Optimized water cooled EAF cover:
The design of the water cooled furnace cover can achieve the
following functions:
(1) The micro-positive pressure and reduction atmosphere in the
furnace can meet the smelting process requirements.
(2) Collect the flue gas generated in the smelting process, and
send various slag materials and alloys to the furnace.
(3) Reduce heat radiation and heat loss, reduce refractory
consumption Furnace cover body for the domestic advanced flow tight
row pipe structure, water cooling furnace cover with seamless steel
pipe special equal diameter elbow group welding, to ensure that
water cooling flow without dead point.
On the structure, the side wall of the furnace cover body is formed
into columns and cones, and the top is an inverted cone surface
(large at the bottom and small at the top) to ensure rigidity.
Water cooling furnace cover design inlet pressure 0.7MPa, return
water pressure 0.4MPa, flow 400 m%h, inlet temperature ≤35 ℃,
return water temperature ≤55 ℃.
The electric furnace water-cooled furnace cover is a core thermal
insulation and safety component for industrial electric furnaces
(such as ferroalloy submerged arc furnaces, calcium carbide
furnaces, and electric arc refining furnaces). It covers the top of
the furnace body, replacing traditional refractory brick furnace
covers with a water-cooled circulation structure. Its main functions are to isolate high-temperature furnace gas,
protect the furnace body structure, and create a sealed environment
for processes like furnace gas collection—making it a key part of
improving electric furnace efficiency, safety, and environmental
performance.
It integrates "high-temperature protection, process sealing, and
heat control" to address the pain points of traditional refractory
covers (short service life, poor sealing, and difficult
maintenance):
- High-Temperature Resistance & Protection: Isolates the 1500-2200°C high-temperature environment inside the
furnace, preventing direct scouring of the furnace body shell by
high-temperature gas and molten splashes, and avoiding deformation
or burnout of the steel structure.
- Sealing & Furnace Gas Management: For closed electric furnaces (e.g., closed calcium carbide
furnaces), it forms an airtight space with the furnace body to
prevent leakage of toxic and flammable furnace gas (such as CO) and
ensure efficient collection of furnace gas for energy recycling.
- Heat Loss Reduction: The water-cooled structure reduces heat dissipation from the
furnace top (compared to traditional refractory covers, heat loss
can be reduced by 30%-50%), improving the furnace’s thermal
efficiency and reducing energy consumption.
- Easy Maintenance: Avoids frequent replacement of refractory bricks (traditional
covers need to be repaired every 1-3 months), extending the service
life to 3-5 years and reducing shutdown maintenance time.
It relies on a closed water circulation system to take away heat and maintain structural stability:
- The furnace cover body is designed with a hollow interlayer (or
built-in water-cooled pipes), and cooling water (softened water or
demineralized water) is continuously injected into the
interlayer/pipes through a water supply pump.
- When the furnace is in operation, high-temperature furnace gas and
radiation heat transfer heat to the furnace cover’s inner wall; the
cooling water absorbs this heat and flows out of the furnace cover
through the return pipe.
- The heated cooling water is sent to a cooling tower or heat
exchanger to reduce its temperature (usually from 50-60°C to
30-40°C), then recycled back to the furnace cover—forming a closed,
low-energy-consumption circulation system.
The water-cooled furnace cover has a modular design, and its
structure and materials are strictly matched to the electric
furnace’s working conditions (temperature, pressure, furnace gas
corrosion):
The design parameters of the water-cooled furnace cover are
determined by the electric furnace’s type, capacity, and process
requirements. The core parameters include:
- Cooling Water Parameters:
- Inlet temperature: ≤40°C (too high will reduce heat absorption
efficiency);
- Outlet temperature: ≤60°C (prevents scaling in pipes due to high
temperature);
- Water pressure: 0.4-0.6 MPa (ensures sufficient water flow to avoid
local overheating);
- Water flow rate: Calculated based on furnace capacity (e.g., 40MVA
calcium carbide furnace requires a water flow rate of 80-100 m³/h).
- Structural Parameters:
- Thickness of water-cooled panel: 8-12 mm (balances heat resistance
and heat transfer efficiency);
- Pipe spacing: 150-250 mm (ensures uniform cooling, no local hot
spots);
- Sealing pressure: ≥0.1 MPa (ensures no furnace gas leakage, meets
environmental standards).
- Service Performance Parameters:
- Maximum withstand temperature: 1800-2200°C (inner wall);
- Heat dissipation coefficient: ≤150 W/(m²·K) (lower than traditional
refractory covers’ 300-400 W/(m²·K));
- Leakage rate: ≤0.1% (furnace gas leakage rate, meets GB 16297
emission standards).
It is widely used in various industrial electric furnaces, and its
design is customized according to the furnace’s working conditions:
To ensure the safe and stable operation of the water-cooled furnace
cover, regular maintenance and timely fault handling are essential:
- Check Water Circulation: Monitor cooling water inlet/outlet temperature, pressure, and
flow rate—if the outlet temperature exceeds 60°C or the pressure
drops by ≥0.1 MPa, stop the furnace for inspection immediately.
- Sealing Inspection: Check the furnace cover’s edge gasket for cracks or aging; wipe
the sealing surface clean and replace the gasket if there is
furnace gas leakage (detected by a gas detector).
- Pipe Inspection: Inspect water inlet/outlet joints for leakage; use an infrared
thermometer to scan the cover body—if local temperature exceeds
80°C, there may be pipe blockage or water shortage.
Furnace cover diagram:
