Related Experiment Video
Updated: Jan 18, 2026

Heterotopic and Orthotopic Tracheal Transplantation in Mice used as Models to Study the Development of Obliterative Airway Disease
Published on: January 20, 2010
Comparison of Postoperative Airflow Changes in Slide Tracheoplasty Across Surgical Techniques Using Computational
Clare M Richardson1, Michael C Barbour2,3, Seth D Friedman2
1Division of Pediatric Otolaryngology-Head and Neck Surgery, Phoenix Children's Hospital, Phoenix, Arizona, USA.
Objective:
Use computational fluid dynamics (CFD) modeling to analyze airflow before and after slide tracheoplasty in a three-dimensional (3D) printed model of congenital tracheal stenosis and to compare surgical techniques.
Study Design:
Comparative anatomic and physiologic study using 3D printed trachea models.
Setting:
Tertiary children's hospital and mechanical engineering lab.
Methods:
Slide tracheoplasty was performed on 3D printed models of congenital tracheal stenosis using three variations of tracheal transection incision angle (90°, 45° beveled superior to inferior, and 45° beveled inferior to superior). Postoperative computed tomography scans were used for CFD analysis. Quasi-steady simulations of peak inhalation and exhalation were run to calculate airway resistance, velocity, and energy dissipation. Statistical analysis was performed using one-way analysis of variance and unpaired two-tailed t tests.
Results:
Slide tracheoplasty was performed three times for each technique for nine total repaired tracheas. CFD simulations of each model at peak inhalation and exhalation were compared to preoperative controls. Slide tracheoplasty yielded reductions in all metrics postoperatively compared to preoperative controls (P < .001) without differences between incision types (P > .05). During inhalation, airway resistance decreased by 1.33 Pa/(mL/s) (62%, 95% CI: 1.26-1.39), maximum velocity by 7.23 m/s (36%, 95% CI: 6.20-8.26), and energy dissipation by 8.45 mW (63%, 95% CI: 7.90-9.01). During exhalation, airway resistance decreased by 1.1 Pa/(mL/s) (64%, 95% CI: 1.03-1.17), maximum velocity by 7.56 m/s (37%, 95% CI: 6.47-8.64), and energy dissipation by 8.45 mW (61%, 95% CI: 8.87-10.80).
Conclusion:
A beveled tracheal transection incision yields a longer postoperative trachea without compromising physiologic airflow improvements, therefore warrants consideration over a straight incision when choosing surgical technique.
Related Concept Videos
Cardiopulmonary Resuscitation V: Advanced Airway Management Techniques
Tracheostomy: Procedure and Tubes
Tracheostomy tubes can be made of semiflexible plastic (polyurethane or silicone), rigid plastic, or metal, and they come in...
Tracheostomy Decannulation
Description of the Procedure
Decannulation refers to the permanent removal of the tracheostomy tube, signaling the resolution of the condition that initially necessitated the tracheostomy. The process requires a well-coordinated interplay between...
Tracheostomy Care I: Pre-procedural Steps
Required Equipment
The equipment necessary for tracheostomy care includes:
Tracheostomy Suctioning I: Pre-Procedural Steps
Equipment Required
First, gather all necessary equipment: a sterile suction catheter, a sterile disposable container, sterile gloves, a towel or...

