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Solar Materials Science.

Author: Lawrence Murr
Publisher: Oxford : Elsevier Science, 1980.
Edition/Format:   eBook : Document : EnglishView all editions and formats
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Genre/Form: Electronic books
Conference papers and proceedings
Congresses
Additional Physical Format: Print version:
Murr, Lawrence.
Solar Materials Science.
Oxford : Elsevier Science, ©1980
Material Type: Document, Internet resource
Document Type: Internet Resource, Computer File
All Authors / Contributors: Lawrence Murr
ISBN: 9780323142465 032314246X
OCLC Number: 836401509
Notes: Vii. calculation of the heat of fusion from heats of solution.
Solar Materials Science.
Description: 1 online resource (801 pages)
Contents: Front Cover; Solar Materials Science; Copyright Page; Table of Contents; Contributors; Preface; INTRODUCTION; Chapter 1. Introduction to Solar Materials Science; I. INTRODUCTION; II. FRAMEWORK FOR MATERIALS DEVELOPMENT IN SOLAR ENERGY; III. OPTICAL ELEMENTS; IV. CONVERSION PROCESSES; V. SUMMARY; ACKNOWLEDGMENTS; REFERENCES; Chapter 2. Introduction to the Role of Crystal Defects in Solar Materials; I. INTRODUCTION; II. CRYSTAL STRUCTURES AND ORDER-DISORDER PHENOMENA; III. CRYSTAL LATTICE DEFECTS AND SOLAR-RELATED MATERIALS STRUCTURES; IV. SUMMARY; REFERENCES. Chapter 3. Surface and Interface Studies and the Stability of Solid Solar Energy MaterialsI. INTRODUCTION; II. SURFACE STUDIES APPLICABLE TO SOLAR MATERIALS; III. SURFACE SCIENCE OF SOLAR MATERIALS SURFACES; IV. ROLE OF THE POLYPROPYLENE/COPPER OXIDE INTERFACE IN THE CATALYZED OXIDATIVE DEGRADATION OF POLYPROPYLENE.; REFERENCES; SECTION I: SOLAR COLLECTOR (PHOTOTHERMAL) MATERIALS; Chapter 4. The Optical Properties-Microstructure Relationship in Particulate Media: Optical Tailoring of Solar; I. INTRODUCTION; II. EFFECTIVE MEDIUM THEORY; III. SPHEROID MODEL; IV. OPTICAL TAILORING. V. CONCLUSIONSACKNOWLEDGMENTS; REFERENCES; Chapter 5. Solar Mirror Materials: Their Properties and Uses in Solar Concentrating Collectors; I. INTRODUCTION; II. OPTICAL MEASUREMENTS; III. EFFECTIVE SUNSHAPES; IV. REFLECTANCE PROPERTIES OF VARIOUS MATERIALS; V. INCIDENT ANGLE PROPERTIES; VI. CURRENT AND FUTURE RESEARCH AREAS; REFERENCES; Chapter 6. The Effect of Soiling on Solar Mirrors and Techniques Used to Maintain High Reflectivity; I. INTRODUCTION; II. EFFECT OF NATURAL SOILING ON MIRROR REFLECTANCE; III. EFFECT OF ACCUMULATED DUST ON SPECULAR REFLECTANCE; IV. SCATTERING THEORY. V. DEPOSITION AND ADHESIONVI. ACCELERATED DEPOSITION STUDY; VII. CLEANING STRATEGIES; VIII. CONCLUSIONS; REFERENCES; Chapter 7. The Emissivity of Metals; I. INTRODUCTION; II. SPECTRAL EMISSIVITY; III. TOTAL EMISSIVITY; IV. CONCLUSIONS; REFERENCES; Chapter 8. Fundamental Limits to the Spectral Selectivity of Composite Materials; I. INTRODUCTION; II. TRANSPARENT HEAT MIRRORS; III. DARK MIRRORS; IV. CONCLUSIONS; ACKNOWLEDGMENTS; REFERENCES; Chapter 9. Composite Film Selective-Absorbers; I. INTRODUCTION; II. PHYSICAL AND OPTICAL PROPERTIES OF COMPOSITE FILMS. III. ENGINEERING OF COMPOSITE FILM SELECTIVE ABSORBERSIV. SUMMARY; REFERENCES; Chapter 10. Corrosion Science and Its Application to Solar Thermal Energy Material Problems; I. INTRODUCTION; II. MATERIAL PROBLEMS AND SOLAR THERMAL CONVERSION; III. CORROSION SCIENCE; IV. CONCLUSION; REFERENCES; SECTION II: SOLAR STORAGE AND THERMOCHEMICAL MATERIALS; Chapter 11. Thermal Storage in Salt-Hydrates; I. INTRODUCTION; II. MELTING AND RECRYSTALLIZATION; III. SUPERCOOLING; IV. NUCLEATION OR CRYSTAL SEEDING; V. RATE OF CRYSTAL GROWTH; VI. THE RATE OF HEAT REMOVAL.

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