|To kill, cheetahs use agility and acceleration, not top speed||
Researchers have used gadget-laden collars to record cheetahs' movements in the wild. They found that cheetahs succeed not because they are the fastest animal on land but because of their incredible acceleration and unmatched turning speeds.
Most of what we know about cheetahs in the wild is based on direct observation or through videos from remote cameras. This limits our understanding of cheetahs to open habitats and daytime. Alan Wilson at the University of London’s Royal Veterinary College wanted to study cheetahs better.
Over the past ten years, Wilson and his team have been perfecting devices to study the locomotion of animals. For cheetahs, they assembled a collar that carries a GPS device to record location data, an accelerometer to measure speed, a gyroscope to understand angular motion, and a magnetometer to make location data more accurate, which it does by measuring tiny changes in Earth’s magnetic field. The data was transmitted back to the researchers in real time through radio.
The “key development,” Wilson said, “is to pack all that in a low-power device.” The collar relies only on solar cells for recharging but carries a battery in case of failure.
After tracking 367 runs by five cheetahs in the wild, Wilson found many surprising results. First, the top speed of most cheetah hunts is on average half the “record speed.” That record speed is 102 km per hour, which was noted in 1965 (though not published until 1997), by a veterinary surgeon in Kenya. The average length of a cheetah’s hunt was about 180 meters. But on average, cheetahs covered about six kilometers every day. With only two hunts made every three days, high-speed runs make for only a tiny fraction of a cheetah’s daily routine.
Cheetahs hunt in all terrains
Second, he found that cheetahs can successfully hunt in all terrains, not just open fields. The run data was overlaid on Google Earth to visualize the landscape the cheetahs were operating in. This showed that only 20% of chases in open fields were successful, compared to 31% in dense cover. Wilson thinks that dense cover, such as trees, might give cheetahs vantage points that open fields cannot.
Third, cheetahs can decelerate faster than they can accelerate, much as sports cars with powerful engines need beefed-up brakes. While both of these processes require different sets of muscles and depend on different conditions, the rates of acceleration and deceleration beat those of any other land-dwelling animal. Based on the recorded data, Wilson calculates that the muscle power output of cheetahs is about four times that of Usain Bolt, three times that of polo horses, and nearly double that of greyhounds.
The top speed of a cheetah hunt had no correlation to the successful outcome of the hunt. Instead, Wilson found that success depended more on how fast the cheetah could slow down rather than on how fast it could speed up. It's this last phase of a hunt—when the cheetah slows down that was critical for success. When these two observations are put together, Wilson thinks it indicates that cheetahs don’t abandon hunts early to save energy or reduce risk of injury.
Finally, cheetahs are not built to be able to turn at their highest speed. In an artificial setting, which astronauts and fighter pilots are put into for training, the force felt by a cheetah trying to turn around at top speed could knock it unconscious. Instead, they use their ability to slow down and their ridged footpads and claws to grip the ground well enough to turn quickly.
The results of Wilson’s work are published in Nature today. Craig McGowan at the University of Idaho, an expert in understanding animal locomotion who was not involved in the study, was impressed by Wilson’s work. “This research has been able to collect a huge amount of data from animals behaving naturally in their environment. No other data set of this kind exists,” he said.
Roger Kram at the University of Colorado, Boulder, another biomechanics expert who was not involved in the study, said, the “technology used is absolutely fantastic. Most people studying biomechanics of running do so in labs,” Kram said. “I’d like to see this technology applied to prey, such as impala and Thomson’s gazelle.”
Wilson is keen to see the technology used widely. “My aim is not to commercialize this. We’ve revealed all the technology and methods in our paper,” he said. His team has already started using it on lions and wild dogs.
(Source: Ars Technica)
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