Thermal Updated 2026-07-29 Engineering Guide

Refractory Lining Basics

Selection of refractory materials for furnaces, boilers, incinerators, and kilns: brick, castable, ceramic fiber, insulating vs dense, anchor systems, and installation best practices.

Overview

Refractory materials withstand extreme temperatures (up to 1800°C) inside furnaces, boilers, kilns, incinerators, reactors, and flue gas systems. They contain heat, resist thermal shock, chemical attack from slag/ash, and mechanical abrasion. Refractories are selected based on temperature, chemistry of the process, abrasion exposure, and insulation requirements. The three main forms are brick, monolithic (castable/gunite), and ceramic fiber.

Heat loss through refractory wall Q = (T_hot - T_cold) / (Σ t_i / k_i) — multi-layer wall heat conduction; t = thickness, k = thermal conductivity per layer.

Refractory Classifications

By chemistry:

  • Acidic (silica, fireclay, high-alumina): resistant to acid slags; for steel, iron, general furnaces
  • Basic (magnesite, dolomite, chrome-magnesia): resistant to basic slags; for cement kilns, steel converters, non-ferrous
  • Neutral (chrome, alumina >70%, carbon, silicon carbide): for severe environments; carbon black reactors, aluminum melting
  • Insulating (lightweight, low k): back-up insulation behind dense refractory, low heat loss

By form:

  • Brick (shaped): pre-formed, fired, laid with mortar joints
  • Monolithic (castable, plastic, ramming, gunning): installed in place as a single monolith (no joints)
  • Ceramic fiber: blanket/module/board — lightweight, excellent insulation, low heat storage

Material Types and Properties

Fireclay Brick

  • 30-45% Al₂O₃; classification by duty: low (1400°C), medium (1500°C), high (1600°C), super-duty (1700°C)
  • Good general purpose; low cost; moderate thermal shock resistance
  • Used in boilers, furnaces, kilns, chimneys
  • Thermal conductivity ~1.0-1.5 W/m·K

High-Alumina Brick

  • 50-99% Al₂O₃; higher temperature and chemical resistance
  • Better abrasion and slag resistance than fireclay
  • Used in aluminum furnaces, boiler burner throats, cement kilns, slagging applications
  • k ~1.5-2.5 W/m·K

Silica Brick

  • >93% SiO₂; very high temperature (1700°C); high strength at temperature
  • Good for glass furnaces, coke ovens, acid steel processes
  • Poor thermal shock resistance (cracks on rapid heating/cooling below 600°C due to cristobalite inversion)

Magnesite (Basic) Brick

  • >85% MgO; high temperature (1700°C+); resists basic slags and iron oxide
  • For steel converters, cement rotary kilns, lime kilns
  • Poor thermal shock; requires careful heating schedule

Insulating Firebrick (IFB)

  • Lightweight (0.5-1.0 g/cm³); low k (0.15-0.4 W/m·K); low heat storage
  • Hot face up to 1600°C; not for severe slag/abrasion
  • Back-up insulation behind dense brick or castable
  • Reduces wall heat loss dramatically

Castables (Monolithic)

Conventional refractory castables:

  • Low cement (LCC): <2.5% CaO; high strength, low porosity; most common modern monolithic
  • Ultra-low cement (ULCC): <1.0% CaO; better high-temperature properties
  • No-cement (NCC): colloidal silica bond; high temperature, good thermal shock
  • Insulating castable: lightweight aggregate (vermiculite, perlite, bubble alumina); for back-up insulation
  • Installed by casting (forms), pumping, gunning (pneumatic projection), shotcreting

Ceramic Fiber

  • Alumino-silicate fiber blanket/module; temperature classes 1000-1600°C
  • Very low k (0.05-0.2 W/m·K); extremely low heat storage (fast furnace heat-up/cool-down)
  • Advantages: energy savings on cyclic furnaces; light weight (no heavy structural support); easy installation
  • Limitations: poor abrasion resistance; cannot withstand direct flame impingement, slag contact, high velocity gas; limited to 20-40 m/s; fiber degradation in reducing atmospheres; health concerns (respirable fibers — handle with PPE)
  • Used in furnace liners, boiler liners, ducting, kiln cars, backup to dense refractory

Never Subject Ceramic Fiber to Direct Flame Impingement or High Velocity

Ceramic fiber modules can erode rapidly in high-velocity gas streams (>30 m/s) or when directly exposed to flame impingement. They also shrink at elevated temperatures (1-3% linear shrinkage) which opens gaps. For burner quarls, high-velocity flues, or areas subject to slag, always use dense castable or brick. Fiber is ideal for box furnaces, ducting, and cyclic applications.

Multi-Layer Lining Design

Modern refractory systems use a multi-layer design:

  • Hot-face layer (100-250 mm): dense refractory (brick or castable) — resists temperature, abrasion, chemical attack
  • Backup/insulating layer (50-150 mm): insulating castable, IFB, or fiber — reduces heat loss and shell temperature
  • Steel shell or casing: structural containment

Example multi-layer boiler wall:

  1. Hot face: 150 mm high-alumina low-cement castable (k = 1.8 W/m·K)
  2. Backup: 75 mm insulating castable (k = 0.3 W/m·K)
  3. Steel shell (6 mm)

Heat loss through wall for T_hot = 1100°C, T_ambient = 25°C: Q ≈ 450 W/m²; shell temperature ≈ 60-70°C (safe for personnel).

Heat Loss Calculator

Open heat-loss-calculator

Anchors

Refractory must be anchored to the steel shell with metallic or ceramic anchors:

Metallic Anchors (V, Y, U shapes)

  • Carbon steel: up to 400°C shell temperature
  • 304/310 stainless: up to 800-900°C
  • Inconel/Haynes alloys: up to 1100°C
  • Spacing: typically 300-600 mm grid, closer for dense/heavy refractory; staggered
  • Length: through back-up layer + 70-80% of hot-face thickness (do NOT go through to hot face — acts as heat sink/cracking point)
  • Apply plastic cap on tip to allow shrinkage (the anchor tip burns off and creates a void for thermal expansion)

Ceramic Anchors

  • For temperatures above metallic anchor limits (>1100°C)
  • Alumina, mullite, silicon carbide shapes
  • Used in brick linings (brick ties) or with ceramic fiber modules

Installation Best Practices

Castable

  • Mix strictly per manufacturer instructions; correct water content (excess water destroys strength and density)
  • Use forced mixer; mix no longer than needed
  • Place within 30 minutes after mixing; vibrate during placement to eliminate voids
  • Cure: keep moist for 24 hours (cement hydration); air cure 24 hours
  • DRYOUT is the most critical step: controlled heating schedule to remove water without explosive spalling (typically 25°C/hr to 100°C, hold 8 hours, ramp up)

Brick

  • Use correct mortar (air-setting, heat-setting, or phosphate-bonded)
  • Brick joints: maximum 1.5-2 mm for precision brick; staggered joints in running bond
  • Expansion joints in brickwork every 2-3 m (ceramic fiber paper or board filler); 3-5 mm per meter of wall
  • Coursing: alternate header and stretcher courses for structural bond

Ceramic Fiber

  • Modules anchored to shell with center stud; compress slightly to ensure tight joints
  • Adjacent modules expand against each other (10-15% compression at installation)
  • Vapor barrier on cold face if process produces condensable gases
  • Coat with rigidizer/hardener on hot face if subject to air velocity

Dry-Out / Pre-Heat Schedule

Refractory contains mix water and water of hydration in cement. If heated too fast, water flashes to steam internally and spalls the lining explosively.

Typical dry-out schedule for castable lining:

  1. 20°C → 100°C at 25°C/h — free water removal
  2. Hold at 100°C for 12-24 hours (per thickness)
  3. 100°C → 300°C at 25°C/h — hydrated water removal
  4. Hold at 300°C for 8 hours
  5. 300°C → operating T at 50-75°C/h — ceramic bond formation

Forced cooling after operation is equally damaging; cool-down at same rates to avoid thermal shock.

Failure Modes

FailureCause
Spalling (explosive)Heating too fast during dry-out; moisture trapped behind dense hot face
Spalling (thermal shock)Rapid temperature changes; silica brick through inversion; wrong material for cyclic duty
Slag attack/penetrationWrong chemistry (acid brick vs basic slag); porosity too high
Abrasion/erosionHigh velocity gas with particulates; fiber or soft brick in high-wear zone
Anchor failureWrong alloy (too low temperature); anchor spacing too wide; corrosion
Hot spots on shellMissing insulation; refractory thin or missing; refractory cracks from thermal cycling
Roof sag/collapseUnsupported span too wide; anchors failed; material creep at high temperature

Refractory Selection by Application

ApplicationHot FaceBack-up
Package boiler, 1000°CFireclay/SiC castable or brickInsulating castable
Fired heater, 900°CHigh-alumina castable (LCC)IFB or insulating castable
Cement rotary kiln, 1450°CBasic brick (magnesite-chrome)High-strength insulating brick
Aluminum melting, 1100°CHigh-alumina low-cement castable, phosphate-bondedInsulating castable
Incinerator, 1200°C with slagSiC or high-alumina brick; phosphate-bonded plasticIFB
Industrial box furnaceCeramic fiber modules— (single layer)
Cyclone/duct, high velocityAbrasion-resistant high-alumina castableInsulating castable

Summary

Refractory lining selection balances temperature capability, chemical resistance (acid vs basic slag), abrasion/velocity, and insulation. Multi-layer designs (dense hot face + insulating back-up) give best service and energy efficiency. Low-cement castables (LCC) are the modern default monolithic; brick is used for rotary kilns and high-temperature processes; ceramic fiber saves energy in cyclic furnaces but cannot take abrasion or direct flame. The most common causes of refractory failure are improper dry-out (explosive spalling), wrong material chemistry for slag, and anchor failures — not material under-specification. Always follow the manufacturer's dry-out temperature schedule strictly.

Related Guides & Tools

Disclaimer: This guide is for educational purposes only. Always consult qualified engineering professionals and applicable codes/standards (ASME, API, ASTM) for engineering design. See full disclaimer.