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Characterization of Impulse Noise and Hazard Analysis of Impulse Noise Induced Hearing Loss using AHAAH Modeling

机译:脉冲噪声的表征和使用AHAAH建模的脉冲噪声引起的听力损失的危害分析

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摘要

Millions of people across the world are suffering from noise induced hearing loss (NIHL), especially under working conditions of either continuous Gaussian or non-Gaussian noise that might affect humanu27s hearing function. Impulse noise is a typical non-Gaussian noise exposure in military and industry, and generates severe hearing loss problem. This study mainly focuses on characterization of impulse noise using digital signal analysis method and prediction of the auditory hazard of impulse noise induced hearing loss by the Auditory Hazard Assessment Algorithm for Humans (AHAAH) modeling. A digital noise exposure system has been developed to produce impulse noises with peak sound pressure level (SPL) up to 160 dB. The characterization of impulse noise generated by the system has been investigated and analyzed in both time and frequency domains. Furthermore, the effects of key parameters of impulse noise on auditory risk unit (ARU) are investigated using both simulated and experimental measured impulse noise signals in the AHAAH model. The results showed that the ARUs increased monotonically with the peak pressure (both P+ and P-) increasing. With increasing of the time duration, the ARUs increased first and then decreased, and the peak of ARUs appeared at about t = 0.2 ms (for both t+ and t-). In addition, the auditory hazard of experimental measured impulse noises signals demonstrated a monotonically increasing relationship between ARUs and system voltages.
机译:全世界有数百万人正遭受噪声诱发的听力损失(NIHL),尤其是在连续高斯或非高斯噪声的工作条件下,这可能会影响人类的听力功能。脉冲噪声是军事和工业中典型的非高斯噪声暴露,会产生严重的听力损失问题。这项研究主要致力于使用数字信号分析方法表征脉冲噪声,并通过人类听觉危害评估算法(AHAAH)建模预测脉冲噪声引起的听力损失的听觉危害。已经开发出一种数字噪声暴露系统,以产生峰值声压级(SPL)高达160 dB的脉冲噪声。已经在时域和频域中研究和分析了系统产生的脉冲噪声的特征。此外,使用AHAAH模型中的模拟和实验测得的脉冲噪声信号,研究了脉冲噪声关键参数对听觉风险单位(ARU)的影响。结果表明,随着峰值压力(P +和P-)的增加,ARUs单调增加。随着持续时间的增加,ARU先上升然后下降,并且ARU的峰值出现在大约t = 0.2 ms处(对于t +和t-而言)。此外,实验测得的脉冲噪声信号的听觉危害表明ARU与系统电压之间的关系呈单调增加。

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    Wu Qing;

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