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Published on: September 22, 2017
Engineering Development of a Bi-directional Arterial Cannula with Peripheral Access for Cardiopulmonary Bypass
Joel D Graham1, Thomas J Roussel2, Steven C Koenig2,3
1Department of Bioengineering, University of Louisville, Louisville, KY, USA. joel.graham@louisville.edu.
Insights
A novel flexible-tip arterial cannula for cardiopulmonary bypass (CPB) shows promising bi-directional flow capabilities. This design aims to reduce surgical complexity and adverse events in challenging cardiac surgeries.
Area of Science:
- Biomedical Engineering
- Cardiovascular Surgery
- Medical Device Design
Background:
- Cardiopulmonary bypass (CPB) is essential in cardiac surgery for blood management.
- Peripheral cannulation is used in complex cases but can impede distal flow.
- Standard cannulae may require grafts, increasing surgical time.
Purpose of the Study:
- Evaluate a novel flexible-tip arterial cannula for bi-directional flow.
- Assess pressure loss and flow distribution in peripheral CPB applications.
- Improve outcomes in challenging cardiac surgical procedures.
Main Methods:
- Developed a 22Fr cannula with a flexible tip for bi-directional flow.
- Utilized a full factorial design of experiments to test 16 tip designs.
- Fabricated prototypes using 3D printing with flexible resin.
Main Results:
- The optimal design achieved 4 L/min bi-directional flow with a 74 mmHg pressure loss.
- Average pressure loss across designs was 87 mmHg at 4 L/min.
- Primary outlet flow averaged 81%, with tip width and outlet shape being key factors.
Conclusions:
- The novel cannula design is feasible, demonstrating bi-directional flow comparable to commercial options.
- Further validation (CFD, pre-clinical testing) is planned for clinical development.
- The goal is a low-cost, bi-directional cannula to enhance peripheral CPB safety and efficiency.
Purpose:
Cardiopulmonary bypass (CPB) is a well-established procedure that uses cannulae during cardiac surgery to drain and return blood. In challenging cases (e.g. aortic dissection, reoperation), peripheral cannulation in vessels such as the axillary artery are used. However, standard cannulae at these sites may inhibit blood flow to distal extremities or require grafts that increase surgical time. This study evaluates a novel, flexible-tip arterial cannula designed for bi-directional flow.
Methods:
A 22Fr body cannula was developed to achieve a pressure loss (ΔP) < 100 mmHg and 80/20 bi-directional flow distribution between tip outlets. A full factorial design of experiments (2-levels, 4 factors: tip A-width, B-height, C-depth, D-outlet shape) was completed to evaluate sixteen cannula tip designs using benchtop hydraulic and bi-directional flow models. Prototypes were fabricated using 3D printing via stereolithography (Form 3 + , Formlabs, Somerville, MA) with a flexible (50A) cured resin.
Results:
The most efficient cannula design (A - , B + , C + , D + ) achieved 4 L/min of total bi-directional flow at a ΔP of 74 mmHg. The average ΔP at 4 L/min for all candidate design was 87 ± 9 mmHg (range 72-100 mmHg). Primary outlet flow distribution averaged 81% ± 6% (range 70-95%) at 1-5 L/min flow rates. Tip width had the greatest influence on ΔP, followed by outlet shape, depth, and their interactions, respectively. Cylindrical and prolate spheroid shaped tips outperformed spherical designs.
Conclusion:
The novel cannula demonstrated feasibility and proof-of-concept as evidenced by bi-directional flow with ΔP comparable to commercial cannulae. Future work will involve CFD modeling and pre-clinical validation (e.g. hemolysis, cadaver fit) to support development of a low-cost, clinical grade bi-directional flow cannula for peripheral CPB to reduce surgical complexity and lower risk of adverse events.
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