Controlling thermo-hygrometric conditions of gas delivered in neonatal mechanical ventilation shows some unresolved issues due to the design and control strategies implemented in heated wire humidifiers. We perform an in vitro evaluation of humidifier performances, which use a control strategy based on a single-point temperature as feedback, and propose a novel design of the control which consists in pre-warming the gas upwards in the humidification chamber. The ad hoc developed control approach based on a theoretical model is implemented in vitro with and without pre-warming for comparative purposes. Without pre-warming, gas at the chamber outlet needs further post-warming and, depending on the flow rate, the vapour content condensates along the breathing circuit. Whereas, with pre-warming, the proposed control strategy allows us to considerably improve steady-state thermo-hygrometric conditions (T = 37 ± 1 °C, RH = 96% ± 4%) of gas, reaching the Y-piece near to ideal ones in the whole flow rate range, even though a high inlet chamber temperature is required at low flow rate values. The proposed solution, as theoretically predicted, also allows us to limit the vapour condensation along the circuit.

A novel control strategy to improve performances of heated wire humidifiers in artificial neonatal ventilation

Schena E;Silvestri S
2012-01-01

Abstract

Controlling thermo-hygrometric conditions of gas delivered in neonatal mechanical ventilation shows some unresolved issues due to the design and control strategies implemented in heated wire humidifiers. We perform an in vitro evaluation of humidifier performances, which use a control strategy based on a single-point temperature as feedback, and propose a novel design of the control which consists in pre-warming the gas upwards in the humidification chamber. The ad hoc developed control approach based on a theoretical model is implemented in vitro with and without pre-warming for comparative purposes. Without pre-warming, gas at the chamber outlet needs further post-warming and, depending on the flow rate, the vapour content condensates along the breathing circuit. Whereas, with pre-warming, the proposed control strategy allows us to considerably improve steady-state thermo-hygrometric conditions (T = 37 ± 1 °C, RH = 96% ± 4%) of gas, reaching the Y-piece near to ideal ones in the whole flow rate range, even though a high inlet chamber temperature is required at low flow rate values. The proposed solution, as theoretically predicted, also allows us to limit the vapour condensation along the circuit.
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/20.500.12610/7930
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