2016Biofuels Bioproducts and BiorefiningOpen access

Evaluating industrial drying of cellulosic feedstock for bioenergy: a systems approach

Shahab Sokhansanj, Erin G. Webb

Open full text 12 citations

Abstract

Abstract A large portion of herbaceous and woody biomass must be dried following harvest. Natural field drying is possible if the weather cooperates. Mechanical drying is a certain way of reducing the moisture content of biomass. This paper presents an engineering analysis applied to drying of 10 Mg h−1 (exit mass flow) of biomass with an initial moisture content ranging from 25% to 70% (wet mass basis) down to 10% exit moisture content. The requirement for hog fuel to supply heat to the dryer increases from 0.5 dry Mg to 3.8 dry Mg h−1 with the increased initial moisture of biomass. The capital cost for the entire drying system including equipment for biomass size reduction, pollution control, dryer, and biomass combustor sums up to more than $4.7 million. The operating cost (electricity, labor, repair, and maintenance) minus fuel cost for the dryer alone amount to 4.05 Mg−1 of dried biomass. For 50% moisture content biomass, the cost of fuel to heat the drying air is $7.41/ dry ton of biomass for a total $11.46 per dry ton at 10% moisture content. The fuel cost ranges from a low of $2.21 to a high of $18.54 for a biomass at an initial moisture content of 25% to 75%, respectively. This wide range in fuel cost indicates the extreme sensitivity of the drying cost to initial moisture content of biomass and to ambient air humidity and temperature and highlights the significance of field drying for a cost effective drying operation. © 2016 Society of Chemical Industry and John Wiley & Sons, Ltd

Open-access reader

About this research paper

What this paper is about

Abstract A large portion of herbaceous and woody biomass must be dried following harvest. Natural field drying is possible if the weather cooperates. Mechanical drying is a certain way of reducing the moisture content of biomass. This paper presents an engineering analysis applied to drying of 10 Mg h−1 (exit mass flow) of biomass with an initial moisture content ranging from 25% to 70% (wet mass basis) down to 10% exit moisture content. The requirement for hog fuel to supply heat to the dryer increases from 0.5 dry Mg to 3.8 dry Mg h−1 with the increased initial moisture of biomass. The capital cost for the entire drying system including equipment for biomass size reduction, pollution control, dryer, and biomass combustor sums up to more than $4.7 million. The operating cost (electricity, labor, repair, and maintenance) minus fuel cost for the dryer alone amount to 4.05 Mg−1 of dried biomass. For 50% moisture content biomass, the cost of fuel to heat the drying air is $7.41/ dry ton of biomass for a total $11.46 per dry ton at 10% moisture content. The fuel cost ranges from a low of $2.21 to a high of $18.54 for a biomass at an initial moisture content of 25% to 75%, respectively. This wide range in fuel cost indicates the extreme sensitivity of the drying cost to initial moisture content of biomass and to ambient air humidity and temperature and highlights the significance of field drying for a cost effective drying operation. © 2016 Society of Chemical Industry and John Wiley & Sons, Ltd

Why it matters

OpenAlex reports 12 citations for this work. Citation counts describe recorded attention and do not establish research quality.

Key contribution

A contribution statement is not available in the OpenAlex record.

Method / approach

Method details are not available in the OpenAlex metadata.

Main findings

Findings are not separately available in the OpenAlex metadata.

Limitations

Limitations are not available in the OpenAlex metadata.

Applications

Application details are not available in the OpenAlex metadata.

Available abstract

Abstract A large portion of herbaceous and woody biomass must be dried following harvest. Natural field drying is possible if the weather cooperates. Mechanical drying is a certain way of reducing the moisture content of biomass. This paper presents an engineering analysis applied to drying of 10 Mg h−1 (exit mass flow) of biomass with an initial moisture content ranging from 25% to 70% (wet mass basis) down to 10% exit moisture content. The requirement for hog fuel to supply heat to the dryer increases from 0.5 dry Mg to 3.8 dry Mg h−1 with the increased initial moisture of biomass. The capital cost for the entire drying system including equipment for biomass size reduction, pollution control, dryer, and biomass combustor sums up to more than $4.7 million. The operating cost (electricity, labor, repair, and maintenance) minus fuel cost for the dryer alone amount to 4.05 Mg−1 of dried biomass. For 50% moisture content biomass, the cost of fuel to heat the drying air is $7.41/ dry ton of biomass for a total $11.46 per dry ton at 10% moisture content. The fuel cost ranges from a low of $2.21 to a high of $18.54 for a biomass at an initial moisture content of 25% to 75%, respectively. This wide range in fuel cost indicates the extreme sensitivity of the drying cost to initial moisture content of biomass and to ambient air humidity and temperature and highlights the significance of field drying for a cost effective drying operation. © 2016 Society of Chemical Industry and John Wiley & Sons, Ltd

Key concepts: Water content, Biomass (ecology), Environmental science, Bioenergy, Moisture, Cellulosic ethanol, Pulp and paper industry, Raw material

Related papers

Back to paper searchBrowse research topicsOriginal source
Evaluating industrial drying of cellulosic feedstock for bioenergy: a systems approach — Research Paper | ScholarLens