??????????Guess-Big cube of gold???????????
XpipedreamR
Posts: 8,059 ✭✭
According to my Redbook, the mint produced 445,500 double eagles in 1933. For the most part, these were all then melted down. Once melted, how big of a pure gold cube(equal sides) could be produced with the recovered metal?
Hint: It's between 1 and 10 feet per side
I'll post the answer later
(Yes, I was bored this morning!)
Hint: It's between 1 and 10 feet per side
I'll post the answer later
(Yes, I was bored this morning!)
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You are doing well, subject 15837. You are a good person.
(I have it on good authority that if you put this cube outside Russ' shop it would disappear though.)
Joe
What is the thickness in millimeters of a double eagle?
JOhn
siliconvalleycoins.com
1. You need the height of the planchet that produced the double eagle in which the problem is fairly simple.
The formula for that is:
2*pi*(17mm)^2*height=volume in cubic mm per coin of total metal. To get gold volume, multiply by 90% or .9 . Multiply that number by 445,500 and you will get the total volume in Cubic mm. That would be the answer unless you wanted it specifically in cubic feet. I'm a metric guy myself....
OR
2. You would need a mass/volume ratio, i.e. density of pure gold. I dont have the height of a planchet and I dont know the density of gold off the top of my head so....
This would be easy enough, just multiply:
1/density of gold*30.06grams/coin would give you cubic meters per coin with the 90% figured in (30.06 is 90% of 33.4grams). Multiply cubic meters per coin times the number of coins melted and you should get the answer. Does anyone have either the height or the density of gold????
John
siliconvalleycoins.com
1 cubic centimer of gold weighs 19.3 grams...
siliconvalleycoins.com
Let me convert to cubic feet...
siliconvalleycoins.com
I guess Nysoto got it first, but I will concur
John
siliconvalleycoins.com
2 Cam-Slams!
1 Russ POTD!
<< <i> guess Nysoto got it first, but I will concur >>
Wow - it's like I didn't even post an answer......
You are doing well, subject 15837. You are a good person.
Neil
Edit: nice to see that my 2 second slightly educated guess wasn't too far off. Meaning if I chose 2 and 3 ft per side, then I'd be right in that range. Instead I opted conservative and went 1 to 2 ft per side. Oh well...
didnt see your post....
John
Riff wins!!
siliconvalleycoins.com
Oops just saw you want the size of the pure gold cube not the cube made from just the melted coins.
2 ft 10 3/4 inches
Tell me what's wrong with this.
1 double eagle = .9675 oz troy pure gold (weighs 1.07 oz overall). *445000 = 430538 oz gold /12 troy oz/lb = 35878 lb gold.
gold = 19.3 g/cm3 = 316.3 g/in3 = 546515 g/ft3 = 546.515 kg/ft3 = 1202.3 lbs/ft3
Therefore, 35878/1202.3 = 29.84 ft3 gold, take cube root and = 3.101 ft per side. or 3ft 1.2 inches.
The correct answer is (to one decimal place) 2.9 feet, or a hair under 2 ft 11 in.
Did you know that you could draw this amound of gold into a cable 1cm in diameter and almost 5.5 miles long?
To all the winners, knowledge is its own reward!
In calculating the mass of the gold, you arrived and a value in troy pounds, and your density value is in avoirdupois pounds.
One pound troy =12 oz troy=0.377 kg
One pound avoirdupois =16 oz avoirdupois =0.453 kg
The two pounds are not equal, that's why your calculation is off(by a factor of the cube root of 0.453/0.377)
Second error was that the number of double eagles was 445500 so you were short 500 double eagles. (Ok what did you do with them?)
So proper troy pounds weight of the cube would be 35918.44
And as was pointed out earlier your density weight was not in troy pounds /ft3. Proper figure is 1464.40 troy pounds/ft3
or 24.528 ft3 of gold, take cube root to get the size of the side of the cube = 2.9 ft = 2 ft 10 13/16 inches. So your cube is a 16th inch larger than mine. Probably do to various round off errors/values chosen.