Long period gratings as flow sensors for liquid composite molding

被引:13
作者
Kueh, SRM [1 ]
Parnas, RS [1 ]
Dunkers, JP [1 ]
Advani, SG [1 ]
Furrows, PS [1 ]
Jones, ME [1 ]
Bailey, TA [1 ]
机构
[1] Univ Delaware, Dept Mech Engn, Newark, DE 19716 USA
来源
NONDESTRUCTIVE EVALUATION OF AGING MATERIALS AND COMPOSITES IV | 2000年 / 3993卷
关键词
flow sensing system; long period gratings (LPG); liquid composite molding (LCM);
D O I
10.1117/12.385495
中图分类号
TB3 [工程材料学];
学科分类号
0805 ; 080502 ;
摘要
One of the most important issues in liquid composite molding (LCM) is the complete saturation of the preform by the resin to eliminate voids or dry spots in the structure which could later adversely affect the structural integrity of the part. While there have been efforts in developing reliable mold filling simulations for LCM, very few successful flow sensing systems exist for detecting actual resin arrival during mold filling. In this study, the feasibility of using optical fibers with long period gratings (LPG) as sensors for monitoring flow in the LCM process was investigated. An advantage of using LPGs is that they are more robust and less susceptible to background noise than simple bare fibers. Furthermore, the location of resin arrival can be easily identified as the signals from each LPG uniquely correspond to predetermined wavelengths along the source spectrum. The LPGs are sensitive to changes in the refractive index and register a strong signal change when covered with resin. In this study, the LPG sensors were placed in the middle of a preform stack inside a mold and the sensor response after the mold was properly closed, and when the resin covered a particular LPG was monitored. An assortment of preforms, which included random mats and unidirectional fabrics, with a series of fiber volume fractions were used to determine their effects on the sensor response.
引用
收藏
页码:240 / 250
页数:11
相关论文
共 30 条
[1]  
[Anonymous], 1990, P 7 INT C OPTICAL FI
[2]   Fiber optic sensors for use in monitoring flow front in vacuum resin transfer molding processes [J].
Bernstein, JR ;
Wagner, JW .
REVIEW OF SCIENTIFIC INSTRUMENTS, 1997, 68 (05) :2156-2157
[3]   Comparison of optical fiber long-period and Bragg grating sensors [J].
Bhatia, V ;
DAlberto, T ;
Murphy, KA ;
Claus, RO ;
Nemarich, CP .
SMART STRUCTURES AND MATERIALS 1996: SMART SENSING, PROCESSING, AND INSTRUMENTATION, 1996, 2718 :110-121
[4]   A FINITE-ELEMENT CONTROL VOLUME APPROACH TO MOLD FILLING IN ANISOTROPIC POROUS-MEDIA [J].
BRUSCHKE, MV ;
ADVANI, SG .
POLYMER COMPOSITES, 1990, 11 (06) :398-405
[5]   Long-period fibre grating fabrication with focused CO2 laser pulses [J].
Davis, DD ;
Gaylord, TK ;
Glytsis, EN ;
Kosinski, SG ;
Mettler, SC ;
Vengsarkar, AM .
ELECTRONICS LETTERS, 1998, 34 (03) :302-303
[6]   Fundamentals and applications of optical fiber Bragg grating sensors to textile structural composites [J].
Du, W ;
Tao, XM ;
Tam, HY ;
Choy, CL .
COMPOSITE STRUCTURES, 1998, 42 (03) :217-229
[7]   LONG PERIODIC SUPERSTRUCTURE BRAGG GRATINGS IN OPTICAL FIBERS [J].
EGGLETON, BJ ;
KRUG, PA ;
POLADIAN, L ;
OUELLETTE, F .
ELECTRONICS LETTERS, 1994, 30 (19) :1620-1622
[8]  
FOOTE PD, 1995, P OPTICAL FIBRE BRAG, V17
[9]  
FUCHS A, 1995, ANTEC 95, V53, P2437
[10]   Grating-based optical fiber-based corrosion sensors [J].
Greene, JA ;
Jones, ME ;
Tran, TA ;
Murphy, KA ;
Schindler, PM ;
Bhatia, V ;
May, RG ;
Sherrer, D ;
Claus, RO .
SMART STRUCTURES AND MATERIALS 1996: SMART SENSING, PROCESSING, AND INSTRUMENTATION, 1996, 2718 :170-174