000856592 000__ 05759cam\a2200541Ii\4500 000856592 001__ 856592 000856592 005__ 20230306145144.0 000856592 006__ m\\\\\o\\d\\\\\\\\ 000856592 007__ cr\un\nnnunnun 000856592 008__ 181127s2018\\\\sz\\\\\\ob\\\\101\0\eng\d 000856592 019__ $$a1062393929 000856592 020__ $$a9783319716763$$q(electronic book) 000856592 020__ $$a331971676X$$q(electronic book) 000856592 020__ $$z3319716751 000856592 020__ $$z9783319716756 000856592 0247_ $$a10.1007/978-3-319-71676-3$$2doi 000856592 035__ $$aSP(OCoLC)on1076262571 000856592 035__ $$aSP(OCoLC)1076262571$$z(OCoLC)1062393929 000856592 040__ $$aYDX$$beng$$epn$$cYDX$$dN$T$$dOCLCQ$$dGW5XE$$dEBLCP$$dOCLCF$$dUKMGB 000856592 049__ $$aISEA 000856592 050_4 $$aQP517.B56 000856592 08204 $$a610.28$$223 000856592 1001_ $$aBhushan, Bharat,$$d1949-$$eauthor. 000856592 24510 $$aBiomimetics :$$bbioinspired hierarchical-structured surfaces for green science and technology /$$cBharat Bhushan. 000856592 250__ $$aThird edition. 000856592 260__ $$aCham, Switzerland :$$bSpringer Nature,$$c[2018] 000856592 300__ $$a1 online resource. 000856592 336__ $$atext$$btxt$$2rdacontent 000856592 337__ $$acomputer$$bc$$2rdamedia 000856592 338__ $$aonline resource$$bcr$$2rdacarrier 000856592 4901_ $$aSpringer series in materials science ;$$vv. 279 000856592 504__ $$aIncludes bibliographical references and index. 000856592 5050_ $$aIntro; Foreword; Preface to the Third Edition; Preface to the First Edition; Contents; About the Author; 1 Introduction; 1.1 Biomimetics and Green Science and Technology; 1.1.1 Climate Change and Lack of Recycling Impact on Sustainable Environment; 1.1.2 Green Science and Technology; 1.2 Biodiversity; 1.3 Lessons from Living Nature; 1.3.1 Bacteria; 1.3.2 Plants; 1.3.3 Insects, Spiders, Lizards, and Frogs; 1.3.4 Aquatic Animals; 1.3.5 Birds; 1.3.6 Seashells, Bones, and Teeth; 1.3.7 Spider Web; 1.3.8 Insect Piercing; 1.3.9 Eyes; 1.3.10 Fur and Skin of Polar Bear 000856592 5058_ $$a1.3.11 Anti-freeze Proteins (AFPs)1.3.12 Biological Systems; 1.4 Locomotion in Living Nature; 1.4.1 Walking; 1.4.2 Gear Systems for Precise Movement; 1.5 Golden Ratio and Fibonacci Numbers; 1.6 Biomimetics and Bioinspiration in Art and Architecture-Bioarchitecture; 1.6.1 Biomimetics in Arts and Architecture; 1.6.2 Bioinspiration in Arts and Architecture; 1.7 Industrial Applications; 1.8 Economic Impact; 1.9 Research Objective and Approach; 1.10 Organization of the Book; References; 2 Roughness-Induced Superliquiphilic/Phobic Surfaces: Wetting States and Lessons from Living Nature 000856592 5058_ $$a2.1 Introduction2.2 Wetting States; 2.3 Applications; 2.4 Natural Superhydrophobic, Self-cleaning, Low Adhesion/Drag Reduction Surfaces with Antifouling; 2.5 Natural Superhydrophobic and High Adhesion Surfaces; 2.6 Natural Superoleophobic Self-cleaning and Low Drag Surfaces with Antifouling; 2.7 Closure; References; 3 Modeling of Contact Angle for a Liquid in Contact with a Rough Surface for Various Wetting Regimes; 3.1 Introduction; 3.2 Contact Angle Definition; 3.3 Homogeneous and Heterogeneous Interfaces and the Wenzel, Cassie-Baxter and Cassie Equations 000856592 5058_ $$a3.3.1 Limitations of the Wenzel and Cassie-Baxter Equations3.3.2 Range of Applicability of the Wenzel and Cassie-Baxter Equations; 3.4 Contact Angle Hysteresis, Tilt Angle, and Energy Dissipation; 3.5 Stability of a Composite Interface and Role of Hierarchical Structure with Convex Surfaces; 3.6 The Cassie-Baxter and Wenzel Wetting Regime Transition; 3.7 Closure; References; 4 Plant Leaf Surfaces in Living Nature; 4.1 Introduction; 4.2 Plant Leaves; 4.3 Characterization of Superhydrophobic and Hydrophilic Leaf Surfaces; 4.3.1 Experimental Techniques; 4.3.2 SEM Micrographs 000856592 5058_ $$a4.3.3 Contact Angle Measurements4.3.4 Surface Characterization Using an Optical Profiler; 4.3.5 Surface Characterization, Adhesion, and Friction Using an AFM; 4.3.5.1 Comparison of Two AFM Measurement Techniques; 4.3.5.2 Surface Characterization; 4.3.5.3 Adhesive Force and Friction; 4.3.6 Role of the Hierarchical Roughness; 4.3.7 Summary; 4.4 Various Self-cleaning Approaches; 4.4.1 Comparison Between Superhydrophobic and Superhydrophilic Surface Approaches for Self-cleaning; 4.4.2 Summary; 4.5 Closure; References; 5 Nanofabrication Techniques Used for Superhydrophobic Surfaces 000856592 506__ $$aAccess limited to authorized users. 000856592 520__ $$aThis book presents an overview of the general field of biomimetics and biologically inspired, hierarchically structured surfaces. It deals with various examples of biomimetics, which include surfaces with roughness-induced super-phobicity/philicity, self-cleaning, antifouling, low drag, low/high/reversible adhesion, drag reduction in fluid flow, reversible adhesion, surfaces with high hardness and mechanical toughness, vivid colors produced structurally without color pigments, self-healing, water harvesting and purification, and insect locomotion and stinging. The focus in the book is on the Lotus Effect, Salvinia Effect, Rose Petal Effect, Superoleophobic/philic Surfaces, Shark Skin and Skimmer Bird Effect, Rice Leaf and Butterfly Wing Effect, Gecko Adhesion, Insects Locomotion and Stinging, Self-healing Materials, Nacre, Structural Coloration, and Nanofabrication. This is the first book of this kind on bioinspired surfaces, and the third edition represents a significant expansion from the previous two editions. 000856592 588__ $$aOnline resource; title from PDF title page (viewed November 29, 2018). 000856592 650_0 $$aBiomimetics. 000856592 650_0 $$aGreen technology. 000856592 77608 $$iPrint version:$$z3319716751$$z9783319716756$$w(OCoLC)1007755009 000856592 830_0 $$aSpringer series in materials science ;$$vv. 279. 000856592 852__ $$bebk 000856592 85640 $$3SpringerLink$$uhttps://univsouthin.idm.oclc.org/login?url=http://link.springer.com/10.1007/978-3-319-71676-3$$zOnline Access$$91397441.1 000856592 909CO $$ooai:library.usi.edu:856592$$pGLOBAL_SET 000856592 980__ $$aEBOOK 000856592 980__ $$aBIB 000856592 982__ $$aEbook 000856592 983__ $$aOnline 000856592 994__ $$a92$$bISE