| Zone 1: Coal-Ash Impact Zone | Burner throat, coal nozzle tip, and the first refractory-facing surface after the burner outlet | 20–30 m/s near the coal-laden jet, depending on burner design and operating load | High-frequency impact by coarse mineral particles and sliding abrasion caused by turbulent particle trajectories | Coarse ash particles, commonly containing silica, alumina, iron oxides, and other mineral matter; quartz-rich particles are particularly abrasive | Grooving, thinning at the nozzle lip, exposed welds, enlarged openings, and localized refractory loss | Correct burner alignment; reduce turbulence and direct impingement; use abrasion-resistant liners or refractory; repair rounded or enlarged coal passages | Very High |
| Zone 2: Swirl-Vane and Stabilizer Zone | Secondary-air swirl vanes, bluff-body stabilizers, flame holders, and adjacent burner internals | 20–30 m/s in high-shear passages; local velocity can be higher at vane edges | Particle impingement combined with sliding abrasion at sharp edges and flow-separation points | Fine coal dust and ash entrained into secondary-air recirculation zones; elevated temperature may increase oxidation of exposed metal | Rounded vane edges, reduced swirl angle, perforation, metal wastage, and unstable flame attachment | Maintain designed vane geometry; avoid excessive local velocity; apply compatible hardfacing or replace severely thinned vanes; verify air-balance settings | Very High |
| Zone 3: Burner Quarl and Refractory Transition | Refractory throat, quarl surface, burner tile, and the transition between metal hardware and refractory | Approximately 20–30 m/s at the near-wall flow path, with higher local speed where the jet contracts | Abrasive wear, particle impingement, thermal shock, and erosion intensified by poor flame position | Ash particles may soften or partially melt at elevated furnace temperatures, promoting deposits and chemical attack in addition to mechanical wear | Refractory washout, undercutting at joints, exposed anchors, cracking, spalling, and an enlarged or distorted throat | Use dense, abrasion-resistant refractory suitable for the operating temperature; repair open joints; correct flame impingement and maintain proper coal-air distribution | Very High |
| Zone 4: Outer Burner Register and Sleeve | Outer air register, sleeve, annular passages, and exposed burner casing around the coal stream | 20–30 m/s in restricted annular passages; local peaks occur at abrupt steps and misaligned gaps | Sliding abrasion along walls, turbulence-driven particle recirculation, and erosion at geometric discontinuities | Mostly fine ash and unburned coal particles; erosion increases when deposits break away and pass through the annulus | Wall thinning, leakage, edge rounding, distorted air openings, and uneven temperature around the burner perimeter | Eliminate sharp steps and excessive gaps; restore concentricity; control leakage; install replaceable wear liners where access allows | High |
| Zone 5: Adjacent Waterwall and Corner Impact Area | Waterwall tubes, membrane sections, and furnace corners immediately downstream of the burner | Typically 20–30 m/s in the local ash-laden flow path; velocity is strongly affected by burner tilt and furnace aerodynamics | Direct particle impingement, vortex formation, and accelerated wear where the flame or coal jet approaches the wall | Fly ash with variable particle size and mineral composition; deposits can mask active thinning until they detach | Tube-wall grooves, membrane thinning, localized metal loss, ash leakage, and increasing tube metal temperature | Correct burner tilt and alignment; balance coal and air among burners; use protective shields only where they do not disturb combustion; perform thickness mapping | Very High |
| Zone 6: Downstream Convective-Pass Entry | First-turn regions, pendant surfaces, tube banks, and turning zones downstream of the burner belt | Often 20–30 m/s in high-load gas passages; local velocity rises at tube-bank contractions and turns | Erosion at flow turns, tube leading edges, and locations with uneven gas distribution | Fine fly ash; deposits may become sticky when ash constituents soften, causing alternating fouling and erosion | Leading-edge wastage, fin thinning, tube pitting, deposit shields, and irregular gas-side pressure drop | Improve gas-flow distribution; install properly designed shields or wear pads; remove harmful deposits; monitor tube thickness and pressure drop | High |
| Zone 7: Inspection and Monitoring Zone | Burner throat, quarl, waterwall around the burner, and the first downstream turning surfaces | Track operation at 20–30 m/s and compare with measured local velocity or validated flow modeling | Progressive wear caused by cumulative particle impacts; the rate increases with velocity, ash abrasiveness, misalignment, and turbulence | Ash abrasiveness varies with particle hardness, size distribution, concentration, and unburned-carbon content | Increasing differential pressure, abnormal flame shape, elevated CO or unburned carbon, visible hot spots, and repeated refractory repairs | Use visual inspection, ultrasonic thickness measurement, thermography, burner alignment checks, coal-flow testing, and trend-based maintenance planning | Planned Routine |