Solar Power: Types, Capacities, Potential What is solar power? R. Todd Gabbard, LEED-AP, Assoc. AIA Asst. professor, Dept of Architecture, KSU

Slides:



Advertisements
Similar presentations
Brendan Bossidy.  Converts light directly to electricity  Made of monocrystalline silicon  Solar energy panel will produce 3,285 kWh in a year.
Advertisements

NREL is a national laboratory of the U.S. Department of Energy Office of Energy Efficiency and Renewable Energy operated by the Alliance for Sustainable.
Solar Energy Ali Shakouri Electrical Engineering Department University of California Santa Cruz EE80S Sustainability Engineering.
Solar Energy II Solar Electricity. Would you be willing to pay more for electricity generated with solar power? 1. Yes 2. No.
Solar Power & Energy Independence
Solar Energy Florida Electric Cooperatives Association 2014 Finance & Accounting Conference Glenn Spurlock September 17, 2014.
Solar Energy Presented By: Isah Adamu Bazuwa (099271) Sani khalil (118312)
Team Solar PPT PRESENTATION.
Smart Energy Campus September 16, Project Overview  Workforce Training  Solar PV  Solar Thermal  Small Scale Wind  Plug-in Hybrid Electric.
SOLAR POWER. Potential for solar A land mass of about 100x100 miles in the Southwest U.S.-less than 0.5% of the U.S. mainland land mass, or about 25%
Solar Power Kim Grant Solar Tower PS10, near Seville, Spain.
Solar Energy. Radiant Energy Solar Radiation Average Daily Solar Insolation Per Month.
Contemporary comparison between photovoltaic solar panels and large solar collector installations.
Solar Power By: Christina Nahar. Solar Energy Potential The amount of solar energy that reaches the Earth’s surface every hour is greater than human kind’s.
By Elizabeth Boyer, Carolyn Robertson, Karleigh Cresswell.
Monocrystalline silicon- As a result of their high silicon content, they’re also more expensive, but you need fewer of them. That’s why they’re ideal.
Photovoltaic - Solar Cell
Solar Energy
ENGR101 © Copyright, 2005, TAMU ENGR 101 Prof. Maria A. Barrufet Petroleum Engineering Renewable Energy - Solar.
1 Alternative Energy Sources Delivered to: Bill Pyke Hilbre Consulting Limited October 2012 Harnessing Solar Power.
California's three large IOUs collectively served 12.7% of their 2007 retail electricity sales with renewable power. – Pacific Gas and Electric (PG&E)
The Greening of the Rooftop Module 8 Green Roofing: Clean Energy Roofs.
UZBEK ACADEMY OF SCIENCES RENEWABLE ENERGY: PROBLEMS AND PROSPECTIVE IN UZBEKISTAN Ilkham G.Atabaev, Dr of science in physics and mathematics, deputy-director.
Lamma Power Station Solar Power System. 2 Content Project Background Site Selection Amorphous Silicon Thin Film Photovoltaic System Environmental Benefits.
Timing of Market Entry Strategy Analysis for Home Solar Panel
Photovoltaics. Agenda What is PV? System Types Mounting Options Product Options System cost & performance System sizing considerations Advantages of PV.
Solar Energy. Radiant Energy 19% energy absorbed by vapor, ozone, dust, etc. 8% energy dispersed in the atmosphere 17 % energy reflected by clouds 4%
GILLES PERROT Total and the Photovoltaic Solar Market KAZENERGY ASTANA.
The Energy Challenge Farrokh Najmabadi Prof. of Electrical Engineering Director of Center for Energy Research UC San Diego November 7, 2007.
Small Scale Wind Energy. Capacity factor The net capacity factor of a power plant is the ratio of the actual output of a power plant over a period of.
CSP (Concentrated Solar Power) Is this finally the “real” future of renewables:
Solar Energy George Stone, Richard Schiavone. General description of Solar Energy  Concentrated solar power systems use lenses or mirrors and tracking.
Solar Power.
INTRODUCTION As one of the fastest growing renewable energy sources, solar power is becoming increasingly popular. Over the past fifteen years, solar energy.
Solar Energy: The Ultimate Renewable Resource. What is Solar Energy? Originates from nuclear fusion reactions in the sun Originates from nuclear fusion.
Concentrator Photovoltaic Solar Generator Presented by Max Goldberger Hawaii County Economic Opportunity Council (HCEOC)
PV System Components Advanced Engineering The Technology Landstown High School.
Incentives and Tax Credits Federal, state, and private incentives and tax credits exist to encourage the use of renewable energies. Federal, state, and.
Joshua Pearce E Sci 497C The Pennsylvania State University Rectifying Myths Related to Solar Energy.
Solar Energy John Holecek ESP Global Energy production Total Energy Production (Wh) (1.1 E17) Electricity Production (Wh)
Nuclear Fissionary, April 2, 2010 Why are prices declining?  Generally, solar panels make up about 50% of the cost of a system (40% for thin film),
Solar Thermal Plants. Thermal Energy: Reliable source Reliable source Could potentially supply 10% U.S. energy demand Could potentially supply 10% U.S.
Solar Thermal Energy: Heating our homes while cooling our planet Chris Mayor and Stephen Mizera.
Good day, sunshine!  Please get out your solar handout from last class!  Please read the board!
SOLAR ENERGY Emily Crick, Rachael Hadden and Jordi Lluch.
Good day, sunshine!  Please pass back the objective sheet.  Please read the board!
Solar Energy By: Marisa Laim Kayla Laura. What is solar energy? a) Solar power is harnessing the radiation from the sun and using it as an energy resource.
1 APEC EGNRET Member Economy Presentation Hong Kong, China.
1. INTRODUCTION 2. CONCENTRATED SOLAR POWER 3. PARABOLIC TROUGH 4. SOLAR PANELS 5. PHOTOVOLTAICS 6. PV SYSTEM 7. ADVANTAGES & DISADVANTAGES 8. STORAGE.
Decentralized, Grid Tie Energy Generation. Decentralized Energy Generation To generate electricity from many small energy sources. Currently, industrial.
Impact of Large-Scale PV Penetration on Power System Voltage and Angle Stability Caleb Walker and Alex Chan July 18, 2013 Knoxville, TN.
Solar Energy Ashley Valera & Edrick Moreno Period 6.
Tidal Barrage  Advantages  Renewable  No air pollution  No fuel costs  Produces lots of power  Disadvantages  Huge initial cost  Environmental.
Sunny Side Up Christine Bordonaro Chapter 31. Summary Christine Bordonaro, materials engineer explains: How the energy in sunlight – solar energy – can.
Guided by Mr. G.K. Pal DEPARTMENT OF MECH ENGG A SEMINAR REPORT Submitted by:- Subir Kumar Pramanik.
HYPOTHESIS AND SPECIFIC AIM BY RALIAT O. ALABI SOLAR ENERGY.
Solar Energy II Solar Electricity. Would you be willing to pay more for electricity generated with solar power? A. Yes B. No.
Home Generation Sam Hultgren, Ben LaFond, Curtis Haglin, Kennedy Peterson.
PERNAMBUCO H. Serhan Süzer October 31, 2013 CHALLENGES OF SOLAR POWER AROUND THE WORLD.
What is PV System? Photovoltaic (PV) system is an electrical system consisting of array of one or more PV modules, conductors, electrical components,
Solar-Thermal (Concentrated Solar Heating) By Vivian Doan.
Medors.in DESCRIPTION Off-grid refers to not being connected to a grid generally National grid Off-the-grid homes are autonomous, they do not rely on.
Solar Panels Manufacturers in Dubai
Solar Energy II Solar Electricity.
Seminar On Solar Energy
Environmental Science
SOLAR POWER.
Photovoltaics (PV) Mr. Huebsch.
Hartek Group is one of India’s fastest growing company with offerings that span across Engineering, Renewables, Technology , Construction , Fuel and Manufacturing.
Photovoltaic - Solar Cell
Presentation transcript:

Solar Power: Types, Capacities, Potential What is solar power? R. Todd Gabbard, LEED-AP, Assoc. AIA Asst. professor, Dept of Architecture, KSU

Solar Power: Types, Capacities, Potential What is solar power? Electrical flow derived from solar radiation.

Solar Power: Types, Capacities, Potential Advantages Solar power is… –Renewable

Solar Power: Types, Capacities, Potential Solar Energy Incident in US Kansas – about 5,000Whrs per square meter per day

Solar Power: Types, Capacities, Potential Advantages Solar power is… –Renewable –Environmentally Sound

Solar Power: Types, Capacities, Potential Advantages Solar power is… –Renewable –Environmentally Sound –Versatile

Solar Power: Types, Capacities, Potential Disadvantages – the four Ds Solar power is…

Solar Power: Types, Capacities, Potential Disadvantages – the four Ds Solar power is… –Diurnal

Solar Power: Types, Capacities, Potential Disadvantages – the four Ds Solar power is… –Diurnal –Diffuse

Solar Power: Types, Capacities, Potential Disadvantages – the four Ds Solar power is… –Diurnal –Diffuse –Dis-efficient –De-inexpensive

Solar Power: Types, Capacities, Potential Disadvantages – the four Ds Solar power is… –Diurnal –Diffuse –(Dis)efficient ?? –(Dis)inexpensive ??

Solar Power: Types, Capacities, Potential Solar Power Systems Concentrating Solar Power –Thermic (heat driven) Photovoltaics –Photic (light driven)

Solar Power: Types, Capacities, Potential Solar Concentration Systems Harness heat to generate electricity. –Heat used to create steam to turn turbine turbine makes electricity

Solar Power: Types, Capacities, Potential Concentration Systems Troughs. Kramer Junction Facility, CA

Solar Power: Types, Capacities, Potential Concentration Systems Power Towers. Solar Two Facility, 10 MW

Solar Power: Types, Capacities, Potential Concentration Systems Parabolic Dishes.

Solar Power: Types, Capacities, Potential Solar Concentration Systems Harness heat to generate electricity. –Heat used to run engine.

Solar Power: Types, Capacities, Potential Solar Concentration Systems Dish Stirling (Stirling Energy Systems) –Heat used for engine (Stirling Engine) that makes electricity.

Solar Power: Types, Capacities, Potential Solar Concentration Systems SES Dish Sterling. Peak production: 25 kW

Solar Power: Types, Capacities, Potential

Concentration Systems - Applications Power Plants. Kramer Junction Trough Plant Seville, Spain Power Tower Facility Model Dish Stirling Plant

Solar Power: Types, Capacities, Potential Photovoltaics Light energy converted to electrical energy. –based on properties of silicon.

Solar Power: Types, Capacities, Potential Photovoltaics - Applications Power plants. Serpa Power Plant, Portugal. Peak production: 11 mW

Solar Power: Types, Capacities, Potential Photovoltaics - Applications Power plants. Building-scale (distributed) Zero-Energy Home

Solar Power: Types, Capacities, Potential Photovoltaics - Applications Power plants. Building-scale (distributed) –Can be on or off grid Zero-Energy Home

Solar Power: Types, Capacities, Potential Photovoltaics - Applications Power plants. Building-scale (distributed) –Can be on or off grid Project Solar House

Solar Power: Types, Capacities, Potential Photovoltaics – Building Scale Array Zero-Energy Home

Solar Power: Types, Capacities, Potential Photovoltaics – Building Scale Array Inverter system

Solar Power: Types, Capacities, Potential Photovoltaics – Building Scale Array Inverter system Storage System

Solar Power: Types, Capacities, Potential Photovoltaics - Applications Power plants. Building-scale (distributed) Point-of-Use

Solar Power: Types, Capacities, Potential Photovoltaics - Applications Power plants. Building-scale (distributed) Point-of-Use

Solar Power: Types, Capacities, Potential Photovoltaics - Applications Power plants. Building-scale (distributed) Point-of-Use

Solar Power: Types, Capacities, Potential Photovoltaics - Applications Power plants. Building-scale (distributed) Point-of-Use

Solar Power: Types, Capacities, Potential Photovoltaics - Applications Power plants. Building-scale (distributed) Point-of-Use

Solar Power: Types, Capacities, Potential Photovoltaics - Applications Power plants. Building-scale (distributed) Point-of-Use

Solar Power: Types, Capacities, Potential Photovoltaics - Applications Power plants. Building-scale (distributed) Point-of-Use

Solar Power: Types, Capacities, Potential Photovoltaics - Applications Power plants. Building-scale (distributed) Point-of-Use

Solar Power: Types, Capacities, Potential Photovoltaics - Applications Power plants. Building-scale (distributed) Point-of-Use

Solar Power: Types, Capacities, Potential Photovoltaics - Innovations Amorphous Silicon

Solar Power: Types, Capacities, Potential Photovoltaics - Innovations Amorphous Silicon Thin Film

Solar Power: Types, Capacities, Potential Photovoltaics - Innovations Amorphous Silicon Thin Film Translucent PV Organic PVs

Solar Power: Types, Capacities, Potential Photovoltaics - Innovations Amorphous Silicon Thin Film Translucent PV Organic PVs

Solar Power: Types, Capacities, Potential Photovoltaics - BIPVs solar shingles Rooftop applications

Solar Power: Types, Capacities, Potential Photovoltaics - BIPVs solar laminate Rooftop applications

Solar Power: Types, Capacities, Potential Photovoltaics - BIPVs horizontal lights Rooftop applications

Solar Power: Types, Capacities, Potential Photovoltaics - BIPVs Hong Kong Science Park 200 kW peak production Facade applications

Solar Power: Types, Capacities, Potential Photovoltaics - BIPVs Hong Kong Science Park 200 kW peak production Facade applications

Solar Power: Types, Capacities, Potential Solar Power Systems - Capacities In Use (as of 2006). –Photovoltaics –Concentrator Systems

Solar Power: Types, Capacities, Potential Solar Power Systems - Capacities Photovoltaics In Use (as of 2006). –8,800 MW in use.

Solar Power: Types, Capacities, Potential Solar Power Systems - Capacities 1,744 MW (mostly distributed installations) Photovoltaics Installed (in 2006). –Photovoltaics

Solar Power: Types, Capacities, Potential Solar Power Systems - Capacities 8,800 MW 524 MW (most in US) Installed (by 2006). –Photovoltaics –Concentrator Systems

Solar Power: Types, Capacities, Potential Solar Power Systems - Capacities Under Construction. 3,800 MW produced in 2007 (mostly distributed installations) 115 MW (all in Spain) –Photovoltaics –Concentrator Systems

Solar Power: Types, Capacities, Potential Solar Power Systems - Capacities Over 13,000 MW power installed or under construction. –Enough to power 2.5 million US homes

Solar Power: Types, Capacities, Potential Solar Power Systems - Capacities Announced. Lots. California: 3,000 MW by 2010 Japan: 5,000 MW by 2010 Germany: 20% renewable by ,000 MW (2300 MW are US installations) –Photovoltaics –Concentrator Systems

Solar Power: Types, Capacities, Potential Solar Power Systems - Capacities Photovoltaic Japan: World leader in PV use and manufacture 1992 – 32 MW of PV power installed 1997 – 70,000 Roofs plan begins Government subsidizes PV installation, promotes massive publicity campaign, encourages developer participation 2002 – 70,000 Roofs plan terminated; net result: 144,000 Solar Roofs installed 2003 – 887 MW PV power in use 2010 – 4810 MW (projected) New manufacture of PV per year, in MW

Solar Power: Types, Capacities, Potential Solar Power Systems - Capacities Photovoltaic Japan: World leader in PV use and manufacture 1992 – 32 MW of PV power installed 1997 – 70,000 Roofs plan begins Government subsidizes PV installation, promotes massive publicity campaign, encourages developer participation 2002 – 70,000 Roofs plan terminated; net result: 144,000 Solar Roofs installed 2003 – 887 MW PV power in use 2010 – 4810 MW (projected) New manufacture of PV per year, in MW

Solar Power: Types, Capacities, Potential Solar Power Systems - Capacities Photovoltaic Japan: World leader in PV use and manufacture 1992 – 32 MW of PV power installed 1997 – 70,000 Roofs plan begins Government subsidizes PV installation, promotes massive publicity campaign, encourages developer participation 2002 – 70,000 Roofs plan terminated; net result: 144,000 Solar Roofs installed 2003 – 887 MW PV power in use 2010 – 4810 MW (projected) New manufacture of PV per year, in MW

Solar Power: Types, Capacities, Potential Solar Power Systems - Capacities Photovoltaic Japan: World leader in PV use and manufacture 1992 – 32 MW of PV power installed 1997 – 70,000 Roofs plan begins Government subsidizes PV installation, promotes massive publicity campaign, encourages developer participation 2002 – 70,000 Roofs plan terminated; net result: 144,000 Solar Roofs installed 2003 – 887 MW PV power in use 2010 – 4810 MW (projected) New manufacture of PV per year, in MW

Solar Power: Types, Capacities, Potential Solar Power Systems - Capacities Photovoltaic Japan: World leader in PV use and manufacture 1992 – 32 MW of PV power installed 1997 – 70,000 Roofs plan begins Government subsidizes PV installation, promotes massive publicity campaign, encourages developer participation 2002 – 70,000 Roofs plan terminated; net result: 144,000 Solar Roofs installed 2003 – 887 MW PV power in use 2010 – 4810 MW (projected) New manufacture of PV per year, in MW

Solar Power: Types, Capacities, Potential Efficiency & Expense Efficiency – how much fuel energy is converted to electrical energy

Solar Power: Types, Capacities, Potential Efficiency & Expense How efficient is solar energy?

Solar Power: Types, Capacities, Potential Efficiency & Expense How efficient is solar energy? –Photovoltaics: 10-15% on average (high as 22%)

Solar Power: Types, Capacities, Potential Efficiency & Expense How efficient is solar energy? –Photovoltaics: 10-15% on average (high as 20%) Gen-2 cell. 22% efficient

Solar Power: Types, Capacities, Potential Efficiency & Expense How efficient is solar energy? –Photovoltaics: 10-15% on average (high as 20%) Monocrystalline limit: 25% Polycrystalline limit: 20% Amorphous/thin film: 10% SunPower’s SPR % efficient

Solar Power: Types, Capacities, Potential Efficiency & Expense How efficient is solar energy? –Photovoltaics: 10-15% on average (high as 22%) Monocrystalline limit: 25% Polycrystalline limit: 20% Amorphous/thin film: 10% –Parabolic troughs: 21% –Power towers: 23% –Dish engines: 29.4% Kyocera’s SPR % efficient

Solar Power: Types, Capacities, Potential Efficiency & Expense How efficient is solar energy? –Photovoltaics: 10-15% on average (high as 22%) Monocrystalline limit: 25% Polycrystalline limit: 20% Amorphous/thin film: 10% –Parabolic troughs: 21% –Power towers: 23% –Dish engines: 29.4% Uni-solar Membrane. 9.3% efficient

Solar Power: Types, Capacities, Potential Efficiency & Expense How efficient is solar energy? –Photovoltaics: 10-15% on average (high as 22%) Monocrystalline limit: 25% Polycrystalline limit: 20% Amorphous/thin film: 10% –Parabolic troughs: 21% –Power towers: 23% –Dish engines: 29.4%

Solar Power: Types, Capacities, Potential Efficiency & Expense How efficient are conventional power plants?

Solar Power: Types, Capacities, Potential Coal efficiency

Solar Power: Types, Capacities, Potential Efficiency & Expense How efficient are conventional power plants?

Solar Power: Types, Capacities, Potential Efficiency & Expense How efficient are conventional power plants? 32%

Solar Power: Types, Capacities, Potential Efficiency & Expense How efficient is solar energy? –Photovoltaics: 10-15% on average (high as 20%) –Parabolic troughs: 21% –Power towers: 23% –Dish engines: 29.4% –Coal plants: 32%

Solar Power: Types, Capacities, Potential Efficiency & Expense How expensive is solar energy? –capital costs –operating costs –maintenance costs

Solar Power: Types, Capacities, Potential Efficiency & Expense Capital cost – how much to start generating power –Coal fired power plant Highwood Generating Station– Southern Montana Electric. 250 MW Plant estimated to cost $720 million - $2.88 per watt

Solar Power: Types, Capacities, Potential Efficiency & Expense Photovoltaics - $8-10 per watt Solar Concentrator Systems – $4-10 per watt Stirling Energy System – roughly $250k for 25kW system they anticipate that the dish could be made for $100k or less Parabolic troughs $4-5 per watt

Solar Power: Types, Capacities, Potential Efficiency & Expense Capital costs for Solar Power Systems are on the decline Photovoltaics

Solar Power: Types, Capacities, Potential Efficiency & Expense Solar Concentrator Systems Dish Stirling could be made for $100k or less Simply doubling size of plant reduces cost per watt by 15% If power plant sizes reach MW, plant costs are projected to be comparable to coal plants. –Dish Stirling - $2.65/watt –Parabolic Troughs - $2.88/watt –Power Tower - $2.73/watt

Solar Power: Types, Capacities, Potential Efficiency & Expense Operating costs –Coal plants: fuel –Solar power systems: no fuel

Solar Power: Types, Capacities, Potential Efficiency & Expense Cost figures for PVs include cost of system –Coal plants: fuel – costs from cents per kWh 8-14 cents to consumer in US –PVs: cents per kWh

Solar Power: Types, Capacities, Potential Efficiency & Expense Why so different? –Solar power includes capital costs

Solar Power: Types, Capacities, Potential How do we increase solar power use? –Rebates for installations –Net metering laws – electric companies buy excess electricity at market prices –Set policy Ohio, Colorado – 2.5% solar “carve-out” Germany KU – student referendum

Solar Power: Types, Capacities, Potential What is solar power? R. Todd Gabbard, LEED-AP, Assoc. AIA Asst. professor, Dept of Architecture, KSU