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Toward gas-phase controlled mass transfer in micro-porous membrane contactors for recovery and concentration of dissolved methane in the gas phase

机译:在微孔膜接触器中进行气相控制的传质,以回收和浓缩气相中的溶解甲烷

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摘要

A micro-porous hollow fibre membrane contactor (HFMC) operated in sweep-gas mode has been studied to enable the recovery of dissolved methane from water in concentrated form. At high sweep-gas flow rates, up to 97% dissolved methane removal efficiency is achievable which is sufficient to achieve carbon neutrality (around 88%). An increase in methane composition of the recovered sweep-gas was achievable through two primary mechanisms: (i) an increase in liquid velocity which improved dissolved methane mass transfer into the gas phase; and (ii) a reduction in gas flow which lowered dilution from the receiving gas phase. It was posited that further refinement of the methane content was provided through counter-diffusion of the nitrogen sweep-gas into the liquid phase. Within the boundary conditions studied, the methane composition of the recovered gas phase exceeded the threshold for use in micro-turbines for electricity production. However, reducing the gas-to-liquid ratio to enhance gas phase methane purity introduced gas-phase controlled mass transfer which constrained removal efficiency. Whilst this reduction in removal efficiency can be compensated for by extending path length (i.e. more than one module in series), it is suggested that the gas-phase controlled conditions encountered were also a product of poor shell-side dispersion rather than an approach toward the limiting theoretical gas-to-liquid ratio. This implies that further optimisation can be ascertained through improved membrane contactor design. Importantly, this study demonstrates that micro-porous hollow fibre membrane contactors provide a compact process for recovery of dissolved methane in sufficient concentration for re-use.
机译:已经研究了以吹扫气模式运行的微孔中空纤维膜接触器(HFMC),能够从水中以浓缩形式回收溶解的甲烷。在高吹扫气流速下,可实现高达97%的溶解甲烷去除效率,这足以实现碳中和(约88%)。回收的吹扫气中甲烷成分的增加可通过两个主要机理实现:(i)液体速度的提高,这改善了溶解甲烷向气相的传质; (ii)减少气流,从而降低了来自接收气相的稀释度。假定通过将氮气吹扫气反向扩散到液相中,可以进一步提高甲烷含量。在研究的边界条件内,回收气相的甲烷组成超过了用于微型涡轮机发电的阈值。然而,降低气液比以提高气相甲烷纯度引入了气相控制的传质,这限制了去除效率。虽然去除效率的降低可以通过延长路径长度(即,串联一个以上的模块)来弥补,但建议遇到的气相控制条件也是壳侧分散性较差的产物,而不是一种解决方法。极限理论气液比。这意味着可以通过改进的膜接触器设计来确定进一步的优化。重要的是,这项研究表明,微孔中空纤维膜接触器提供了一种紧凑的方法,可回收足够浓度的溶解甲烷,以供再次使用。

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