Laser Absorption Sensing Systems: Challenges, Modeling, and Design Optimization
Системы измерения лазерного поглощения: проблемы, моделирование и оптимизация конструкции
2019-07-05
SCID: 54.1/37rh5q2s
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combustion diagnosticslaser absorption spectroscopynoise reductionsensor system designwavelength modulation spectroscopy
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Abstract (AI)
Laser absorption spectroscopy (LAS) is a promising diagnostic method capable of providing high-bandwidth, species-specific sensing, and highly quantitative measurements. This review aims at providing general guidelines from the perspective of LAS sensor system design for realizing quantitative species diagnostics in combustion-related environments. A brief overview of representative detection limits and bandwidths achieved in different measurement scenarios is first provided to understand measurement needs and identify design targets. Different measurement schemes including direct absorption spectroscopy (DAS), wavelength modulation spectroscopy (WMS), and their variations are discussed and compared in terms of advantages and limitations. Based on the analysis of the major sources of noise including electronic, optical, and environmental noises, strategies of noise reduction and design optimization are categorized and compared. This addresses various means of laser control parameter optimization and data processing algorithms such as baseline extraction, in situ laser characterization, and wavelet analysis. There is still a large gap between the current sensor capabilities and the demands of combustion and engine diagnostic research. This calls for a profound understanding of the underlying fundamentals of a LAS sensing system in terms of optics, spectroscopy, and signal processing.
Key Findings
1
A substantial gap remains between current LAS sensor capabilities and the requirements of combustion and engine diagnostics, necessitating integrated understanding of optics, spectroscopy, and signal processing.
2
Achieved detection limits and bandwidths vary substantially across measurement scenarios, highlighting the need to define application-specific sensor design targets.
3
Baseline extraction, in situ laser characterization, and wavelet analysis are identified as important data-processing strategies for improving LAS measurements.
4
Electronic, optical, and environmental noise are major performance limitations; noise reduction requires coordinated optimization of laser control, optical design, and signal processing.
5
Laser absorption spectroscopy enables high-bandwidth, species-specific, and highly quantitative diagnostics for combustion-related environments.
6
The review compares direct absorption spectroscopy, wavelength modulation spectroscopy, and related schemes, identifying their respective advantages and limitations.
Research Object
laser absorption spectroscopy sensing systems for quantitative species diagnostics in combustion-related environments
Research Subject
sensor-system design challenges, modeling, noise reduction, and design optimization for achieving high-bandwidth, species-specific, quantitative measurements
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2019-07-05
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