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Last Edited by
rajangupta
on
2012-03-25 11:39:20
History of Edits for Dobrotvorsky Thermal Power Plant Ukraine
All Edits Awaiting Moderation
Quick Access Tools
Coal in Ukraine:
Abstract
Dobrotvorsky Thermal Power Plant Ukraine is located at Lviv, Ukraine. Location coordinates are: Latitude= 50.2133, Longitude= 24.375. This infrastructure is of TYPE Coal Power Plant with a design capacity of 600 MWe. It has 5 unit(s). The first unit was commissioned in 1960 and the last in 1964. It is operated by OJSC Zakhidenergo (Zapadenergo).
Identifiers for Coal
Name
Status of Plant
Please Select
Operating Fully
Operating Partially
Built and In Test Stage
Under Construction
Final Bid and Approval Stage
Design and Planning Stage
Mothballed Partial
Mothballed Full
Decommissioned
Cold Reserve
Demolished
Plant Efficiency and Impact
Please Select
High Efficiency and Low Enivronmental Imapct
High Efficiency and Medium Environmental Impact
High Effciency and High Environmental Impact
Medium Efficiency and Low Environmental Impact
Medium Efficiency and Medium Environmental Impact
Medium Efficiency and High Environmental Impact
Low Efficiency and Low Environmental Impact
Low Efficiency and Medium Environmental Impact
Low Efficiency and High Environmental Imapct
Plant Overall Rating
State-of-the-art
Worth Duplicating
Environmentally Responsible
Country Assigned Identification Number
GEO Assigned Identification Number
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No universal currency
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Location
Latitude:
Longitude:
This location is:
Exact
Approximate
Within 50km
Unknown
Draw Lines:
Draw Polygons:
Width:
px
Height:
px
Lviv, Ukraine
Description
Design Capacity (MWe)
Firm Capacity (MWe)
Heat Supply Capacity (MWth)
Type of Plant
Please Select
Sub-critical Thermal
Super-critical Thermal
Both Sub and Super Critical Thermal
Ultra-Super-Critical Thermal
Sub and Ultrasuper Critical Thermal
Super and Ultra-Super Critical Thermal
Cogeneration Power and Heat Steam Turbine
Cogeneration Power and Heat Supercritical Steam Turbine
Cogeneration Power and Heat Ultra Supercritical Steam Turbine
Cogeneration Power and Desalination Steam Turbine
Cogeneration Power and Desalination Supercritical Steam Turbine
Cogeneration Power and Desalination Ultra Supercritical Steam Turbine
IGCC
Short Description
Power Plant Used For
Please Select
Base Load
Base/Intermediate Load
Intermediate Load
Intermediate/Peak Load
Peaking Load
Peaking Load and Backup
Voltage Stabilization
Cogeneration
Type of Fuel
Primary
Secondary
Please Select
Coal
Lignite
Fuel Oil
Light Fuel Oil
Diesel
Naptha
Heavy Fuel Oil
Crude Oil
Waste Oil
Natural Gas
Waste Furnace Gas
Biogas
Biodiesel
Waste
Biomass
Bagasse
Waste Coal
Peat
Location
Configuration of Boiler/Turbine/Gen
Electric Power Grid Connected To
Please Select
National Grid
Regional Grid
Municipal Grid
Local Grid
Captive or Standalone Grid
Captive and Grid Connected
Name/Operator
PPA(years)
Name of SubStation Connected To
Source of Coal
Onsite Storage Capacity (Tonnes)
Kilometers to Coal Mines (Average)
Name of Major Mines
Type of Cooling System
Source of Cooling Water
Rate (cum/day)
Source of Makeup Water
Rate (cum/day)
Water Withdrawal Rate at Full Power
(cum/hour)
Cogen Mode: Steam Supplied To
Please Select
Utility Company
Industry
Commercial Buildings
Residential Complex
Industry, Commercial and Residential
Other
(Tonnes/hour)
Description
Environmental Issues
Capital Cost of Plant
and/or In US Dollars
In Year (YYYY)
Mercury Control Device
SOx Control Device Type
Please Select
Jet Bubbling Reactor
Circulating Dry Scrubber
Dual Alkali
Fluidized Bed
Dry Lime Flue Gas Desulfurization Unit
Wet Lime Flue Gas Desulfurization Unit
Mechanically Aided Type
Magnesium Oxide
Packed Type
Sodium Based
Spray Dryer Type
Spray Type
Venturi Type
Wet Limestone
Other
If other, specify:
NOx Control Device Type
Please Select
Advanced Overfire Air
Biased Firing
Fluidized Bed Combuster
Combustion Modification/Fuel Reburning
Dry Low NOx Premixed Technology
Flue Gas Recirculation
Fuel Reburning
Water Injection
Low Excess Air
Low NOx Burner
Low NOx Burner with Overfire Air
Low NOx Burner Technology with Close Coupled Overfire Air
Low NOx Burner technology with separated Overfire Air
Low NOx Burner Technology with Close Coupled and Separated Overfire Air
Low NOx Burner Technology for Cell Burners
Ammonia Injection
Overfire Air
Slagging
Selective Catalytic Reduction
Selective Noncatalytic Reduction
Steam Injection
Other
If other, specify:
Particulates(PM) Control Device Type
Please Select
Electrostatic Precipitator
Other
Bag House (Fabric Filter)
If other, specify:
Associated Infrastructure (AI)
Unit Information
Unit #
Capacity (MWe)
Date Commissioned (yyyy-mm-dd)
Decommission Date (yyyy-mm-dd)
Boiler Manufacturer
Boiler Model/Type
Turbine Manufacturer
Turbine Model/Type
Generator Manufacturer
Generator Model/Type
Chimney Height (m)
Unit Efficiency (%)
1
2
3
4
5
Year Emission Control Devices Installed (YYYY)
Year Emission Monitoring Devices Installed (YYYY)
NOx
SOx
Hg
CO2
N2O
PM
NOx
SOx
Hg
CO2
N2O
PM
1
2
3
4
5
Environmental Issues
Issue 1
Please Select Category
Emissions: Pollutants (SOx, NOx, ... )
Emissions: Toxic Chemicals (Hg, Pb, ...)
Emissions: Volatile Organics
Emissions: Particulates
Emissions: Green House Gases
Water Contamination
Water Depletion
Land Pollution
Land: Toxic Waste
Land Degradation
Land Submersion
Land Subsidence
Soil Erosion
Deforestation
Impact on Wildlife
Impact on Fisheries
Impact on Scenic Beauty
Displacement of People
Other
Description
Past and Future Major Upgrades
Upgrade 1
Cost
Year
-
Owner and Operator Information
Owner 1
% Share
Type of Ownership
Construction/EPC Contractor
Operating Company
Regulatory Authority
Project Financed By
Annual Performance
Performance Statistics for
2020-2029
2010-2019
2000-2009
1990-1999
1980-1989
1970-1979
1960-1969
1950-1959
Comments
Comment 1
References
Reference 1
Reference 2
Reference 3
Reference 4
Notes
*
cum = cubic meters; MWe = Megawatts electric; 1 KWhr = 3412.3 Btu = 859.85 kilocalories; 1 Tonne = 2205 pounds, MM=million