Title :
Equivalent modeling of micro-bending in MMF with parabolic index profile using discrete coupling points
Author :
Juarez, Adrian A. ; Krune, Edgar ; Petermann, K.
Author_Institution :
Tech. Univ. Berlin, Berlin, Germany
Abstract :
Multimode fibers (MMF) have attracted much attention recently because of its potential of increasing the transmission capacity by the number of guided modes. Because of this, it is necessary to develop fast and simple methods to estimate transmission effects like mode coupling along the MMF and the losses induced by it. Mode coupling theory provides a possibility for describing amplitude and phase effects but the MMF has to be divided into many sections, making its evaluation lengthy. The results presented in give insight on the differential group delay (DGD) reduction induced by mode coupling in presence of micro-bendings, but neglect the induced losses. Here this model is expanded, by including the losses induced by mode coupling using the quasi-mode approach, extended here to use for MMF. The DGD, computed using the imaginary part of the eigenvalues of the group delay operator G(u) = θωT(ω)·T(ω)-1, is shown in Fig. 1 (a) for a MMF guiding 10 modes (4 mode groups). T(w) is the transmission matrix of the MMF modeled using the methods mentioned above. The narrowing behavior of the DGD as the std. dev σ1/R of the micro-bending curvature increases, matches the results presented in [2]. Additionally it shows in the lower frame axis the losses induced by the mode mixing effect. To validate these results, we propose an alternative model in which a bending is transformed into a splice mismatch.
Keywords :
bending; eigenvalues and eigenfunctions; optical fibre losses; DGD; MMF guiding modes; differential group delay reduction; discrete coupling points; eigenvalues; equivalent modeling; group delay operator; microbending curvature; mode coupling theory; mode mixing effect; multimode fibers; parabolic index profile; quasimode approach; splice mismatch; transmission capacity; transmission matrix; Bandwidth; Computational modeling; Couplings; Delays; Gaussian distribution; Optical losses; Standards;
Conference_Titel :
Lasers and Electro-Optics Europe (CLEO EUROPE/IQEC), 2013 Conference on and International Quantum Electronics Conference
Conference_Location :
Munich
Print_ISBN :
978-1-4799-0593-5
DOI :
10.1109/CLEOE-IQEC.2013.6801280