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Aurel Boreslav Stodola research assistant 1928 ETH Zürich (Physics Tree)
Stephen P Timoshenko grad student 1942 Stanford
 (Stresses in a Space Curved Bar Reinforcing the Edge Cut-out in a Monocoque Fuselage.)
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Publications

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Hoff NJ, Muser C. (1982) Stress Concentration Factors for Cylindrically Orthotropic Plates Journal of Composite Materials. 16: 313-317
Hoff NJ. (1981) Stress Concentrations in Cylindrically Orthotropic Composite Plates With a Circular Hole Journal of Applied Mechanics. 48: 563-569
Sendelbeck RL, Ljungström O, Ljungström B, et al. (1975) Experimental Study of Pressure Vessel Models Having Fabrication Flaws Journal of Applied Mechanics. 42: 335-340
Hoff NJ. (1975) The Effect of Geometric Nonlinearities on the Creep Buckling Time of Axially Compressed Circular Cylindrical Shells Journal of Applied Mechanics. 42: 225-226
Shun C, Hoff NJ. (1975) Bending of thin circular rings International Journal of Solids and Structures. 11: 139-152
Sendelbeck RS, Hoff NJ. (1972) Loading rig in which axially compressed thin cylindrical shells buckle near theoretical values: A holding and alignment test rig for use when buckling thin circular cylindrical shells is described. The consistency of high buckling values is demonstrated along with results concerning different holding restrictions Experimental Mechanics. 12: 372-376
Narasimhan KY, Hoff NJ. (1971) Snapping of Imperfect Thin-Walled Circular Cylindrical Shells of Finite Length Journal of Applied Mechanics. 38: 162-171
Honikman TC, Hoff NJ. (1971) The effect of variations in the creep exponent on the buckling of circular cylindrical shells International Journal of Solids and Structures. 7: 1685-1695
Koga T, Hoff NJ. (1969) The axisymmetric buckling of initially imperfect complete spherical shells International Journal of Solids and Structures. 5: 679-697
Pittner EV, Hoff NJ. (1969) Creep buckling of simply supported moderately thin circular cylindrical shells Acta Mechanica. 8: 116-125
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