OPTIMAL-CONTROL OF LASER-GENERATED ACOUSTIC-WAVES IN SOLIDS

被引:11
|
作者
KIM, YS
TADI, M
RABITZ, H
ASKAR, A
MCMANUS, JB
机构
[1] PRINCETON UNIV, DEPT CHEM, PRINCETON, NJ 08544 USA
[2] KOC UNIV, SCH SCI, BEBEK, TURKEY
[3] AERODYNE RES INC, BILLERICA, MA 01821 USA
来源
PHYSICAL REVIEW B | 1994年 / 50卷 / 21期
关键词
D O I
10.1103/PhysRevB.50.15744
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
This paper is concerned with the design of optimal surface-heating patterns that result in focusing acoustic energy inside a subsurface target volume at a specified target time. The surface of the solid is heated by an incident laser beam which gives rise to shear and compressional waves propagating into the solid. The optimal heating design process aims to achieve the desired energy focusing at the target with minimal laser power densities and minimal system disturbance away from the target. Due to the slow motion of the thermal conduction process relative to the propagation of acoustic waves, a general formulation is derived which is the limiting case for a heat-absorbing nonconducting solid. This is consistent with the laser heating of the surface where, for the time duration of interest, thermal effects are confined to a thin layer at the surface. This simplification allows for the solution of the problem through the use of the system Greens function for the purely elastic medium where thermal expansion enters as an external force. The problem is then posed as an optimal control problem, the solution of which is the required heating pattern at the surface. The optimality conditions are secured via the conjugate gradient method and the mechanics of the elastic medium is treated by the finite element method along with using the half-space Greens function matrix. Good quality energy focusing is achieved, with the optimal designs reflecting the high directivity of the photothermally generated shear-wave patterns. © 1994 The American Physical Society.
引用
收藏
页码:15744 / 15751
页数:8
相关论文
共 50 条
  • [1] OPTIMAL-CONTROL OF ACOUSTIC-WAVES IN SOLIDS
    KIM, YS
    RABITZ, H
    ASKAR, A
    MCMANUS, JB
    PHYSICAL REVIEW B, 1991, 44 (10) : 4892 - 4906
  • [2] DYNAMICS OF PICOSECOND LASER-GENERATED ACOUSTIC-WAVES IN SOLIDS
    KANEMITSU, Y
    HARADA, Y
    TANAKA, Y
    NAKANO, N
    KURODA, H
    YAMANAKA, K
    JAPANESE JOURNAL OF APPLIED PHYSICS PART 1-REGULAR PAPERS SHORT NOTES & REVIEW PAPERS, 1989, 28 : 234 - 236
  • [3] PRESSURE SATURATION OF LASER-GENERATED ACOUSTIC-WAVES IN LIQUIDS
    SIGRIST, MW
    KNEUBUHL, FK
    APPLIED PHYSICS LETTERS, 1979, 34 (06) : 353 - 354
  • [4] NDT APPLICATIONS OF LASER-GENERATED FOCUSED ACOUSTIC-WAVES
    MALDAGUE, X
    CIELO, P
    JEN, CK
    MATERIALS EVALUATION, 1986, 44 (09) : 1120 - 1124
  • [5] PROPAGATION CHARACTERISTICS OF LASER-GENERATED ACOUSTIC-WAVES IN GLASS
    KANEMITSU, Y
    HARADA, Y
    TANAKA, Y
    KURODA, H
    JOURNAL OF APPLIED PHYSICS, 1988, 63 (09) : 4751 - 4753
  • [6] NDT APPLICATIONS OF LASER-GENERATED FOCUSED ACOUSTIC-WAVES
    MALDAGUE, X
    YEN, CK
    CIELO, P
    MATERIALS EVALUATION, 1985, 43 (10) : 1313 - 1313
  • [7] ROCK PROPERTY ASSESSMENT USING LASER-GENERATED ACOUSTIC-WAVES
    HUTCHINS, DA
    YOUNG, RP
    REVIEW OF SCIENTIFIC INSTRUMENTS, 1991, 62 (08): : 1995 - 1998
  • [8] LASER-GENERATED ACOUSTIC-WAVES DETECT SUBMILLIMETER FLAW IN A METAL SAMPLE
    不详
    LASER FOCUS WITH FIBEROPTIC TECHNOLOGY, 1977, 13 (07): : 30 - &
  • [9] THE INTERACTION OF FINE PARTICLES WITH LASER-GENERATED NONLINEAR SURFACE ACOUSTIC-WAVES
    MIKHALEVICH, VG
    KOLOMENSKII, AA
    BENCK, EC
    SCHUESSLER, HA
    JOURNAL DE PHYSIQUE IV, 1994, 4 (C7): : 709 - 711
  • [10] NONCONTACT CHARACTERIZATION OF ADHESION OF SURFACE-LAYERS BY LASER-GENERATED ACOUSTIC-WAVES
    WEISS, P
    SIGRIST, MW
    JOURNAL DE PHYSIQUE IV, 1994, 4 (C7): : 729 - 732