3D printed breathable midsole with adjustable cushioning using lignin-based polyurethane foam

Technology
Conceptual
University

A 3D printed midsole technology featuring built-in airflow channels and one-way valves that enable a breathing mechanism during walking or running. Made from sustainable lignin-based polyurethane foam, the system allows tunable cushioning for different athletic applications such as running and basketball shoes.

Overview

This technology introduces a novel midsole design for athletic footwear that combines 3D printing with sustainable, lignin-based polyurethane foam to create an adjustable cushioning system with built-in breathability. The midsole incorporates internal airflow channels connected to the shoe interior through surface holes and to the outside through one-way valves inspired by heart valve mechanics. As the wearer walks or runs, foot compression pushes air out through the open valves, and when compression is released, the valves close to create reduced pressure zones that draw in fresh air. This produces a continuous breathing effect that enhances ventilation while maintaining cushioning performance.

Technical specifications
  • Manufacturing method: Fused Deposition Modeling (FDM) 3D printing followed by compression molding foaming with supercritical CO2
  • Material: Lignin-based polyurethane foam, a renewable and low-cost functional composite
  • Airflow design: Internal channels connected to inner shoe space via surface holes and to the exterior via single-direction breathable valves
  • Adjustable cushioning: Density of porous structures controlled by printed material density and foaming ratio
    • Low density and high foaming ratio produce softer, energy-absorbing midsoles suited for walking shoes
    • Higher density and lower foaming ratio yield harder, more responsive midsoles for basketball or performance applications
  • Sustainability advantage: Uses lignin, a bio-based feedstock, replacing conventional petroleum-derived midsole materials
Technology readiness level

The concept is currently at an early research and exploratory validation stage. Initial hypothesis testing has been supported by exploratory modeling and practical 3D printing studies. Future validation involves a two-step fabrication process: printing precursor shapes with designed channels using FDM, then applying compression modeling foaming technology with supercritical CO2 to generate controlled porous structures. Further testing of airflow, cushioning, and durability performance is needed before commercial readiness.


About University of Tennessee, Knoxville

UT offers a partnership model that reduces risk, accelerates time-to-value, and supports long-term growth strategies for industry—providing an attractive platform for companies seeking to formalize collaboration and establish a long-term presence in the East Tennessee region. By aligning institutional investment with regional and national priorities, UT provides a stable and effective platform for industry collaboration, technology deployment, and sustained economic impact.

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