New Issue: Orbital Catastrophe Ahead? Read Now

Humpback Whale Flippers Do More Than Maneuver

Researchers attached cameras to humpback whales and found that they flap their flippers to help power forward swimming.

 

Illustration of a Bohr atom model spinning around the words Science Quickly with various science and medicine related icons around the text

Join Our Community of Science Lovers!

Whales move by beating their tails.”

Paolo Segre is a postdoctoral researcher at Stanford.

“And they’ve got these large muscular tails, which they can move and that’s what powers them forward. And they use their flippers, sort of extended out to the side, to maneuver.”


On supporting science journalism

If you're enjoying this article, consider supporting our award-winning journalism by subscribing. By purchasing a subscription you are helping to ensure the future of impactful stories about the discoveries and ideas shaping our world today.


He and colleagues actually affixed cameras onto humpback whales, in the hope of learning more about how they move in their marine habitat. And those cameras caught a glimpse of something completely unexpected.

“We basically got video of it. And it’s the whales actually flapping their flippers, much like a bird flaps its wings, in order to power their forward swimming.”

Segre calls the discovery “novel.” Which is science-speak for never-before-noted. The flipper-powered push may come in handy especially when the whales engage in lunge-feeding—opening their giant mouths, then quickly moving forward to take in hundreds of gallons of water and its edible contents.

“Most of what we used to know about whales was from the whaling industry, from dissections of whales that washed up on shore, or from those brief glimpses that we got when we were sitting on a boat and see them surface while they’re breathing.”

The findings are in the journal Current Biology. [Paolo S. Segre et al., A hydrodynamically active flipper-stroke in humpback whales]

Segre says the newly discovered propulsion method is likely unique to the humpback whale, which is known for its very long and extremely mobile flippers. The finding might even lead to some real-world applications among us humans.

“But I think where this could be really interesting is actually with inspiring different shapes and movements of propellers or wind turbines…that’s the type of place that we could look for if we really want to see how moving flippers could translate to something, to an engineering purpose.”

Turns out the humpback’s flippers tell their own unique tale.

—Emily Schwing

[The above text is a transcript of this podcast.]

Subscribe to Support Independent Journalism

Great science journalism requires human expertise, time, effort and creativity. And it costs money. That’s why I and the journalists here at Scientific American hope you’ll join our community.

When you subscribe, you are supporting staff and freelance journalists who are passionate about telling science stories that are true, important and compelling. Our editors and reporters are often experts in their fields, which means they understand the nuances of big discoveries and can untangle the breakthroughs from the hype. With a subscription, you are also supporting rigorous fact-checking to ensure the words we publish are precise and accurate. And you’re supporting original illustrations, graphics and photos that bring you closer to an advanced laboratory, an ice sheet in Antarctica or a space mission in orbit. You’re helping us craft other types of high-quality journalism as well: Our newsletters are carefully written, edited and curated by staffers you have or will come to know and love. Our Science Quickly podcast is based on original reporting, collaboration with editors and scientists and exacting production.

Subscriptions keep this engine running so we can continue to deliver thoughtful, rigorous and independent science journalism to you. In an era of viral misinformation, this work is crucial. If you value what we do, I hope you’ll consider joining us as a subscriber

Thank you,

Jeanna Bryner, Editor in Chief, Scientific American

Subscribe