Wey-Wey Su, Yiming Ding, Christopher L. Strand, Ronald K. Hanson
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Then, to extend the utility of the collected data across intermediate temperatures, a pseudo-line-list (PLL) absorbance model was generated through a simultaneous fit of line-by-line intensities and lower-state energies to the measured cross sections. This PLL model was able to replicate the measurements within 3% across most of the spectral range and within 8% around the extremely sharp Q-branch feature present at room temperature. Cross-validation was then performed by re-fitting the PLL excluding the 800 K data set and demonstrated that the PLL approach is effective in interpolating between measured absorption cross sections at discrete temperatures. Finally, the additional room-temperature measurements from 1 to 35 atm were collected in a high-pressure static cell in nitrogen bath gas. These measurements revealed a notable Q-branch cross section pressure dependence while the P- and R-branch wings remained largely pressure independent across this wide pressure range. 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Then, to extend the utility of the collected data across intermediate temperatures, a pseudo-line-list (PLL) absorbance model was generated through a simultaneous fit of line-by-line intensities and lower-state energies to the measured cross sections. This PLL model was able to replicate the measurements within 3% across most of the spectral range and within 8% around the extremely sharp Q-branch feature present at room temperature. Cross-validation was then performed by re-fitting the PLL excluding the 800 K data set and demonstrated that the PLL approach is effective in interpolating between measured absorption cross sections at discrete temperatures. Finally, the additional room-temperature measurements from 1 to 35 atm were collected in a high-pressure static cell in nitrogen bath gas. These measurements revealed a notable Q-branch cross section pressure dependence while the P- and R-branch wings remained largely pressure independent across this wide pressure range. 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引用次数: 0
摘要
我们首先介绍了甲酸甲酯在温度为 300、600、800 和 1000 K 以及压力为 1-2 atm 时,1670-1850 cm 范围内 C=O 伸展基波振荡带的定量宽带吸光截面。此外,还研究了室温下 1 至 35 atm 压力范围内的标题分子光谱。高温测量是在冲击管反射冲击波后的氩槽气体中,通过快速调谐、宽扫描外腔量子级联激光器进行的。收集到的甲酸甲酯室温横截面验证了我们的方法,并与 Sharpe 等人之前的室温测量结果非常吻合。然后,为了将收集到的数据的实用性扩展到中间温度,通过对测量横截面进行逐行强度和低态能量的同时拟合,生成了一个伪线表(PLL)吸光度模型。该 PLL 模型能够在大部分光谱范围内将测量结果的重复率控制在 3% 以内,在室温下出现的极其尖锐的 Q 分支特征附近的重复率控制在 8% 以内。然后,通过重新拟合 PLL(不包括 800 K 数据集)进行了交叉验证,结果表明 PLL 方法能够有效地对离散温度下的测量吸收截面进行内插。最后,在氮浴气体的高压静态池中收集了 1 至 35 atm 的额外室温测量数据。这些测量结果表明,Q 支横截面与压力有明显的相关性,而 P 支和 R 支横截面在这一较宽的压力范围内基本上与压力无关。收集到的甲酸甲酯横截面是斯坦福 ShockGas-IR 数据库中关于高温下中红外多原子吸收截面的最新内容。
Experimental temperature- and pressure-dependent absorbance cross sections and a pseudo-line-list model for methyl formate near 5.7μm
We first present quantitative, broadband absorbance cross sections of the C=O stretch fundamental rovibrational band of methyl formate in the 1670–1850 cm−1 range at temperatures of 300, 600, 800, and 1000 K and pressures of 1–2 atm. The title molecular spectra were additionally studied across the pressure range of 1 to 35 atm at room temperature. Elevated temperature measurements were taken in argon bath gas behind the reflected shock wave of a shock tube by a rapid-tuning, broad-scan external cavity quantum cascade laser. The room temperature cross section of methyl formate was collected to validate our method and agreed well with previous room-temperature measurements by Sharpe et al. Then, to extend the utility of the collected data across intermediate temperatures, a pseudo-line-list (PLL) absorbance model was generated through a simultaneous fit of line-by-line intensities and lower-state energies to the measured cross sections. This PLL model was able to replicate the measurements within 3% across most of the spectral range and within 8% around the extremely sharp Q-branch feature present at room temperature. Cross-validation was then performed by re-fitting the PLL excluding the 800 K data set and demonstrated that the PLL approach is effective in interpolating between measured absorption cross sections at discrete temperatures. Finally, the additional room-temperature measurements from 1 to 35 atm were collected in a high-pressure static cell in nitrogen bath gas. These measurements revealed a notable Q-branch cross section pressure dependence while the P- and R-branch wings remained largely pressure independent across this wide pressure range. The collected methyl formate cross sections comprise the latest addition to the Stanford ShockGas-IR database for mid-infrared polyatomic absorption cross sections at elevated temperatures.
期刊介绍:
Papers with the following subject areas are suitable for publication in the Journal of Quantitative Spectroscopy and Radiative Transfer:
- Theoretical and experimental aspects of the spectra of atoms, molecules, ions, and plasmas.
- Spectral lineshape studies including models and computational algorithms.
- Atmospheric spectroscopy.
- Theoretical and experimental aspects of light scattering.
- Application of light scattering in particle characterization and remote sensing.
- Application of light scattering in biological sciences and medicine.
- Radiative transfer in absorbing, emitting, and scattering media.
- Radiative transfer in stochastic media.