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Coal-fired Power Station

Coal-fired power station pumps

How to choose Coal-fired power station pumps

Selecting suitable centrifugal pumps for coal-fired power stations requires comprehensively matching the pump’s pressure resistance, temperature tolerance, cavitation resistance and wear/corrosion resistance with specific process links (such as boiler feed water, ash slurry transportation, and flue gas desulfurization), while ensuring long-term stable operation under 24/7 continuous working conditions.
Operating Condition Category
Key Information to Confirm
Remarks for Coal-Fired Power Scenarios
Medium Type
Boiler feed water, condensate water, ash slurry, FGD (flue gas desulfurization) gypsum slurry, circulating cooling water
Core concern: Medium viscosity and chemical composition (e.g., chloride ion concentration in FGD slurry)
Solid Content & Particle Size
Solid content (%), maximum particle size (mm), particle hardness (ash residue/gypsum)
Critical for selecting wear-resistant pump structures (e.g., ash slurry transportation)
Temperature & Corrosiveness
Operating temperature (℃), pH value, corrosive intensity (high temperature/high pressure corrosion, chloride ion corrosion)
Key factor for material selection (e.g., high-temperature boiler feed water, corrosive FGD slurry)
Operation Mode
Continuous operation (24h/365) or intermittent operation, annual operating hours
Most power station processes adopt continuous operation, requiring high pump reliability
Installation Method
Dry-type / Submersible / Vertical / Horizontal / Belt-driven
Match with power station pump room layout and process requirements (e.g., vertical for limited space)

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KOLEBURG Pump Manufacturer

KOLEBURG pumps, with core non-clogging technology as their core competitiveness, rely on corrosion-resistant and temperature-resistant high-quality materials, high-specification exclusive motors, strict quality control, flexible customization and perfect after-sales service to provide stable, efficient and reliable guarantee for the transportation of various complex fluids.

KOLEBURG 20 years of service experience is recommended for you

Types suitable for Coal-fired power station System plants

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Centrifugal Pump
High operational efficiency and stable flow output, suitable for boiler feed water and condensate water transportation in coal-fired power stations
KOLEBURG BH500L Horizontal Centrifugal Pump SeriesProduct
Double Suction Pump
Large flow capacity and balanced axial force, ideal for circulating cooling water systems in power stations
Double Suction Pump
Double Spiral Centrifugal Pump
Excellent anti-clogging and anti-winding performance, suitable for ash slurry and gypsum slurry transportation with high solid content
N Double Spiral Pump Impeller
Submersible Coal Slurry Pump
Equipped with built-in stirring impeller to prevent sedimentation, suitable for extracting ash slurry from deep ash pits in power stations
KOLEBURG TA500SL Sewage submersible pump Series Product Model

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echnical Highlights of KOLEBURG Pumps

Clogging Prevention & Reliability

Technical highlight of KOLEBURG: Unique pump impeller design

Unique Rotating Centrifugal Impeller

A large channel diameter will prevent it from becoming blocked.

Spiral centrifugal pumps have excellent anti-clogging properties. Their open, large-diameter channels provide high efficiency and anti-clogging properties, making it easy to transport bulk solids and long-fiber materials.

The spiral section produces a spiral propulsion effect, and the blade edge of the impeller is sickle-shaped. The replenishment of the blades gradually increases along the wheel direction, guiding the liquid flow and pipe objects to move near the axis. Additionally, the spiral action propels them along the collection into the centrifugal section while providing superior suction capabilities and reduced cavitation.

Impeller flow diagram
Impeller flow diagram
3D internal structure diagram of centrifugal pump with spiral impeller
3D cross-sectional view
Pumping of Media with High Solid Content

Solid content pumping diagram

Capable of conveying high solid content media, such as slurries with a solid content of up to 20%.

The CapacityofDifferentTypes of Pumps to Convey Dry Solid Content
Commonly used materials for Coal-fired power station pumps

Material selection

KOLEBURG can meet the customization needs of various materials.

Unique Rotating Centrifugal Impeller
Pump Component
Recommended Materials
Advantages for Coal-Fired Power Scenarios
304/316L Stainless Steel, QT, High-Temperature Resistant Cast Steel
304/316L resists corrosion of FGD slurry; high-temperature resistant cast steel adapts to high-temperature boiler feed water environment
High-chromium Alloy, Duplex 2205, 316L Stainless Steel
High-chromium alloy enhances wear resistance against ash particles; Duplex 2205 resists high chloride ion corrosion in FGD scenarios
42CrMo Alloy Steel, 316L Stainless Steel
42CrMo provides high strength to withstand high-pressure impact; 316L prevents corrosion and ensures long-term stable operation
SiC-SiC, PTFE-coated Seal Ring
Excellent high-temperature resistance and sealing performance, avoiding leakage of high-temperature and corrosive media
FKM, EPDM
FKM resists high temperature and chemical corrosion; EPDM adapts to alkaline FGD slurry environment
Koleburg Pump body
Total selection interval chart

Comprehensive reference

Provide you with a multi-caliber selection range reference

Total selection interval chart
Total selection interval chart​
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FAQ about Coal-fired power station pumps KOLEBURG recommends Coal-fired power station pumps for you

What Are the Key Criteria for Selecting Pumps in Coal-Fired Power Stations?

What Are the Key Criteria for Selecting Pumps in Coal-Fired Power Stations

Coal-fired power stations feature harsh and complex operating conditions, including high-temperature and high-pressure boiler feed water, abrasive fly ash slurry, and corrosive flue gas desulfurization (FGD) slurry. Selecting suitable pumps must prioritize four core dimensions: pressure resistance, temperature tolerance, wear resistance, and long-term operational reliability. These pumps serve as critical auxiliary equipment, and their performance directly affects the safety, efficiency, and energy consumption levels of power generation units. According to industry data, the energy consumption of pump systems accounts for 15-20% of the total auxiliary power consumption of coal-fired power stations, among which boiler feed pumps alone account for approximately 3.15% of the unit’s total power generation.
Authoritative standards are crucial for ensuring pump quality and performance. Pumps complying with API 610 standard (for centrifugal pumps for petroleum, petrochemical and natural gas industries) and ANSI B73.1 standard (for centrifugal pumps for general industrial use) are widely adopted in coal-fired power stations. These standards specify strict requirements for pump structural design, material selection, and performance testing, ensuring that pumps can operate stably for 8000+ hours annually under continuous 24/7 working conditions. In addition, the newly implemented mandatory national standard GB 21258—2024 (Energy Consumption Limits for Coal-Fired Power Generation Units) further emphasizes the energy efficiency requirements of pump systems, promoting the application of high-efficiency and energy-saving pump technologies.

Operating Condition Matching for Coal-Fired Power Station Pumps

Accurate matching of pump operating conditions with the process requirements of coal-fired power stations is the premise of ensuring stable and efficient operation. The following table lists the key operating condition parameters that need to be clarified for pump selection, combining the characteristics of typical process links such as boiler feed water, ash slurry transportation, and FGD:
Operating Condition Category
Key Parameters to Confirm
Impact on Pump Selection
Medium Characteristics
Medium type (boiler feed water, condensate water, ash slurry, FGD gypsum slurry, circulating cooling water), chemical composition (chloride ion concentration, pH value)
Determines the corrosion resistance and material selection of pumps (e.g., FGD slurry requires chloride-resistant materials)
Solid Particle Parameters
Solid content (%), maximum particle size (mm), particle hardness (fly ash/gypsum)
Affects the wear resistance and anti-clogging performance of pumps (ash slurry requires high-wear-resistant impellers)
Thermal & Pressure Properties
Operating temperature (℃), working pressure (MPa), cavitation margin requirements
Decides the pressure resistance and temperature tolerance level of pumps (boiler feed water requires high-temperature and high-pressure resistant pumps)
Operational Mode
Continuous operation (24h/365), annual operating hours, load fluctuation range
Influences the structural strength and energy efficiency optimization direction of pumps (continuous operation requires high reliability)
Installation Requirements
Dry-type/Submersible/Vertical/Horizontal/Belt-driven installation, space constraints of pump rooms
Determines the pump type and structural layout (vertical pumps are preferred for limited space in pump rooms)

Common Pump Types in Coal-Fired Power Stations

Common Pump Types in Coal-Fired Power Stations

Different process links in coal-fired power stations have distinct requirements for pump performance. The following table lists the most widely used pump types (high-frequency search keywords on Google) and their core advantages in this scenario:
Pump Type
Core Advantages
Applicable Process Links
High operational efficiency (up to 85-90%), stable flow output, low maintenance cost
Boiler feed water, condensate water transportation
Large flow capacity, balanced axial force, low vibration, operational efficiency up to 82% (higher than industry average of 78%)
Circulating cooling water system
Excellent anti-clogging and anti-winding performance, adaptable to high-solid-content media (solid content up to 35%)
Ash slurry, gypsum slurry transportation
Compact structure, direct pipeline installation, low energy consumption, suitable for medium-pressure circulation systems
FGD slurry circulation, chemical dosing system
Submersible Ash Slurry Pump
Submersible installation saves space, built-in stirring device prevents ash sedimentation, high wear resistance
Ash pit cleaning, bottom ash transportation

What is a Coal-Fired Power Station Pump?

Coal-fired power station pump is a specialized pump type designed for the harsh operating conditions of coal-fired power generation processes, which is a high-search-volume keyword on Google. It refers to a series of pump products that can adapt to high temperature, high pressure, abrasive solid particles, and corrosive media, and ensure long-term continuous and stable operation. These pumps are core auxiliary equipment in coal-fired power stations, undertaking key tasks such as energy conversion, medium transportation, and environmental protection treatment, and their operational reliability directly affects the safe and efficient operation of the entire power generation unit.
The working principle of coal-fired power station pumps varies by type: centrifugal-type power station pumps (such as boiler feed pumps) rely on high-speed rotating impellers to generate centrifugal force, realizing the升压 and transportation of media; positive displacement-type power station pumps (such as sludge pumps for ash treatment) rely on the volume change of sealed cavities to transport media, suitable for high-viscosity and high-solid-content media. The core performance indicators of coal-fired power station pumps include: maximum operating temperature (up to 350℃), maximum working pressure (up to 40MPa), maximum solid content adaptability (up to 45%), and annual operating reliability (≥99%).
Compared with ordinary industrial pumps, coal-fired power station pumps have the following unique characteristics:
  • High temperature and high pressure resistance: Adopting special structural design and high-temperature resistant materials, it can operate stably under the conditions of high-temperature boiler feed water (150-350℃) and high pressure (10-40MPa).
  • Strong wear and corrosion resistance: Key components are made of high-wear-resistant and corrosion-resistant materials (such as high-chromium alloy, silicon carbide, duplex stainless steel), which can resist the abrasion of fly ash particles and the corrosion of FGD slurry.
  • High operational reliability: Complying with strict international standards, the structural strength is 1.2 times that of ordinary pumps, and the annual failure rate is ≤2 times, adapting to the 24/7 continuous operation demand of power stations.
  • Energy efficiency optimization: Equipped with high-efficiency motors (IE3/IE4) and variable frequency control systems, it can adjust operating parameters according to load changes, reducing energy consumption by 15-50%.

Material Selection for Coal-Fired Power Station Pumps

Material Selection for Coal-Fired Power Station Pumps

The harsh working conditions of coal-fired power stations (high temperature, high pressure, strong abrasion, strong corrosion) put forward strict requirements on the material selection of pump components. The following table lists the recommended materials for key components, combining the latest industry application practices and material performance data:
Pump Component
Recommended Materials
Advantages for Coal-Fired Power Scenarios
304/316L Stainless Steel, High-Temperature Resistant Cast Steel, QT500-7
304/316L resists corrosion of FGD slurry; high-temperature resistant cast steel adapts to high-temperature boiler feed water (up to 350℃); QT500-7 ensures structural strength
High-chromium Alloy, Duplex 2205, Silicon Carbide
High-chromium alloy enhances wear resistance; Duplex 2205 resists high chloride ion corrosion; silicon carbide’s wear resistance is 3 times that of high-chromium alloy
42CrMo Alloy Steel, 316L Stainless Steel
42CrMo provides high strength to withstand high-pressure impact; 316L prevents corrosion and ensures long-term stable operation
SiC-SiC, PTFE-coated Seal Ring
Excellent high-temperature resistance (up to 300℃) and sealing performance, avoiding leakage of high-temperature and corrosive media
FKM, EPDM
FKM resists high temperature (up to 200℃) and chemical corrosion; EPDM adapts to alkaline FGD slurry environment

Energy Efficiency and Operational Reliability of Coal-Fired Power Station Pumps

Energy consumption is a key cost control link for coal-fired power stations. As the main energy-consuming auxiliary equipment, the energy efficiency of pumps directly affects the power generation cost and compliance with energy consumption limits. According to industry data, the power consumption of boiler feed pumps alone accounts for 3.15% of the unit’s total power generation, which is the largest energy-consuming equipment among unit auxiliary machinery. Improving pump energy efficiency through technological transformation can significantly reduce power generation costs.
The following table compares the energy efficiency of high-efficiency pumps and ordinary pumps in coal-fired power stations, and the energy-saving effect of typical transformation schemes:
Pump Type/Transformation Scheme
Energy Efficiency Rate (%)
Annual Energy Savings (kWh/unit)
Ordinary Centrifugal Pump (IE2 Motor)
70-75
0 (Reference Benchmark)
High-Efficiency Centrifugal Pump (IE4 Motor)
85-94
12,000-18,000
High-Speed Direct-Drive Variable Frequency Transformation
88-95
40,000-60,000 (based on 300MW unit)
Operational reliability is critical for coal-fired power stations with continuous production needs. Pumps complying with API 610 standard have a failure rate 30-40% lower than ordinary pumps, and their average service life can reach 5-8 years. The key measures to improve operational reliability include: selecting appropriate materials according to working conditions, regular maintenance of wear parts (such as impellers and mechanical seals), and adopting intelligent monitoring systems to realize real-time fault early warning. For example, the intelligent monitoring system can monitor parameters such as pump vibration, temperature, and pressure in real time, reducing unplanned downtime by 50%.

Application Case of Pumps in Coal-Fired Power Stations

Application Case of Pumps in Coal-Fired Power Stations

This case involves a large-scale coal-fired power station with a total installed capacity of 1200MW (4×300MW units). The power station’s production process includes boiler feed water, ash slurry transportation, FGD slurry circulation, and circulating cooling water supply. The core challenge is to ensure the stable operation of pumps under high-temperature, high-pressure, and abrasive/corrosive working conditions, while meeting the requirements of the new energy consumption limit standard GB 21258—2024.

Project Background and Requirements

Process Link
Medium Characteristics
Operational Requirements
Boiler Feed Water
High-temperature feed water, temperature 280℃, pressure 25MPa, no solid particles
Continuous operation, high temperature and high pressure resistance, energy efficiency rate ≥88%, operational rate ≥99.5%
Ash Slurry Transportation
Fly ash slurry, solid content 30-35%, maximum particle size 25mm, high abrasion
Anti-clogging, high wear resistance, flow rate 180m³/h, head 45m
FGD Slurry Circulation
Gypsum slurry, pH 5-6, chloride ion concentration 8000mg/L, corrosive
Corrosion resistance, stable circulation, flow rate 250m³/h, head 30m
Circulating Cooling Water
Clean water, temperature 30-45℃, non-corrosive, large flow
Large flow capacity, low energy consumption, flow rate 1200m³/h, head 25m

Pump Selection and Configuration Scheme

Process Link
Selected Pump Type
Material Configuration & Key Technology
Boiler Feed Water
Pump body: High-temperature resistant cast steel; Impeller: 316L Stainless Steel; Equipped with IE4 motor and variable frequency control system
Ash Slurry Transportation
Pump body: QT500-7; Impeller: Silicon Carbide; Built-in stirring device
FGD Slurry Circulation
Pump body: Duplex 2205; Impeller: Duplex 2205; Mechanical seal: SiC-SiC
Circulating Cooling Water
Pump body: 304 Stainless Steel; Impeller: 304 Stainless Steel; Optimized flow channel design

Project Operation Effect

Evaluation Index
Design Target
Actual Operation Result
Pump Operational Rate
≥99.5%
99.8%
Average Energy Efficiency Rate
≥88%
92.3%
Annual Energy Savings
≥2 million kWh
2.8 million kWh
Failure Rate
≤2 times/year
1 time/year
Compliance with Energy Consumption Standards
Meet GB 21258—2024
Compliant (unit power consumption reduced by 1.2%)

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