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ارزیابی توسعه پایدار سیستم های انرژی ساختمان های مسکونی با درنظرگرفتن جنبه های محیط زیستی، اقتصادی و اجتماعی
علی قنبری، محمد حسین Ali Ghanbari, Mohammad Hossein

Cataloging brief

ارزیابی توسعه پایدار سیستم های انرژی ساختمان های مسکونی با درنظرگرفتن جنبه های محیط زیستی، اقتصادی و اجتماعی
پدیدآور اصلی :   علی قنبری، محمد حسین Ali Ghanbari, Mohammad Hossein
ناشر :   صنعتی شریف
سال انتشار  :   1396
موضوع ها :   ساختمان های مسکونی Residential Buildings انرژی Energy کارایی Efficiency محیط زیست...
شماره راهنما :   ‭66-50511

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  • Final - Copy - Copy - Copy.pdf (1)
    • List of figures (13)
    • List of tables (15)
    • Introduction (17)
    • 1. Chapter One (20)
      • 1.1 Review of the Current State of Energy in Iran (21)
      • 1.2 Global temperature rise (25)
      • 1.3 Energy generation in the future (25)
      • 1.4 The energy consumption of Iran and world and dependence on fossil fuels (27)
      • 1.5 Population growth and its impact on energy consumption (28)
    • 2. Chapter two (30)
      • 2.1 Solar energy (31)
      • 2.2 Types of solar electrical generation (32)
      • 2.3 The direct method (photovoltaic systems) (32)
      • 2.4 The need for using photovoltaic systems (32)
      • 2.5 The main component of photovoltaic systems (33)
        • 2.5.1 Solar Modules (34)
        • 2.5.2 Intermediate (35)
        • 2.5.3 Charge control (35)
        • 2.5.4 Inverter (36)
        • 2.5.5 Battery (36)
        • 2.5.6 Consumer (36)
      • 2.6 Indirect method (solar thermal) (37)
      • 2.7 Linear parabolic power plants (38)
      • 2.8 Central receiver power plants (Heliostat) (39)
      • 2.9 The main components of the central receiver power plants are described below: (40)
        • 2.9.1 Heliostat (40)
        • 2.9.2 Mirror (41)
        • 2.9.3 Structures (41)
        • 2.9.4 Foundation (41)
        • 2.9.5 Actuator system (41)
        • 2.9.6 Solar Controller System (41)
        • 2.9.7 Central receiver (41)
        • 2.9.8 Heat energy transfer system (42)
      • 2.10 Parabolic dish power plant (42)
      • 2.11 The main components of parabolic dish power plant are as follows: (42)
        • 2.11.1 Concentrator surface (43)
        • 2.11.2 Sterling engine (43)
        • 2.11.3 Tracer (44)
          • 2.11.3.1 Following elevation angle (44)
          • 2.11.3.2 Following Arctic (44)
        • 2.11.4 Control System (45)
        • 2.11.5 Structures and foundations (45)
        • 2.11.6 Cooling system (45)
        • 2.11.7 Recipient (45)
      • 2.12 Recipient with direct light (46)
      • 2.13 Indirect recipient (46)
      • 2.14 Solar chimney (Tower) (47)
        • 2.14.1 The performance of thermal solar chimney power plants (48)
        • 2.14.2 The main components of a solar chimney (48)
      • 2.15 Fresnel collectors (49)
      • 2.16 The Performance of these solar power plants may be used in two ways: (50)
        • 2.16.1 Conventional system (50)
        • 2.16.2 Direct steam system (50)
      • 2.17 History (51)
      • 2.18 Solar Cells (51)
      • 2.19 Basis of solar cells (52)
      • 2.20 The first generation of technology (52)
      • 2.21 The second generation of technology (52)
      • 2.22 Crystalline silicon (53)
      • 2.23 Monocrystalline cells (single crystal) (53)
      • 2.24 Polycrystalline cells (multi-crystalline) (54)
      • 2.25 Thin-film cells (55)
      • 2.26 Amorphous silicon cells (55)
      • 2.27 Copper indium di selenide cells (CIGS/CIS) (55)
      • 2.28 Cadmium Telluride Cells (CdTe) (56)
      • 2.29 Emerging Technology (56)
      • 2.30 Dye-sensitized solar cells (56)
      • 2.31 Organic solar cells (57)
      • 2.32 Multi-Hybrid solar cells (57)
      • 2.33 Concentrator cells (58)
      • 2.34 The efficiency of solar cells (58)
      • 2.35 Producer countries (60)
      • 2.36 Producers of crystalline cells (60)
      • 2.37 New evolution in the design of photovoltaic panels (61)
      • 2.38 Types of using photovoltaic system (63)
        • 2.38.1 Off-grid systems (63)
        • 2.38.2 Grid-connected systems (64)
        • 2.38.3 Hybrid-feeding systems (65)
      • 2.39 Selecting the equipment of the Photovoltaic system (65)
        • 2.39.1 Module (65)
        • 2.39.2Inverter (65)
    • 3. Chapter three (66)
      • 3.1 Decentralized (67)
      • 3.2 Portability (68)
      • 3.3 Storage capability (69)
      • 3.4 Reducing the losses of the network (70)
      • 3.5 Contribute to self-sufficiency and reducing dependences (71)
      • 3.6 Reducing greenhouse gases emissions and air pollution (72)
      • 3.7 Export and sale of energy (73)
    • 4. Chapter four (75)
      • 4.1 Factors affecting the amount of radiation received from the sun (76)
        • 4.1.1 A geometric factor (76)
        • 4.1.2 Astronomical factors (76)
        • 4.1.3 Climate factors (77)
        • 4.1.4 Geographical factors (77)
        • 4.1.5 Physical factors (77)
      • 4.2 Solar radiation maps design methods (77)
      • 4.3 Solar radiation qualification examination at different parts of Iran (78)
      • 4.4 Geographic location of Iran (78)
      • 4.5 General solar radiation circumstances in Iran (78)
      • 4.6 Radiation status in cities of Iran (80)
        • 4.6.1 Radiation status in Yazd (80)
        • 4.6.2 Radiation situation in Golestan city (80)
        • 4.6.3 Radiation situation in Khorasan Razavi (80)
        • 4.6.4 Radiation situation in South Khorasan city (81)
        • 4.6.5 Radiation Situation in Alborz Province (81)
        • 4.6.6Radiation situation in Semnan city (82)
        • 4.6.7Radiation situation in Isfahan city (82)
        • 4.6.8 Radiation situation in Kerman city (82)
        • 4.6.9Radiation situation in Khuzestan city (82)
        • 4.6.10Radiation situation Sistan and Balichestan city (82)
      • 4.7 Status check of solar radiation in Germany (83)
      • 4.8 Compare the Radiation and Solar Power Generation in Iran and Turkey (85)
    • Chapter five (86)
      • 5.1 The cost estimation for installing the solar power generators in the building (87)
      • 5.2 The method of calculating the electricity bill of a sample subscriber with the tariff of 2016 (60-day period) (87)
      • 5.3 Calculating the costs of a photovoltaic system for a residential building in Alborz Province (90)
        • 5.3.1 The first strategy: using off-grid solar panels for household loads (95)
        • 5.3.2 The second strategy: the use of grid-connected solar panels for selling to the grid (98)
        • 5.3.3 The third strategy: the use of grid-connected solar panels for selling to the grid and internal consumption (99)
      • 5.4 A look at implementing the plan of solar power system in an office-residential building in Alborz Province (100)
      • Chapter six (107)
    • References (110)
  • چکیده (114)
    • چکیده (114)
  • 4_5823660239567716465 - eslahe arm (116)
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