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Pollock TM, LeSar R.  2013.  The feedback loop between theory, simulation and experiment for plasticity and property modeling. Current Opinion in Solid State and Materials Science. 17:10–18.
Pollock TM, Mumm DR, Muraleedharan K, Martin PL.  1996.  In-situ observations of crack initiation and growth at notches in cast Ti-48Al-2Cr-2Nb. Scripta materialia. 35:1311–1316.
Pollock TM.  2016.  Alloy design for aircraft engines. Nature Materials. 15:809–815.
Pollock TM.  1995.  The growth and elevated temperature stability of high refractory nickel-base single crystals. Materials Science and Engineering: B. 32:255–266.
Pollock TM, Jorgensen D, Jackson RW, He M, Suzuki A, Lipkin D.  2014.  Design constraints and higher temperature intermetallic bond coatings.
Pollock T.M, Clarke A.J, Babu S.S.  2020.  Design and Tailoring of Alloys for Additive Manufacturing. Metallurgical and Materials Transactions A: Physical Metallurgy and Materials Science. 51:6000–6019.
Pollock TM, Van der Ven A.  2019.  The evolving landscape for alloy design. MRS Bulletin. 44:238–246.
Pollock TM, Dibbern J, Tsunekane M, Zhu J, Suzuki A.  2010.  New Co-based g-g′ high-temperature alloys. JOM. 62:58–63.
Pollock TM, Argon AS.  1994.  Directional coarsening in nickel-base single crystals with high volume fractions of coherent precipitates. Acta Metallurgica et Materialia. 42:1859–1874.
Pollock TM, Argon AS.  1992.  Creep resistance of CMSX-3 nickel base superalloy single crystals. Acta Metallurgica et Materialia. 40:1–30.
Pollock TM, Lu DC, Shi X, Eow K.  2001.  A comparative analysis of low temperature deformation in B2 aluminides. Materials Science and Engineering: A. 317:241–248.
Pollock TM, Murphy WH, Goldman EH, Uram DL, Tu JS.  1992.  Grain defect formation during directional solidification of nickel base single crystals. Superalloys 1992. :125–134.
Pollock T, Widrevitz D, Pong R, Cao F, Tryon B.  2008.  Intermetallic Bond Coats: Systems Compatibility and Platinum-Group Metal Additions. MRS Proceedings. 1128:1128–U06.
Pollock TM, Thornton K, Rowenhorst DJ, Spowart JE, Madison JD.  2010.  3D simulations for property determination via reconstructed microstructure in nickel-base superalloys..
Pollock TM, Tin S.  2006.  Nickel-based superalloys for advanced turbine engines: chemistry, microstructure and properties. Journal of propulsion and power. 22:361–374.
Pollock TM, Argon AS.  1993.  CREEP RESISTANCE OF CMSX-3 NICKEL-BASE SUPERALLOY SINGLE-CRYSTALS (VOL 40, PG 1, 1992). ACTA METALLURGICA ET MATERIALIA. 41:2253–2253.
Pollock TM, Kolluru D.  1995.  DEFORMATION OF NiAl-BASED INTERMETALLICS. Micromechanics of Advanced Materials: A Symposium in Honor of Professor James CM Li's 70th Birthday: Proceedings of a Symposium. :205.
Pollock TM, Laux B, Brundidge CL, Suzuki A, He MY.  2011.  Oxide-Assisted Degradation of Ni-Base Single Crystals During Cyclic Loading: the Role of Coatings. Journal of the American Ceramic Society. 94
Pollock TM, Bird JE, Srivastava SK.  1984.  Failure by shear during plane strain stretching of a duplex steel. TMS (The Metallurgical Society) Paper Selection;(USA). 56
Pollock TM, Murphy WH.  1996.  The breakdown of single-crystal solidification in high refractory nickel-base alloys. Metallurgical and Materials Transactions A. 27:1081–1094.
POLLOCK TRESAM, ARGON ALIS.  1990.  Creep resistance of nickel-base superalloy single crystals. Creep and fracture of engineering materials and structures. :287–301.
Pollock TM.  2010.  Weight loss with magnesium alloys. Science. 328:986–987.
Pinz M., Weber G., Lenthe W.C, Uchic M.D, Pollock T.M, Ghosh S..  2018.  Microstructure and property based statistically equivalent RVEs for intragranular γ−γ' microstructures of Ni-based superalloys. Acta Materialia. 157:245–258.
Pinz M, Weber G, Stinville J-C, Pollock T, Ghosh S.  2021.  A Data-Driven Bayesian Model for Predicting Fatigue Crack Nucleation in Polycrystalline Ni-Based Superalloys. SSRN Electronic Journal.
Pinz M, Weber G, Stinville J-C, Pollock T, Ghosh S.  2022.  Data-driven Bayesian model-based prediction of fatigue crack nucleation in Ni-based superalloys. npj Computational Materials. 8

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