Slagging Characteristics on the Superheaters of a 12 MW Biomass-Fired Boiler

Характеристики шлакообразования на поверхностях перегревателей 12 МВт котла на биомассе
Mohamed Pourkashanian, Lin Ma, Xuebin Wang, Yang Liu, Haiyu Liu, Yanqing Niu, Hongzhang Tan, Zhengning Liu, Tongmo Xu
2010-08-23

X-ray diffraction (XRD)X-ray fluorescence (XRF)alkali-associated deposits (K, Na, Cl) and aluminosilicatesbiomass-fired boilersuperheater slagging
In an attempt to understand the problem of severe slagging in biomass-fired boilers, slags formed on the fourth-, second-, and first-stage superheaters in a 12 MW biomass-fired grate furnace have been collected, sampled, and analyzed using X-ray fluorescence (XRF) and X-ray diffraction (XRD) techniques. The slag collected on each superheater has a unique morphology and structure. The slag on the fourth-stage superheater is loose and porous, while on the secondary and the primary superheaters, the slag shows a clear layered structure of different colors and levels of hardness. Aluminosilicate is the major component in the slag on the fourth-stage superheater, which is formed by Si, Al, and alkali species. On both the secondary and primary superheaters, the sticky sylvine, potassium calcium sulfate, and aphthitalite in the bottom layer trap coarse, large particles, resulting in further slagging. In the alternating layers, the particles containing high concentrations of K, Na, and Cl form the initial deposit layer, the yellow layer in the secondary superheater. Then, it traps the coarse, large particles containing high Si, Al, Ca, Mg, and Fe to form the brown layer. Similarly, the particles in the pale-yellow layer of the primary superheater containing high concentrations of K, Na, and Cl form the initial deposit layer, and then, it traps the coarse, large particles containing high Si, Al, Ca, Mg, and Fe to form the black layer. Accompanied by the periodic blowing, the alternating layer is formed and the slag gradually becomes thicker.
1
Alternating layers form when initial deposits rich in K, Na, and Cl (yellow or pale-yellow layers) trap coarse particles high in Si, Al, Ca, Mg, and Fe, creating subsequent brown or black layers.
2
Fourth-stage superheater slag is loose and porous and is dominated by aluminosilicate formed from Si, Al, and alkali species.
3
Periodic blowing contributes to formation of alternating layers and progressive thickening of the slag deposits on superheaters.
4
Secondary and primary superheater slags display clear layered structures; sticky sylvine, potassium calcium sulfate, and aphthitalite in the bottom layer trap coarse particles and promote further slagging.
5
Slags from fourth-, second-, and first-stage superheaters in a 12 MW biomass-fired grate furnace exhibit distinct morphologies and structures.

Slags deposited on the fourth-, second-, and first-stage superheaters of a 12 MW biomass-fired grate furnace

Slagging characteristics including morphology, layered structure, mineralogical and chemical composition (Aluminosilicates, sylvite, potassium calcium sulfate, aphthitalite, K/Na/Cl-rich and Si/Al/Ca/Mg/Fe-bearing particles) and formation mechanisms across superheater stages

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2010-08-23
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Mohamed Pourkashanian
Lin Ma
Xuebin Wang
Yang Liu
Haiyu Liu
Yanqing Niu
Hongzhang Tan
Zhengning Liu
Tongmo Xu
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