Smart Cities - Transition Engineering: Difference between revisions

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= Transition to 100% Renewables =


Transition to 100% renewables using a percentage plot. This modelling was conducted for the USA.
Transition to 100% renewables using a percentage plot. This modelling was conducted for the USA.


[[File:Screen Shot 2022-03-26 at 5.16.25 am.png | 900px]]
[[File:Screen Shot 2022-03-26 at 5.16.25 am.png | 900px]]
= Total Primary Energy Production =


The same plot shown with Total Primary Energy production. To achieve 80% renewable energy supply by 2050 total primary energy production must decline. The level of total primary energy production is equivalent to levels in the 1950s and 1960s.
The same plot shown with Total Primary Energy production. To achieve 80% renewable energy supply by 2050 total primary energy production must decline. The level of total primary energy production is equivalent to levels in the 1950s and 1960s.


[[File:Screen Shot 2022-03-26 at 5.19.21 am.png | 900px]]
[[File:Screen Shot 2022-03-26 at 5.19.21 am.png | 900px]]
= Energy Return on Investment EROI =


The reason for this can be traced back to the Energy Return on Investment (EROI).
The reason for this can be traced back to the Energy Return on Investment (EROI).


[[File:Screen Shot 2022-03-26 at 5.24.10 am.png | 900px]]
[[File:Screen Shot 2022-03-26 at 5.24.10 am.png | 900px]]
= Battery Storage =

Revision as of 18:42, 25 March 2022

Transition to 100% Renewables

Transition to 100% renewables using a percentage plot. This modelling was conducted for the USA.

Total Primary Energy Production

The same plot shown with Total Primary Energy production. To achieve 80% renewable energy supply by 2050 total primary energy production must decline. The level of total primary energy production is equivalent to levels in the 1950s and 1960s.

Energy Return on Investment EROI

The reason for this can be traced back to the Energy Return on Investment (EROI).

Battery Storage