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{{Cleanup-rewrite}} {{Expand article|date=February 2013}}
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In the developed world energy abundance is being achieved through consumption of cheap, high-energy [http://en.wikipedia.org/wiki/Fossil_fuel fossil fuel] sources such as coal, oil and gas. This provided the energy required to drive the Industrial Revolution and improve the living standards of millions of people. However, rapid exploitation of such non-renewable energy sources has had adverse effects on the environment, including global warming, air and water pollution, and ocean acidification. There exists an inequitable access to global energy resources, and increasing political and social stresses resulting from an economic dependence on oil-producing regions.   
 
In the developed world energy abundance is being achieved through consumption of cheap, high-energy [http://en.wikipedia.org/wiki/Fossil_fuel fossil fuel] sources such as coal, oil and gas. This provided the energy required to drive the Industrial Revolution and improve the living standards of millions of people. However, rapid exploitation of such non-renewable energy sources has had adverse effects on the environment, including global warming, air and water pollution, and ocean acidification. There exists an inequitable access to global energy resources, and increasing political and social stresses resulting from an economic dependence on oil-producing regions.   
  
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==The planning stage==
 
==The planning stage==
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Energy in the broadest sense is intrinsically linked to all systems and will be the common thread connecting housing, agriculture, water and waste treatment, industry, automation, and transport. Hence, energy production, monitoring, efficiency, and use, need to be carefully considered during the design stage of the city. The ideal scenario for a “stand-alone” community such as the RBE10k city is to produce as much energy as possible from waste products (human waste, food waste, waste heat), i.e. “[http://en.wikipedia.org/wiki/Energy_recycling energy recycling]” and the renewable sources available at the location (e.g. solar, wind, hydro).
 
Energy in the broadest sense is intrinsically linked to all systems and will be the common thread connecting housing, agriculture, water and waste treatment, industry, automation, and transport. Hence, energy production, monitoring, efficiency, and use, need to be carefully considered during the design stage of the city. The ideal scenario for a “stand-alone” community such as the RBE10k city is to produce as much energy as possible from waste products (human waste, food waste, waste heat), i.e. “[http://en.wikipedia.org/wiki/Energy_recycling energy recycling]” and the renewable sources available at the location (e.g. solar, wind, hydro).
  
 
===Evaluating needs===
 
===Evaluating needs===
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Energy abundance will be created by intelligent and efficient generation, monitoring and use. As much as possible, the city will operate as a closed cycle incorporating the “[http://en.wikipedia.org/wiki/Cradle_to_cradle cradle-to-cradle]” ideology where all “waste” is considered as a “food” for either a biological or technological cycle. For example, food waste is converted to compost for agriculture, or human waste is converted to methane for cooking or electricity production. The energy needs of 10 000 people need to be estimated considering the following areas.  
 
Energy abundance will be created by intelligent and efficient generation, monitoring and use. As much as possible, the city will operate as a closed cycle incorporating the “[http://en.wikipedia.org/wiki/Cradle_to_cradle cradle-to-cradle]” ideology where all “waste” is considered as a “food” for either a biological or technological cycle. For example, food waste is converted to compost for agriculture, or human waste is converted to methane for cooking or electricity production. The energy needs of 10 000 people need to be estimated considering the following areas.  
 
* Housing
 
* Housing
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The following energy production technologies will be evaluated for their feasibility. Follow the links to see more information about the advantages and disadvantages of each. Once all the information is collected, a brief comparison table will be included.     
 
The following energy production technologies will be evaluated for their feasibility. Follow the links to see more information about the advantages and disadvantages of each. Once all the information is collected, a brief comparison table will be included.     
* [[/PV|Solar (photovoltaic)]]
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* [[Solar (photovoltaic)]]
* [[/SUT|Solar updraft tower]]
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* [[Solar updraft tower]]
* [[/Wind/]]
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* [[Wind]]
* [[/Hydroelectric/]]
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* [[Hydroelectric]]
* [[/Combined|Combined heat and power]]
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* [[Combined heat and power]]
* [[/Fuel cell/]]s
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* [[Fuel cells]]
 
* Fuel production
 
* Fuel production
** [[/Methane|Methane generation from waste]]
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** [[Methane generation from waste]]
** [[/HC|Bioethanol and biodiesel]]
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** [[Bioethanol and biodiesel]]
  
 
===Energy efficiency and monitoring===
 
===Energy efficiency and monitoring===
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During the design process it is important to consider energy efficiency and use within all components of the city. Continued upgrading and optimisation of the energy systems could be achieved via monitoring and “intelligent integration” with other systems (e.g. waste heat, heating, lighting, telecommunications). Energy can be saved through sharing resources and appliances (for instance using a [http://en.wikipedia.org/wiki/Video_projector beamer] to watch film and television). See an additional page for [[detailed energy use of appliances]].
 
During the design process it is important to consider energy efficiency and use within all components of the city. Continued upgrading and optimisation of the energy systems could be achieved via monitoring and “intelligent integration” with other systems (e.g. waste heat, heating, lighting, telecommunications). Energy can be saved through sharing resources and appliances (for instance using a [http://en.wikipedia.org/wiki/Video_projector beamer] to watch film and television). See an additional page for [[detailed energy use of appliances]].
  
 
== References ==
 
== References ==
 
{{Reflist}}
 
{{Reflist}}

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