[1] POOR H. Basics of mechanical ventilation [M]. Cham: Springer, 2018: 29-38.
[2] HARRIS C, THORPE S D, RUSHWAN S, et al. An in vitro investigation of the inflammatory response to the strain amplitudes which occur during high frequency oscillation ventilation and conventional mechanical ventilation [J]. Journal of Biomechanics, 2019, 88: 186-189.
[3] ROTH C J, F?RSTER K M, HILGENDORFF A, et al. Gas exchange mechanisms in preterm infants on HFOV: A computational approach [J]. Scientific Reports, 2018, 8: 13008.
[4] NG J, FERGUSON N D. High-frequency oscillatory ventilation: Still a role? [J]. Current Opinion in Critical Care, 2017, 23(2): 175-179.
[5] GLAU C L, CONLON T W, HIMEBAUCH A S, et al. Characterization of thoracic pathophysiologic conditions in patients receiving high-frequency oscillatory ventilation: Pediatric experience [J]. Journal of Ultrasound in Medicine, 2018, 37(10): 2425-2431.
[6] SKLAR M C, FAN E, GOLIGHER E C. Highfrequency oscillatory ventilation in adults with ARDS: Past, present, and future [J]. Chest, 2017, 152(6): 1306-1317.
[7] MEYERS M, RODRIGUES N, ARI A. High-frequency oscillatory ventilation: A narrative review [J]. Canadian Journal of Respiratory Therapy, 2019, 55: 40-46.
[8] NGUYEN A P, SCHMIDT U H, MACINTYRE N R. Should high-frequency ventilation in the adult be abandoned? [J]. Respiratory Care, 2016, 61(6): 791- 800.
[9] KACZKA D W. Oscillatory ventilation redux: Alternative perspectives on ventilator-induced lung injury in the acute respiratory distress syndrome [J]. Current Opinion in Physiology, 2021, 21: 36-43.
[10] GODET T, JABAUDON M, BLONDONNET R, et al. High frequency percussive ventilation increases alveolar recruitment in early acute respiratory distress syndrome: An experimental, physiological and CT scan study [J]. Critical Care, 2018, 22(1): 3.
[11] HE M Y, LIN X Z. Research advances in the methods for weaning from high-frequency oscillatory ventilation in neonates [J]. Chinese Journal of Contemporary Pediatrics, 2019, 21(12): 1234-1239 (in Chinese).
[12] ZANNIN E, DELLACA’ R L, DOGNINI G, et al. Effect of frequency on pressure cost of ventilation and gas exchange in newborns receiving high-frequency oscillatory ventilation [J]. Pediatric Research, 2017, 82(6): 994-999.
[13] BANSAL N, CHAUHAN A S, MENON R P. A learning experience in the use of high-frequency oscillatory ventilation in infants post-cardiac surgery [J]. Indian Journal of Thoracic and Cardiovascular Surgery, 2019, 35(2): 257-258.
[14] XIANG Y, ZENG L, LUO T, et al. Risk factors for hypoxemia after coronary artery bypass grafting: A systematic review and meta-analysis [J]. Chinese Journal of Clinical Thoracic and Cardiovascular Surgery, 2020, 27(8): 926-932 (in Chinese).
[15] GONZáLEZ-PACHECO N, SáNCHEZ-LUNA M, CHIMENTI-CAMACHO P, et al. Use of very low tidal volumes during high-frequency ventilation reduces ventilator lung injury [J]. Journal of Perinatology, 2019, 39(5): 730-736.
[16] LAI J, DU L, XIONG G, et al. Clinical epidemiological characteristics of neonatal respiratory failure: An analysis of 1108 neonates [J]. Chinese Journal of Contemporary Pediatrics, 2016, 18(1): 10-14 (in Chinese).
[17] PETRILLO F, GIZZI C, MAFFEI G, et al. Neonatal respiratory support strategies for the management of extremely low gestational age infants: An Italian survey [J]. Italian Journal of Pediatrics, 2019, 45(1): 44.
[18] COURTNEY S E, DURAND D J, ASSELIN J M, et al. High-frequency oscillatory ventilation versus conventional mechanical ventilation for very-low-birth-weight infants [J]. The New England Journal of Medicine, 2002, 347(9): 643-652.
[19] DIEHL J L, PERON N, CHOCRON R, et al. Respiratory mechanics and gas exchanges in the early course of COVID-19 ARDS: A hypothesis-generating study [J]. Annals of Intensive Care, 2020, 10(1): 95.
[20] GU J Y, HAN B, WANG J. COVID-19: Gastrointestinal manifestations and potential fecal-oral transmission [J]. Gastroenterology, 2020, 158(6): 1518-1519.
[21] LUO M, NI K, WEN K, et al. Biomechanical issues of mechanical ventilation in Covid-19 therapy [J]. Journal of Medical Biomechanics, 2020, 35(3): 265-270 (in Chinese).
[22] CHEN Y, LI W. The clinical symptoms, classification and diagnosis of COVID-19 [J]. Genomics and Applied Biology, 2020, 39(8): 3904-3907 (in Chinese).
[23] GUAN W J, NI Z Y, HU Y, et al. Clinical characteristics of coronavirus disease 2019 in China [J]. New England Journal of Medicine, 2020, 382(18): 1708-1720.
[24] PILLOW J J. High-frequency oscillatory ventilation: Mechanisms of gas exchange and lung mechanics [J]. Critical Care Medicine, 2005, 33(3 Suppl): S135-S141.
[25] YUAN Y, ZHOU L, LIU W, et al. Prospects and developments in the technologies of high frequency oscillatory ventilation [J]. Journal of Biomedical Engineering, 2021, 38(1): 185-190 (in Chinese).
[26] CHANG H K. Mechanisms of gas transport during ventilation by high-frequency oscillation [J]. Journal of Applied Physiology: Respiratory, Environmental and Exercise Physiology, 1984, 56(3): 553-563.
[27] FLETCHER P R, EPSTEIN R A. Constancy of physiological dead space during high-frequency ventilation [J]. Respiration Physiology, 1982, 47(1): 39-49.
[28] SCHERER P W, HASELTON F R. Convective exchange in oscillatory flow through bronchial-tree models [J]. Journal of Applied Physiology, 1982, 53(4): 1023-1033.
[29] CHANG H K, EL MASRY O A. A model study of flow dynamics in human central airways. Part I: Axial velocity profiles [J]. Respiration Physiology, 1982, 49(1): 75-95.
[30] OTIS A B, MCKERROW C B, BARTLETT R A, et al. Mechanical factors in distribution of pulmonary ventilation [J]. Journal of Applied Physiology, 1956, 8(4): 427-443.
[31] TAYLOR G I. Diffusion and mass transport in tubes [J]. Proceedings of the Physical Society Section B, 1954, 67(12): 857-869.
[32] ARMENGOL J, JONES R L, KING E G. Collateral ventilation during high-frequency oscillation in dogs [J]. Journal of Applied Physiology, 1985, 58(1): 173- 179.
[33] LEE W J, KAWAHASHI M, HIRAHARA H. Experimental analysis of pendelluft flow generated by HFOV in a human airway model [J]. Physiological Measurement, 2006, 27(8): 661-674.
[34] GREENBLATT E E, BUTLER J P, VENEGAS J G, et al. Pendelluft in the bronchial tree [J]. Journal of Applied Physiology, 2014, 117(9): 979-988.
[35] YUAN Y Y, YANG C C, LI Z, et al. Oscillatory flow of HFV distributed in left and right lungs: A model-based experiment and investigation [J]. Journal of Mechanics in Medicine and Biology, 2014, 14(6): 1440015.
[36] YUAN Y Y, CHEN Y Q, XIAO H, et al. Investigating the mechanism of the high frequency ventilation for the oscillation airflow between left and right lungs [J]. Journal of Biomedical Engineering, 2019, 36(3): 393- 400 (in Chinese).
[37] JACOB C, TINGAY D, LEONTINI J. The role of mean streaming and turbulent mixing for gas transport during high-frequency ventilation [C]//Australian Biomedical Engineering Conference 2019. Melbourne: Engineers Australia, 2019: 57-60.
[38] LEONTINI J, JACOB C, TINGAY D. Steady streaming and conditional turbulence in high-frequency ventilation [C]//72nd Annual Meeting of the APS Division of Fluid Dynamics. Seattle: APS, 2019: 30.
[39] GONZáLEZ-PACHECO N, SáNCHEZ-LUNA M, ARRIBAS-SáNCHEZ C, et al. DCO2/PaCO2 correlation on high-frequency oscillatory ventilation combined with volume guarantee using increasing frequencies in an animal model [J]. European Journal of Pediatrics, 2020, 179(3): 499-506. |