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== Age ==
{| class="wikitable" style="color:black; background-color:#ddd; margin-left: auto; float:right"
| [[Chemistry]]:
| Combustion Reactions, Vortexes
|-
| Grade Range:
| [[Elementary School]], [[Middle School]], [[High School]]
|-
| Format:
| [[Stage]]
|}


Elementary School, Middle School, High School
The Methanol Cannon is a Science Theatre classic, and works for all ages. This demonstration does produce a large flame, so follow all safety precautions for this demonstration to minimize risk of injury.
 
== Format ==
 
Stage Show


== Materials ==
== Materials ==


    5-gallon jug (Culligan water bottle, available for a few dollars from water-cooler supply companies)
* 5 Gallon Jug with Cork
    Rubber stopper for jug
* Methanol
    5 mL of methanol per canon
* Centrifuge Tube
    Long-necked lighter
* Tall Matches


== Safety Precautions ==
== Safety Precautions ==


Science Theatre demonstrators must keep the safety of themselves and their audience in mind at all times. All Science Theatre demonstrators must have read through the Safety Training page. The ST Safety Box with first aid kit, fire extinguisher, etc. should always be available to demonstrators. Always wear safety gloves, glasses, and a labcoat if handling chemicals; always perform potentially dangerous demonstrations at a safe distance from the audience; and always keep a very close eye on any volunteers you call from the audience. The Methanol Canon is a very dangerous demonstration and, if not performed safely, can cause serious harm to both the performers and audience. The audience should be seated at least 15 ft away from the canons. Performers must use extreme caution (see Demonstration). The water jug must be taped up (see Preparation). Have a fire extinguisher ready to use if something goes wrong! Methanol is toxic - use gloves to handle it, do not inhale, and consult its MSDS sheet for more information.
Please read the Fire Safety section of the [[Demonstration Safety]] page before performing this demonstration.
 
[http://www.sciencelab.com/msds.php?msdsId=9927227: Methanol (Methyl Alcohol) MSDS]


== Preparation ==
This demonstration requires: safety glasses, fireproof gloves


Prepare the water jugs by taping them up, Use clear plastic shipping tape to reinforce the seams in the side of the plastic jug to help prevent shattering during the combustion reaction.
When performing this demonstration, avoid bringing the bulk container of methanol if possible. Instead, bring a much smaller amount in a 50mL bottle. This will minimize any risk of accidental ignition.  


== Demonstration ==
== Demonstration ==


Warn the audience that this demonstration will produce a bright flash and a loud noise, but explain that you are taking many safety precautions.
# Put on the safety glasses. Measure out 5mL of Methanol using the centrifuge tube, and hold it aloft so the audience sees how little you are using. Pour the 5mL into the 5 gallon jug and cork it. Close the methanol container and remove it from the table, having it at least 5 feet from the table.
 
# Pick up the jug and start swirling it to vaporize the contents. Explain what you are doing to the audience, and introduce the term ''Volatile''.
Add ~5 mL of methanol to the jug and cap it with the rubber stopper. Shake the jug well for about 30 seconds to evaporate the methanol. Remove the rubber stopper and hold a flame to the top of the jug. You may need to slightly insert the flame in to the neck of the jug, but it is extremely important that you not let your hand get so near that the flame touches you! Use a long-necked lighter to keep your hand safe.
# Have someone standing at the ready to turn off the lights in the room. Put on the gloves, light the long match, and hold it downward so the flame can creep up the stick. Ask for a countdown from 5: at 3, start pulling out the cork, and have the lights turn off at 1. Once the lights are off, pull the cork out completely and drop the match in.
 
# After the fire happens, have the lights turn back on and explain the demonstration.
If possible, turn out the lights so the audience can see the blue flame more easily. You can light off multiple canons at once for a more impressive effect.
 
Alternatively, you can build an automatic ignition system into the bottles [2].


== What to Say ==
== Why This Works ==


Start out by warning the audience about the bright flash and loud noise and explaining that you have taken safety precautions - don't try this at home!
===Short Explanation===
Methanol is a simple alcohol, and like all alcohols it is volatile. ''Volatile'' means that it will quickly vaporize while in the open, even if it isn't warm enough to boil. Alcohols are also very flammable, and release a lot of energy when they burn. This reaction only uses 5 mL of methanol, or about a tablespoon, and we still get a very big flame and a very loud whoosh when we light it! The flame we see is blue because of how hot this reaction is, and the reaction itself is a "clean" combustion reaction, since it only produces water, carbon dioxide and heat!


Show the audience your 5 mL of methanol - it's a pretty tiny amount of liquid, right? In fact, this tiny bit of liquid holds a ton of energy that is stored in the chemical bonds between the atoms in the molecules. Certain types of chemical reactions release part of the energy from those bonds. Methanol is highly flammable - it can catch fire really easily and participate in a combustion reaction with the oxygen in the air. Let's use this methanol to perform a combustion reaction. We just need a little bit of energy - a spark - to get the reaction going. I'll use this lighter.
An interesting additional fact about this reaction is the shape the fire has while burning. Some students might notice that the fire inside the jug is swirling. This happens because of two things: the hot air inside rushing out, and the cool, oxygen rich air rushing in. The air rushing out creates a ''Vortex'', or the "whirlpool" shape, to allow air to rush in and keep the reaction going!


Perform the demonstration.
===Full Explanation===


Did you see all of the energy that methanol combustion reaction released? That flame was huge! But how can we use the energy released in a combustion reaction to do useful things? We can certainly use a flame to heat things up, like in a gas stove. If we use the heat from the flame to raise the temperature of a gas, we will cause the gas to expand. This is how a car's engine works - the spark plugs in the engine produce many tiny flames per second using gasoline instead of methanol. Each combustion reaction causes the pressure to rise in your car's cylinder as the gas tries to expand. This produces pressure on the pistons in the engine. The car uses the movement of the piston to cause its tires to turn and to propel you down the road.
Methyl alcohol (Methanol) is a simple alcohol with the form CH<sub>3</sub>OH. The "methyl" refers to the type of carbon group attached to the hydroxide, and by adding carbon groups we can get other alcohols such as:
{| class="wikitable" style="color:black; background-color:#ddd; text-align: left; margin-right: auto"
| Methanol
or Methyl Alcohol
| Methyl = 1 || CH<sub>3</sub>--OH
|-
| Ethanol
or Ethyl Alcohol
| Ethyl = 2 || CH<sub>3</sub>--CH<sub>2</sub>--OH
|-
| Propanol
or Propyl Alcohol
| Propyl = 3 || CH<sub>3</sub>--CH<sub>2</sub>--CH<sub>2</sub>--OH
|-
| Isopropanol
or Isopropyl Alcohol
| Iso = Isomer
| CH<sub>3</sub>--CH--CH<sub>3</sub>
<span style=color:#ddd>CH<sub>3</sub>--</span>'''└'''OH
|}


Alcohols all share a few things in common. They are all ''Volatile'', or readily vaporize at room temperature. This is due to their vary low ''Heat Capacity'', as alcohols only need a small amount of heat to boil. Most importantly, alcohols are highly flammable, and when they burn they release a large amount of energy. This is largely due to how cleanly an alcohol fire burns:
{| class="wikitable" style="color:black; background-color:#ddd; text-align: left; margin-right: auto"
|+ Combustion of General Primary Alcohols
| RCH<sub>2</sub>OH + O<sub>2</sub> + Heat Source →
R: "Refers" to more CH<sub>n</sub>
| CO<sub>2</sub> + H<sub>2</sub>O + Heat Released
|}


== Why It Is ==
Since the only products are CO<sub>2</sub>, H<sub>2</sub>O, and heat, this combustion reaction releases a lot of energy with next to no smoke production, and is able to burn quickly. This is why, in order to see the flame, we need to turn off the lights in the room! Since it burns so efficiently, there is no debris that can glow from the heat. Alcohol burns with a blue flame, but since it happens so quickly the flame is nearly impossible to see if the room is bright!


For more information about combustion reactions, see [[Nonburning Money]].
5 mL of methanol weighs about 4 grams, and methanol has an energy density of about 23 MJ/kg. Therefore, our little reaction releases about 90 kJ of energy, which is enough heat energy to make a single cup of tea! If the heat energy could all be converted into kinetic energy, it would be the energy needed for a 155 lb athlete to run at a 78 mph pace!


5 mL of methanol weighs about 4 grams and methanol has an energy density of about 23 MJ/kg. Therefore our reaction releases about 90 kJ of energy!
When ignited, we hear a definite ''Whoosh'' from the bottle, and if you watch carefully you may notice the flames inside the jug are spiraling. The sound is easy enough to identify: The air inside the jug is heating up quickly, which causes it to expand and rush out of the jug, causing the ''Whoosh''! However, there is a second part to the noise as well, and it is why the flames appear to spiral. The air that is escaping the jug is also pulling oxygen out with it. This means that the mixture inside the jug could lose some of the oxygen it needs to burn, and would end prematurely. What happens is that a ''Vortex'' forms at the mouth of the jug, allowing air to rush both ''into'' and ''out of'' the jug at same time! A vortex is when a fluid rotates around an axis, such as when you see a spiral of water in a drain. Vortexes allow matter to be transferred efficiently both ways, with one fluid going through the center and the other in the formed spiral. In this case, we see the flames form the spiral on the outside, allowing the heated, expanding air to move out. At the same time, cool, oxygen-rich air can move down the center of the vortex, into the combustion reaction to keep it going!


== Real Life Examples ==
== Additional Information ==


Combustion reactions power car engines! Spark plugs in a car ignite gasoline, another flammable chemical, to produce small combustion reactions that increase the pressure on the engine's pistons. This happens on a scale much smaller and much faster than in this demonstration - the combustion reactions are produced many times per second in the car. The machinery in the car converts thereby converts the chemical energy stored in the gasoline into mechanical energy to move the car.
* This demonstration pairs well with the [[Nonburning Money]], the [[Candy Conflagration]], and the [[Potassium Permanganate And Glycerin]] demonstrations
* This demonstration is a part of the [[Fire and Ice Show]]

Latest revision as of 17:17, 21 September 2016

Chemistry: Combustion Reactions, Vortexes
Grade Range: Elementary School, Middle School, High School
Format: Stage

The Methanol Cannon is a Science Theatre classic, and works for all ages. This demonstration does produce a large flame, so follow all safety precautions for this demonstration to minimize risk of injury.

Materials

  • 5 Gallon Jug with Cork
  • Methanol
  • Centrifuge Tube
  • Tall Matches

Safety Precautions

Please read the Fire Safety section of the Demonstration Safety page before performing this demonstration.

This demonstration requires: safety glasses, fireproof gloves

When performing this demonstration, avoid bringing the bulk container of methanol if possible. Instead, bring a much smaller amount in a 50mL bottle. This will minimize any risk of accidental ignition.

Demonstration

  1. Put on the safety glasses. Measure out 5mL of Methanol using the centrifuge tube, and hold it aloft so the audience sees how little you are using. Pour the 5mL into the 5 gallon jug and cork it. Close the methanol container and remove it from the table, having it at least 5 feet from the table.
  2. Pick up the jug and start swirling it to vaporize the contents. Explain what you are doing to the audience, and introduce the term Volatile.
  3. Have someone standing at the ready to turn off the lights in the room. Put on the gloves, light the long match, and hold it downward so the flame can creep up the stick. Ask for a countdown from 5: at 3, start pulling out the cork, and have the lights turn off at 1. Once the lights are off, pull the cork out completely and drop the match in.
  4. After the fire happens, have the lights turn back on and explain the demonstration.

Why This Works

Short Explanation

Methanol is a simple alcohol, and like all alcohols it is volatile. Volatile means that it will quickly vaporize while in the open, even if it isn't warm enough to boil. Alcohols are also very flammable, and release a lot of energy when they burn. This reaction only uses 5 mL of methanol, or about a tablespoon, and we still get a very big flame and a very loud whoosh when we light it! The flame we see is blue because of how hot this reaction is, and the reaction itself is a "clean" combustion reaction, since it only produces water, carbon dioxide and heat!

An interesting additional fact about this reaction is the shape the fire has while burning. Some students might notice that the fire inside the jug is swirling. This happens because of two things: the hot air inside rushing out, and the cool, oxygen rich air rushing in. The air rushing out creates a Vortex, or the "whirlpool" shape, to allow air to rush in and keep the reaction going!

Full Explanation

Methyl alcohol (Methanol) is a simple alcohol with the form CH3OH. The "methyl" refers to the type of carbon group attached to the hydroxide, and by adding carbon groups we can get other alcohols such as:

Methanol

or Methyl Alcohol

Methyl = 1 CH3--OH
Ethanol

or Ethyl Alcohol

Ethyl = 2 CH3--CH2--OH
Propanol

or Propyl Alcohol

Propyl = 3 CH3--CH2--CH2--OH
Isopropanol

or Isopropyl Alcohol

Iso = Isomer CH3--CH--CH3

CH3--OH

Alcohols all share a few things in common. They are all Volatile, or readily vaporize at room temperature. This is due to their vary low Heat Capacity, as alcohols only need a small amount of heat to boil. Most importantly, alcohols are highly flammable, and when they burn they release a large amount of energy. This is largely due to how cleanly an alcohol fire burns:

Combustion of General Primary Alcohols
RCH2OH + O2 + Heat Source →

R: "Refers" to more CHn

CO2 + H2O + Heat Released

Since the only products are CO2, H2O, and heat, this combustion reaction releases a lot of energy with next to no smoke production, and is able to burn quickly. This is why, in order to see the flame, we need to turn off the lights in the room! Since it burns so efficiently, there is no debris that can glow from the heat. Alcohol burns with a blue flame, but since it happens so quickly the flame is nearly impossible to see if the room is bright!

5 mL of methanol weighs about 4 grams, and methanol has an energy density of about 23 MJ/kg. Therefore, our little reaction releases about 90 kJ of energy, which is enough heat energy to make a single cup of tea! If the heat energy could all be converted into kinetic energy, it would be the energy needed for a 155 lb athlete to run at a 78 mph pace!

When ignited, we hear a definite Whoosh from the bottle, and if you watch carefully you may notice the flames inside the jug are spiraling. The sound is easy enough to identify: The air inside the jug is heating up quickly, which causes it to expand and rush out of the jug, causing the Whoosh! However, there is a second part to the noise as well, and it is why the flames appear to spiral. The air that is escaping the jug is also pulling oxygen out with it. This means that the mixture inside the jug could lose some of the oxygen it needs to burn, and would end prematurely. What happens is that a Vortex forms at the mouth of the jug, allowing air to rush both into and out of the jug at same time! A vortex is when a fluid rotates around an axis, such as when you see a spiral of water in a drain. Vortexes allow matter to be transferred efficiently both ways, with one fluid going through the center and the other in the formed spiral. In this case, we see the flames form the spiral on the outside, allowing the heated, expanding air to move out. At the same time, cool, oxygen-rich air can move down the center of the vortex, into the combustion reaction to keep it going!

Additional Information