Medical & Biological Engineering & Computing· 2026Q2
Phantom system for endotracheal tube cuff seal testing during mechanical ventilation
- 0citations
- Q2SCImago
- 2026year
Short summary
A novel bio-inspired phantom system accurately models tracheal conditions for testing endotracheal tube (ETT) cuff seal performance, revealing significant leakage differences compared to standard rigid cylinder tests, particularly for PVC cuffs under mechanical ventilation.
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Key points
- A bio-inspired tracheal phantom system was developed for ETT cuff seal testing, incorporating mechanical ventilation and automatic cuff pressure control.
- PVC-cuffed ETTs showed ~50% less fluid leakage in the bio-inspired phantom compared to a rigid cylinder under mechanical ventilation (p < 0.001).
- Polyurethane (PU) cuffed ETTs exhibited minimal leakage in both phantom models.
- Intracuff pressure decayed over 48h at 37°C for both PVC (12.24 ± 1.13 cmH2O) and PU (9.06 ± 1.00 cmH2O) cuffs.
- Automatic cuff pressure control further reduced leakage for PVC ETTs.
AI-generated from the title and abstract; the full text is not read.
Abstract
Abstract Leakage of orogastric secretions past endotracheal tube (ETT) cuffs contributes to ventilator-associated pneumonia (VAP), yet in vivo tracheal seal testing is impractical, requiring phantom evaluation. As the rigid cylinder specified in EN ISO 5361:2023 does not adequately represent in vivo airway conditions, a benchtop cuff seal testing system was developed incorporating a tracheal model, lung model, mechanical ventilation, and automatic cuff pressure control. A rigid cylinder and a bio-inspired tracheal model with tissue-like mechanical properties were evaluated using five high-volume low-pressure (HVLP) polyvinyl chloride (PVC) cuffed ETTs and five polyurethane (PU) cuffed ETTs, with and without mechanical ventilation, and with and without automatic cuff inflation. For PVC cuffed ETTs, fluid leakage rate was highest in the cylinder phantom compared with the bio-inspired phantom, ~ 30% lower without mechanical ventilation and ~ 50% with mechanical ventilation (both p < 0.001). In contrast, PU ETTs exhibited minimal leakage. Long-term testing revealed intracuff pressure decay over 48 h at 37 °C for both PVC (12.24 ± 1.13 cmH2O) and PU (9.06 ± 1.00 cmH2O) cuffed ETTs, while automatic cuff pressure control further reduced leakage for PVC ETTs. The bio-inspired phantom revealed sealing behaviours not captured by cylinder testing, supporting clinically relevant evaluation of ETT sealing performance and cuff materials.
The authors' abstract, as published at the source. Medical & Biological Engineering & Computing, 2026 · DOI ↗
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Field: Critical Care and Intensive Care Medicine
Critical Care and Intensive Care MedicineMedicine