Related Experiment Video
Updated: Jun 2, 2026

In vitro Measurements of Tracheal Constriction Using Mice
Published on: June 25, 2012
Bench testing a contact sensing tracheal tube for monitoring the cuff-trachea interface
Tamaralayefa B Agbiki1, Sandor Erdody1, Ricardo Correia1,2
1Optics and Photonics Research Group, Faculty of Engineering, University of Nottingham, Nottingham, UK.
Abstract:
Cuffed tracheal tubes enable a secure airway during mechanical ventilation; however, improper cuff inflation can lead to complications such as inspiratory gas leaks, pulmonary ingress of orogastric secretions, or tracheal injury. This study explores a sensor-based approach to optimise cuff inflation using fibre Bragg grating (FBG) optical sensors embedded within the cuff to detect contact with the tracheal wall. Testing was conducted on multiple trachea models, including cylindrical and bio-inspired models, as well as ex vivo porcine trachea samples, to assess cuff-trachea contact. Seal performance was evaluated at both standard inflation pressures and contact-guided inflation pressures. The contact-sensing tracheal tube successfully detected cuff-trachea contact in all models and ex vivo samples tested. Seal tests showed that larger diameter tracheal models exhibited lower leakage rates at contact-guided inflation pressures compared with standard inflation, indicating improved sealing. In contrast, smaller diameter models showed higher leakage rates at contact-guided pressures due to cuff folding, which formed leakage pathways. These results demonstrate that contact sensing improved cuff performance in larger tracheal models by enhancing sealing effectiveness. The contact-sensing tracheal tube differentiated tracheal model sizes, indicating potential for personalised cuff inflation to accommodate variations in tracheal size and shape. Future work will focus on further sensor miniaturisation and integration within lower-volume cuffs to enable effective contact sensing across a wider range of tracheal geometries and support translation to in vivo use.
Related Concept Videos
Tracheostomy: Procedure and Tubes
Tracheostomy tubes can be made of semiflexible plastic (polyurethane or silicone), rigid plastic, or metal, and they come in...
Oxygen Delivering System II: Venturi Mask and Transtracheal Oxygen
Venturi Mask
The Venturi mask, named after the Venturi effect, is designed to deliver precise oxygen concentrations. It consists of a large tube with an oxygen inlet that narrows down, causing a pressure drop that pulls air in through adjustable side ports. The mask is a lightweight,...
Oxygen Delivering System III: Tracheostomy and T-piece
Tracheostomy
A tracheostomy is a surgically created opening (stoma) in the anterior part of the trachea. It is used to establish a patient airway, bypass an upper airway obstruction, simplify the removal of secretions, permit long-term...
Tracheostomy Care II: Procedure
Step 1: Perform hand hygiene, and put on personal protective equipment: gown, gloves, mask and...
Tracheostomy Care I: Pre-procedural Steps
Required Equipment
The equipment necessary for tracheostomy care includes:
Endotracheal Intubation I: Procedure
The ET tube comprises various components, including a standard adaptor to attach a bag-valve-mask (BVM) or ventilator, a cuff, a pilot balloon, and radiopaque markings along its length to measure the insertion distance. The tube sizes...

