensing FS62 - Strain Sensors in severe environments, an optional metallic protection cover is available. 6 A4255-3.3 HBM: public FS62

Technical Details 1.2 General Specifications Sensor Sensitivity 1) 1.2 pm/με Measurement range ±2500 με Gauge length <10 mm Resolution 2) 1 με Optical Central wavelength 1500 to 1600 nm Spectral width (FWHM) < 0.2 nm Reflectivity > 65% Side lobe suppression > 10 db Inputs / Outputs Cable type Ø 0.9 mm laboratory (hytrel) Cable length 2 m each side (±5 cm) Connectors FC/APC SC/APC NC (No Connectors) Environmental Operation temperature -20 to 80 ºC Mechanical Materials Polyimide film Dimensions 40 x 12 x 0.2 mm Weight 1 g 1) Typical values 2) For 1 pm resolution in wavelength measurement FS62 A4255-3.3 HBM: public 7

Sensor Installation 2 Sensor Installation 2.1 List of Materials Included Material Miniature Polyimide Strain Sensor List of Needed Equipment Deburring Machine (optional) List of Needed Material Glue Cyanoacrylate or epoxy Paper Sand Paper (optional) Cleaning Alcohol and tissues 8 A4255-3.3 HBM: public FS62

Sensor Installation 2.2 Preparing the Surface If there are protection layers applied on the material, such as paint or rust, deburr (Fig. 2.1) or sand (Fig. 2.2) the surface to remove them ensuring that the surface does not become irregular. Fig. 2.1 Fig. 2.2 FS62 A4255-3.3 HBM: public 9

Sensor Installation Clean the surface with a tissue and alcohol, always wiping in the same direction until the tissue comes out clean (Fig. 2.3). Fig. 2.3 10 A4255-3.3 HBM: public FS62

Sensor Installation 2.3 Placing the Sensor Carefully take the sensor out of the box and align it in the desired position (Fig. 2.4). Fig. 2.4 Fix the sensor using drafting tape (Fig. 2.5). Fig. 2.5 Slowly fold and remove the paper protection (Fig. 2.6). FS62 A4255-3.3 HBM: public 11

Sensor Installation Fig. 2.6 Apply a uniform thin layer of glue on the entire surface of the sensor (Fig. 2.7). HBM FiberSensing suggests the use of cyanoacrylate with a PTFE (e.g. Teflon ) brush tool for short term measurements and small installation periods (for it cures faster), or Epoxy for long term applications despite requiring longer curing time. Fig. 2.7 12 A4255-3.3 HBM: public FS62

Sensor Installation Fix the sensor onto the surface. Press the sensor from the centre to the periphery ensuring that there are no air bubbles between the surface and the polyimide film (Fig. 2.8). Keep doing this movement until the glue is cured. For the suggested cyanoacrylate curing takes approx. 5 minutes. Fig. 2.8 FS62 A4255-3.3 HBM: public 13

Sensor Installation 2.4 Protecting the Sensor The miniature polyimide strain sensor is a low cost fiber Bragg grating strain sensor designed with the minimal protection for handling. Depending on the application there may be the need to further protect the sensor. The following instructions are only suggestions of procedure. 2.4.1 Cables Protection The miniature polyimide strain sensor cables are protected with only 900μm buffer. For harsh environments there is the need to use ducts for fiber protection. Small diameter tubes are advisable (3~5 mm). Information HBM FiberSensing sensor protection covers are designed for 3 mm protection buffer. Carefully insert the fiber on the protection tube and then fix it next to the sensor. Ensure at least a 10 mm spacing between the end of the sensor and the beginning of the tube. 2.4.2 Moisture Protection To protect the sensor from direct moisture contact HBM FiberSensing uses a synthetic air tight rubber (Polyisobutylene rubber). Cut a piece of rubber tape with approximately 70x20 mm. 14 A4255-3.3 HBM: public FS62

Sensor Installation Fig. 2.9 Remove the protection sheet from the tape and carefully place it over the sensor, covering the sensor and the end of both 3 mm buffer. Press the tape towards the sensor and the surface. Fig. 2.10 FS62 A4255-3.3 HBM: public 15

Sensor Installation 2.4.3 Mechanical Protection Sensors installed on Plane Surfaces HBM FiberSensing has a sensor cover that can be used with the miniature polyimide strain sensor when a 3 mm tube or buffer is used for cables protection. Glue the cover to the surface using an epoxy glue or sealant. Fig. 2.11 Sensors installed on Rods If a sensor is installed on a round surface with a small diameter, it is usual to use neoprene and self amalgamating tape for mechanical protection of the sensor. Place a rectangular piece of approximately 20x50 mm (Fig. 2.12) over the sensor (after the butyl tape) and roll the self amalgamating tape covering the sensor and the cables protections (Fig. 2.13). 16 A4255-3.3 HBM: public FS62

Sensor Installation Fig. 2.12 Fig. 2.13 FS62 A4255-3.3 HBM: public 17

Sensor Configuration 3 Sensor Configuration 3.1 Sensor Calibration Sheet Every HBM FiberSensing sensor is provided with a calibration sheet. The layout of this document is the same for all strain sensors. Fig. 3.1 3.1.1 General Information Number 1 in Fig. 3.1 shows the general information on the particular sensor, such as its type, the sensor part number, its serial number and the production tracking number, the FBG ID. 18 A4255-3.3 HBM: public FS62

Sensor Configuration 3.1.2 Calibration Data Under the calibration data table (number 2 in Fig. 3.1), there is the most important information on the strain sensor: its central wavelength at room temperature and its sensitivity values that should be used for strain computation. 3.1.3 Strain Computation Number 3 in Fig. 3.1 exemplifies the calculations that should be performed for wavelength measurement to strain conversion. The strain variation, under constant temperature, of a miniature polyimide strain sensor is given by the product of wavelength shift from the zero moment by the sensor's sensitivity. strain x * S strain (WL CWL)*S Fig. 3.2 Where x is the wavelength shift in nm S is the given sensitivity in ε/nm CWL is the central wavelength of the sensor at the zero moment in nm WL is the measured wavelength in nm. FS62 A4255-3.3 HBM: public 19

Sensor Configuration 3.2 Temperature Effect on the Sensor The miniature polyimide strain sensor, as most sensors, is sensitive to temperature changes. The temperature induced wavelength shift can be confused as strain. For its correction, a representative temperature sensor should be used. 3.2.1 Effect of the Temperature on the Sensor The temperature dependence of the miniature polyimide strain sensor is: Fig. 3.3 7, 32 Where: T is the temperature shift from the zero moment, in ºC, measured with a representative temperature sensor. This means that to compensate for the effect of temperature on the sensor measurement the computation should be: strain x * S 7.32 strain (WL CWL)*S 7.32 Fig. 3.4 20 A4255-3.3 HBM: public FS62

Sensor Configuration Information Note: this computation only corrects the effect of temperature on FBG and does not take into account the thermal expansion of the base material where the sensor is attached to. 3.2.2 Effect of the Temperature on the Sensor and on the Base Material To compensate also for the deformation of the structure due to temperature effects, the computation should be done considering the coefficient of thermal expansion (CTE) of the structure. The total strain variation of a structure is: strain strain Load strain Temp on FBG strain Temp on Structure strain strain Load strain Temp on FBG CTE Structure Fig. 3.5 Where Strain is total strain in ε Strain Load is the strain due to loading that we want to measure in ε Strain Temp on FBG is the temperature induced strain measurement, as explained above, in ε Strain Temp on Structure is the temperature induced strain on the structure, in ε CTE Structure is the thermal expansion coefficient of the structure material in ºC -1 FS62 A4255-3.3 HBM: public 21

Sensor Configuration Meaning that to compensate the deformation of the structure due to temperature effect, it is necessary to know the CTE value of the material of the structure where the sensor is fixed on. The strain caused by loading can then be computed as: strain Load strain strain Temp on FBG CTG Structure strain Load x * S 7.32 CTE Structure Fig. 3.6 22 A4255-3.3 HBM: public FS62

Sensor Configuration FS62 A4255-3.3 HBM: public 23

www.hbm.com HBM Test and Measurement Tel. +49 6151 803-0 Fax +49 6151 803-9100 info@hbm.com A4255-3.3 7-2002.4255 HBM: public measure and predict with confidence