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Electric cars are popping up everywhere, but did you know their fires are a whole new beast? Dive in as we break down the wild science behind EV fires, what makes them so tough to control, and the coolest new tech firefighters use to battle these blazes. Don’t miss out—subscribe for more electrifying content and comment below with your favorite fact or moment from the video! #science #engineering #electriccars #technology #cars

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0:00 - Rising Prevalence of Electric Cars
0:26 - Why Electric Car Fires Matter
1:04 - How Electric Car Fires Begin
2:09 - Chemical Reactions Behind Battery Fires
3:41 - Dangers and Persistence of Thermal Runaway
4:55 - Inside the Battery: Reactions and Risks
6:16 - Firefighting Innovations and Fireman Access
9:18 - Global Strategies and Battery Chemistry Differences


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Motor
Transcript
00:00We're seeing electric cars on the streets more and more, and they are becoming part of our routine.
00:07But with that, also comes a lesser-known risk, which is hard to control electric car fires.
00:15So, how do we deal with electric car fires?
00:25What's up, engineering lovers?
00:27Today, we're going to talk about a topic that's becoming increasingly important
00:32as the adoption of electric vehicles grows in Brazil and around the world.
00:37Recently, the company I work for was contacted by our state's fire department.
00:42And do you know what they wanted?
00:45Documentation and information on how to deal with electric car fires.
00:51They were trying to come up with strategies and protocols to handle this kind of emergency.
00:57And that made me realize how critical this topic is and how it needs to be understood.
01:05First of all, it's important to understand that an electric car fire is fundamentally different
01:11from a fire in an internal combustion vehicle.
01:14But what is it exactly?
01:17That difference, the answer, lies in the lithium battery, the heart of the electric vehicle.
01:24While a traditional car burns fuel to a simple combustion reaction, an electric car has a battery
01:32that, when damaged or overheated, can enter a state called thermal runaway.
01:38This is a process where the battery's temperature rises uncontrollably, releasing an enormous amount of heat,
01:47heat and energy.
01:50Unlike a conventional fire, where you can simply turn off the fuel source,
01:55cool down the reaction or cut off the oxygen.
02:00A lithium battery in thermal runaway keeps generating heat on its own, making firefighting extremely challenging.
02:09Now, let's understand the chemistry behind this.
02:12And this is where things get really interesting.
02:15How is it possible that a battery continues to burn, even when you try to put it out with water?
02:23The answer lies in the chemical composition of the lithium battery and in the reactions that occur inside it.
02:30A typical lithium battery contains an organic electrolyte, usually a mixture of lithium salts,
02:38dissolved in a solvent like dimethy carbonate and ethylene carbonate.
02:43When a battery cell goes into thermal runaway, the temperature rises violently,
02:50causing the electrolyte to decompose.
02:53This decomposition releases gases and, even more importantly, releases oxygen to complex chemical reactions.
03:02One of the reactions that occurs is the decomposition of lithium compounds
03:07that release molecular oxygen directly inside the cell.
03:12This means that the battery carries with it the three elements needed to sustain a fire.
03:18Fuel, which are the electrolyte solvents, the heat generated by the exothermic reaction,
03:25and the oxygen released by the battery itself.
03:28When you try to put out a fire with water, the water might even cool the surface,
03:33but it can't stop the chemical reaction happening inside the cells,
03:37because the oxygen is being generated internally.
03:42But how hot do these batteries get during a fire?
03:48Studies show that during a thermal runaway,
03:51lithium batteries can reach temperatures exceeding 500 degrees Celsius.
03:56To put that into perspective,
03:58the temperature of a conventional fire in a building
04:02generally ranges between 600 and 1,000 degrees Celsius.
04:09But what makes a battery fire so dangerous isn't just the absolute temperature,
04:14but the duration and the intensity of the chemical reaction.
04:19A battery in thermal runaway can keep releasing heat and gases for hours,
04:25even after the fire seemingly has been extinguished.
04:29This creates a risk of re-ignition,
04:32where the fire can flare back up and start all over again without prior warning.
04:38The thermal runaway reaction is self-sustaining,
04:42because as the temperature rises, more electrolyte decomposes,
04:47releasing more gases and more oxygen,
04:50creating a vicious cycle that is extremely difficult to stop.
04:54But let's take a closer look at what's happening inside.
04:58When the battery temperature exceeds a certain threshold,
05:02usually around 130 to 165 degrees Celsius,
05:08the separator dividing the anode and the cathode begins to melt.
05:13This causes an internal short circuit,
05:16and that's when the reaction really intensifies.
05:19The metallic lithium in the anode reacts with the released oxygen,
05:25generating a highly exothermic reaction.
05:28The simplified reaction can be represented as we can see on the screen,
05:33where this reaction releases an immense amount of heat,
05:37raising the cell's temperature even further.
05:40In addition, the organic electrolyte also undergoes decomposition
05:44when exposed to high temperatures,
05:47releasing gases such as carbon monoxide, hydrogen,
05:51carbon dioxide, methane, and ethylene.
05:54Among these gases,
05:56carbon monoxide and hydrogen are particularly dangerous,
06:02because they are flammable or can support combustion.
06:05It is a cascade of chemical reactions that feed each other,
06:10making it practically impossible to put out the fire with conventional methods.
06:14But then, how are firefighters learning to deal with this?
06:20The answer is not a single strategy,
06:24but rather multiple approaches that vary depending on the situation.
06:29According to experts and fire departments around the world,
06:32there are several options being implemented.
06:34The first strategy is to use large volumes of water to cool the battery,
06:41not to extinguish the fire,
06:42but to reduce the temperature below the point where thermal runaway is self-sustained.
06:49Water absorbs heat through its specific heat capacity,
06:53which is approximately 4.18 Joules per gram degree Celsius.
06:59One of the highest among common liquids.
07:03Some fire departments are using techniques with a specialized nozzle on the fire hose
07:09that slides over the car and sprays large amounts of water directly onto the battery.
07:16The idea is to keep the battery continuously cooled,
07:20preventing thermal runaway from intensifying
07:23and the fire from spreading to other parts of the vehicle.
07:26But there's an innovative solution that's revolutionizing
07:29the way firefighters deal with these fires.
07:33Have you ever heard of Fireman Access?
07:35This is an exclusive system developed by the Renault Group
07:40in partnership with Fire Services.
07:42And the company decided to make it available for free
07:46to the entire global automotive industry.
07:50Fireman Access is a patented innovation
07:53that allows fire and rescue services
07:56to extinguish an electric vehicle battery fire in just a few minutes,
08:01compared to several hours without this equipment.
08:05Technically, the system works as follows.
08:08A adhesive disc is placed over an opening in the vehicle's battery casing,
08:14sealing it for normal day-to-day use.
08:17If the vehicle catches fire and the flames spread to the battery,
08:21a powerful jet from the fire hose dislodges the disc
08:26and drenches the cells in water,
08:29which is the only fast and effective way to stop thermal runaway.
08:35With Fireman Access, a battery fire can be extinguished in just a few minutes.
08:41This allows firefighters to return to operational readiness much faster.
08:46And Renault Group was so committed to safety
08:49that it decided to make seven patents for this system
08:53available for free to the entire industry
08:56through an open, collaborative platform.
08:59Now, all electric and plug-in hybrid vehicles
09:03sold by Renault, Daisha, Alpine, and Mobilize Worldwide
09:07come equipped with Fireman Access.
09:10And other manufacturers can obtain a free license
09:14to implement this technology in their vehicles.
09:17As we just saw, the major danger of an electric vehicle fire
09:21is the cascade effect.
09:23If you don't have the right tool to act fast
09:26and nip the problem in the bud,
09:28the situation gets completely out of control.
09:32Now, besides Fireman Access,
09:35there are other innovative strategies being adopted globally.
09:39One of them is the use of fire containment blankets,
09:43also known as fire blankets, or EV fire blankets.
09:49These blankets are made of high-temperature-resistant materials
09:53and are specifically designed to contain fires in electric vehicles.
09:59They are placed over the burning vehicle,
10:02isolating it from external oxygen
10:04and containing the flames and toxic gases.
10:08It is important to emphasize
10:09that the blanket does not extinguish the battery fire on its own,
10:14but rather contains it,
10:16preventing the fire from spreading to other vehicles and structures
10:20or nearby people.
10:22This is a crucial strategy
10:24in environments like parking lots,
10:27garages, or urban areas,
10:29where there are multiple adjacent vehicles or structures.
10:33The blanket allows toxic and explosive gases
10:37to escape in a controlled manner
10:40while keeping the fire localized.
10:43Another innovative approach being tested
10:47is the use of water submersion systems.
10:52Additionally, some fire departments
10:54are adopting a multi-pronged approach
10:57that combines several techniques.
11:00This approach,
11:01known as the fire isolator concept,
11:06integrates containment blankets,
11:08aerosol units,
11:10water mist lenses,
11:11and thermal cameras.
11:13The aerosols
11:14work by interrupting
11:17the combustion reaction
11:18at a chemical level,
11:21actively
11:21suppressing the flames
11:24coming from the battery.
11:25Thermal cameras
11:26allow firefighters
11:28to pinpoint
11:29specific battery hotspots
11:32and apply water
11:33in a targeted manner,
11:35maximizing
11:36cooling efficiency.
11:38It's also important
11:39to emphasize
11:40that not all lithium batteries
11:42are the same.
11:43There are different battery chemistries
11:45and some
11:46are more resistant
11:47to overheating
11:48than others.
11:49Lithium-iron phosphate batteries,
11:52known as LFP
11:53or LIFE-PO4,
11:55are more resistant
11:57to thermal runaway,
11:58typically only entering
12:00thermal runaway
12:00at temperatures
12:01above 500 degrees Celsius.
12:04In comparison,
12:06conventional nickel,
12:08manganese,
12:09and cobalt batteries
12:10can go into thermal runaway
12:12at much lower temperatures.
12:14This means
12:14that the type of vehicle battery
12:16also influences
12:18how difficult it is
12:19to fight the fire.
12:20LFP chemistry
12:22is more stable
12:23because iron phosphate
12:24is less reactive
12:26than nickel
12:27and cobalt oxides,
12:28making electrolyte decomposition
12:30slower
12:31and more controllable.
12:32If you made it this far
12:34and liked the video,
12:35take the opportunity
12:36to subscribe
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12:39leave a like
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12:42our content interesting,
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12:48and get a shout-out
12:49in our videos.
12:50And you,
12:51have you ever stopped
12:51to think about
12:52how much electric car technology
12:54is evolving,
12:55but also about
12:56the challenges
12:57it brings
12:57to emergency services?
12:59Have you ever imagined
13:00the complexity
13:01of the chemical reactions
13:03that happen
13:04inside a battery
13:06undergoing thermal runaway?
13:08Have you ever thought
13:09about how firefighters
13:11need to be prepared
13:12to deal with
13:13a type of fire
13:14that is fundamentally
13:15different
13:16from anything
13:17they've learned before?
13:18Let me know
13:19in the comments
13:19what you think
13:20about this topic
13:21and if you have
13:22any experience
13:23or knowledge
13:24regarding electric vehicle fires
13:26that you'd like to share.
13:27Right over here
13:28are two interesting videos
13:30that you need to watch
13:31to expand your knowledge
13:32and explore
13:33your curiosity.
13:35And if you want
13:36to support us,
13:37leave a like,
13:37subscribe to the channel,
13:39hit the notification bell
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13:41a channel member.
13:42That's it,
13:43engineering enthusiasts.
13:44Take care
13:44and I'll see you
13:45in the next video.

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