How to Make Sure Wildfire Shelters Save Firefighters’ Lives

2022-07-26 12:30:17
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Wildfires burn hot, fast and unpredictably. Although wildland firefighters receive extensive training to keep themselves safe, they sometimes become cut off by flames that can reach temperatures of 1,600 to more than 2,000 degrees Fahrenheit. To protect themselves in these extremely dire situations, each carries a portable fire shelter (essentially a small, specially formulated foil tent) that can be deployed to shield them from flames and hot gasses. But this technology has serious limits, and researchers are now exploring new materials and designs—and putting prototypes through a gauntlet of fiery tests.

The National Wildfire Coordinating Group (NWCG), a federal government organization that sets standards for wildland fire equipment, reports that fire shelters have been deployed more than 200 times between 2006 and 2020. But this last line of defense does not always work. For example, 19 of the 20 members of the Granite Mountain firefighting crew tragically perished despite using their shelters in Arizona’s 2013 Yarnell Hill Fire. The need for better shelters will only become more crucial as fire seasons continue to grow more severe: last year alone, firefighters battled almost 60,000 wildfires that turned seven million acres of U.S. forest into blackened ash.

“The fire seasons are lengthening, getting more severe, and wildland firefighters are seeing fire behavior that we haven’t seen before,” says Camille Stevens-Rumann, an assistant professor of forest and rangeland stewardship at Colorado State University, who was not involved in the recent fire shelter tests. “In Colorado, we had a fire that burned 6,000 acres an hour. Those conditions lead to more risk for firefighters.” Such situations are particularly dangerous when flames spread quickly in a short period of time, forcing firefighters to retreat to their emergency shelters. “We’re also seeing an increase in extreme fire events, where you see many acres burning over a short period of time,” Stevens-Rumann adds. “With factors like wind, lack of moisture and plentiful fuels, you see fires exploding quickly in a single day.”

The current M2002 fire shelter, the only model approved for use by government-agency firefighters, folds down to a 4.3-pound packet about the size of a loaf of bread. It is typically stored in a plastic sleeve and carried in a special compartment on wildland firefighters’ backpacks. The packet can be unfolded into a half-tube that is just large enough for one person to lie down inside. Its fire resistance comes from a two-layer construction, with an air gap in between for added insulation. The outer layer consists of woven silica that is laminated, or bonded, to aluminum foil. The inner layer is fiberglass laminated to a separate layer of aluminum foil.

A wildland fire emergency shelter folds down to a packet about size of a loaf of bread. Credit: USDA Forest Service photo by Ian Grob

In 2019 a five-year NWCG review recommended retaining the existing fire shelter design. But the organization is always looking for improvements. Now researchers at North Carolina State University (N.C. State) have followed NWCG fire protection guidelines to evaluate the M2002, along with four prototypes developed by university researchers. Their work was detailed in a report published this past spring.

“We’re just trying to improve on [the current design],” says the study’s lead author Joseph Roise, a professor of forestry and environmental resources at N.C. State. “The domelike shape is really as good as you can get. You want to be close to the ground because heat rises—the closer you are to the ground, the less heat you have on your body.” Because the existing shape is hard to beat, the new emergency fire shelter prototypes focus on other ways to improve heat resistance. From the outside, they look a lot like the M2002. But some add an additional layer of advanced heat-resistant material. Others experiment with the placement of the seams, which can be a weak point.

To test the fire shelters’ thermal protective performance in a controlled laboratory environment, the N.C. State researchers used a specially built fire chamber called the PyroDome Turbulent Flame Fire Shelter Test System. Within the chamber, propane burners blasted full-size fire shelters with a direct flame for one minute. Sensitive instruments measured the time needed for the temperature at their floor to hit 302 degrees F, the established maximum temperature level for survivability in a shelter. A video camera inside each test shelter documented how the inside walls and seams changed with exposure to the flames.

During such tests, fire shelters must withstand two types of heat. First, there is radiant heat—think of it as the warmth experienced when standing by a campfire. The outer layer of aluminum reflects approximately 95 percent of this heat, according to Roise. He notes that aluminum is very durable, and when combined with a silica base, which slows the rate of heat transfer to lower the temperature inside the shelter, the materials work together well at reflecting radiant energy.

A more serious challenge is convective heat, which is experienced when a fire moves through a shelter deployment site and the flames or hot gasses directly touch the outside of the shelter. The outer layer can absorb this convective heat, raising its temperature. As that temperature nears 500 degrees F, the adhesives that bind the layers together can break down. If the aluminum foil exterior is separated from the cloth of the shelter’s outer layer, it can be torn away by turbulent winds, destroying much of the shelter’s reflective protection. Any torn spots in the material can also allow convective heat to breach the shelter and rapidly raise internal temperatures.

Because real wildfires create such unpredictable conditions, it is necessary to test fire shelters in the field, as well as in the laboratory. The N.C. State researchers also conducted eight field tests in four locations around North America. The test sites offered different fuel types, such as chaparral (where the ground is covered with shrubs or small trees), grassland and boreal forest, as well as multiple kinds of topography, from flat to hilly. The tests exposed the prototype shelters to different flame configurations, temperatures and weather conditions. This variety made it challenging to compare the M2002 model with prototypes, however. High winds, inconsistent amounts of fuel, and varying fire behavior produced different conditions for each shelter tested.

Emergency fire shelters after field-testing. Credit: John Williams

“There are a lot of variables in a wildfire environment. It’s very unpredictable. You could have a shelter next to another shelter, and when fire runs through the area, you’ve got surprisingly different results between the two,” says David Maclay-Schulte, an equipment specialist at the U.S. Forest Service’s National Technology and Development Program, who did not work on the new N.C. State report. “It’s very challenging to get repeatable and reliable data that way.”

Despite such challenges, the M2002 and all four prototypes passed the fire protection tests: they preserved a survivable air temperature inside the shelters during the field test operations, even in situations where flames breached the outer layer. The tests also proved the effectiveness of prototypes that included advanced thermal-insulation layers. And adding an insulating layer actually prevented some of the convective energy from burning through a shelter’s outer layers of aluminum foil, according to Roise: all of the prototypes outperformed the M2002 in the lab tests, and the one that performed best included a layer of a heat-resistant material called Kapton, developed by chemical company DuPont.

But this prototype was also much heavier and bulkier than the current model. That’s a problem because a shelter’s weight (as well as its durability and cost) are important considerations. Wildland firefighters already must carry 45-pound packs of equipment, sometimes in sweltering heat, so a shelter that adds too much to that burden will not make the cut.

Another critical criterion is toxicity, which the N.C. State study did not test for. Researchers have studied certain materials that offer increased protection from radiant and convective heating. When exposed to high heat, however, these substances release toxic fumes that would endanger firefighters using the shelters. “Firefighters can survive the fire but suffer negative consequences because the thermally decomposed material becomes poisonous,” Maclay-Schulte says.

Although the prototypes proved promising, they failed to dethrone the M2002 as the model wildland firefighters carry into the field. But the quest for better fire shelters still continues. “We’re always testing different materials and materials composites to see if they react differently and perform better,” Maclay-Schulte says. “There’s always something going on with fire shelter development.”

参考译文
如何确保野火庇护所拯救消防员的生命
野火燃烧猛烈、迅速且难以预测。虽然野外消防员接受过广泛培训以确保自身安全,但他们有时会被火焰切断退路,而火焰温度可高达1600至2000华氏度以上。为了在这些极其危险的情况下保护自己,每位消防员携带一个便携式防火庇护所(本质上是一种特殊配方制成的小型箔帐篷),可以在火和热气中迅速展开以保护自己。但这种技术存在严重局限,研究人员正在探索新的材料和设计,并将原型投入一系列严酷的火焰测试中。国家野火协调组(NWCG)是一个联邦政府组织,负责制定野外火灾装备标准。该组织表示,2006年至2020年间,火场庇护所已部署了200多次。然而,这种最后防线并不总是有效。例如,在2013年亚利桑那州亚尼尔山火中,格兰特山消防队20名成员中有19人因使用庇护所而遇难。随着火灾季节日益严重,对更安全庇护所的需求也愈加紧迫:仅去年,消防员就应对了近6万起野火,将美国700万英亩森林变成了焦黑的灰烬。科罗拉多州立大学森林与牧场管理学助理教授卡米尔·斯蒂文斯-鲁曼(Camille Stevens-Rumann)表示:“火灾季节的持续时间正在延长,情况愈发严重,野外消防员也遇到了前所未见的火灾行为。”“在科罗拉多州,我们曾有一场每小时烧毁6000英亩的火灾。这种情况让消防员面临更大的风险。”当火焰在短时间内迅速蔓延,迫使消防员撤退到紧急庇护所时,这样的情况尤为危险。斯蒂文斯-鲁曼补充道:“我们还看到极端火灾事件在增加,短时间内大量森林烧毁的情况越来越多。”“由于风、缺乏湿度和丰富的燃料,火灾可以在一天内迅速爆燃。”目前唯一经政府机构批准使用的火场庇护所是M2002型。它可折叠成一个约4.3磅重、大小如一条面包的包裹,通常储存在塑料套中,并携带在野外消防员背包的特殊隔间里。该庇护所可以展开成一个足够一个人躺下的半管状结构。其防火性能来自于双层结构,中间夹有空气间隙,提供额外的隔热效果。外层由编织硅材料制成,并与铝箔层压在一起,内层是与另一层铝箔层压的玻璃纤维。2019年,NWCG为期五年的评审建议保留现有的火场庇护所设计。但该组织始终在寻求改进的机会。目前,北卡罗来纳州立大学(N.C. State)的研究人员正根据NWCG的防火保护指南对M2002及四款由大学研究人员开发的原型进行评估。他们的研究成果已于今年春天发布。“我们只是想改进现有设计,”该项研究的主要作者、N.C. State林业与环境资源教授约瑟夫·罗伊斯(Joseph Roise)表示。“穹顶形结构已经非常理想。因为热气上升,你越靠近地面,身体接收到的热量就越少。”由于现有结构难以超越,新的紧急火灾庇护所原型主要集中在其他方式来提高耐热性能。从外观上看,它们与M2002型很相似。但其中一些增加了一层先进的耐热材料,还有一些则尝试了接缝位置的变化,因为接缝可能是脆弱点。为了在受控实验室环境中测试火灾庇护所的热保护性能,N.C. State的研究人员使用了一个名为“火穹湍流火焰庇护所测试系统”的专用火室。在该测试室内,丙烷燃烧器对整尺寸的火灾庇护所喷射直火,持续一分钟。灵敏仪器测量了庇护所地板温度达到302华氏度所需的时间,该温度是庇护所内可生存的最大温度。测试庇护所内的摄像机记录了墙壁和接缝在火焰暴露下的变化。在这些测试中,火灾庇护所需承受两种类型的热。首先,是辐射热,类似于你在篝火旁感受到的温暖。据罗伊斯介绍,铝箔层可以反射大约95%的辐射热。他指出铝材非常耐用,当与硅基材料结合时,可以减缓热量传递速率并降低庇护所内的温度,因此两者在反射辐射热方面协同作用良好。更大的挑战是对流热,当火焰经过庇护所部署现场时,火焰或热气直接接触庇护所外壁时会感受到。外层可以吸收这种对流热,从而升高其温度。当温度接近500华氏度时,粘合各层的粘合剂可能会失效。如果铝箔外层与庇护所外层布料分离,可能会被湍流强风撕裂,从而毁坏大部分的反射保护。材料上的任何撕裂也允许对流热穿透庇护所,迅速提升内部温度。由于真实的野火会带来如此不可预测的条件,因此在实验室测试火灾庇护所的同时,在野外进行实地测试也是必要的。N.C. State的研究人员还在北美四个地点进行了八次实地测试。测试地点提供了不同的燃料类型,例如灌木丛(地面覆盖着灌木或小树)、草原和针叶林,以及各种地形,从平坦到丘陵。测试使原型庇护所暴露于不同的火焰配置、温度和天气条件下。然而,这种多样性使得M2002模型与原型之间的比较变得困难。强风、不一致的燃料量和多变的火灾行为为每种庇护所创造了不同的测试环境。实地测试后的紧急火灾庇护所。图片来源:约翰·威廉姆斯美国森林局国家技术与开发项目组的装备专家大卫·麦克莱-舒尔特(David Maclay-Schulte)表示:“野火环境中有很多变量,非常难以预测。你可能看到一个庇护所旁边还有一个庇护所,当火灾通过该区域时,两个庇护所的结果却惊人地不同。”“通过这种方式获取重复且可靠的数据非常具有挑战性。”尽管面临这些挑战,M2002和所有四个原型都通过了防火测试:在实地测试过程中,即使火焰穿透外层,庇护所内仍然保持了可生存的空气温度。测试还证明了包含先进热绝缘层的原型的有效性。罗伊斯表示,添加绝缘层实际上可以防止部分对流热穿透铝箔外层;在实验室测试中,所有原型的表现都优于M2002,表现最好的原型包含了一层名为Kapton的耐热材料,该材料由化学公司杜邦开发。但这个原型也比当前型号更重、体积更大。这成为一个问题,因为庇护所的重量(以及其耐用性和成本)是重要的考量因素。野外消防员需要携带45磅重的装备,有时在酷热天气中行进,因此会增加太多重量的庇护所将无法被采用。另一个关键标准是毒性,而这并未在N.C. State的研究中进行测试。研究人员已经研究了某些提供更强辐射和对流热防护的材料。然而,这些材料在高温下会释放有毒气体,这将危及使用庇护所的消防员。“消防员可能会从火灾中幸存下来,却因热分解材料产生的毒气而遭受负面后果,”麦克莱-舒尔特说道。尽管这些原型表现出了巨大的潜力,但它们并未取代M2002成为野外消防员在火场中使用的标准庇护所。但对更优庇护所的探索仍在继续。“我们一直在测试不同的材料和材料复合物,看看它们是否反应不同、表现更佳,”麦克莱-舒尔特说道。“火场庇护所的发展从未停止。”
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