Showing posts with label Fireworks. Show all posts
Showing posts with label Fireworks. Show all posts

Thursday, December 31, 2020

CHEMISTRY BEHIND SPARKLERS - Not all fireworks are created equal. For example, there is a difference between a firecracker and a sparkler: The goal of a firecracker is to create a controlled explosion; a sparkler, on the other hand, burns over a long period of time (up to a minute) and produces a brilliant shower of sparks. A sparkler consists of several substances:An oxidizer - A fuel - Iron, steel, aluminum, or other metal powder - A combustible binder - In addition to these components, colorants, and compounds also may be added to moderate the chemical reaction. Often, charcoal and sulfur are firework fuel, or sparklers may simply use the binder as the fuel. The binder is usually sugar, starch, or shellac. Potassium nitrate or potassium chlorate may be used as oxidizers. Metals are used to create the sparks. Sparkler formulae may be quite simple. For example, a sparkler may consist only of potassium perchlorate, titanium or aluminum, and dextrin. Now that you've seen the composition of a sparkler, let's consider how these chemicals react with each other. Oxidizers produce oxygen to burn the mixture. Oxidizers are usually nitrates, chlorates, or perchlorates. Nitrates are made up of a metal ion and a nitrate ion. Nitrates give up 30% of their oxygen to yield nitrites and oxygen. Chlorates are made up of a metal ion and the chlorate ion. Chlorates give up all of their oxygen, causing a more spectacular reaction. However, this also means they are explosive. Perchlorates have more oxygen in them, but are less likely to explode as a result of an impact than are chlorates. The reducing agents are the fuel used to burn the oxygen produced by the oxidizers. This combustion produces hot gas.

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The Chemistry Behind Sparklers

By Anne Marie Helmenstine, Ph.D.

 

Not all fireworks are created equal.

For example, there is a difference between a firecracker and a sparkler: The goal of a firecracker is to create a controlled explosion; a sparkler, on the other hand, burns over a long period of time (up to a minute) and produces a brilliant shower of sparks.

Sparkler Chemistry

A sparkler consists of several substances:

·         An oxidizer

·         A fuel

·         Iron, steel, aluminum, or other metal powder

·         A combustible binder

In addition to these components, colorants, and compounds also may be added to moderate the chemical reaction.

Often, charcoal and sulfur are firework fuel, or sparklers may simply use the binder as the fuel.

The binder is usually sugar, starch, or shellac.

Potassium nitrate or potassium chlorate may be used as oxidizers.

Metals are used to create the sparks. 

Sparkler formulae may be quite simple. For example, a sparkler may consist only of potassium perchlorate, titanium or aluminum, and dextrin.

Now that you've seen the composition of a sparkler, let's consider how these chemicals react with each other.

Oxidizers

Oxidizers produce oxygen to burn the mixture. Oxidizers are usually nitrates, chlorates, or perchlorates.

Nitrates are made up of a metal ion and a nitrate ion.

Nitrates give up 30% of their oxygen to yield nitrites and oxygen. The resulting equation for potassium nitrate looks like this:

2 KNO3(solid) 2 KNO2(solid) +O2(gas)

Chlorates are made up of a metal ion and the chlorate ion.

Chlorates give up all of their oxygen, causing a more spectacular reaction. However, this also means they are explosive. 

An example of potassium chlorate yielding its oxygen would look like this:

2 KClO3(solid) 2 KCl(solid) + 3 O2(gas)

Perchlorates have more oxygen in them, but are less likely to explode as a result of an impact than are chlorates.

Potassium perchlorate yields its oxygen in this reaction:

KClO4(solid) KCl(solid) + 2 O2(gas)

Reducing Agents

The reducing agents are the fuel used to burn the oxygen produced by the oxidizers. This combustion produces hot gas.

Examples of reducing agents are sulfur and charcoal, which react with the oxygen to form sulfur dioxide (SO2) and carbon dioxide (CO2), respectively.

Regulators

Two reducing agents may be combined to accelerate or slow the reaction.

Also, metals affect the speed of the reaction. Finer metal powders react more quickly than coarse powders or flakes.

Other substances, such as cornmeal, also may be added to regulate the reaction.

Binders

Binders hold the mixture together. For a sparkler, common binders are dextrin (a sugar) dampened by water or a shellac compound dampened by alcohol.

The binder can serve as a reducing agent and as a reaction moderator.

How Does a Sparkler Work?

Let's put it all together. A sparkler consists of a chemical mixture that is molded onto a rigid stick or wire.

These chemicals often are mixed with water to form a slurry that can be coated on a wire (by dipping) or poured into a tube.

Once the mixture dries, you have a sparkler.

Aluminum, iron, steel, zinc or magnesium dust or flakes may be used to create the bright, shimmering sparks.

The metal flakes heat up until they are incandescent and shine brightly or, at a high enough temperature, actually burn.

Sometimes sparklers are called snowballs in reference to the ball of sparks that surrounds the burning part of the sparkler.

A variety of chemicals can be added to create colors.

The fuel and oxidizer are proportioned, along with the other chemicals, so that the sparkler burns slowly rather than exploding like a firecracker.

Once one end of the sparkler is ignited, it burns progressively to the other end.

In theory, the end of the stick or wire is suitable to support it while burning.

Important Sparkler Reminders

Obviously, sparks cascading off of a burning stick present a fire and burn hazard; less obviously, sparklers contain one or more metals, so they can present a health hazard.

Sparklers should not be burned on cakes as candles or otherwise used in a manner that could lead to consumption of the ash. So, use sparklers safely and have fun!

Anne Marie Helmenstine, Ph.D.

Chemistry Expert

Education

Ph.D., Biomedical Sciences, University of Tennessee at Knoxville

B.A., Physics and Mathematics, Hastings College

Introduction

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.

ThoughtCo and Dotdash

ThoughtCo is a premier reference site focusing on expert-created education content. We are one of the top-10 information sites in the world as rated by comScore, a leading Internet measurement company. Every month, more than 13 million readers seek answers to their questions on ThoughtCo.

For more than 20 years, Dotdash brands have been helping people find answers, solve problems, and get inspired. We are one of the top-20 largest content publishers on the Internet according to comScore, and reach more than 30% of the U.S. population monthly. Our brands collectively have won more than 20 industry awards in the last year alone, and recently Dotdash was named Publisher of the Year by Digiday, a leading industry publication.

https://www.thoughtco.com/how-do-sparklers-work-607351


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Tuesday, December 19, 2017

FIREWORK COLORS - How Firework Colors Work and Chemicals That Make Colors - Creating firework colors is a complex endeavor, requiring considerable art and application of physical science. Excluding propellants or special effects, the points of light ejected from fireworks, termed 'stars', generally require an oxygen-producer, fuel, binder (to keep everything where it needs to be), and color producer.

Firework Colors
 This fireworks display showcases a variety of colors.
Most colors come from the excitation of metal ions.
 
Chemistry of Firework Colors
How Firework Colors Work and Chemicals That Make Colors
ANNE MARIE HELMENSTINE, PH.D.





Creating firework colors is a complex endeavor, requiring considerable art and application of physical science.
Excluding propellants or special effects, the points of light ejected from fireworks, termed 'stars', generally require an oxygen-producer, fuel, binder (to keep everything where it needs to be), and color producer.
There are two main mechanisms of color production in fireworks, incandescence and luminescence.

INCANDESCENCE

Incandescence is light produced from heat.
Heat causes a substance to become hot and glow, initially emitting infrared, then red, orange, yellow, and white light as it becomes increasingly hotter.
When the temperature of a firework is controlled, the glow of components, such as charcoal, can be manipulated to be the desired color (temperature) at the proper time.
Metals, such as aluminum, magnesium, and titanium, burn very brightly and are useful for increasing the temperature of the firework.

LUMINESCENCE

Luminescence is light produced using energy sources other than heat.
Sometimes luminescence is called 'cold light', because it can occur at room temperature and cooler temperatures.
To produce luminescence, energy is absorbed by an electron of an atom or molecule, causing it to become excited, but unstable.
The energy is supplied by the heat of the burning firework.
When the electron returns to a lower energy state the energy is released in the form of a photon (light).
The energy of the photon determines its wavelength or color.
In some cases, the salts needed to produce the desired color are unstable.
Barium chloride (green) is unstable at room temperatures, so barium must be combined with a more stable compound (e.g., chlorinated rubber).
In this case, the chlorine is released in the heat of the burning of the pyrotechnic composition, to then form barium chloride and produce the green color.
Copper chloride (blue), on the other hand, is unstable at high temperatures, so the firework cannot get too hot, yet must be bright enough to be seen.

QUALITY OF FIREWORK INGREDIENTS

Pure colors require pure ingredients. Even trace amounts of sodium impurities (yellow-orange) are sufficient to overpower or alter other colors.
Careful formulation is required so that too much smoke or residue doesn't mask the color.
With fireworks, as with other things, cost often relates to quality.
Skill of the manufacturer and date the firework was produced greatly affect the final display (or lack thereof).

TABLE OF FIREWORK COLORANTS

Color
Compound
Red
strontium salts, lithium salts
lithium carbonate, Li
2CO3 = red
strontium carbonate, SrCO3 = bright red
Orange
calcium salts
calcium chloride, CaCl2
calcium sulfate, CaSO4·xH2O, where x = 0,2,3,5
Gold
incandescence of iron (with carbon), charcoal, or lampblack
Yellow
sodium compounds
sodium nitrate, NaNO3
cryolite, Na3AlF6
Electric White
white-hot metal, such as magnesium or aluminum
barium oxide, BaO
Green
barium compounds + chlorine producer
barium chloride, BaCl+ = bright green
Blue
copper compounds + chlorine producer
copper acetoarsenite (Paris Green), Cu
3As2O3Cu(C2H3O2)2 = blue
copper (I) chloride, CuCl = turquoise blue
Purple
mixture of strontium (red) and copper (blue) compounds
Silver
burning aluminum, titanium, or magnesium powder or flakes

SEQUENCE OF EVENTS

Just packing colorant chemicals into an explosive charge would produce an unsatisfying firework!
There's a sequence of events leading to a beautiful, colorful display.
Lighting the fuse ignites the lift charge, which propels the firework into the sky.
The lift charge can be black powder or one of the modern propellants.
This charge burns in a confined space, pushing itself upward as hot gas is forced through a narrow opening.
The fuse continues to burn on a time delay to reach the interior of the shell.
The shell is packed with stars that contain packets of metal salts and combustible material.
When the fuse reaches the star, the firework is high above the crowd.
The star blows apart, forming glowing colors through a combination of incandescent heat and emission luminescence.

 


ANNE MARIE HELMENSTINE, PH.D. is an author and consultant with a broad scientific and medical background.
EXPERIENCE
Anne has taught chemistry, biology, and physics at the high school, college, and graduate level. In her doctoral work, Anne developed ultra-sensitive chemical detection and medical diagnostic tests. She has worked abstracting/indexing diverse scientific literature for the Department of Energy. She presently works as a freelance writer and scientific consultant. She enjoys adapting lab-based science projects so that they can be performed safely at home.
EDUCATION
Dr. Helmenstine has bachelor of arts degrees in physics and mathematics with a minor in chemistry from Hastings College in Nebraska and a doctorate of philosophy in biomedical sciences from the University of Tennessee at Knoxville.
ANNE MARIE HELMENSTINE, PH.D.
Chemistry is part of everyone's life, from cooking and cleaning to the latest computer chip technology and vaccine development. It doesn't have to be intimidating and it doesn't have to be hard to understand.
You can read more about Anne's current and past work on her Google Profile: Anne Helmenstine. Find Anne's printable periodic tables and science projects at Science Notes.
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