Related Experiment Video
Updated: May 27, 2026

07:32
Experimental Protocol of a Three-minute, All-out Arm Crank Exercise Test in Spinal-cord Injured and Able-bodied Individuals
Published on: June 8, 2017
A blood lactate-based graded exercise test protocol for evaluating physiological response to wearable robots.
Sung Jin Park1, Minkyoung Kim1, Juyeon Park1,2,3
1Department of Fashion and Textiles, Seoul National University, Seoul, South Korea.
Ergonomics
|May 26, 2026
Summary
This study introduces a new graded exercise test using blood lactate concentration to assess the physiological burden of wearable robots. This method offers more sensitive fatigue indicators than traditional measures.
Area of Science:
- Biomechanics
- Human Physiology
- Robotics
Background:
- Assessing the physiological burden of wearable robots (WRs) is crucial for daily use.
- Standardized parameters are needed to reliably evaluate the impact of WRs on wearers.
Purpose of the Study:
- To introduce and validate a Graded Exercise Test (GXT) protocol using blood lactate concentration (BLC) as the primary metric for evaluating WR physiological burden.
- To compare the sensitivity of BLC-based assessment against conventional measures like heart rate (HR) and oxygen uptake (VO2).
Main Methods:
- Seventeen participants underwent a treadmill-based GXT twice: once without load and once with a simulated 10% body-weight load.
- Continuous monitoring of HR and VO2, with BLC measured every two minutes throughout the GXT.
- Analysis of BLC dynamics to identify lactate thresholds and exercise intensity transitions.
Main Results:
- BLC exhibited nonlinear dynamics, indicating transitions through lactate thresholds.
- Under loading conditions, BLC increased earlier compared to the unloaded condition, suggesting earlier anaerobic activation.
- VO2 increased proportionally with workload, but BLC provided a more sensitive indicator of metabolic perturbations.
Conclusions:
- The proposed BLC-based GXT protocol is a more sensitive method for assessing fatigue and metabolic strain imposed by WRs.
- BLC dynamics reveal exercise intensity transitions and metabolic perturbations more effectively than HR and VO2 alone.
- This protocol aids in designing wearable robots with reduced physiological burden for daily applications.
