| |
1.
|
 
|
  |
Rao, B.N., and Chowdhury, R.
(2008)>.
Factorized high dimensional model representation for structural reliability analysis.
Engineering Computations. DOI:
10.1108/02644400810909580
|
|
2.
|
 
|
  |
Rao, B.N., and Chowdhury, R.
(2008)>.
Probabilistic analysis using high dimensional model representation and fast Fourier transform.
International Journal for Computational Methods in Engineering Science and Mechanics. DOI:
10.1080/15502280802363035
|
|
3.
|
 
|
  |
Chowdhury, R., Rao, B. N., and Prasad, A. M.
(2008)>.
High dimensional model representation for piece wise continuous function approximation.
Communications in Numerical Methods in Engineering. DOI:
10.1002/cnm.1053
|
|
4.
|
 
|
  |
Chowdhury, R., Adhikari, S., and Mitchell, J.
(2009)>.
Vibrating carbon nanotube based bio-sensors.
Physica E: Low-dimensional Systems and Nanostructures. DOI:
10.1016/j.physe.2009.09.007
|
|
5.
|
 
|
  |
Chowdhury, R., Rao, B. N., and Prasad, A. M.
(2009)>.
Stochastic sensitivity analysis using HDMR and score function.
Sadhana - Proceedings of the Indian Academy of Engineering Sciences. DOI:
10.1007/s12046-009-0058-1
|
|
6.
|
 
|
  |
Rao, B.N., Chowdhury, R., Prasad A. M., Singh, R.K., and Kushwaha, H.S.
(2009)>.
Probabilistic characterization of AHWR inner containment using high dimensional model representation.
Nuclear Engineering and Design. DOI:
10.1016/j.nucengdes.2009.02.006
|
|
7.
|
 
|
  |
Chowdhury, R., Rao, B.N., and Prasad, A. M.
(2009)>.
High dimensional model representation for structural reliability analysis.
Communications in Numerical Methods in Engineering. DOI:
10.1002/cnm.1118
|
|
8.
|
 
|
  |
Chowdhury, R., and Rao, B. N.
(2009)>.
Hybrid high dimensional model representation for reliability analysis.
Computer Methods in Applied Mechanics and Engineering. DOI:
10.1016/j.cma.2008.10.006
|
|
9.
|
 
|
  |
Rao, B.N., and Chowdhury, R.
(2009)>.
Enhanced high dimensional model representation for reliability analysis.
International Journal for Numerical Methods in Engineering. DOI:
10.1002/nme.2440
|
|
10.
|
 
|
  |
Chowdhury, R., and Rao, B. N.
(2009)>.
Assessment of high dimensional model representation techniques for reliability analysis.
Probabilistic Engineering Mechanics. DOI:
10.1016/j.probengmech.2008.02.001
|
|
11.
|
 
|
  |
Chowdhury, R., Rao, B.N.
(2010)>.
Probabilistic stability assessment of slopes using high dimensional model representation.
Computers & Geotechnics. DOI:
10.1016/j.compgeo.2010.07.007
|
|
12.
|
 
|
  |
Chowdhury, R., Adhikari, S., and Rees, P.
(2010)>.
Optical properties of Silicon doped ZnO.
Physica B: Condensed Matter. DOI:
10.1016/j.physb.2010.08.072
|
|
13.
|
 
|
  |
Chowdhury, R., and Adhikari, S.
(2010)>.
Stochastic sensitivity analysis using enhanced HDMR and score function.
Engineering Computations. DOI:
10.1007/s12046-009-0058-1
|
|
14.
|
 
|
  |
Adhikari, S., and Chowdhury, R.
(2010)>.
A reduced-order random matrix approach for stochastic structural dynamics.
Computers & Structures. DOI:
10.1016/j.compstruc.2010.07.001
|
|
15.
|
 
|
  |
Chowdhury, R., Wang, C.Y., Adhikari, S., and Scarpa, F.
(2010)>.
Vibration and symmetry-breaking of boron-nitride nanotubes.
Nanotechnology.
Volume:
107
Number:
21
Pages:
365702:1-9
|
|
16.
|
 
|
  |
Adhikari, S., and Chowdhury, R.
(2010)>.
The calibration of carbon nanotube based bionanosensors.
Journal of Applied Physics. DOI:
10.1063/1.3435316
|
|
17.
|
 
|
  |
Chowdhury, R., Wang, C.Y., Adhikari, S., and Tong, F.M.
(2010)>.
Sliding oscillation of multiwall carbon nanotubes.
Physica E: Low-dimensional Systems and Nanostructures. DOI:
10.1016/j.physe.2010.05.003
|
|
18.
|
 
|
  |
Chowdhury, R., and Adhikari, S.
(2010)>.
High dimensional model representation for stochastic finite element analysis.
Applied Mathematical Modelling. DOI:
10.1016/j.apm.2010.04.004
|
|
19.
|
 
|
  |
Rao, B.N., Chowdhury, R., Prasad A.M., Singh, R.K., and Kushwaha, H.S.
(2010)>.
Reliability analysis of 500 MWe PHWR inner containment using high dimensional model representation.
International Journal of Pressure Vessels and Piping. DOI:
10.1016/j.ijpvp.2010.03.020
|
|
20.
|
 
|
  |
Chowdhury, R., Adhikari, S., Wang, C.Y., and Scarpa, F.
(2010)>.
A molecular mechanics approach for the vibration of single walled carbon nanotubes.
Computational Materials Science. DOI:
10.1016/j.commatsci.2010.03.020
|
|
21.
|
 
|
  |
Chowdhury, R., Adhikari, S., and Scarpa, F.
(2010)>.
Elasticity and piezoelectricity of zinc oxide nanostructure.
Physica E: Low-dimensional Systems and Nanostructures. DOI:
10.1016/j.physe.2010.03.018
|
|
22.
|
 
|
  |
Scarpa, F., Adhikari, S., and Chowdhury, R.
(2010)>.
Transverse elasticity of bilayer graphene.
Physics Letters A. DOI:
10.1016/j.physleta.2010.02.063
|
|
23.
|
 
|
  |
Chowdhury, R., Rees, P., Adhikari, S., Scarpa, F., and Wilks, S.P.
(2010)>.
Electronic structures of Silicon doped ZnO.
Physica B: Condensed Matter. DOI:
10.1016/j.physb.2010.01.084
|
|
24.
|
 
|
  |
Chowdhury, R., Wang, C. Y., and Adhikari, S.
(2010)>.
Low frequency vibration of multiwall carbon nanotubes with heterogeneous boundaries.
Journal of Physics D: Applied Physics. DOI:
10.1088/0022-3727/43/8/085405
|
|
25.
|
 
|
  |
Boldrin, L., Scarpa, F., Chowdhury, R., and Adhikari, S.
(2011)>.
Effective mechanical properties of hexagonal boron nitride nanosheets.
Nanotechnology.
Volume:
22
Number:
50
Pages:
1-7
|
|
26.
|
 
|
  |
Chandra, Y., Chowdhury, R., Adhikari, S., and Scarpa, F.
(2011)>.
Elastic instability of bilayer graphene using atomistic finite element.
Physica E: Low-dimensional Systems and Nanostructures. DOI:
10.1016/j.physe.2011.06.020
|
|
27.
|
 
|
  |
Scarpa, F., Chowdhury, R., Kam, K., Adhikari, S., and Ruzzene, M.
(2011)>.
Dynamics of mechanical waves in periodic graphene nanoribbon assemblies.
Nanoscale Research Letters. DOI:
10.1186/1556-276X-6-430
|
|
28.
|
 
|
  |
Chowdhury, R., and Adhikari, S.
(2011)>.
Boron nitride nanotubes as zeptogram-scale bio-nano sensors: Theoretical investigations.
IEEE Transactions on Nanotechnology. DOI:
10.1109/TNANO.2010.2060492
|
|
29.
|
 
|
  |
Chandra, Y., Chowdhury, R., Scarpa, F., and Adhikari, S.
(2011)>.
Vibration characteristics of bi-layer graphene sheets.
Thin Solid Films. DOI:
10.1016/j.tsf.2011.04.012
|
|
30.
|
 
|
  |
Adhikari, S., and Chowdhury, R.
(2011)>.
Natural frequencies of fullerene family.
Physics Letters A.
Volume:
375
Number:
22
Pages:
2166-2170
|
|
31.
|
 
|
  |
Chowdhury, R., and Rao, B. N.
(2011)>.
Multicut high dimensional model representation for reliability analysis.
Structural Engineering and Mechanics - An International Journal.
Volume:
38
Number:
5
Pages:
651-674
|
|
32.
|
 
|
  |
Chowdhury, R., Adhikari, S., Scarpa, F., and Friswell, M.I.
(2011)>.
Transverse vibration of single layer graphene sheets.
Journal of Physics D: Applied Physics.
Volume:
44
Number:
20
Pages:
1-11
|
|
33.
|
 
|
  |
Scarpa, F., Chowdhury, R., and Adhikari, S.
(2011)>.
Thickness and in-plane elasticity of Graphane.
Physics Letters A. DOI:
10.1016/j.physleta.2011.03.050
|
|
34.
|
 
|
  |
Chowdhury, R., and Adhikari, S.
(2011)>.
Reliability analysis of uncertain dynamical systems using correlated function expansion.
International Journal of Mechanical Sciences. DOI:
10.1016/j.ijmecsci.2011.01.009
|
|
35.
|
 
|
  |
Chowdhury, R., Adhikari, S., and Scarpa, F.
(2011)>.
Vibration of ZnO nanotubes: A molecular mechanics approach.
Applied Physics A: Materials Science & Processing. DOI:
10.1007/s00339-010-5995-3
|
|
36.
|
 
|
  |
Adhikari, S., Chowdhury, R., and Friswell, M.I.
(2011)>.
High dimensional model representation method for fuzzy structural dynamics.
Journal of Sound and Vibration. DOI:
10.1016/j.jsv.2010.10.010
|
|
37.
|
 
|
  |
Chowdhury, R., Adhikari, S., Rees, P., Scarpa, F. and Wilks, S.P.
(2011)>.
Graphene-based biosensor using transport properties.
Physical Review B. DOI:
10.1103/PhysRevB.83.045401
|
|
38.
|
 
|
  |
Zhang, J., Wang, C.Y., Chowdhury, R., and Adhikari, S.,
(2012)>.
Small-scale effect on the mechanical properties of metallic nanotubes.
Applied Physics Letters. DOI:
10.1063/1.4748975
|
|
39.
|
 
|
  |
Chowdhury, R., and Adhikari, S.
(2012)>.
Fuzzy parametric uncertainty analysis of linear dynamical systems: A surrogate modeling approach.
Mechanical Systems and Signal Processing. DOI:
10.1016/j.ymssp.2012.05.002
|
|
40.
|
 
|
  |
Chowdhury, R., Scarpa, F., and Adhikari, S.
(2012)>.
Molecular-scale bio-sensing using armchair graphene.
Journal of Applied Physics. DOI:
10.1063/1.4733689
|
|
41.
|
 
|
  |
Adhikari, S., and Chowdhury, R.
(2012)>.
Zeptogram sensing from gigahertz vibration: Graphene based nanosensor.
Physica E: Low-dimensional Systems and Nanostructures. DOI:
10.1016/j.physe.2012.03.021
|
|
42.
|
 
|
  |
Chowdhury, R.
(2012)>.
Conductance of graphene nanoribbons under mechanical deformation.
Physica E: Low-dimensional Systems and Nanostructures. DOI:
10.1016/j.physe.2012.01.023
|
|
43.
|
 
|
  |
Chandra, Y., Chowdhury, R., Scarpa, F., Adhikari, S., Seinz, J., Arnold, C., Murmu, T., and Bould, D.
(2012)>.
Vibration frequency of graphene based composites: A multiscale approach.
Materials Science & Engineering B. DOI:
10.1016/j.mseb.2011.12.024
|
|
44.
|
 
|
  |
Chowdhury, R., Adhikari, S., and Rees, P.
(2012)>.
Graphene based single molecule nanojunction.
Physica B: Condensed Matter. DOI:
10.1016/j.physb.2011.12.101
|
|
45.
|
 
|
  |
Murugan, S., Chowdhury, R., Adhikari, S., and Friswell, M.I.
(2012)>.
Helicopter aeroelastic analysis with specially uncertain rotor blade properties.
Aerospace Science and Technology. DOI:
10.1016/j.ast.2011.02.004
|
|
46.
|
 
|
  |
Dutta, S.C., and Chowdhury, R.
(2012)>.
Effect of gravity loading on inelastic seismic demand of structures.
Journal of Earthquake and Tsunami. DOI:
10.1142/S1793431112500224
|
|
47.
|
 
|
  |
Kam, K., Scarpa, F., Adhikari, S., and Chowdhury, R.,
(2013)>.
Graphene nanofilm as pressure and force sensor: a mechanical analysis.
Physica Status Solidi B. DOI:
10.1002/pssb.201384228
|
|
48.
|
 
|
  |
Sarma, J.V.N., Chowdhury, R., and Jayaganthan, R.,
(2013)>.
Molecular dynamics investigation of the thermomechanical behavior of monolayer GaN.
Journal of Applied Physics. DOI:
10.1063/1.4812328
|
|
49.
|
 
|
  |
Allegri, G., Scarpa, F., Chowdhury, R., and Adhikari, S.,
(2013)>.
Wave propagation in periodically supported nanoribbons: A nonlocal elasticity approach.
Journal of Vibration and Acoustics, Transactions of the ASME. DOI:
10.1115/1.4023953
|
|
50.
|
 
|
  |
Sarma, J. V. N., Chowdhury, R., and Jayaganthan, R.,
(2013)>.
Mechanical behavior of gallium nitride nanosheets using molecular dynamics.
Computational Materials Science. DOI:
10.1016/j.commatsci.2013.03.035
|
|
51.
|
 
|
  |
Zhang, J., Wang, C.Y., Chowdhury, R., and Adhikari, S.
(2013)>.
Size and temperature dependent piezoelectric properties of gallium nitride nanowires.
Scripta Materialia. DOI:
10.1016/j.scriptamat.2012.12.022
|
|
52.
|
 
|
  |
Chandra, Y., Scarpa, F., Chowdhury, R., Adhikari, S., and Seinz, J.
(2013)>.
Multiscale hybrid atomistic-FE approach for the nonlinear tensile behaviour of graphene nanocomposites.
Composites Part A: Applied Science and Manufacturing. DOI:
10.1016/j.compositesa.2012.11.006
|
|
53.
|
 
|
  |
Madke, R. R., Chakraborty, S. and Chowdhury, R.
(2014)>.
Multiscale approach for the nonlinear behaviour of cementitious composite.
Computational Material Science.
Volume:
93
Pages:
29–35
|
|
54.
|
 
|
  |
Ray, S. J., and Chowdhury, R.,
(2014)>.
Double gated single molecular transistor for charge detection.
Journal of Applied Physics. DOI:
10.1063/1.4890540
|
|
55.
|
 
|
  |
Adhikari, S., Flores, E.I.S., Scarpa, F., Chowdhury, R. and Friswell, M.I.,
(2014)>.
A hybrid atomistic approach for the mechanics of DNA molecules.
ASME Journal of Nanotechnology in Engineering and Medicine.
Volume:
4
Number:
4
Pages:
1-7
|
|
56.
|
 
|
  |
Sarma, J. V. N., Chowdhury, R., Jayaganthan, R., and Scarpa, F.,
(2014)>.
Atomistic studies on tensile mechanics of BN nanotubes in the presence of defects.
International Journal of Nanoscience. DOI:
10.1142/S0219581X14500057
|
|
57.
|
 
|
  |
Sarma, J. V. N., Chowdhury, R., and Jayaganthan, R.,
(2014)>.
Graphyne based single electron transistor: Ab-initio analysis.
NANO: Brief Reports and Reviews. DOI:
10.1142/S1793292014500325
|
|
58.
|
 
|
  |
Chakraborty, S. and Chowdhury, R.
(2015)>.
Multivariate function approximations using D-MORPH algorithm.
Applied Mathematical Modelling. DOI:
10.1016/j.apm.2015.03.008
|
|
59.
|
 
|
  |
Mukhopadhyay, T., Dey, T. K., Chowdhury, R., Chakraborti, A. and Adhikari, S.
(2015)>.
Optimum design of FRP bridge deck: An efficient RS-HDMR based approach.
Structural and Multidisciplinary Optimization. DOI:
10.1007/s00158-015-1251-y
|
|
60.
|
 
|
  |
Chakraborty, S. and Chowdhury, R.
(2015)>.
A semi-analytical framework for structural reliability analysis.
Computer Methods in Applied Mechanics and Engineering. DOI:
10.1016/j.cma.2015.02.023
|
|
61.
|
 
|
  |
Chakraborty, S. and Chowdhury, R.
(2015)>.
Polynomial correlated function expansion for nonlinear stochastic dynamic analysis.
Journal of Engineering Mechanics. DOI:
10.1061/(ASCE)EM.1943-7889.0000855
|
|
62.
|
 
|
  |
Kumar, A., Chakraborti, A., Bhargava, P. and Chowdhury, R.
(2015)>.
Probabilistic failure analysis of laminated sandwich shells based on higher order zigzag theory.
Journal of Sandwich Structures and Materials. DOI:
10.1177/1099636215577368
|
|
63.
|
 
|
  |
Chatterjee, T. and Chowdhury, R.
(2016)>.
An adaptive bi-level approximation technique for multi objective evolutionary optimization .
Journal of Computing in Civil Engineering (ASCE). DOI:
10.1061/(ASCE)CP.1943-5487.0000643
|
|
64.
|
 
|
  |
Chakraborty, S. and Chowdhury, R.
(2016)>.
Modelling uncertainty in incompressible flow simulation using Galerkin based generalised ANOVA.
Computer Physics Communications. DOI:
10.1016/j.cpc.2016.08.003
|
|
65.
|
 
|
  |
Chakraborty, S. and Chowdhury, R.
(2016)>.
Sequential experimental design based generalised ANOVA.
Journal of Computational Physics. DOI:
10.1016/j.jcp.2016.04.042
|
|
66.
|
 
|
  |
Mukhopadhyay, T., Chowdhury, R. and Chakrabarti, A.
(2016)>.
Structural damage identification: A random sampling-high dimensional model representation approach.
Advances in Structural Engineering, SAGE Journal. DOI:
10.1177/1369433216630370
|
|
67.
|
 
|
  |
Bhardwaj, V., Chowdhury, R. and Jayaganathan, R.
(2016)>.
Nanomechanical and microstructural characterization of sputter deposited ZnO thin films .
Applied Surface Science. DOI:
10.1016/j.apsusc.2016.08.028
|
|
68.
|
 
|
  |
Chakraborty, S. and Chowdhury, R.
(2016)>.
Assessment of polynomial correlated function expansion for high-fidelity structural reliability analysis.
Structural Safety. DOI:
10.1016/j.strusafe.2015.10.002
|
|
69.
|
 
|
  |
Chatterjee, T., Chakraborty, S. and Chowdhury, R.
(2016)>.
A Bi-level Approximation Tool for the Computation of FRFs in Stochastic Dynamic Systems.
Mechanical Systems and Signal Processing. DOI:
10.1016/j.ymssp.2015.09.001
|
|
70.
|
 
|
  |
Chakraborty, S. Mandal, B., Chowdhury, R. and Chakraborti, A.
(2016)>.
Stochastic Free Vibration Analysis of Laminated Composite Plates using Polynomial Correlated Function Expansion.
Composite Structures. DOI:
10.1016/j.compstruct.2015.09.044
|
|
71.
|
 
|
  |
Chakraborty, S. and Chowdhury, R.
(2017)>.
Galerkin based generalised ANOVA for the solution of stochastic steady state diffusion problems.
Probabilistic Engineering Mechanics. DOI:
10.1016/j.probengmech.2017.10.009
|
|
72.
|
 
|
  |
Chakraborty, S. and Chowdhury, R.
(2017)>.
An efficient algorithm for building locally refined ‘hp adaptive’ H-PCFE: Application to uncertainty quantification.
Journal of Computational Physics. DOI:
10.1016/j.jcp.2017.09.024
|
|
73.
|
 
|
  |
Majumder, D., Chakraborty, S. and Chowdhury, R.
(2017)>.
Probabilistic analysis of tunnels: A hybrid polynomial correlated function expansion based approach.
Tunnelling and Underground Space Technology. DOI:
10.1016/j.tust.2017.07.009
|
|
74.
|
 
|
  |
Bhardwaj, V., Chowdhury, R. and Jayaganthan, R.
(2017)>.
Adhesion strength and nanomechanical characterization of ZnO thin films.
Journal of Materials Research. DOI:
10.1557/jmr.2017.85
|
|
75.
|
 
|
  |
Chakraborty, S., Chatterjee, T., Chowdhury, R. and Adhikari, S.
(2017)>.
Robust design optimization for crashworthiness of vehicle side impact.
ASCE-ASME Journal of Risk and Uncertainty in Engineering Systems, Part B: Mechanical Engineering. DOI:
10.1115/1.4035439
|
|
76.
|
 
|
  |
Chatterjee, T. and Chowdhury, R.
(2017)>.
An efficient sparse Bayesian learning framework for stochastic response analysis.
Structural Safety. DOI:
10.1016/j.strusafe.2017.05.003
|
|
77.
|
 
|
  |
Chakraborty, S. and Chowdhury, R.
(2017)>.
Towards 'h-p adaptive' generalised ANOVA.
Computer Methods in Applied Mechanics and Engineering. DOI:
10.1016/j.cma.2017.03.028
|
|
78.
|
 
|
  |
Chakraborty, S., Chatterjee, T., Chowdhury, R. and Adhikari, S.
(2017)>.
A surrogate based multi-fidelity approach for robust design optimization.
Applied Mathematical Modelling. DOI:
10.1016/j.apm.2017.03.040
|
|
79.
|
 
|
  |
Chakraborty, S. and Chowdhury, R.
(2017)>.
Moment independent sensitivity analysis - A hybrid PFCE based approach.
ASCE Journal of Computing in Civil Engineering.
|
|
80.
|
 
|
  |
Mukhopadhyay, T., Chakraborty, S. Dey, S., Adhikari, S. and Chowdhury, R.
(2017)>.
A critical assessment of kriging model variants for high-fidelity uncertainty quantification in dynamics of composite shells.
Archives of Computational Methods in Engineering. DOI:
10.1007/s11831-016-9178-z
|
|
81.
|
 
|
  |
Chakraborty, S. and Chowdhury, R.
(2017)>.
Hybrid framework for the estimation of rare failure event probability.
ASCE Journal of Engineering Mechanics. DOI:
10.1061/(ASCE)EM.1943-7889.0001223
|
|
82.
|
 
|
  |
Chakraborty, S. and Chowdhury, R.
(2017)>.
A hybrid approach for global sensitivity analysis.
Reliability Engineering & System Safety. DOI:
10.1016/j.ress.2016.10.013
|
|
83.
|
 
|
  |
Chatterjee, T., Chowdhury, R. and Palaniappan, R.,
(2018)>.
Decoupling uncertainty quantification from robust design optimization.
Structural and Multidisciplinary Optimization. DOI:
10.1007/s00158-018-2167-0
|
|
84.
|
 
|
  |
Chatterjee, T., Chakraborty, S. and Chowdhury, R.
(2018)>.
Analytical moment based approximation for robust design optimization.
Structural and Multidisciplinary Optimization. DOI:
10.1007/s00158-018-2029-9
|
|
85.
|
 
|
  |
Bhardwaj, V., Kumar, A., Chowdhury, R., and Jayaganthan, R.
(2018)>.
Nanoindentation and nanoscratch behavior of ZnO:Pr thin films deposited by DC-sputtering.
Journal of Materials Research. DOI:
10.1557/jmr.2018.154
|
|
86.
|
 
|
  |
Chatterjee, T. and Chowdhury, R.,
(2018)>.
h-p adaptive’ model based approximation of moment free sensitivity indices.
Computer Methods in Applied Mechanics and Engineering. DOI:
10.1016/j.cma.2018.01.011
|
|
87.
|
 
|
  |
Chatterjee, T. and Chowdhury, R.,
(2018)>.
Refined sparse bayesian learning configuration for stochastic response analysis.
Probabilistic Engineering Mechanics. DOI:
10.1016/j.probengmech.2018.02.001
|
|
88.
|
 
|
  |
Madke, R. R. and Chowdhury, R.,
(2019)>.
A multiscale continuum model for inelastic behavior of woven composite.
Composite Structures. DOI:
10.1016/j.compstruct.2019.111267
|
|
89.
|
 
|
  |
Chakraborty, S. and Chowdhury, R.,
(2019)>.
Graph theoretic approach assisted Gaussian process for nonlinear stochastic dynamic analysis under generalized loading.
ASCE Journal of Engineering Mechanics. DOI:
10.1061/(ASCE)EM.1943-7889.0001685
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90.
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Goswami, S., Chakraborty, S., Chowdhury, R. and Rabczuk, T.
(2019)>.
Threshold shift method for reliability based design optimization.
Structural and Multidisciplinary Optimization. DOI:
10.1007/s00158-019-02310-x
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91.
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Chatterjee, T., Chakraborty, S. and Chowdhury, R.,
(2019)>.
Locally refined adaptive sparse surrogate based approach for uncertainty quantification.
ASCE Journal of Engineering Mechanics. DOI:
10.1061/(ASCE)EM.1943-7889.0001605
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92.
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Chatterjee, T., Chakraborty, S. and Chowdhury, R.,
(2019)>.
A critical review of surrogate assisted robust design optimization.
Archives of Computational Methods in Engineering. DOI:
10.1007/s11831-017-9240-5
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93.
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Madke, R. R. and Chowdhury, R.,
(2020)>.
Anti-impact behavior of auxetic sandwich structure with braided face sheets and 3D re-entrant cores.
Composite Structures. DOI:
10.1016/j.compstruct.2019.111838
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94.
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Gupta, A., Krishnan, M., Chowdhury, R., and Chakrabarti, A.
(2020)>.
An auto-adaptive sub-stepping algorithm for phase-field modeling of brittle fracture.
Theoretical and Applied Fracture Mechanics. DOI:
10.1016/j.tafmec.2020.102622
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95.
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Gupta, A., Chowdhury, R., Chakrabarti, A. and Rabczuk, T.
(2020)>.
A 55-line code for large-scale parallel topology optimization in 2D and 3D.
arXiv preprint arXiv:2012.08208. DOI:
10.48550/arXiv.2012.08208
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96.
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Sowjanya, M., Shariq, M., Alajlani, Y., Pamu, D., Chowdhruy, R., Jayaganthan, R., Florence, S., Haider, M.
(2020)>.
Effect of Ar: O2 gas atmosphere on optical properties of Y2O3-doped ZnO thin films by RF sputtering.
Europhysics Letters. DOI:
10.1209/0295-5075/129/34003
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97.
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Mandal, T. K., Gupta, A., Nguyen, V. P., Chowdhury, R. and Vaucorbeil, A. D.
(2020)>.
A length scale insensitive phase field model for brittle fracture of hyperelastic solids.
Engineering Fracture Mechanics. DOI:
10.1016/j.engfracmech.2020.107196
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98.
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Sowjanya, M., Shariq, M., Alajlani, Y., Pamu, D., Chowdhury, R., Jayaganthan, R. and Taqiullah, S. M.
(2020)>.
Structural and Optical Properties of Pure Wurtzite ZnO under Uniaxial Strain Based on First-Principles Study.
Acta Physica Polonica: A. DOI:
10.12693/APhysPolA.137.361
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99.
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Chatterjee, T., Friswell, M. I., Adhikari, S. and Chowdhury, R.
(2021)>.
A global two-layer meta-model for response statistics in robust design optimization.
Engineering Optimization. DOI:
10.1080/0305215X.2020.1861262
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100.
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Verma, P., Chowdhury, R. and Chakrabarti, A.
(2021)>.
Role of graphene-based materials (GO) in improving physicochemical properties of cementitious nano-composites: a review.
Journal of Materials Science. DOI:
10.1007/s10853-021-06526-5
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101.
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Agrawal, G., Gupta, A., Chowdhury, R. and Chakrabarti, A.
(2022)>.
Robust Topology Optimization of Negative Poisson’s Ratio Metamaterials under Material Uncertainty.
Finite Elements in Analysis and Design. DOI:
10.1016/j.finel.2021.103649
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102.
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Gupta, A., Mamindlapelly, B., Karuthedath, P. L., Chowdhury, R. and Chakrabarti, A.
(2022)>.
Adaptive isogeometric topology optimization using PHT splines.
Computer Methods in Applied Mechanics and Engineering. DOI:
10.1016/j.cma.2022.114993
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103.
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Gupta, A., Krishnan Meenu, U., Mandal, T. K., Chowdhury, R. and Nguyen, V. P.
(2022)>.
An adaptive mesh refinement algorithm for phase-field fracture models: application to brittle, cohesive, and dynamic fracture.
Computer Methods in Applied Mechanics and Engineering. DOI:
10.1016/j.cma.2022.115347
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104.
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Padhi, A. P., Chakraborty, S., Chakrabarti, A. and Chowdhury, R.
(2022)>.
Efficient hybrid topology optimization using GPU and homogenization based multigrid approach.
arXiv preprint arXiv:2201.12931. DOI:
10.48550/arXiv.2201.12931
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105.
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Krishnan Meenu, U., Gupta, A., and Chowdhury, R.
(2022)>.
Adaptive phase-field modelling of brittle fracture using a robust combination of error-estimator and markers.
Engineering Fracture Mechanics. DOI:
10.1016/j.engfracmech.2022.108758
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106.
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Krishnan, U. M., Gupta, A. and Chowdhury, R.
(2022)>.
Adaptive phase-field modeling of brittle fracture using a robust combination of error-estimator and markers.
Engineering Fracture Mechanics. DOI:
10.1016/j.engfracmech.2022.108758
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107.
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Verma, P., Chowdhury, R. and Chakrabarti, A.
(2023)>.
Effect of adding highly reduced graphene oxide (rgo) nanosheets based nanomaterial on cement composites.
Materials Today: Proceedings. DOI:
10.1016/j.matpr.2023.03.616
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108.
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Verma, P., Chowdhury, R. and Chakrabarti, A.
(2023)>.
Early strength development of cement composites using nano-calcium silicate hydrate (CSH) based hardening accelerator.
Materials Today: Proceedings.
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109.
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Saurabh, S., Gupta, A. and Chowdhury, R.
(2023)>.
Impact of parametric variation to achieve extreme mechanical metamaterials through topology optimization.
Composite Structures. DOI:
10.1016/j.compstruct.2023.117611
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110.
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Karuthedath, P. L., Gupta, A., Mamindlapelly, B. and Chowdhury, R.
(2023)>.
A continuous field adaptive mesh refinement algorithm for isogeometric topology optimization using PHT-Splines.
Computer Methods in Applied Mechanics and Engineering. DOI:
10.1016/j.cma.2023.116075
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111.
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Bijaya, A., Chowdhury, S. R. and Chowdhury, R.
(2023)>.
Reduced-dimensional phase-field theory for lattice fracture and its application in fracture toughness assessment of architected materials.
European Journal of Mechanics-A/Solids. DOI:
10.1016/j.euromechsol.2023.104964
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112.
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Bijaya, A., Chowdhury, S. R. and Chowdhury, R.
(2023)>.
Multiscale phase-field approach for investigation of anisotropic fracture properties of architected materials.
Mechanics of Materials. DOI:
10.1016/j.mechmat.2022.104528
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113.
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Verma, P., Chowdhury, R. and Chakrabarti, A.
(2024)>.
Synthesis process and characterization of graphene oxide (GO) as a strength-enhancing additive in concrete.
European Journal of Environmental and Civil Engineering. DOI:
10.1080/19648189.2024.2320309
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114.
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Padhi, A. P., Chakraborty, S., Chakrabarti, A. and Chowdhury, R.
(2024)>.
Deep learning accelerated efficient framework for topology optimization.
Engineering Applications of Artificial Intelligence. DOI:
10.1016/j.engappai.2024.108559
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115.
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Karuthedath, P. L., Barik, L., Gupta, A., Swain, A. K., Chowdhury, R. and Mamindlapelly, B.
(2024)>.
A C1 continuous multi-patch framework for adaptive isogeometric topology optimization of plate structures.
Computer Methods in Applied Mechanics and Engineering. DOI:
10.1016/j.cma.2024.117132
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116.
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Saurabh, S., Gupta, A., Chowdhury, R. and Podugu, P.
(2024)>.
Robust topology optimization for transient dynamic response minimization.
Computer Methods in Applied Mechanics and Engineering. DOI:
10.1016/j.cma.2024.117009
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117.
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Bijaya, A., Gupta, A., Krishnan, U. M. and Chowdhury, R.
(2024)>.
A Multilevel Adaptive Mesh Scheme for Efficient Simulation of Thermomechanical Phase-Field Fracture.
Journal of Engineering Mechanics. DOI:
10.1061/JENMDT.EMENG-7480
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