Energy saving measures. Reconstruction of the boiler house "PivnGZK No. 2" with the installation of a cogeneration gas piston unit at the address: 50000, Ukraine, Dnipropetrovsk region, Kryvyi Rih, Volodymyr Cherkasov Street, 31K
- General information
- Strategic Case
- Economic Case
- Commercial Case
- Financial Case
- Management Case
- Summary
General information
Description of the project
The working project, as an energy saving measure, envisages the installation of a cogeneration gas piston unit (CPU) of the AVUS 500plus type - a complete set of equipment for the combined production of electricity and heat by burning natural gas. The cogeneration unit (CPU) is designed to meet the boiler house's needs for electricity, both in emergency mode when the external power supply disappears, and in normal operation. This facility is a complex of engineering structures for generating thermal energy from a boiler room and transmitting it to the end consumer. The AVUS 500plus gas-piston cogeneration plant is a finished product supplied by the manufacturer in a fully equipped form with all technological, construction and fire protection systems. This project does not develop the internal systems and equipment of the CHP. It is planned to connect the CHP to the gas, heat and electricity supply networks. The nominal electrical capacity of the CHP is 600 kW, voltage class 0.4 kV, frequency 50 Hz. The total thermal capacity of the CHP is 639 kW. Volumetric flow rate of natural gas is 139.1 m3/h.
The containerized CHP is installed outside on the site within the territory of the boiler house. Communication outlets – through the walls of the container. Flue gas is discharged into a complete flue pipe, 10.5 m high. Natural gas is used to produce electricity and heat, which is supplied to the CHP via a designed pipeline from the existing gas pipeline with a regulator installed to reduce the pressure to the calculated one. Thermal energy is utilized during CHP operation by heating the coolant of the return pipeline of the boiler house's heat network through a heat exchange module.
This working project provides for the reconstruction of the RP-6kV electrical networks of the boiler house "PivnGZK No. 2":
- replacement of 16 RP-6kV TP-7 6/0.4kV KSO cells with 14 MVC cells. with vacuum circuit breakers with a rated current of 1250A;
- replacement of panels Shcho-90 TP-7 6/0.4kV - 11 pcs. with 18 pcs. PowerLine-1000 panels (low-voltage complete device) with automatic circuit breakers with electronic
disconnector;
- for the needs of RP-6kV, installation of a self-service switchboard (ShVP-RP with ATS) individually manufactured is provided.
A transformer substation building has been designed for installation of power transformers. The degree of fire resistance of the building – II.
The cogeneration unit (CHP) is designed to meet the boiler house's electricity needs, both in emergency mode when the external power supply disappears, and in normal operation.
To increase the useful effect of the CHP operation, it is planned to use the thermal energy released from the CHP to heat the return network water.
CHP characteristics:
Nominal electric power 600 kW, voltage class 0.4 kV, frequency 50 Hz;
Total thermal power 639 kW.
Equipment composition:
1. The container-type external cogeneration unit is installed on the street, on the side of axis A of the existing boiler house, on one foundation plate with a cooler.
2. The MT-639 type heating module is installed on the street, on the A axis of the existing boiler house.
Ensuring reliable and energy-efficient heat supply to consumers using modern technologies;
reducing natural gas consumption by introducing cogeneration of heat and electricity;
optimizing costs for fuel and energy resources and reducing operating costs;
reducing the negative impact on the environment by reducing emissions of greenhouse gases and harmful substances;
increasing energy independence and reducing the load on city electricity networks;
creating a modern, reliable and sustainable heat supply system that meets the requirements of energy saving and sustainable development.
The purpose of the project
Main Goal:
Improving the quality of services
Secondary Goal:
Capacity building, Contribution to climate or environmental goals, Increasing compliance with modern standards, Improving the equality of wealth distribution, Increasing the even distribution of resources, Improving the condition of infrastructure, Introducing innovations and energy-efficient solutions, Meeting demand
Description of the purpose of the project and ways to achieve it
Problems and solutions resulting from project implementation
Socio-economic context
Indicator
Value
Number of people who will use the service
12998 human
Other functional
174.4 MW
Number of employees of the institution/institution/organization
25 human
Other functional
86479077600 m3
Number of jobs, including for IDPs
29 human
Other functional
639 kW
Strategic Case
Strategic feasibility of the project
Sector
Municipal infrastructure and services
Subsector
Development and Reconstruction of Subnational Infrastructure
Stream
Development and rehabilitation of municipal infrastructure of subnational governments
Strategic document
Стратегія розвитку територіальної громади
Task
1.5.2; 4.4.1; 3.4.4; 1.4.2; 4.5.1. Formation of a capable network of healthcare institutions of all levels (including the creation of rehabilitation departments); Elimination of the consequences of the Kakhovka HPP dam explosion; Creation and development of investment / innovation projects / products; Development of innovation laboratories / incubators; Development and improvement of the street and road network of the Kryvyi Rih Metropolitan Municipality with barrier-free access
Project objectives
Project Sustainable Development Goals
Demand for the service and its dynamics
What methodology was used to estimate demand?
Has data from external sources been used in the demand assessment?
Does the demand forecast take into account the latest demographic and economic forecasts?
Analysis of the project's impact on ecology and climate change
Does the planned activity have a potential positive contribution to achieving climate or environmental objectives?
Is the proposed project expected to significantly harm any of the following climate or environmental objectives?
Does the planned activity have a potential positive contribution to achieving climate or environmental objectives?
Is the proposed project expected to significantly harm any of the following climate or environmental objectives?
Have the greenhouse gas emissions or emission reductions (Scope 1-2) associated with the project been calculated for a typical year and the entire project period?
Does the project require an environmental impact assessment (EIA) in accordance with the Law of Ukraine "On Environmental Impact Assessment"?
Project sustainability and inclusivity
Identify potential gender risks of the project and indicate possible ways to overcome them:
Does the project provide for improving women's access to services?
Are civil society organizations representing women and vulnerable groups included in the consultation process?
Were consultations held with representatives of target groups to take into account gender equality issues in the project?
Have the gender risks and social impacts of the project been assessed?
Are there management and institutional mechanisms in place to ensure gender equality?
Documents
Alternative technical solutions
Technical Solution 1
Energy saving measures. Reconstruction of the boiler house "PivnGZK No. 2" with the installation of a cogeneration gas piston unit at the address: 50000, Ukraine, Dnipropetrovsk region, Kryvyi Rih, Volodymyr Cherkasov Street, 31K
Technical Solution 2
Energy saving measures. Reconstruction of the boiler house "PivnGZK No. 2" with the installation of a solar power plant (SPP) and storage tanks at the address: 50000, Ukraine, Dnipropetrovsk region, Kryvyi Rih, Volodymyr Cherkasov Street, 31K
[The technical approach was selected for further detailed analysis or implementation.]
[The technical approach was not selected for further detailed analysis or implementation.]
Commercial Justification
Supplier and contractor market assessment
[Response was provided in the Preliminary Investment Feasibility Study]
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Financial justification
Total project budget
Average project cost per service recipient
Profitability of the project
Availability of services
[Response was provided in the Preliminary Investment Feasibility Study]
Project Financing Mechanisms
Are funding sources and mechanisms identified?
Funding Sources
Public-private partnership
[Response was provided in the Preliminary Investment Feasibility Study]
[Response was provided in the Preliminary Investment Feasibility Study]
Team competencies
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