| [1] |
Wang Z, Zhang A, Zhu M, Lin C, Chen X, et al. 2025. Regulating the hydrophilicity and complexation of poly(pyrrole methane) by phenolic hydroxyl groups for efficient Mercury(II) capture. |
| [2] |
Hopf NB, Vernez D, Berthet A, Charriere N, Arnoux C, et al. 2012. Effect of age on toxicokinetics among human volunteers exposed to propylene glycol methyl ether (PGME). |
| [3] |
Spencer PJ. 2005. New toxicity data for the propylene glycol ethers – a commitment to public health and safety. |
| [4] |
Timofeeva MN, Panchenko VN, Jun JW, Hasan Z, Kikhtyanin OV, et al. 2013. Effect of the acid–base properties of metal phosphate molecular sieves on the catalytic performances in synthesis of propylene glycol methyl ether from methanol and propylene oxide. |
| [5] |
Chitwood HC, Freure BT. 1946. The reaction of propylene oxide with alcohols. |
| [6] |
Timofeeva MN, Paukshtis EA, Panchenko VN, Shefer KI, Isaeva VI, et al. 2019. Tuning the catalytic performance of novel composites based on ZIF-8 and nafen through dimensional and concentration effects in the synthesis of propylene glycol methyl ether. |
| [7] |
Zhao C, Chen S, Zhang R, Li Z, Liu R, et al. 2017. Synthesis of propylene glycol ethers from propylene oxide catalyzed by environmentally friendly ionic liquids. |
| [8] |
Timofeeva MN, Panchenko VN, Gil A, Chesalov YA, Sorokina TP, et al. 2011. Synthesis of propylene glycol methyl ether from methanol and propylene oxide over alumina-pillared clays. |
| [9] |
Rupp M, Ruback W, Klemm E. 2013. Octanol ethoxylation in microchannels. |
| [10] |
Gustin JL. 2005. Understanding vinyl acetate polymerization accidents. |
| [11] |
Lin CP, Li JS, Tseng JM, Mannan MS. 2016. Thermal runaway reaction for highly exothermic material in safe storage temperature. |
| [12] |
Bou-Diab L, Fierz H. 2002. Autocatalytic decomposition reactions, hazards and detection. |
| [13] |
Stoessel F. 2008. Assessment of thermal risks. In Thermal Safety of Chemical Processes: Risk Assessment and Process Design. USA: Wiley. pp. 59−80. doi: 10.1002/9783527621606.ch3 |
| [14] |
Xu C, Zhang M, Zhang Y, Hu J, Bi F, et al. 2025. Thermal decomposition behavior and safety assessment of Diazidoglyoxime (DAzG) synthesis for TKX-50 production: a calorimetric and risk classification study. |
| [15] |
Jiang J, Jiang W, Ni L, Zhang W, Zou M, et al. 2019. The modified Stoessel criticality diagram for process safety assessment. |
| [16] |
Berdouzi F, Villemur C, Olivier-Maget N, Gabas N. 2018. Dynamic simulation for risk analysis: application to an exothermic reaction. |
| [17] |
Wang SY, Kossoy AA, Yao YD, Chen LP, Chen WH. 2017. Kinetics-based simulation approach to evaluate thermal hazards of benzaldehyde oxime by DSC tests. |
| [18] |
Yu A, Zhou J, Hua M, Pan X, Jiang J, et al. 2023. Predicting thermal runaway in styrene polymerization reactions: divergence criterion with phase space reconstruction. |
| [19] |
Chen KY, Wu SH, Wang YW, Shu CM. 2008. Runaway reaction and thermal hazards simulation of cumene hydroperoxide by DSC. |
| [20] |
Lu KT, Luo KM, Lin SH, Su SH, Hu KH. 2004. The acid-catalyzed phenol–formaldehyde reaction: critical runaway conditions and stability criterion. |
| [21] |
Hiltz JA. 2015. Analytical pyrolysis gas chromatography/mass spectrometry (py-GC/MS) of poly(ether urethane)s, poly(ether urea)s and poly(ether urethane-urea)s. |
| [22] |
Merayo N, Hermosilla D, Cortijo L, Blanco Á. 2014. Optimization of the Fenton treatment of 1, 4-dioxane and on-line FTIR monitoring of the reaction. |
| [23] |
Parker T, Mao Y, Wang Q. 2022. Application of response surface methodology for hazard analysis of 2-butanol oxidation to 2-butanone using RC1 calorimetry. |
| [24] |
Pereda-Ayo B, Duraiswami D, González-Marcos JA, González-Velasco JR. 2011. Performance of NOx storage–reduction catalyst in the temperature–reductant concentration domain by response surface methodology. |
| [25] |
Sinaei Nobandegani M, Sardashti Birjandi MR, Darbandi T, Khalilipour MM, Shahraki F, et al. 2016. An industrial Steam Methane Reformer optimization using response surface methodology. |
| [26] |
Salcedo WNV, Mignot M, Renou B, Leveneur S. 2023. Assessment of kinetic models for the production of γ-valerolactone developed in isothermal, adiabatic and isoperibolic conditions. |
| [27] |
Das PK. 2012. Theoretical estimation of adiabatic temperature rise from the heat flow data obtained from a reaction calorimeter. |
| [28] |
Hada S, Harrison BK. 2007. Prediction of energy release hazards using a simplified adiabatic temperature rise. |
| [29] |
Chen LP, Liu TT, Yang Q, Chen WH. 2012. Thermal hazard evaluation for iso-octanol nitration with mixed acid. |
| [30] |
Lerena P, Wehner W, Weber H, Stoessel F. 1996. Assessment of hazards linked to accumulation in semi-batch reactors. |
| [31] |
Hovorun DM, Voiteshenko IS, Gorb L. 2023. Manifestations of intramolecular H-bonds of CH… O and OH… C type in quercetin molecule: analysis of IR spectra by mean of density functional theory. |