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2022 Journal Article Powder deposition mechanism during powder spreading with different spreader geometries in powder bed fusion additive manufacturingWang, Lin, Zhou, Zongyan, Li, Erlei, Shen, Haopeng and Yu, Aibing (2022). Powder deposition mechanism during powder spreading with different spreader geometries in powder bed fusion additive manufacturing. Powder Technology, 395, 802-810. doi: 10.1016/j.powtec.2021.10.017 |
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2021 Journal Article Effects of spreader geometry on powder spreading process in powder bed additive manufacturingWang, Lin, Yu, Aibing, Li, Erlei, Shen, Haopeng and Zhou, Zongyan (2021). Effects of spreader geometry on powder spreading process in powder bed additive manufacturing. Powder Technology, 384, 211-222. doi: 10.1016/j.powtec.2021.02.022 |
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2021 Journal Article A three-phase model for simulation of heat transfer and melt pool behaviour in laser powder bed fusion processLi, E. L., Wang, L., Yu, A. B. and Zhou, Z. Y. (2021). A three-phase model for simulation of heat transfer and melt pool behaviour in laser powder bed fusion process. Powder Technology, 381, 298-312. doi: 10.1016/j.powtec.2020.11.061 |
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2021 Conference Publication Investigation of laser-powder interaction in laser powder bed fusion process in additive manufacturingLi, Erlei, Wang, Lin, Zou, Ruiping, Yu, Aibing and Zhou, Zongyan (2021). Investigation of laser-powder interaction in laser powder bed fusion process in additive manufacturing. Powders & Grains 2021 – 9th International Conference on Micromechanics on Granular Media, Online, July - August 2021. Les Ulis, Cedex France: EDP Sciences. doi: 10.1051/epjconf/202124912002 |
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2020 Journal Article Adhesion effects on spreading of metal powders in selective laser meltingWang, L., Li, E. L., Shen, H., Zou, R. P., Yu, A. B. and Zhou, Z. Y. (2020). Adhesion effects on spreading of metal powders in selective laser melting. Powder Technology, 363, 602-610. doi: 10.1016/j.powtec.2019.12.048 |
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2020 Journal Article Studies on the fluidization performance of a novel fluidized bed reactor for iron ore suspension roastingTang, Zhidong, Gao, Peng, Sun, Yongsheng, Han, Yuexin, Li, Erlei, Chen, Jia and Zhang, Yahui (2020). Studies on the fluidization performance of a novel fluidized bed reactor for iron ore suspension roasting. Powder Technology, 360, 649-657. doi: 10.1016/j.powtec.2019.09.092 |
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2019 Journal Article Fluidization characteristics of U-Typed reduction chamber with pressure fluctuation method = 压力脉动法探究U型还原室内床层流化特性Tang, Zhi-Dong, Han, Yue-Xin, Gao, Peng and Li, Er-Lei (2019). Fluidization characteristics of U-Typed reduction chamber with pressure fluctuation method = 压力脉动法探究U型还原室内床层流化特性. Dongbei Daxue Xuebao/Journal of Northeastern University, 40 (8), 1160-1165. doi: 10.12068/j.issn.1005-3026.2019.08.018 |
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2019 Journal Article Fluidization characteristics of a U-type reduction chamber in a suspension roasterTang, Zhidong, Han, Yuexin, Gao, Peng and Li, Erlei (2019). Fluidization characteristics of a U-type reduction chamber in a suspension roaster. Powder Technology, 345, 64-73. doi: 10.1016/j.powtec.2018.12.088 |
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2019 Journal Article A pressure drop model of U-typed reduction chamber for iron ore suspension roastingGao, Peng, Tang, Zhidong, Han, Yuexin, Li, Erlei and Zhang, Xiaolong (2019). A pressure drop model of U-typed reduction chamber for iron ore suspension roasting. Powder Technology, 343, 255-261. doi: 10.1016/j.powtec.2018.11.020 |
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2019 Conference Publication Particle scale numerical modelling of heat transfer and melt pool dynamics in selective laser meltingLi, Erlei, Zou, Ruiping, Yu, Aibing and Zhou, Zongyan (2019). Particle scale numerical modelling of heat transfer and melt pool dynamics in selective laser melting. Sim-AM 2019, Pavia, Italy, 11-13 September 2019. Barcelona, Spain: International Centre for Numerical Methods in Engineering (CIMNE). |
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2018 Journal Article Effect of acidic activators on the flotation of oxidized pyrrhotiteLiu, Jie, Li, Er-lei, Jiang, Kai, Li, Yan-jun and Han, Yue-xin (2018). Effect of acidic activators on the flotation of oxidized pyrrhotite. Minerals Engineering, 120, 75-79. doi: 10.1016/j.mineng.2018.02.017 |