A salesman used three types of order forms: A, B, C. He used 40 of Form A. Of Form B he used four times as many as Form A plus 1 /2 as many as Form C. He used as many of Form C as Form A plus 1/2 as many as Form B. Altogether, how many forms did he use? a. 440 b. 200 c. 250 d. 320 e. 500
2 answers:
Answer:
Given that
A = 40
B = 4A + 0.5C = 160 + 0.5C .......... (i)
C = A + 0.5B = 40 + 0.5 B .......... (ii)
multiply (ii) with 2
B = 2C -40 .......... (iii)
B = 0.5C + 160 ...........(i)
subtract (i) from (iii)
0 = 1.5C -200
C = 400/3
put in (i)
B = 160 + 0.5(400/3) = 680/3
total forms = A+B+C = 40 + 680/3 + 400/3 = 487 approx
So e.500 is the better option
Answer:
a. 440
Step-by-step explanation:
The information provided allows us to set up the following system of linear equations:
We already have the value for A, solving the system gives us the values for B and C:
The total number of forms used is:
He used 440 forms.
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Answer:
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