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This is because coal-fired electricity conversion technology has comparatively low operating and penalty costs and relatively low capital cost for capacity expansion, and the related cost of natural gas-fired electricity conversion technology is a little higher than coal-fired power and the pollutants emission from natural gas-fired power generation process is smaller relatively.
This is because the amount of pollutants emission would be confined in a certain level and coal-fired electricity conversion technology corresponds to a higher pollutants emission rate than natural gas-fired conversion technology.
In addition, the increased clean energy (wind power) electricity conversion technology and power conversion technology with higher energy utilization efficiency (CHP) also share the excess electricity load caused by the decreased coal supplies to meet different pollutants emission-cutting policies.
Natural gas-fired electricity conversion technology would play a key role in the power generation activities, coal-fired power would be in a second place and wind power would be the supplement under 10%and20%0% pollutants emissions reduction.
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Compared the contribution of various electricity generation technologies to the medium power demand, it presents that different electricity conversion technologies have various generation quantities under changed pollutants emission- cutting scenarios.
It indicates that environment-friendly electricity conversion technologies should better serve interests of the pollutants emission reduction and be chosen for power generation to meet the ever-increasing electricity demands and gradually enhancing pollutants emission reduction requirements.
A novel fuel-to-electricity conversion technology resembling a fuel cell has been developed based on the perovskite solar cell principle using a perovskite, e.g. La0.6Sr0.4Co0.2Fe0.8O3−δ and an ionic nanocomposite material as a core functional layer, sandwiched between n- and p-conducting layers.
Constraints for electricity generation of every power conversion technology: ∑ t ' = 1 t X i t ' + R C i * S T it ≥ X W it, ∀ i, t (6).
Photovoltaic (PV) cells are able to absorb about 80% of the solar spectral irradiance, however, certain percentage accounts for electricity conversion depending on the cell technology employed.
For example, in April, electricity generated from coal-fired power conversion technology would be [157.60, 207.42] GWh under 0% pollutants emission reduction, [146.30, 159.60] GWh under 10% pollutants emission reduction and [108.85, 145.83] GWh under 20% pollutants emission reduction.
Thermoelectrics is an energy conversion technology from heat into electricity, and vice versa, through the thermoelectric phenomena in solids, while photovoltaics is an energy conversion technology from solar photon energy into electricity using the photo-excitations in solids.
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