Showing posts with label Combustible. Show all posts
Showing posts with label Combustible. Show all posts

Wednesday, October 28, 2020

WHAT MAKES SOMETHING FIREPROOF - Nowadays many modern materials are less combustible than they used to be. The term "fireproof" is actually a misnomer, because almost anything containing carbon, if hot enough, can combust and catch fire. "Fire resistant" and "flame retardant" are more accurate terms. When used properly, these fire protective measures can interrupt the burning process. For instance, typical plastic is combustible because it has a lot of carbon and hydrogen available to fuel a fire. Gasoline also has carbon and hydrogen available — and it's volatile, so gasoline can evaporate easily, making it highly combustible. In contrast, a fire resistant material is one that doesn't burn easily. One example of this is the artificial stone used in kitchen countertops, like the DuPont brand Corian. The plastic of a Corian countertop is filled with finely ground rocks made of hydrated aluminum oxide, a chemical compound that doesn't burn. These rocks lower the fuel value (the amount of carbon available for combustion) of the countertop, making it more fire resistant. The aluminum oxide brought water with it, so when you compounded the two together [the plastic and hydrated aluminum oxide], what you in essence had was rocks that on a microscopic basis were wet. And you had them in a plastic matrix, so it was really, really hard to get any heat generated from this. Although the rock attracts and holds water molecules, it does not get wet enough to form a puddle. Water keeps the countertop cool and helps block heat from getting any fuel. Countertops like Corian don't have much plastic — there's just enough to hold the rock together.

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It looks like this chair could use some flame retardant.

What makes something fireproof?

Why do some things burn easily and others don't?

By Dani Leviss - Live Science Contributor 


 

On Dec. 30, 1903, a spark from a stage light set Chicago's Iroquois Theatre ablaze.

"The stage and the curtain and the rest caught fire," said Bill Carroll, grandson of the theatre's co-owner and adjunct professor of chemistry at Indiana University Bloomington.

"There were insufficient exits, and it was terrible."

Over 600 people died in the disaster — the deadliest single-building fire in U.S. history.

Nowadays, this probably wouldn't happen, because many modern materials are less combustible than they used to be.

But what makes certain materials fireproof?

The term "fireproof" is actually a misnomer, because almost anything containing carbon, if hot enough, can combust and catch fire.

"Fire resistant" and "flame retardant" are more accurate terms, Carroll told Live Science.

When used properly, these fire protective measures can interrupt the burning process.

For instance, typical plastic is combustible because it has a lot of carbon and hydrogen available to fuel a fire.

Gasoline also has carbon and hydrogen available — and it's volatile, so gasoline can evaporate easily, making it highly combustible.

In contrast, a fire resistant material is one that doesn't burn easily.

One example of this is the artificial stone used in kitchen countertops, like the DuPont brand Corian.

The plastic of a Corian countertop is filled with finely ground rocks made of hydrated aluminum oxide, a chemical compound that doesn't burn.

These rocks lower the fuel value (the amount of carbon available for combustion) of the countertop, making it more fire resistant, Carroll said.

"The aluminum oxide brought water with it, so when you compounded the two together [the plastic and hydrated aluminum oxide], what you in essence had was rocks that on a microscopic basis were wet," he said.

"And you had them in a plastic matrix, so it was really, really hard to get any heat generated from this."

Although the rock attracts and holds water molecules, it does not get wet enough to form a puddle.

Water keeps the countertop cool and helps block heat from getting any fuel.

If there were a heat source (for instance, a lit cigarette resting on a Corian countertop), it would need to boil away the water surrounding the aluminum oxide first in order to then heat up the fuel, or the plastic molecules, enough to burn.

Moreover, countertops like Corian don't have much plastic — there's just enough to hold the rock together, Carroll said.

Fuel and heat are two sides of the fire tetrahedron, a triangular pyramid in which each side represents the elements necessary for fire.

The other two sides are oxygen and a sustainable chemical reaction, Carroll explained.

Most materials — aside from granite and asbestos, which are among the rare materials that are actually, literally fireproof — can be made more or less combustible only by eliminating one or more sides of the fire tetrahedron, he said.

The fire tetrahedron includes heat, fuel, oxygen and a sustainable chain reaction.

Unlike fire resistance — the properties that make it hard for a fire to either start in the first place or keep going — chemicals known as flame retardants can help to slow or extinguish an already-burning fire.

Chemical flame retardants contain chlorine, bromine, nitrogen, phosphorus, boron or metals.

One way flame retardants work is through the formation of a substance known as char foam.

When a piece of toast burns, for example, a char forms on the outside, which insulates the undamaged bread on the inside.

Once a fire starts on an object treated with a char foam-inducing flame retardant, a chemical reaction within the retardant bubbles up to create a rigid, inflammable foam out of the char from the initial burning.

This char foam then insulates the fuel from oxygen and, to some extent, heat, Carroll said. "[The char] kind of builds its own cocoon."

Flame retardant use has mushroomed since the 1970s, but it has sparked a controversy over the past few decades because of its potential toxicity.

Brominated fire retardant chemicals, banned in the U.S. since 2004, worked well at putting out fires, but weren't permanently bound to the material, for example a mattress, Carroll said.

That meant the chemical could potentially leave the mattress and end up in the dust or air, where it could be inhaled or ingested.

That's cause for concern, because these chemicals are linked to a slew of health problems; for instance they might disrupt thyroid function, interrupt the immune system and increase cancer risk, according to the National Institute of Environmental Health Sciences.

"New strategies for making fire retardants [are] to either bind the chemical to the mattress or make it another polymer [a long, repeating molecule chain], another absolutely huge molecule that doesn't migrate," he told Live Science.

In contrast, brominated fire retardants are smaller molecules that can easily leave materials and objects.

Can fire resistant materials and flame retardants be relied upon for fire safety?

They do work well, but think of them as the second line of defense, Carroll said.

Although it may seem like rather simple advice, keep fire, such as candles, out of bedrooms and carefully tend to stoves and other fire sources in the kitchen.

"Don't have a fire where you don't want a fire in the first place," he said.

Dani Leviss

Live Science Contributor

Dani Leviss is a freelance science writer who covers water, animals, art, chemistry and technology. She has written for Scholastic, Hakai Magazine, IEEE Earthzine and News-O-Matic. Born and raised in New Jersey, Dani studied chemistry by day and edited the student newspaper at Drew University by night. She completed her master's degree in science journalism at NYU. When not writing, you'll find Dani walking her dog, painting or gardening.

https://www.livescience.com/how-fireproofing-works.html


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Tuesday, August 20, 2019

FLAMMABLE VS. INFLAMMABLE - Actually, the in- in inflammable was derived from the Latin preposition meaning en- (like enflamed), not the Latin prefix meaning -un. It's not like everyone knew the derivation of the word, so the change probably made sense. However, confusion persists today regarding which word to use. Flammable is the preferred modern term for a material that catches fire readily. Inflammable means the same thing. If a material won't burn easily, you could say it is not flammable or non-flammable.

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Flammable vs. Inflammable
Both flammable and inflammable mean a substance readily burns.What Is the Difference Between Flammable and Inflammable?
by Anne Marie Helmenstine, Ph.D. 




Flammable and inflammable are two words that cause confusion.
You can tell both words pertain to flames, but it's difficult to know whether they mean the same thing or are opposites.
Flammable and inflammable mean exactly the same thing: a substance burns easily or readily catches fire.
Why are there two different words?
According to Merriam-Webster's Dictionary of English Usage, back in the 1920s, the National Fire Protection Association urged people to start using the word "flammable" instead of "inflammable" (which is the original word) because they were concerned some people might think inflammable meant not-flammable.
Actually, the in - in inflammable was derived from the Latin preposition meaning en- (like enflamed), not the Latin prefix meaning -un.
It's not like everyone knew the derivation of the word, so the change probably made sense. However, confusion persists today regarding which word to use.
Flammable is the preferred modern term for a material that catches fire readily.
Inflammable means the same thing. If a material won't burn easily, you could say it is not flammable or non-flammable.
Examples of flammable materials include wood, kerosene, and alcohol.
Examples of nonflammable materials include helium, glass, and steel.
While it may surprise you, another example of a non-flammable substance is oxygen -- which, as an oxidizer, is instead combustible.
Anne Marie Helmenstine, Ph.D.
Ph.D. in biomedical sciences from the University of Tennessee at Knoxville - Oak Ridge National Laboratory.
Science educator with experience teaching chemistry, biology, astronomy, and physics at the high school, college, and graduate levels.
ThoughtCo and About Education chemistry expert since 2001.
Widely-published graphic artist, responsible for printable periodic tables and other illustrations used in science.
Experience
Anne Helmenstine, Ph.D. has covered chemistry for ThoughtCo and About Education since 2001, and other sciences since 2013. She taught chemistry, biology, astronomy, and physics at the high school, college, and graduate levels. She has worked as a research scientist and also abstracting and indexing diverse scientific literature for the Department of Energy.
In addition to her work as a science writer, Dr. Helmenstine currently serves as a scientific consultant, specializing in problems requiring an interdisciplinary approach. Previously, she worked as a research scientist and college professor. 
Education
Dr. Helmenstine holds a Ph.D. in biomedical sciences from the University of Tennessee at Knoxville and a B.A. in physics and mathematics with a minor in chemistry from Hastings College. In her doctoral work, Dr. Helmenstine developed ultra-sensitive chemical detection and medical diagnostic tests.
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