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1

ill, Martin Cynthia 1961, and Milgrom A. ill, eds. The dynamic world of chemical reactions with Max Axiom, super scientist. Mankato, Minn: Capstone Press, 2011.

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2

Biskup, Agnieszka. The dynamic world of chemical reactions with Max Axiom, super scientist. Mankato, Minn: Capstone Press, 2011.

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3

Symposium, on Thermal Anemometry (1987 Cincinnati Ohio). Symposium on Thermal Anemometry: Presented at the 1987 ASME Applied Mechanics, Bioengineering, and Fluids Engineering Conference, Cincinnati, Ohio, June 14-17, 1987. New York, N.Y. (345 E. 47th St., New York 10017): American Society of Mechanical Engineers, 1987.

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4

Thiriet, Marc. Tissue Functioning and Remodeling in the Circulatory and Ventilatory Systems. New York, NY: Springer New York, 2013.

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5

Boudreau, Joseph F., and Eric S. Swanson. Continuum dynamics. Oxford University Press, 2018. http://dx.doi.org/10.1093/oso/9780198708636.003.0019.

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The theory and application of a variety of methods to solve partial differential equations are introduced in this chapter. These methods rely on representing continuous quantities with discrete approximations. The resulting finite difference equations are solved using algorithms that stress different traits, such as stability or accuracy. The Crank-Nicolson method is described and extended to multidimensional partial differential equations via the technique of operator splitting. An application to the time-dependent Schrödinger equation, via scattering from a barrier, follows. Methods for solving boundary value problems are explored next. One of these is the ubiquitous fast Fourier transform which permits the accurate solution of problems with simple boundary conditions. Lastly, the finite element method that is central to modern engineering is developed. Methods for generating finite element meshes and estimating errors are also discussed.
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6

Zocchi, Giovanni. Molecular Machines. Princeton University Press, 2018. http://dx.doi.org/10.23943/princeton/9780691173863.001.0001.

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This book presents a dynamic new approach to the physics of enzymes and DNA from the perspective of materials science. Unified around the concept of molecular deformability—how proteins and DNA stretch, fold, and change shape—the book describes the complex molecules of life from the innovative perspective of materials properties and dynamics, in contrast to structural or purely chemical approaches. It covers a wealth of topics, including nonlinear deformability of enzymes and DNA; the chemo-dynamic cycle of enzymes; supra-molecular constructions with internal stress; nano-rheology and viscoelasticity; and chemical kinetics, Brownian motion, and barrier crossing. Essential reading for researchers in materials science, engineering, and nanotechnology, the book also describes the landmark experiments that have established the materials properties and energy landscape of large biological molecules. The book gives graduate students a working knowledge of model building in statistical mechanics, making it an essential resource for tomorrow's experimentalists in this cutting-edge field. In addition, mathematical methods are introduced in the bio-molecular context. The result is a generalized approach to mathematical problem solving that enables students to apply their findings more broadly.
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7

Dynamic World of Chemical Reactions With Max Axiom. Fitzhenry & Whiteside, 2010.

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8

United States. National Aeronautics and Space Administration., ed. An analysis code for the Rapid Engineering Estimation of Momentum and Energy Losses (REMEL). [Washington, DC]: National Aeronautics and Space Administration, 1994.

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9

Jones, Jack, and Larry K. Britt. Design and Appraisal of Hydraulic Fractures. Society of Petroleum EngineersRichardson, Texas, USA, 2009. http://dx.doi.org/10.2118/9781555631437.

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Using an interdisciplinary approach, Design and Appraisal of Hydraulic Fractures offers a basic yet comprehensive introduction to the completion and reservoir engineering aspects of hydraulic fracture stimulation. The book is divided into three sections. Section 1 covers the design and placement of a hydraulic fracture stimulation; topics include the basics of the hydraulic fracturing process, stress issues, fracture geometry, controls on generated length and width, fluid and proppant selection, quality control, and quality assurance. Section 2 introduces the use of dynamic data to characterize the in-place hydraulic fracture, outlining the methods of pressure-transient analysis for both pressure-drawdown and pressure-buildup tests. The discussion includes effective wellbore radius, effective fracture half-length, equivalent skin, and their relationships; simulated and field examples illustrate the basic analysis procedure and many common pitfalls. The final section covers the prediction of long-term rate performance and recoverable volumes. Three approaches are discussed: rate-decline type curves, analytical and semianalytical methods, and numerical simulation. Essential elements are given for each and illustrated with field examples. Design and Appraisal of Hydraulic Fractures is a valuable reference for all members of the geotechnical and surface engineering communities who need to understand the important issues around and the full impact of hydraulic fracture stimulation on well performance.
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10

(Editor), David E. Stock, American Society of Mechanical Engineers. Fluids Engineering Division (Corporate Author), Canadian Society for Mechanical Engineering Forum (Corporate Author), S. A. Sherif (Editor), and Alexander J. Smits (Editor), eds. Heuristics of Thermal Anemometry/Fed Vol 97/H00602: Presented at the 1990 Spring Meeting of the Fluids Engineering Division Held in Conjunction With the ... Society of Mechanical (Fed (Series), V. 97.). Amer Society of Mechanical, 1990.

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11

E, Stock David, Sherif S. A, Smits Alexander J, American Society of Mechanical Engineers. Fluids Engineering Division. Spring Meeting, Canadian Society for Mechanical Engineering. Forum, American Society of Mechanical Engineers. Fluids Engineering Division., American Society of Mechanical Engineers. Coordinating Group on Fluid Measurements., and Symposium on the Heuristics of Thermal Anemometry (1990 : University of Toronto), eds. The Heuristics of thermal anemometry: Presented at the 1990 Spring Meeting of the Fluids Engineering Division held in conjunction with the 1990 Forum of the Canadian Society of Mechanical Engineers, University of Toronto, Toronto, Ontario, Canada, June 4-7, 1990. New York, N.Y: American Society of Mechanical Engineers, 1990.

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12

University, Arizona State, and Langley Research Center, eds. Near-wall modelling of compressible turbulent flows: A semi-annual progress report. Tempe, Ariz: Arizona State University, 1990.

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13

Near-wall modelling of compressible turbulent flows: A semi-annual progress report. Tempe, Ariz: Arizona State University, 1990.

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14

United States. National Aeronautics and Space Administration., ed. Near-wall modelling of compressible turbulent flows: A semi-annual progress report. Tempe, Ariz: College of Engineering & Applied Sciences, Arizona State University, 1991.

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15

United States. National Aeronautics and Space Administration., ed. Near-wall modelling of compressible turbulent flows. Tempe, Ariz: College of Engineering & Applied Science, Arizona State University, 1991.

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16

United States. National Aeronautics and Space Administration., ed. Near-wall modelling of compressible turbulent flows: A semi-annual progress report. Tempe, Ariz: College of Engineering & Applied Sciences, Arizona State University, 1991.

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17

Near-wall modelling of compressible turbulent flows. Tempe, Ariz: College of Engineering & Applied Science, Arizona State University, 1991.

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18

Thiriet, Marc. Tissue Functioning and Remodeling in the Circulatory and Ventilatory Systems. Springer, 2013.

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19

Thiriet, Marc. Tissue Functioning and Remodeling in the Circulatory and Ventilatory Systems. Springer, 2016.

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20

Thiriet, Marc. Tissue Functioning and Remodeling in the Circulatory and Ventilatory Systems. Springer, 2013.

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