20150429 andy allen

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Progress on Defining Environmental Sustainability Andrew Allen Darren Robinson Yong Mao The Lucas group

Transcript of 20150429 andy allen

Progress on Defining EnvironmentalSustainability

Andrew AllenDarren Robinson

Yong MaoThe Lucas group

Overview

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• Mass / Energy Balance• The coal / human cycle • Entropy Balance• Application of Entropy Pumps• Local Sustainability• Internal Entropy production to land area relation• Moving away from “local” sustainability

Mass Balance

• Rate of Mass in = Rate of mass out• Total mass in system remains the same

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Mass Balance

• Rate of Mass in > Rate of mass out• Mass in system increases

Time

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Energy Balance

• Rate of Energy in = Rate of Energy out• Total energy in the system remains constant

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Energy Balance

• Rate of Energy in > Rate of Energy out• Energy in system increases

Time

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Energy Conversion/Conservation

6Total Energy

Energy Conversion/Conservation

• Thermal Energy Increase = Electrical Energy Decrease• Note: TOTAL ENERGY CONSERVED

7Total Energy

Coal/human cycle

Sun: Energy Source

Space: Energy Sink

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Combustion Combustion

Coal Coal

Carbon in atmosphere

TreesTree solar panel

Coal/human cycle

Sun: Energy Source

Space: Energy Sink

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Coal Coal

Combustion Combustion

Trees

Carbon in atmosphere

Tree solar panel

Entropy Production

Maximum Entropy

State

Time

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Entropy Balance

Time

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Reference State

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Current Scenario City

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S

Local sustainability

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• Energy flow exists attributable to the sun

a. Direct radiationb. Natural work

• Mass flows exist due to natural transport processes

Conditions for local sustainability

�̇�𝑖=�̇�𝑒

1) For all material flows

2) For elements which are not in natural transport processes.

3) Density of material at surface boundary (red):𝜌 ≈ 𝜌𝑟𝑒𝑓

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Conditions for local sustainability

�̇�𝑖=�̇�𝑒

1) For all material flows

2) For elements which are not in natural transport processes.

3) Density of material at surface boundary (red):𝜌 ≈ 𝜌𝑟𝑒𝑓

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Conditions for local sustainability

�̇�𝑖 �̇�𝑒

�̇�𝑖=�̇�𝑒

1) For all material flows

2) For elements which are not in natural transport processes.

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Conditions for local sustainability

• Boundary Conditions are necessary but not sufficient conditions for sustainability

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• Additionally some sustainable outcomes may not be desirablea. Constrain system

Internal Entropy Production

�̇�

�̇�

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Internal Entropy Production

�̇�

�̇�

• Assuming an overly idealised steady state process

𝐴𝑆=𝑘𝑠 �̇� 𝑠+𝑘𝐷 �̇�𝐷

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Area to entropy production

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Area to entropy production

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Moving away from local

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Conclusions

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• Mass / Energy Balance• Must Be able to close mass cycles either artificially or through

natural cycles• Sustainable habitats must use renewable energy sources • Internal Entropy production is a measure of irreversibilies in our

system and there may be a link between internal entropy production and land area.

• May be possible to assign a minimum internal entropy production per capita ,for a given standard of living, in a given environment.

• Also covered what it means to move away from local sustainability