Showing posts with label typhoons. Show all posts
Showing posts with label typhoons. Show all posts

Tuesday, August 31, 2021

Hurricane Ida's unnerving intensification


This excellent piece from Axios shows just how much climate change contributed to Hurricane Ida.


Hurricane Ida jumped from a 105-mph Category 2 hurricane on Saturday to a high-end Category 4 monster by Sunday morning, in a feat enabled by climate change, seasonal timing and a dose of bad luck.

Why it matters: Understanding how Mother Nature's most powerful storms are changing is key to learning how to better protect coastal communities around the world — everywhere from the mega-cities of Southeast Asia to the small towns of the Louisiana Bayou.

Driving the news: The explosive intensification of Hurricane Ida shortly before landfall was a nightmare situation. Social media was inundated with expressions of anxiety and dread, as it was too late for anyone in harm's way to flee from what they may have thought was going to be a weaker storm.

  • That the storm rapidly intensified was not a surprise to hurricane forecasters, who had been predicting this since the storm moved off the coast of Cuba on Friday.
  • But even the most bullish forecast did not call for the rate or peak of intensification that ended up occurring.

By the numbers: One key measure of storm intensity is the minimum central air pressure. In this case, the pressure dropped by a whopping 41 millibars in just 14 hours, between 5pm ET Saturday and 7am ET Sunday — and 52 millibars in 24 hours, starting from 8am ET Saturday.

  • During the 24-hour period, winds shot upwards by 65 mph, exceeding the National Hurricane Center's definition of rapid intensification, which is when a storm's maximum sustained winds increase by 35 mph in 24 hours.
  • In keeping with another suspicious trend, Ida also intensified all the way to the coast in the northern Gulf of Mexico, something that was virtually unheard of before 2018, yet has seemingly become routine.

The intrigue ... Hurricane Ida's explosive intensification was due to three main factors, with climate change mainly affecting the first two — and most decisive — of these three:

  • An ample supply of bathtub-like warm water, with the warmth extending deep into the water column. This was heightened by the storm's timing: Gulf temperatures tend to be at their hottest at this time of year. This year, though, the waters have been even hotter than average.
  • Abundant moisture in the atmosphere, since dry air can get entrained into storms and disrupt their intensification process.
  • A lack of wind shear or any other atmospheric factor that could stifle the storm's towering thunderstorms from organizing and forming a concentric ring around the eye.

How it works: Hurricanes are heat engines, feasting off warm, tropical waters.

  • The vast majority of extra heat going into the climate system from burning fossil fuels is being absorbed by the oceans, and the seas are warming as a result.
  • So, too, are air temperatures. Physics, specifically the Clausius-Clapeyron relationship, tells us that for every 1°C (1.8°F) of temperature increase, there is about a 7% increase in the water holding capacity of the atmosphere.
  • A recent scientific assessment found that the planet's oceans have warmed faster during the past 100 years than at any point in the past 11,000 years.
  • These two trends are causing hurricanes and tropical storms to dump more water, on average, than they used to, and for there to be a greater proportion of high-end Category 3, 4 and 5 hurricanes in some ocean basins.

Context: Sufficient studies have been published on these trends in peer-reviewed journals that the recent UN Intergovernmental Panel on Climate Change report included some changes to the role of climate change in tropical cyclones as an area of increased scientific confidence.

  • For example, a 2019 study in the journal Nature found there had been a trend in the Atlantic Ocean toward more rapidly intensifying storms between 1982 and 2009, and computer modeling showed that such a trend would not have been likely without human-induced climate change.
  • A 2020 study published in the Proceedings of the National Academy of Sciences found that tropical cyclones are more likely to reach higher categories across much of the globe, including the Atlantic.
  • And an especially ominous 2017 study published in the Bulletin of the American Meteorological Society found that a storm that intensifies by 70 mph in the 24 hours before landfall, which occurs about once every century today, could occur as frequently as every five to 10 years by the end of this century.

The bottom line: In the end, the fact that this storm hit Port Fourchon, Louisiana, also comes with a dose of bad luck and bitter irony.

  • Bad luck, since the direct hit makes the state the first to ever see back-to-back years with hurricanes that made landfall with sustained winds of 150 mph or greater, according to meteorologist Steve Bowen, head of catastrophe insight at Aon.
  • And irony, because the landfall location, Port Fourchon, is home to critical facilities for operating deepwater oil and gas drilling rigs in the Gulf of Mexico. More than 1.5 million barrels of crude oil per day are transported via pipelines and through the port. Yet it's the burning of fossil fuels that helped make this storm so strong, and so badly damaged the port.

Record hurricanes, record floods, record droughts, record heat, record bushfires―how much longer before everyone recognises the reality of the climate emergency?  And does something about it?

Friday, August 13, 2021

Intenser, wetter, windier storms in a warming world

 From  Inside Climate News


The federal government counts 52 tropical cyclones since 1980 that, with the cost adjusted for inflation, have caused, on average, $20 billion in damages in the United States. There were a record seven so-called “billion dollar” cyclones just last year.

With climate change helping produce a global horror film of extreme weather disasters this summer, and the peak Atlantic hurricane and Western fire seasons just arriving, a new landmark United Nations climate report by the Intergovernmental Panel On Climate Change offers the most thorough evaluation of the physical science associated with global warming so far, including the climate science of tropical cyclones.

Made public Monday, the IPCC report was written by 234 scientists from 66 countries and approved by 195 member governments of the IPCC.

To meteorologists, tropical cyclones are rotating, organized systems of clouds and thunderstorms that originate over tropical or subtropical waters. In the North Atlantic, central North Pacific and eastern North Pacific they are called hurricanes once wind speeds reach 74 miles per hour. Major hurricanes, categories 3 to 5, pack wind speeds of 111 miles per hour to more than 157 miles per hour, and cause damage that ranges from devastating to catastrophic.

The IPCC authors did not do original research for their report. Rather, they assessed the state of knowledge and the confidence in it based on previously published scientific reports.

Hugh Willoughby, a professor at Florida International University in the Department of Earth and Environment who has been studying hurricanes for decades, said the IPCC report’s assessment of hurricanes reveals an unsurprising picture of evolving science.

“It is consistent with what we have thought for 40 years,” said Willoughby, who flew more than 400 missions into hurricanes as a meteorologist with the federal government and led the National Oceanic and Atmospheric Administration’s Hurricane Research Center from 1995 to 2002. “What is new is more and more (hurricane) events that fit the pattern, and that is what you would expect.” 

To determine six, key takeaways about tropical cyclones and climate change from the IPCC report, Inside Climate News interviewed Willoughby and two academic researchers whose work was cited by the report’s authors: Colin Zarzycki, an assistant professor of meteorology and climate dynamics at Pennsylvania State University and Phil Klotzbach, a hurricane expert and research scientist at Colorado State University’s Department of Atmospheric Science.


  • More Major Tropical Cyclones. It is likely, the report found, that the percentage of major tropical cyclones—those reaching categories 3 to 5—increased over the last four decades. Scientists are confident in saying that there will be more frequent storms in the highest intensity categories of 4 and 5.
  • Wetter, Windier Tropical Storms. Warmer air holds more moisture, and human-driven climate change is making tropical cyclones wetter. The authors found that, generally, storms with extreme daily precipitation are projected to intensify by about 7 percent for each 1 degree Celsius of global temperature warming. The authors also expressed high confidence in projections that peak wind speeds in the most intense tropical cyclones—categories 4 and 5—will increase with increasing global warming.

  • Tropical Storms are Shifting North. In the North Pacific, tropical cyclones are reaching their maximum intensity farther north than before, potentially exposing areas that have no experience with tropical cyclones to a risk of dealing with them in the future. The report said this is partly explained by changes in global-scale tropical atmospheric circulation. 
  • More Explosive Tropical Cyclones. With warmer sea-surface temperatures, the frequency of storms that rapidly intensify has increased.
  • Slower [Moving] Tropical Cyclones that Can Do More Damage. When slower moving cyclones make landfall, they can drop more rain, cause more wind damage and sustain a larger storm surge simply because they hang around longer. The IPCC authors cited research in 2019 that provided evidence that translation speed for Atlantic storms decreased 17 percent from 1900 to 2017. In addition, what scientists call “meanders” and “stalls” in tropical cyclone paths have become increasingly common, along with the slower speeds.

[Read more detail here]

Hurricane Harvey struck the Texas coast in August 2017. Credit: NOAA