• 제목/요약/키워드: Chaos Induced Instability.

검색결과 4건 처리시간 0.019초

광섬유링센서에서 유도되는 브루앤파의 혼돈 및 비안정화 현상 (Chaotic and Instability Effects in Brillouin-Active Fiber-Ring Sensor)

  • Kim, Yong K.;Kim, Jin-Su
    • 대한전기학회논문지:전기물성ㆍ응용부문C
    • /
    • 제53권6호
    • /
    • pp.337-341
    • /
    • 2004
  • In this paper the effect of chaos induced instability in Brillouin-active fiber-ring sensor is described. The inherent optical feedback by the backscattered Stokes wave in optical fiber leads to instabilities in the form of optical chaos. The paradigm of optical chaos in fiber serves as a test for fundamental study of chaos and its suppression and exploitation in practical application in communication and sensing. At weak power, the nature of the Brillouin instability can occur at before threshold. At strong power, the temporal evolution above threshold is periodic and at higher intensity can become chaotic. The threshold for the Brillouin instability in fiber-ring sensor is much lower than the threshold of the normal Brillouin instability process.

브릴루앙 산란에서 유발되는 비선형적인 불안정 현상에 대한 제어연구 (Study of Transient Control of Nonlinear Dynamically Induced Instabilities in Brillouin-Active Fiber)

  • 김용갑;김진수;박재완
    • 대한전기학회:학술대회논문집
    • /
    • 대한전기학회 2004년도 추계학술대회 논문집 전기물성,응용부문
    • /
    • pp.141-143
    • /
    • 2004
  • In this present the transient control of SBS chaos induced instability in Brillouin-active fiber systems is described. The inherent optical feedback by the backscattered Stokes wave in optical fiber systems leads to instabilities in the form of optical chaos. At weak power, the nature of the Brillouin instability can occur at before threshold. At strong power, the temporal evolution above threshold is periodic and at higher intensity can become chaotic. Multistable periodic states, makes transition to logic 'on' or 'off'. It can make theoretically potential large memory capacity.

  • PDF

광학적으로 제어된 섬유를 가진 비균일 불안정성의 과도 응답의 특성 (Characteristic of Transient Response in Nonuniform Instability with Optically Controlled Fiber)

  • 판린한;박광채
    • 한국정보전자통신기술학회논문지
    • /
    • 제9권5호
    • /
    • pp.445-450
    • /
    • 2016
  • In this paper we study the effect of chaos in nonuniform instability with optical fiber based IoT networks. The transient response of optically controlled fiber has also described. Nonlinear optical fiber effects especially fiber scattering in networks has emerged as the essential means active optical devices. The paradigm instability in fiber Internet serves as a test for fundamental study of chaos and its suppression and exploitation in practical application in optical communication. This paper attempts to present a survey and some of our research findings on the nature of chaotic effect on Internet based optical communication. The transient response in optical fiber has been evaluated theoretically by calculating the variation of the scattering function. The lines has used under open ended termination containing optically induced region. The scattered optical waves in a fiber used in optic communications are temporally unstable above certain threshold intensity.

Study of Neuron Operation using Controlled Chaotic Instabilities in Brillouin-Active Fiber Based Neural Networks

  • Kim, Yong-K.;Huh, Do-Geun;Kim, Kwan-Woong;Yu, C.
    • Journal of Electrical Engineering and Technology
    • /
    • 제1권4호
    • /
    • pp.546-549
    • /
    • 2006
  • In this paper the neuron operation based on Brillouin-active fiber in optical fiber is described. The inherent optical feedback by the backscattered stokes wave in optical fiber leads to instabilities in the form of optical chaos. Controlling of chaos induced transient instability in Brillouin-active fiber is implemented with Kerr nonlinearity having a non-instantaneous response in network systems. The controlling chaotic instabilities can lead to multistable periodic states; create optical logic 'on' or high level '1' or 'off', or low level '0'. It is theoretically possible to apply the multi-stability regimes as an optical memory device for encoding and decoding series and complex data transmission in optical systems.