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N. Griffioen

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We present ultrabroadband two-beam femtosecond/picosecond coherent Raman spectroscopy on the ro-vibrational spectra of CO2 and O2, applied for multispecies thermometry and relative concentration measurements in a standard laminar premixed hydrocarbon flame. The experimental system employs fs-laser-induced filamentation to generate the compressed supercontinuum in-situ, resulting in a ∼24 fs full-width-at-half-maximum pump/Stokes pulse with sufficient bandwidth to excite all the ro-vibrational Raman transitions up to 1600 cm-1. We report the simultaneous recording of the ro-vibrational CO2 Q-branch and the ro-vibrational O2 O-, Q- and S-branch coherent Stokes Raman spectra (CSRS) on the basis of a single-laser-shot. The use of filamentation as the supercontinuum generation mechanism has the advantage of greatly simplifying the experimental setup, as it avoids the use of hollow-core fibres and chirped mirrors to deliver a near-transform-limited ultrabroadband pulse at the measurement location. Time-domain models for the ro-vibrational Q-branch spectrum of CO2 and the ro-vibrational O-, Q- and S-branch spectra of O2 were developed. The modelling of the CO2 Q-branch spectrum accounts for up to 180 vibrational bands and for their interaction in Fermi polyads, and is based on recently available, comprehensive calculations of the vibrational transition dipole moments of the CO2 molecule: the availability of spectroscopic data for these many vibrational bands is crucial to model the high-temperature spectra acquired in the flue gases of hydrocarbon flames, where the temperature can exceed 2000 K. The numerical code was employed to evaluate the CSRS spectra acquired in the products of a laminar premixed methane/air flame provided on a Bunsen burner, for varying equivalence ratio in the range 0.6–1.05. The performance of the CO2 spectral model is assessed by extracting temperatures from 40-laser-shots averaged spectra, resulting in thermometry accuracy and precision of ∼5% and ∼1%, respectively, at temperatures as high as 2220 K. ...
Master thesis (2021) - N. Griffioen, G.A. Bohlin, F. Mazza
In this M.Sc. thesis project a model is developed and validated that simulates the coherent anti-Stokes Raman scattering (CARS) signal of CO2 and O2 in the spectral region between 1250cm-1 and 1680cm-1. The aim is to perform temperature and concentration measurements in a typical hydrocarbon-air combustion flame. The project makes use of a two-beam time resolved CARS setup, with ultraboadband generated light from the pump/Stokes beam to excite the Raman transitions in this spectral window. In the 1250-1680cm-1 region, CARS signatures of both CO2 and O2 are visible making it possible to perform thermometry on both molecular species, while also offering the option of evaluating relative CO2-O2/O2-CO2 concentrations. The appearance of the oxygen ro-vibrational (O-, S- and Q-branch) spectrum at low temperatures, along with a strong manifestation of the CO2 Fermi influenced Q-branch (with red-shifted peaks below 1300cm-1 and blue shifted peaks above 1350cm-1) at higher temperatures, makes it possible to perform thermometry in low and high temperature combustion environments on both the reactant and product side. A total of 256 vibrational levels for CO2 are taken into account for the model to simulate the CO2 Fermi polyad. From these 256 vibrational levels, 181 Raman transitions are possible that fulfill the criteria of Δv1=1, Δv2=0, Δv3=0, Δl=0 and ΔJ=0 . Three different experiments are performed including an M-flame, a V-flame and two experiments conducted in air for model validation. The temperature analysis using CO2 provided satisfactory results regarding temperature assessments. Depending on the experiment, standard deviations below 2.3% and mean temperatures to within 1% of the temperatures corresponding to the expected values. The O2 analysis showed a good correspondence to the CO2 temperature values, differing by 43-76K. The O2 analysis showed low standard deviations for the air temperature assessment (3.27%) and reliably predicted the ambient temperature with a difference lower than 2K. The M-flame experiments showed the least correspondence to actual values. These unsatisfactory results can for one part be attributed to the high signal-to-noise ratios (SNR) and for one part due to the flickering of the flame. In terms of concentration assessment the model closely evaluates O2-CO2 concentrations in the ambient air and from an exhaled human breath, while the flame assessments had a mediocre correspondence to the predicted ones from \textit{chem1d}. All in all the project shows that CO2 temperature and concentration measurements in this CARS spectral region is feasible. It offers promise from a combustion perspective due to the possibility of performing simultaneous (O2) rotational and (CO2/O2) vibrational thermometry, which makes it possible to perform measurements on both the product and reactant side of the flame front, while including spectral signatures of possibly three major molecular combustion species: CO2, O2 and H2. Further improvements to the model and the application of the technique, make more complex combustion studies possible and help achieve the goal to develop a ultrafast, multiplex, state-of-the-art laser diagnostic tool for gas phase combustion measurements. ...
On a daily basis, the Sun experiences solarweather events, such as coronal mass ejections (CMEs) and solar flares. Varying in size, they are characterised by violent outbursts of matter and energy from the Sun’s surface. In the rare case of a CME of significant size hitting Earth, it could have immense consequences for the electrical power grid, especially at auroral latitudes. CMEs cause large disturbances to the Earth’s geomagnetic field, which result in an increased energy flux. In turn, this would induce large power surges in power lines, electrical wiring, and pipelines. If a system is not protected from such surges, it could short-circuit and be damaged or destroyed. Adverse space weather effects are not only limited to Earth-based electronics but also satellites, which are even more exposed to space weather than Earthbased electronics due to trapped particles. Without an early warning of an incoming CME, the damage of an extreme CME would be catastrophic, causing up to $10 trillion in damage just from damaged infrastructure... ...