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For a billion years, Earth's day lasted just 19.5 hours 聽鈥 a new study reveals why

An atmospheric tide driven by the sun countered the effect of the moon, astrophysicists say
view of earth from space with the sun shining in the background

Without the sun鈥檚 pull on the Earth鈥檚 atmosphere, our day would be 60 hours long (photo by dima_zel/Getty images)

A team of astrophysicists from the 管家婆免费开奖大全 has revealed how the slow and steady lengthening of Earth鈥檚 day caused by the tidal pull of the moon was halted for over a billion years.

They show that from approximately two billion years ago until 600 million years ago, an atmospheric tide driven by the sun countered the effect of the moon, keeping Earth鈥檚 rotational rate steady and the length of day at a constant 19.5 hours.

Without this billion-year pause in the slowing of our planet鈥檚 rotation, our current 24-hour day would stretch to over 60 hours.

Drawing on geological evidence and using atmospheric research tools, the scientists show that the tidal stalemate between the sun and moon resulted from the incidental but consequential link between the atmosphere鈥檚 temperature and Earth鈥檚 rotational rate.

The study was .

The paper鈥檚 authors include Professor , a theoretical astrophysicist with the Faculty of Arts & Science鈥檚  (CITA); graduate student , with CITA and the ; , associate professor in the  and the at 管家婆免费开奖大全 Scarborough; Jeremy Leconte, a CNRS researcher at the Laboratoire d鈥檃strophysique de Bordeaux and a former CITA postdoctoral fellow; and Christopher Lee, assistant professor in the department of physics.

 

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Murray and his collaborators relied on geologic evidence in their study, like these samples from a tidal estuary that reveal the cycle of . Thick bands correspond to spring tides, and thin bands to neap tides (image by G.E. Williams)

When the moon first formed some 4.5 billion years ago, the day was less than 10 hours long. But since then, the moon鈥檚 gravitational pull on the Earth has been slowing our planet鈥檚 rotation, resulting in an increasingly longer day. Today, it continues to lengthen at a rate of some 1.7 milliseconds every century.

The moon slows the planet鈥檚 rotation by pulling on Earth鈥檚 oceans, creating tidal bulges on opposite sides of the planet that we experience as high and low tides. The gravitational pull of the moon on those bulges, plus the friction between the tides and the ocean floor, acts like a brake on our spinning planet.

鈥淪unlight also produces an atmospheric tide with the same type of bulges,鈥 says Murray. 鈥淭he sun's gravity pulls on these atmospheric bulges, producing a torque on the Earth. But instead of slowing down Earth鈥檚 rotation like the moon, it speeds it up.鈥

For most of Earth鈥檚 geological history, the lunar tides have overpowered the solar tides by about a factor of ten 鈥 hence the Earth鈥檚 slowing rotational speed and lengthening days.

But some two billion years ago, the atmospheric bulges were larger because the atmosphere was warmer and because its natural resonance 鈥 the frequency at which waves move through it 鈥 matched the length of day.

The atmosphere, like a bell, resonates at a frequency determined by various factors, including temperature. In other words, waves 鈥 like those generated by the enormous eruption of the volcano Krakatoa in Indonesia in 1883 鈥 travel through it at a velocity determined by its temperature. The same principle explains why a bell always produces the same note if its temperature is constant.

Throughout most of Earth鈥檚 history that atmospheric resonance has been out of sync with the planet鈥檚 rotational rate. Today, each of the two atmospheric 鈥渉igh tides鈥 take 22.8 hours to travel around the world. Since that resonance and Earth鈥檚 24-hour rotational period are out of sync, the atmospheric tide is relatively small.

But during the billion-year period under study, the atmosphere was warmer and resonated with a period of about 10 hours. Also, at the advent of that epoch, Earth鈥檚 rotation 鈥 slowed by the moon 鈥 reached 20 hours.

When the atmospheric resonance and length of day became even factors (ten and 20), the atmospheric tide was reinforced, the bulges became larger and the sun鈥檚 tidal pull became strong enough to counter the lunar tide.

鈥淚t鈥檚 like pushing a child on a swing,鈥 Murray says.

鈥淚f your push and the period of the swing are out of sync, it鈥檚 not going to go very high. But, if they鈥檙e in sync and you鈥檙e pushing just as the swing stops at one end of its travel, the push will add to the momentum of the swing and it will go further and higher. That鈥檚 what happened with the atmospheric resonance and tide.鈥

Along with geological evidence, Murray and his colleagues achieved their result using global atmospheric circulation models (GCMs) to predict the atmosphere鈥檚 temperature during this period. The GCMs are the same models used by climatologists to study global warming. Murray says the fact they worked so well in the team鈥檚 research is a timely lesson.

鈥淚've talked to people who are climate-change skeptics who don't believe in the global circulation models that are telling us we鈥檙e in a climate crisis,鈥 he says. 鈥淎nd I tell them: We used these global circulation models in our research, and they got it right. They work.鈥

Despite its remoteness in geological history, the result adds additional perspective to the climate crisis. Because the atmospheric resonance changes with temperature, Murray points out that our current warming atmosphere could have consequences in this tidal imbalance.

鈥淎s we increase Earth's temperature with global warming, we鈥檙e also making the resonant frequency move higher 鈥 we鈥檙e moving our atmosphere farther away from resonance. As a result, there's less torque from the sun and therefore the length the day is going to get longer 鈥 sooner than it would otherwise.鈥

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