Question #bf080

3 Answers
May 19, 2017

Nickel content solution: you may not have seen this approach before.

The added pure nickel is #9 1/3# pounds

Explanation:

Tony B

Let the amount of added nickel as a percentage be #x#
Let the final blend mass be #b#

The gradient of part is the same as the gradient of the whole.

#=>("change in nickel content")/("change in added pure nickel") ->(100-15)/(100)-=(25-15)/x#

Turn it all upside down:

#100/(100-15)-=x/(25-15)#

#x=(100xx10)/85=11.76470....%#

Thus #100%-x%# represents the #70^("lb")# of original the 15% content blend.

#=>100%-x%" of "b=70^("lb")#

#(100/100-(11.76470..)/100)b=70 #

#=>(88.23529..)/100 b= 70#

#b=79.33333...->79 1/3 color(white)()^("lb")#

Thus the added pure nickel is #9 1/3# pounds
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Check:

#(25%xx79 1/3)/(15%xx70+9 1/3) =1#

The nickel in each is the same so the answer is correct

May 19, 2017

Grain question

#" corn "-> 50# bushels

#" barley "-> 100# bushels

Explanation:

Tony B

Gradient for part is the same as the gradient for the whole.

#(3.80-2.6)/100 = (3-2.6)/x#

Turn up the other way

#100/1.2=x/0.4#

#=>x=33 1/3#

Thus the blend has #33 1/3%# corn
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Total batch weight is to be 150 bushels

#=>" corn "->(33 1/3)/100xx150=50# bushels

#=>" barley "-> 100# bushels

May 20, 2017

Alternative method for the corn/silage question

The amount of corn is 50 bushels
Thus the amount of silage is 100 bushels

Explanation:

Let the amount of corn be #x%#

Target cost $3.00
Silage cost $2.60
Corn cost $3.80

As we have #x%# corn then there is the related silage amount of #100%-x%#
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#[x%xx$3.80]+[(100%-x%)xx$2.60]=$3.00#

#[(x xx3.80)/100]+[(100xx2.60)/100-(x xx2.60)/100]=3#

#1/100(3.80x+260-2.6x)=3#

#3.80x+260-2.6x=300#

#1.2x+260=300#

#x=(300-260)/(1.2)=33 1/3#

So the amount of corn is #(33 1/3)/100xx 150 = 50# bushels
Thus the amount of silage is #150-50=100 # bushels
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