Related Experiment Video
Updated: Aug 5, 2026

A Robotic Platform to Study the Foreflipper of the California Sea Lion
Published on: January 10, 2017
Sprint-like cardiac dynamics support repeated acrobatic lunges in foraging rorqual whales
Ashley M Blawas1, James Fahlbusch1,2, Jack Barkowski1,2
1Hopkins Marine Station, Oceans Department, Stanford University, Pacific Grove, CA 93950.
None:
The dive response decreases heart rate, regulates blood flow distribution, conserves oxygen, and extends dive duration. In diving animals, dive heart rate can be modulated to meet increased demands of exercise during foraging. However, lunge-feeding rorquals represent an extreme example of exercise under breath-hold conditions: Though most of their dive time is spent gliding and filtering, lunges require high-power, acrobatic sprints to engulf massive volumes of prey-laden water. Our biologging data show that heart rate repeatedly increases with lunging but only gradually declines during filtering, dissimilar from the heart rate-activity coupling observed in other divers. We suggest that the unique nature of rorqual exercise likely requires glycolytic metabolic substrates, rather than aerobic substrates, during short, powerful lunges. During slow filtering, high heart rates may help partially renew these energy sources via oxygen-dependent pathways. By temporarily buffering oxygen demand from supply, the flexible dive response appears to optimize oxygen use in lunging rorquals and support aerobically "cheap" foraging. The data also show that dive cycle heart rate scope increases with rorqual size. We propose that cardiovascular plasticity during high and low power phases of foraging dives underpins rorquals' ability to achieve high foraging efficiencies and combine explosive predation with grazing-like efficiency in a single lineage.
Related Concept Videos
Optimal Foraging
Respiratory Capacities
One key metric is the Inspiratory Capacity (IC), which represents the maximum amount of air that can be inhaled with full effort. IC is calculated by summing the tidal volume and inspiratory reserve volume, typically ranging from 2.4 to 3.6 liters.
The Functional Residual Capacity (FRC) represents the air in the...
Breathing
Flail Chest-II
Assessment:
1. Clinical Evaluation:
History:
Respiratory Volumes
Tidal Volume (TV) Tidal volume (TV) is the air inhaled or exhaled in a...
Buoyancy
To get...

