评估人类健康风险:可变空气质量指数对非对称肺活量计流量的影响

IF 2.9 4区 环境科学与生态学 Q3 ENVIRONMENTAL SCIENCES
Digamber Singh, Abdullah Y. Usmani
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引用次数: 0

摘要

职业和环境污染物的增加对人类健康构成重大威胁,特别是使慢性呼吸道疾病恶化。在全球范围内,报告的CRD死亡人数为400万(Momtazmanesh等人)。临床医学59,2023)。本研究调查了暴露于不利的空气质量指数(AQI)水平对呼吸健康的影响,重点研究了在流速为秦= 10 l/min的自然吸气时的非对称肺活量测定流量。在这里,我们采用数字成像技术,开发了一个计算机人类呼吸道模型,涵盖了一个健康男性个体的第7分岔。结果表明,气流和颗粒的动力学,特别是湍流区,影响颗粒在气道中的沉积。因此,上气道和分叉区具有更高的2.5 μm和10 μm细颗粒沉积效率,从而成为呼吸系统疾病的热点。此外,为了量化内部流动特性,我们使用了一组湍流模型,并通过离散相模型(DPM)计算了细颗粒的轨迹。粒子物理的局部定量量化侧重于不同时刻t = 1.5 s、2.1s和2.5 s的沉积效率,并辅以对内部流动特征的了解,通过区域沉积效率来描述和量化颗粒,而流动物理则通过表面流线、湍流动能、湍流强度和q准则来描述。这些发现对慢性呼吸系统疾病(CRD)的有效诊断和管理具有重要意义,为空气质量、气流动力学和呼吸系统健康之间复杂的相互作用提供了有价值的见解。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Assessing human health risks: impact of variable air quality index on asymmetric spirometry flow

The escalation of occupational and environmental pollutants poses a significant threat to human health, particularly exacerbating chronic respiratory diseases (CRD). Globally, CRD account for 4.0 million reported deaths (Momtazmanesh et al. EClinicalMedicine 59, 2023). This study investigates the repercussions of exposure to unfavourable Air Quality Index (AQI) levels on respiratory health, focusing on asymmetric spirometry flow during natural inspiration at a flow rate of Qin = 10 l/min. Here, employing digital imaging techniques, we developed an in-silico human respiratory tract model, encompassing up to the 7th bifurcation of a healthy male individual. The results reveal that the dynamics of inspired airflow and particles, particularly in turbulent regions, influence particle deposition in the airways. Thus, the upper airways and bifurcations region have higher deposition efficiency of fine particles ~ 2.5 and 10 μm, consequently creating hotspots for respiratory illnesses. Moreover, to quantify the internal flow characteristics, we utilised a set turbulence model, and the trajectory of fine particles was computed by discrete phase model (DPM). The localised quantitative quantification of particle physics focuses on deposition efficiency at different time instants, t = 1.5 s, 2.1s and 2.5 s, complemented by insights into internal flow features, particles are depicted and quantified through regional deposition efficiency, while flow physics is presented by, surface streamlines, turbulent kinetic energy, turbulence intensity and Q-criterion. These findings have a significant implication in effective diagnosis and management of chronic respiratory diseases (CRD), providing valuable insights into the intricate interplay between air quality, airflow dynamics, and respiratory health.

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来源期刊
Air Quality Atmosphere and Health
Air Quality Atmosphere and Health ENVIRONMENTAL SCIENCES-
CiteScore
8.80
自引率
2.00%
发文量
146
审稿时长
>12 weeks
期刊介绍: Air Quality, Atmosphere, and Health is a multidisciplinary journal which, by its very name, illustrates the broad range of work it publishes and which focuses on atmospheric consequences of human activities and their implications for human and ecological health. It offers research papers, critical literature reviews and commentaries, as well as special issues devoted to topical subjects or themes. International in scope, the journal presents papers that inform and stimulate a global readership, as the topic addressed are global in their import. Consequently, we do not encourage submission of papers involving local data that relate to local problems. Unless they demonstrate wide applicability, these are better submitted to national or regional journals. Air Quality, Atmosphere & Health addresses such topics as acid precipitation; airborne particulate matter; air quality monitoring and management; exposure assessment; risk assessment; indoor air quality; atmospheric chemistry; atmospheric modeling and prediction; air pollution climatology; climate change and air quality; air pollution measurement; atmospheric impact assessment; forest-fire emissions; atmospheric science; greenhouse gases; health and ecological effects; clean air technology; regional and global change and satellite measurements. This journal benefits a diverse audience of researchers, public health officials and policy makers addressing problems that call for solutions based in evidence from atmospheric and exposure assessment scientists, epidemiologists, and risk assessors. Publication in the journal affords the opportunity to reach beyond defined disciplinary niches to this broader readership.
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