Dephosphorization Behavior of High-Phosphorus Oolitic Hematite-Solid Waste Containing Carbon Briquettes during the Process of Direct Reduction-Magnetic Separation

In this paper, the process of direct reduction roasting using magnetic separation to produce direct reduction iron (DRI) from high-phosphorus oolitic hematite, using coal slime and blast furnace dust as reductant, is investigated. The possible use of slime coal and blast furnace dust as reductant an...

Full description

Bibliographic Details
Main Authors: Yunye Cao, Yiran Zhang, Tichang Sun
Format: Article
Language:English
Published: MDPI AG 2018-11-01
Series:Metals
Subjects:
DRI
Online Access:https://www.mdpi.com/2075-4701/8/11/897
id doaj-c6e0050cf9554c80a3bd9ef40ff0e94d
record_format Article
spelling doaj-c6e0050cf9554c80a3bd9ef40ff0e94d2020-11-24T21:41:37ZengMDPI AGMetals2075-47012018-11-0181189710.3390/met8110897met8110897Dephosphorization Behavior of High-Phosphorus Oolitic Hematite-Solid Waste Containing Carbon Briquettes during the Process of Direct Reduction-Magnetic SeparationYunye Cao0Yiran Zhang1Tichang Sun2Key Laboratory of Green Process and Engineering, Institute of Process Engineering, Chinese Academy of Sciences, Beijing 100190, ChinaNBK Mining Engineering, University of British Columbia, Vancouver, BC V6T 1Z4, CanadaSchool of Civil and Resources Engineering, University of Science and Technology Beijing, Beijing 100083, ChinaIn this paper, the process of direct reduction roasting using magnetic separation to produce direct reduction iron (DRI) from high-phosphorus oolitic hematite, using coal slime and blast furnace dust as reductant, is investigated. The possible use of slime coal and blast furnace dust as reductant and the dephosphorization behavior during the process of direct reduction was studied. Experimental results showed that both blast furnace dust and coal slime can be used as reductant under certain conditions in the process. The dephosphorization mechanism of blast furnace dust and coal slime were investigated by X-ray diffraction (XRD) and scanning electron microscope (SEM)-energy dispersive X-ray spectroscopy (EDS). A DRI with 91.88 wt. % iron grade, 88.38% iron recovery and 0.072 wt. % P can be obtained with 30 wt. % blast furnace dust as reductant. The program not only used blast furnace dust but also recovered iron from blast furnace dust and high-phosphorus oolitic hematite. The analysis results revealed that phosphorus is distributed in gangue mineral and fluorapatite when blast furnace dust is used as reductant. Phosphorus-bearing minerals were not reduced to phosphorus element when the blast furnace dust was the reductant, but part of the fluorapatite reduced to phosphorus which smelt into metallic iron with coal slime as reductant. This led to a high phosphorus content of DRI. This research could provide support to the idea concept for recycling of carbon-containing solid waste and to assist the effective recovery of refractory iron ore by direct reduction⁻magnetic separation.https://www.mdpi.com/2075-4701/8/11/897dephosphorizationblast furnace dustcoal slimehigh-phosphorus oolitic hematiteDRI
collection DOAJ
language English
format Article
sources DOAJ
author Yunye Cao
Yiran Zhang
Tichang Sun
spellingShingle Yunye Cao
Yiran Zhang
Tichang Sun
Dephosphorization Behavior of High-Phosphorus Oolitic Hematite-Solid Waste Containing Carbon Briquettes during the Process of Direct Reduction-Magnetic Separation
Metals
dephosphorization
blast furnace dust
coal slime
high-phosphorus oolitic hematite
DRI
author_facet Yunye Cao
Yiran Zhang
Tichang Sun
author_sort Yunye Cao
title Dephosphorization Behavior of High-Phosphorus Oolitic Hematite-Solid Waste Containing Carbon Briquettes during the Process of Direct Reduction-Magnetic Separation
title_short Dephosphorization Behavior of High-Phosphorus Oolitic Hematite-Solid Waste Containing Carbon Briquettes during the Process of Direct Reduction-Magnetic Separation
title_full Dephosphorization Behavior of High-Phosphorus Oolitic Hematite-Solid Waste Containing Carbon Briquettes during the Process of Direct Reduction-Magnetic Separation
title_fullStr Dephosphorization Behavior of High-Phosphorus Oolitic Hematite-Solid Waste Containing Carbon Briquettes during the Process of Direct Reduction-Magnetic Separation
title_full_unstemmed Dephosphorization Behavior of High-Phosphorus Oolitic Hematite-Solid Waste Containing Carbon Briquettes during the Process of Direct Reduction-Magnetic Separation
title_sort dephosphorization behavior of high-phosphorus oolitic hematite-solid waste containing carbon briquettes during the process of direct reduction-magnetic separation
publisher MDPI AG
series Metals
issn 2075-4701
publishDate 2018-11-01
description In this paper, the process of direct reduction roasting using magnetic separation to produce direct reduction iron (DRI) from high-phosphorus oolitic hematite, using coal slime and blast furnace dust as reductant, is investigated. The possible use of slime coal and blast furnace dust as reductant and the dephosphorization behavior during the process of direct reduction was studied. Experimental results showed that both blast furnace dust and coal slime can be used as reductant under certain conditions in the process. The dephosphorization mechanism of blast furnace dust and coal slime were investigated by X-ray diffraction (XRD) and scanning electron microscope (SEM)-energy dispersive X-ray spectroscopy (EDS). A DRI with 91.88 wt. % iron grade, 88.38% iron recovery and 0.072 wt. % P can be obtained with 30 wt. % blast furnace dust as reductant. The program not only used blast furnace dust but also recovered iron from blast furnace dust and high-phosphorus oolitic hematite. The analysis results revealed that phosphorus is distributed in gangue mineral and fluorapatite when blast furnace dust is used as reductant. Phosphorus-bearing minerals were not reduced to phosphorus element when the blast furnace dust was the reductant, but part of the fluorapatite reduced to phosphorus which smelt into metallic iron with coal slime as reductant. This led to a high phosphorus content of DRI. This research could provide support to the idea concept for recycling of carbon-containing solid waste and to assist the effective recovery of refractory iron ore by direct reduction⁻magnetic separation.
topic dephosphorization
blast furnace dust
coal slime
high-phosphorus oolitic hematite
DRI
url https://www.mdpi.com/2075-4701/8/11/897
work_keys_str_mv AT yunyecao dephosphorizationbehaviorofhighphosphorusoolitichematitesolidwastecontainingcarbonbriquettesduringtheprocessofdirectreductionmagneticseparation
AT yiranzhang dephosphorizationbehaviorofhighphosphorusoolitichematitesolidwastecontainingcarbonbriquettesduringtheprocessofdirectreductionmagneticseparation
AT tichangsun dephosphorizationbehaviorofhighphosphorusoolitichematitesolidwastecontainingcarbonbriquettesduringtheprocessofdirectreductionmagneticseparation
_version_ 1725920955178418176