Showing posts with label Dry Ice. Show all posts
Showing posts with label Dry Ice. Show all posts

Thursday, January 9, 2014

Dry Ice #10: Poppers!

This is the tenth segment in a series on dry ice experiments. CLICK HERE FOR SAFETY INFORMATION.

While the bubble volcano was the most impressive experiment we did, the poppers were the most fun. Each child got a small container; we used cocoa boxes, raisin canisters, anything that could hold liquid and had a semi-tight fitting lid.

Using sharp scissors (be careful, kids, don't run!), we cut a small (like in the lid. I then placed a small piece (1" long or less) piece of dry ice in the container and fill it with warm water. The lid was placed back on. That was cool enough because
the mist would shoot up through the hole. It looked like a steam engine (it's the Hogwarts Express!).

Then a child placed his finger over the hole. Pressure would build up and POP!! the lid would burst off enough to release the pressure. Once refitted, the entire sequence could begin again. The kids LOVED it. They each got their own, so there was no need to take turns.

Some kids even took the glycerine solution and made their own mini bubble volcanos.










Dry Ice #9: Bubble Volcano


This is the ninth segment in a series on dry ice experiments. CLICK HERE FOR SAFETY INFORMATION.

The other experiments were fun, but this one was by far the favorite! We made HUGE bubbles of mist that would then pop and shower and the table in clouds of vapor.

Combine in a small bowl or jar: 1 cup of water, 1/4 cup dish soap, and 1/4 cup glycerine (this can be petrol or vegetable based). This solution lasted us the entire day, and we did this experiment a LOT because it was so cool.

Place a sizeable chunk (at least 3-4 inches) in a large bowl. I used my baking bowl which is approximately
14" across. Pour warm water over the top. I did not measure how much water I used, I simply poured it from a pitcher until the mist was copious.

Dip a strip of cloth about 2 inches wide by the width of the bowl plus 8 inches long into the glycerine solution. Saturate it. Don't let it waste solution, but it should be slightly drippy.

Hold the strip taut and run it over the edge of the bowl. A bubble layer will form over the mouth of the bowl and begin to fill with mist. When the bubble layer reaches it limit, it will erupt with mist. It's very impressive to watch!







Thursday, December 26, 2013

Dry Ice #8: Dry Ice Fire Extinguisher

This is the eighth segment in a series on dry ice experiments. CLICK HERE FOR SAFETY INFORMATION.

I set up this experiment a bit more than the others. The previous week we did an experiment that showed that gas was a fluid and could be poured.

I placed a small chunk of dry ice in a glass (really a tub that used to have cocoa in it) of warm water where it began sublimating rapidly. I lit a candle (I used one that was in a jar), and then poured the mist—and heavy carbon dioxide gas—into the candle, being careful to not pour the water. The candle went out.

Why this works: carbon dioxide, a fluid, is heavier than air, so it displaces the room air (and oxygen) away from the candle. Fire needs oxygen to burn, so the without oxygen, the candle burns out.

The tricky part is pouring the gas and not the water. When I repeated the experiment for the kids, I ended up pouring water all over the candle. That put it out, too. 



Dry Ice #7: Colored Mist

This is the seventh segment in a series on dry ice experiments. CLICK HERE FOR SAFETY INFORMATION.

In our last segment, we made LOTS of mist with dry ice and warm water. Wouldn't it be fun if it was clouds of COLORED mist? 


We placed a chunk of dry ice in one of the large glasses and dropped food coloring into the glass. We used our observation skills to see that the food coloring froze. Then we added warm water. The water melted the food coloring, so it dissolved into the solution. 



But as we watched, we saw that the mist was not colored.

Why?


The mist is formed because the sublimating gas is colder than the surrounding air. This causes the water droplets to condense from the air. The dye is not 'traveling' from the glass into the mist. The water is coming from the air itself. 


But it's still really cool to see bubbling green, blue, or red liquids spewing mist. 

By the way, the only ways to get colored mist is to either shine colored lights on the mist or use smoke or powder. Smoke differs from mist in that it has solid particles. 













Saturday, December 21, 2013

Dry Ice: #6 Warm vs. Cold Water

This is the sixth segment in a series on dry ice experiments. CLICK HERE FOR SAFETY INFORMATION.

This experiment used two large beakers (we used extra large glasses) and a good supply of cold and warm water.

We filled a glass with cold water and placed a chuck of dry ice in it. Immediately, large bubbles rose to the surface. The water looked like it was boiling. The glass began to mist, to 'smoke' and 'fog.'

Very cool.

The water helped the children visualize the sublimation of the carbon dioxide (the boiling effect). The gas left the glass and being cooler than the air around it, caused water in the air to condense and form clouds of vapor.

The children passed the glass around and giggled and waved their hands through the clouds.

Then I pulled out the warm water.

This time when I dropped the piece of dry ice in, it splooshed and splattered and splashed all over the table. Huge clouds of vapor billowed over the table. It was amazing.

This gave us the opportunity to discuss independent and dependent variables.

Independent variable: Temperature

Dependent variable: Splooshiness

If I had had older students, I would have had them discuss and debate the role of heat. Is it a catalyst?

In the video below, you can easily see the effects of putting dry ice into cold and warm water. In our experiments, the differences were even more dramatic.







Friday, December 20, 2013

Dry Ice: #5 Screaming Quarters

This is the fifth segment in a series on dry ice experiments. CLICK HERE FOR SAFETY INFORMATION.

For this experiment, we warmed up coins (quarters are best because they are the largest of the easy-to-find coins). The children rubbed their hands back and forth over the coins while I discussed friction. When the coin was good and warm, they child (wearing thick gloves) pressed the coin onto the brick of dry ice.




SQEEEEE.


So what happened?

The dry ice under the coin rapidly sublimated which lifted the coin. The gas was released, and the coin fell back. This happened over and over producing a vibration and a sound.

This happened not only when we pressed the coins onto the dry ice but also when we used tongs to pick up small pieces. Each time we discussed why it happened--repetition is important.

This is a YouTube clip I found that shows what happens during this experiment.





Monday, December 16, 2013

Dry Ice: #4 Balloons!

The balloon at the beginning of the day
This is the fourth segment in a series on dry ice experiments. CLICK HERE FOR SAFETY INFORMATION.

For our next experiment, I broke apart the large 5 lb block of dry ice with a metal putty knife and a hammer while a kid stretched out a balloon.

An adult then held open the mouth of the balloon while I, using the tongs, dropped in small pieces of dry ice. The balloon was then carefully tied off.



The balloon a few minutes later
Over time, the dry ice sublimated and filled the balloon with gaseous carbon dioxide. As this happened, the balloon expanded. It didn't float (carbon dioxide is more dense than air, remember), but it was neat to set it in the middle of the table and watch it grow as we performed other demonstrations and experiments.

We tried to make the balloon pop, but we were unable to get enough dry ice into the balloon before it
became difficult to tie. My son had the greatest success with this by crushing the dry ice and pouring it in. Even so, the balloon merely expanded to a large size; it didn't pop.

If you really want to make it pop, you will probably need to place the balloon (with dry ice) in a bowl of warm water, as seen in the video below:






Dry Ice #3: Floating Bubbles

This is the third segment in a series on dry ice experiments. CLICK HERE FOR SAFETY INFORMATION.


As you drive your (vented) cooler of dry ice home from Publix, the blocks are sublimating. A layer of carbon dioxide is building up.

When you get home, you can show the kids the layer's existence by floating bubbles on it.




Materials

Dry Ice
Cooler
Bubble Solution
Bubble Wand

Open the cooler and blow the bubbles in. They will float on the layer of carbon dioxide.

You may notice that the bubble appears to dry out and wrinkle. It is actually freezing. If you crush the bubble, it will powder and melt in your hand.


As the bubble rests on the layer, you will note that it sinks a little. It is getting colder, denser, and therefore lower in the layer. Eventually, it may even rest on the bottom.

When I went back at the end of the day to remove the final block of dry ice, there were still some bubbles rolling around in the bottom of the cooler.





Below is a video I found on YouTube that shows the experiment in action.



Dry Ice: #2 Materials

This is the second segment in a series on dry ice experiments. CLICK HERE FOR SAFETY INFO.

Need dry ice? Here's the hook up:

The best place to look is your local grocery store. Hopefully, your local grocery store is a Publix because Publix is awesome. They always go above and beyond for whatever I need.

The Publix in Thomasville doesn't normally carry dry ice, but if you call ahead, sometimes they can work something out (hint: ask for Chris...he da man). The Bradfordville Publix keeps dry ice in stock at $1.49 per pound. We ordered 15 pounds (3 blocks) and had PLENTY of dry ice for 9 students, 3 teachers, and extra big outdoor fun. Everyone got as many turns as they wanted, and we didn't worry about mistakes. We followed through on every whim of experimentation. Go big or go home, right?

If I do a class again for my family or a small group with just 'normal' experiments, I will only get 5 pounds.

In addition to the dry ice, I used:

Cooler--Publix does not give you a cooler. Bring your own.
Heavy gloves
Tongs
Box fan
Metal putty knife
Hammer
Cookie sheet
Bubble solution
Bubble wand
Balloons
Quarter
Ladle
Several large glasses or beakers
Cool water
Warm water
Food coloring
Large bowl
Strip of cloth (3" x 4" longer than width of the bowl)
Dish soap
Vegetable Glycerin
Spoons
Several plastic containers (leftover cocoa containers, raisin canisters, yogurt tubs, etc.) with lids
Scissors


Outside:

Kiddie Pool or Large Bucket
Strip of cloth (4" wide x 8" longer than width of pool)

In the following segments of this series, I will go over each experiment with pictures and video.

Dry Ice #1: Safety First

This is the first segment in a series on Dry Ice Experiments.

Science is awesome. But when we 'try this at home', we must remember that safety comes first. This is especially true when it comes to dry ice (solid-state carbon dioxide).

Dry ice is formed by compressing gaseous carbon dioxide until it liquefies. This takes an amazing amount of pressure—870 psi! When the pressure is released, some of the carbon dioxide evaporates which cools the remaining carbon dioxide to a temperature of approx. -109° F (-79°C) and results in a solid.

A solid that's really stinkin' cold.

This means that if you (or your child) touches it, it will cause immediate frostbite. Though that might be educational in itself, it is probably best to avoid such an experience. It is very important to avoid touching the dry ice with your hands (do I even need to say 'don't eat it'?). Use heavy gloves, tongs, or both together to move and position the dry ice. Constantly remind yourself and your children of this. As experiments get rambunctious, it is easy to forget the safety rules.

Never place dry ice directly on the counter top, and be careful which plates and pans you use to hold it. We used metal cookie sheets, plastic bowls, and plastic and wooden tables, but I would make certain to use non-favorite ones, just in case it warps or cracks.

Solidified carbon dioxide does not return to a liquid state because of the pressure constraints of the normal atmosphere. Instead, it sublimates (skips the liquid phase) directly into a gaseous state. This gas is still pretty cold, and though it is colorless and you can't see it, it causes water vapor in the air to condense, creating the clouds and mist we are familiar with.

Carbon dioxide is a heavy gas, heavier than air. This is important to know because this means it will displace the air (and, therefore, oxygen) from the bottom of it's container (or room). In other words, you run the risk of suffocation if the room, car, wherever you are is not properly ventilated. Never have people or pets lie down in the area where you are working and move to fresh air immediately if you feel short of breath. When we were experimenting, we left the room's door to the outside open and placed a box fan in the doorway. It was also helpful to stop every so often and ask the children if they were feeling all right. Sometimes children get so excited that they don't notice they can't breathe—until it's too late.

Because the dry ice is sublimating, and the resulting gas takes up a larger volume than the solid block, any container in which it is placed must also be vented. Unventilated dry ice can make a container explode. That can be fun if it is planned for and anticipated, not so fun if it was the cooler in the trunk of your car or a glass jar. We kept the cooler vented with a wooden spoon until the blocks were needed.

Large blocks of dry ice can be broken up into pieces by using a hammer and chisel (I used a hammer and putty knife). Wear safety glasses to prevent pieces from flying into your eyes and make certain there is no one near you that could get hit by pieces.

When you are finished using dry ice, simply put it outside to sublimate or store it in a vented cooler. If you put it in your freezer, remember that it is colder than you usually keep your freezer, and it might burn the other items in it or cause the freezer to shut off completely.

DRY ICE SAFETY RULES

1. Never touch dry ice. Use heavy gloves or tongs.
2. Maintain proper ventilation.
3. Always vent the container.
4. Wear safety glasses when breaking up large blocks.

If these rules are followed, experimenting with dry ice is a fantastic learning experience!

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