Controlled nanoparticle growth by vapour condensation

T. Sitek, Klaudia Köbölová, Ján Poláčik, Stela Valovič
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Abstract

Domestic boilers are generally characterized by higher emissions of airborne dust. A commonly used secondary method of reducing emissions in the energy sector is a cyclone. However, its wider expansion in households is limited by, among other things, the low efficiency of particle capture below 1 micrometre in diameter, and it is these sizes that dominate in the flue gas of domestic heating devices. By sharply lowering the temperature of the flue gas below the dew point of the vapour, it condenses on all available surfaces. This effect could increase the diameter of the particles, which could be separated with higher efficiency. A change in the numerical distribution of the fine particles with a temperature and thus the supersaturation of the flue gas was sought. The flue gas passed through an impinger filled with water and isopropyl alcohol at three different temperature regimes. The impinger also served to capture the condensate, which was then subjected to morphology analysis using an electron microscope and determination of particle distribution in the condensate.
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通过蒸汽冷凝控制纳米颗粒生长
家用锅炉的普遍特点是空气中粉尘的排放量较高。在能源部门减少排放的一种常用的二次方法是旋风。然而,除其他因素外,其在家庭中的更广泛扩展受到直径小于1微米的颗粒捕获效率低的限制,并且正是这些尺寸在家庭供暖装置的烟气中占主导地位。通过将烟气的温度急剧降低到蒸汽的露点以下,它在所有可用的表面上凝结。这种作用可以增加颗粒的直径,从而提高分离效率。细颗粒的数值分布随温度的变化而变化,从而寻求烟气的过饱和。烟气在三种不同温度下通过充满水和异丙醇的冲击器。撞击器还用于捕获冷凝水,然后使用电子显微镜对冷凝水进行形貌分析并确定冷凝水中的颗粒分布。
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