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    National Bioproducts Institute (South Africa)

    企业
    153论文总数
    392引用总数

    论文量&引用量时间轴

    机构学者

    排序
    Ulrich Hirn
    Ulrich Hirn
    National Bioproducts Institute (South Africa)
    论文:20引用:0H-index:0
    Wolfgang Bauer
    Wolfgang Bauer
    Graz University of Technology
    论文:18引用:0H-index:0
    Robert Schennach
    Robert Schennach
    Gill Chair of Chemistry and Chemical Engineering, Lamar University
    论文:11引用:0H-index:0
    Roger Ruan
    Roger Ruan
    Department of Bioproducts and Biosystems Engineering, College of Science & Engineering, University of Minnesota;Center for Biorefining, University of Minnesota;Nanchang University
    论文:8引用:0H-index:0
    Christian Teichert
    Christian Teichert
    Institute of Physics, Montanuniversität Leoben
    论文:8引用:0H-index:0
    Franz J. Schmied
    Franz J. Schmied
    Montanuniversitat Leoben
    论文:7引用:0H-index:0
    Hirn Ulrich
    Hirn Ulrich
    Christian Doppler Laboratory for Fiber Swelling and Paper Performance, Graz University of Technology
    论文:6引用:0H-index:0
    Rene Eckhart
    Rene Eckhart
    Institute of Bioproducts and Paper Technology, Graz University of Technology
    论文:6引用:0H-index:0
    Paul Chen
    Paul Chen
    Department of Bioproducts and Biosystems Engineering, University of Minnesota
    论文:5引用:0H-index:0

    论文(153)

    年份
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    1Machine Learning-Driven Solvent Screening for Biobased 2,3-Butanediol Extraction
    Justin P. Edaugal, Difan Zhang, Tyrell S. A. Lewis,Dupeng Liu, Vassiliki-Alexandra Glezakou,Ning Sun

    Biobased 2,3-butanediol (2,3-BDO) is a valuable biomass-derived chemical due to its versatility in being transformed into a wide variety of products. However, the separation and purification of 2,3-BDO from fermentation broth remain a significant challenge owing to its high boiling point and hydrophilic nature. Herein, we developed a machine learning (ML)-based screening workflow that uses molecular calculations as training data and requires only a small number of experimental measurements for validation to identify alternative solvent candidates for the liquid-liquid extraction (LLE) of 2,3-BDO from aqueous solution. In particular, 130 density functional theory (DFT) calculations with the implicit solvation method not only built a correlation between the computational partition coefficient and the experimental distribution coefficient of 2,3-BDO but also parameterized an Extra-Trees ML model to screen the distribution coefficient for a wider range of 6717 organic solvents. The experimental measurements of only 24 solvents were needed to validate the computational results. A list of 50 prioritized solvents was proposed for 2,3-BDO LLE, and seven additional experimental measurements were conducted to further verify our selected solvents. The impact of the extraction temperature and solvent-to-feed ratio was also investigated for selected solvents in experiments. This work suggested alternative solvents for 2,3-BDO LLE and proposed a versatile workflow that requires fewer experiments and can be applied to a broader range of LLE studies.

    2025INDUSTRIAL & ENGINEERING CHEMISTRY RESEARCH(2025)
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    2Production and Recycling of Dope-Dyed Lyocell Fibers with Pigment Dyes
    Nicole Nygren, Marike Langhans, Senni Heimala, Helena Westerback,Inge Schlapp-Hackl,Michael Hummel
    2025ACS Sustainable Resource Management(2025)
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    3Unveiling Feedstock Variability: Insights into Corn Stover Conversion – Part I: Physicochemical Properties and Self-Degradation
    Xihui Kang,Chang Dou,Kenneth L. Sale, Ling Ding,Yining Zeng, Kennedy A. Goliman,Bryon S. Donohoe,Ning Sun

    Transforming agricultural waste into biofuels and bioproducts is crucial to advancing a low-carbon bioeconomy. However, the inherent variability in the composition and quality introduces uncertainties in the conversion efficiency and poses challenges in process development. Through integrating a high-throughput conversion system, material characterization techniques, and advanced data analysis tools, this study investigates the variability of corn stover and its subsequent impacts on carbohydrate conversion. The findings reveal that indoor storage substantially reduces the moisture and ash content and soil contamination, while other properties remain largely unchanged. Self-degradation due to microbial activity during storage decreases the carbohydrate content of corn stover but enhances glucose and xylose yields. A negative correlation is observed between sugar yields and lignin content across samples with varying ash and moisture content. The inhibitory effect of lignin diminishes in self-degraded samples likely due to the disrupted cell wall structure. Although self-degradation slightly increases cellulose crystallinity, no strong correlation was observed between the crystallinity and sugar yield. Hot water pretreatment under mild conditions effectively mitigates inherent variability, consistently improving the sugar yield from corn stover by up to 50%. By elucidating the feedstock variability and its impact on convertibility, these findings offer valuable insights into appropriate feedstock handling and management, highlighting potential strategies to address variability challenges.

    2025ACS SUSTAINABLE CHEMISTRY & ENGINEERING(2025)
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    4Wakate Colosseum for Bacteriology
    Satoshi Shibata, Yuki Wakabayashi, ○水谷 雅希, 宮腰 かおり, 古賀 隆一, 武馬,Masaki Mizutani, Kaori Miyakoshi,Ryuichi Koga, Takema Fukatsu, Shigeyuki Kakizawa
    2023Nippon Saikingaku Zasshi(2023)
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    5Trajectory Planning and Dynamics Analysis of Greenhouse Parallel Transplanting Robot
    Qizhi Yang, Cuiping Jia,Mengtao Sun,Xiao‐Qi Zhao,Mingsheng He,Hanping Mao,Jianping Hu,Min Addy
    2020引用:1
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    合作机构(72)

    双城骨科合作论文 40
    中国科学院合作论文 12
    莱奥本大学合作论文 8
    马来西亚工艺大学合作论文 7
    明尼苏达大学合作论文 4
    都柏林大学学院合作论文 4
    University of Minnesota System合作论文 3
    Agritec (Czechia)合作论文 3
    纽约州立大学合作论文 3
    H.B. Fuller (United States)合作论文 2

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