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木质纤维素的脱水和干燥创新,以实现能源可持续性和提高林业、农业和海洋资源的利用- 综述。

Innovation in lignocellulosics dewatering and drying for energy sustainability and enhanced utilization of forestry, agriculture, and marine resources - A review.

机构信息

Department of Forest Biomaterials, North Carolina State University, 431 Dan Allen Dr., Raleigh, NC 27695-8005, USA.

Department of Forest Biomaterials, North Carolina State University, 431 Dan Allen Dr., Raleigh, NC 27695-8005, USA; Laboratoire de Physicochimie des Interfaces Complexes, ESPCI Paris, PSL University, 10 rue Vauquelin, 75231 Paris, France.

出版信息

Adv Colloid Interface Sci. 2023 Aug;318:102936. doi: 10.1016/j.cis.2023.102936. Epub 2023 Jun 8.

Abstract

Efficient utilization of forestry, agriculture, and marine resources in various manufacturing sectors requires optimizing fiber transformation, dewatering, and drying energy consumption. These processes play a crucial role in reducing the carbon footprint and boosting sustainability within the circular bioeconomy framework. Despite efforts made in the paper industry to enhance productivity while conserving resources and energy through lower grammage and higher machine speeds, reducing thermal energy consumption during papermaking remains a significant challenge. A key approach to address this challenge lies in increasing dewatering of the fiber web before entering the dryer section of the paper machine. Similarly, the production of high-value-added products derived from alternative lignocellulosic feedstocks, such as nanocellulose and microalgae, requires advanced dewatering techniques for techno-economic viability. This critical and systematic review aims to comprehensively explore the intricate interactions between water and lignocellulosic surfaces, as well as the leading technologies used to enhance dewatering and drying. Recent developments in technologies to reduce water content during papermaking, and advanced dewatering techniques for nanocellulosic and microalgal feedstocks are addressed. Existing research highlights several fundamental and technical challenges spanning from the nano- to macroscopic scales that must be addressed to make lignocellulosics a suitable feedstock option for industry. By identifying alternative strategies to improve water removal, this review intends to accelerate the widespread adoption of lignocellulosics as feasible manufacturing feedstocks. Moreover, this review aims to provide a fundamental understanding of the interactions, associations, and bonding mechanisms between water and cellulose fibers, nanocellulosic materials, and microalgal feedstocks. The findings of this review shed light on critical research directions necessary for advancing the efficient utilization of lignocellulosic resources and accelerating the transition towards sustainable manufacturing practices.

摘要

高效利用林业、农业和海洋资源来推动各个制造领域的发展,需要优化纤维转化、脱水和干燥过程中的能耗。这些工艺在减少碳足迹和推动循环生物经济框架内的可持续性方面发挥着关键作用。尽管造纸行业在提高生产力方面做出了努力,通过降低定量和提高机器速度来节约资源和能源,但在造纸过程中减少热能消耗仍然是一个重大挑战。解决这一挑战的一个关键方法是在纤维网进入造纸机干燥部分之前增加其脱水程度。同样,从替代木质纤维素原料(如纳米纤维素和微藻)生产高附加值产品,也需要先进的脱水技术以实现技术经济可行性。本综述旨在全面探讨水与木质纤维素表面之间的复杂相互作用,以及用于增强脱水和干燥的领先技术。本文重点介绍了在造纸过程中减少水分含量的最新技术进展,以及纳米纤维素和微藻原料的先进脱水技术。现有研究强调了从纳米到宏观尺度的几个基本和技术挑战,这些挑战必须得到解决,才能使木质纤维素成为工业合适的原料选择。通过确定改善水去除的替代策略,本综述旨在加速木质纤维素作为可行制造原料的广泛应用。此外,本综述旨在提供对水与纤维素纤维、纳米纤维素材料和微藻原料之间相互作用、关联和结合机制的基本理解。本文的研究结果为推进木质纤维素资源的有效利用和加速可持续制造实践的转变指明了必要的关键研究方向。

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