TECHNOLOGY & PRODUCTS

Direct Reduced Iron (DRI)

A premium ore-based metallic for modern steelmaking

MIDREX technology accounts for more than half of global direct reduced iron production.

DRI provides steelmakers with a consistent, high-quality source of iron units that can be produced independently of steelmaking operations and designed for different furnace technologies and operating strategies.

What is DRI?

Direct Reduced Iron (DRI) is a premium ore-based metallic (OBM) raw material produced by removing chemically bound oxygen from iron oxide pellets and lump ores without melting. The result is high-iron content, low impurity metallic iron that serves as a flexible and efficient feedstock for steelmaking across multiple furnace technologies.

DRI and the role of steel scrap

DRI plays an important role in supplementing steel scrap in EAF-based steelmaking.

While scrap recycling is essential to the steel industry, it currently provides roughly one-third of global metallic inputs to steelmaking. In practice, there is not enough scrap available to meet global steel demand. Scrap supply and quality vary widely from region to region.

Ore-based metallics such as DRI provide a consistent and controllable source of iron units for steelmaking.

DRI in the transition to lower-carbon ironmaking

The growing focus on reducing greenhouse gas emissions in the steel value chain has increased industry interest in direct reduction. Natural gas-based DRI is widely deployed as a lower-carbon alternative to coke-based ironmaking. The prospect of using hydrogen as the reducing gas points toward even lower emissions and is central to future steel decarbonization pathways.

DRI is high in iron content and low in copper, nitrogen and other undesirable metals, or tramp elements. It is used to produce a wide range of steel products as its physical and chemical properties make it suitable for different steelmaking routes.

Forms of DRI produced with MIDREX technology

MIDREX™ Plants can be configured to produce and transport DRI in the form best suited to application and logistics needs. These forms include cold DRI (CDRI), hot DRI (HDRI), and hot briquetted iron (HBI). MIDREX technology enables seamless switching between product forms within the same plant design when required.

Engineering excellence powered by people

DRI’s physical and chemical properties make it highly desirable for use in electric arc furnaces (EAFs), basic oxygen furnaces (BOFs), and integrated blast furnace operations.

These characteristics, combined with flexibility in product form and energy input, support its role as a foundational material for modern and lower-carbon steel production.

MIDREX CDRI Plant in Hamburg, Germany. Start-up: 1971

Key benefits of DRI

Very low residual element content

Can be continuously fed to the furnace

Predictable, uniform and certified chemical analysis

Can be hot-charged in integrated plants

Predictable mass and heat balances

Better slag foaming

Carbon content tailored to EAF requirements

Control of nitrogen in steel

Easier to handle than scrap

Melt consistency

HBI use in the Blast Furnace (BF)

Due to its physical properties, HBI is the preferred form of DRI for blast furnace use. It can increase hot metal production and lower coke consumption. It can make up to 30 percent of the BF charge with no significant equipment or process changes.

The addition of HBI increases hot metal production as more metallics are added in the BF burden: 8 percent more production when burden metallization is increased 10 percent or 24 percent more hot metal when metallization is increased to 30 percent.

HBI is highly desirable when

Hot metal availability is insufficient to meet demand

Hot metal requirements are not matched to blast furnace output

One blast furnace is offline 
for maintenance

DRI use in the Basic Oxygen Furnace (BOF)

HBI is the form of DRI best suited for use in the BOF because of its bulk density and physical strength. It is an alternative to coolant scrap because:

  • Residuals levels are lower
  • Bulk density is higher
  • Mass and heat balances are more accurate
  • Steel chemistry is easier to control

Advantages of using HBI

HBI may be charged to the BOF from either an overhead bin or the charging box as up to one-third of the cold charge.

  • The cooling effect of HBI is approximately 10 percent greater than the cooling effect of scrap steel
  • There is no increase in slopping relative to using all scrap as the cold charge
  • There is no sculling on the lance
  • HBI can be used for low-sulfur steels
  • HBI has lower levels of tramp elements than steel scrap

World DRI Statistics

Examine the latest annual data, production figures and global trends in direct reduction.