[1] |
ADAM T,MITSCHKE S,STREIBEL T,et al.Quantitative puff-by-puff-resolved characterization of selected toxic compounds in cigarette mainstream smoke[J].Chemical Research in Toxicology,2006,19(4):511-520. |
[2] |
PRYOR W A,PRIER D G,CHURCH D F.Electron-spin resonance study of mainstream and sidestream cigarette smoke:Nature of the free radicals in gas-phase smoke and in cigarette tar[J].Environmental Health Perspectives,1983,47:345-355. |
[3] |
HEIDE J,ADAM T W,JACOBS E,et al.Puff-resolved analysis and selected quantification of chemicals in the gas phase of E-cigarettes,heat-not-burn devices,and conventional cigarettes using Single-Photon Ionization Time-of-Flight Mass Spectrometry (SPI-TOFMS):A comparative study[J].Nicotine and Tobacco Research,2021,23(12):2135-2144. |
[4] |
PRYOR W A,CHURCH D F,EVANS M D,et al.A comparison of the free radical chemistry of tobacco-burning cigarettes and cigarettes that only heat tobacco[J].Free Radical Biology & Medicine,1990,8(3):275-279. |
[5] |
DEBETHIZY J D,BORGERDING M F,DOOLITTLE D J,et al.Chemical and biological studies of a cigarette that heats rather than burns tobacco[J].The Journal of Clinical Pharmacology,1990,30(8):755-763. |
[6] |
TITZ B,BOUÉ S,PHILLIPS B,et al.Effects of cigarette smoke,cessation,and switching to two heat-not-burn tobacco products on lung lipid metabolism in C57BL/6 and Apoe -/- Mice:An integrative systems toxicology analysis[J].Toxicological Sciences,2016,149(2):441-457. |
[7] |
HOENG J,PEITSCH M C.Toxicological evaluation of electronic nicotine delivery products[M].Massachusetts:Academic Press,2021:23-40. |
[8] |
FARSALINOS K E,YANNOVITS N,SARRI T,et al.Nicotine delivery to the aerosol of a heat-not-burn tobacco product:Comparison with a tobacco cigarette and e-cigarettes[J].Nicotine and Tobacco Research,2018,20(8):1004-1009. |
[9] |
DAVIS B,TO V,TALBOT P.Comparison of cytotoxicity of IQOS aerosols to smoke from Marlboro Red and 3R4F reference cigarettes[J].Toxicology in Vitro,2019,61:104652. |
[10] |
周昆,杨继,杨柳,等.加热不燃烧卷烟气溶胶研究进展[J].中国烟草学报,2017,23(5):141-149. |
[11] |
龚淑果,刘巍,黄平,等.加热不燃烧卷烟烟气主要成分的逐口释放行为[J].烟草科技,2019,52(2):62-71. |
[12] |
司晓喜,张凤梅,朱瑞芝,等.6种香料在加热条件下的释放迁移及对气溶胶理化特性的影响[J].轻工学报, 2021,36(5):67-75. |
[13] |
司晓喜,崔华鹏,朱瑞芝,等.不同GL/PG质量比和添加总量对加热卷烟气溶胶逐口释放特性的影响[J].轻工学报,2022,37(2):78-86. |
[14] |
李朝建,饶先立,郑晓云,等.不同工艺制备的加热卷烟烟草薄片热失重行为研究[J].轻工学报,2022,37(1):55-61. |
[15] |
陈芝飞,陈泽少,罗灿选,等.加热卷烟气溶胶中6种酯类单体香料转移行为研究[J].轻工学报,2022,37(3):58-64. |
[16] |
EATON D,JAKAJ B,FORSTER M,et al.Assessment of tobacco heating product THP1.0.Part 2:Product design, operation and thermophysical characterisation[J].Regulatory Toxicology and Pharmacology,2018,93:4-13. |
[17] |
COZZANI V,BARONTINI F,MCGRATH T,et al.An experimental investigation into the operation of an electrically heated tobacco system[J].Thermochimica Acta,2020,684:178475. |
[18] |
崔华鹏,陈黎,樊美娟,等.电加热卷烟气溶胶物理特性的表征[J].轻工学报,2022,37(2):87-93. ,101. |
[19] |
Philip Morris Products SA.Aerosol-generating article having an adjustable heating area:CN202080041533.8[P].2022-01-18. |
[20] |
孙剑韬,陈义坤,刘磊,等.加热不燃烧型雾化系统传热仿真分析[J].武汉大学学报(工学版),2021,(7):668-674. |
[21] |
LAVANCHY F,MALGAT A.Aerosol generating article including a heat-conducting element and a surface treatment[P].America:US10842190B2,2020-11-24. |
[22] |
赵新军,孔祥伟.TRIZ创新方法及应用案例分析[M].北京:化学工业出版社,2020. |
[23] |
赵敏,张武城,王冠殊.TRIZ进阶及实战:大道至简的发明方法[M].北京:机械工业出版社,2015. |
[24] |
杨世铭,陶文铨.传热学(第4版)[Heat Transfer] [M].北京:高等教育出版社,2006. |