Wednesday, April 18, 2012

Linear equation Part 2

  
                                       
To reduce a given equation to linear form, you need to cross- multiply its terms on both sides of equality. After
cross-multiplication, you will get an equation involving variables having power more than one. But on simplifying, the terms with power more than one like x2, cancel out and you are left with a linear equation which you can solve in the usual manner. Observe the following example to learn how to reduce a given equation to a linear form and then solve it.

Example: Solve the following equation: 2x - 5/8x + 3 = x - 5/4x



Solution: Cross multiplying the equation, we get
               2x - 5/8x + 3 = x - 5/ 4x
                                         (2x - 5)(4x) = (x - 5)(8x + 3)
                                              8x - 20x = 8x + 3x - 40x - 15
                                             8x -  20x = 8x - 37x - 15


Transposing the terms, we get


                                        8x2 - 82x - 2x + 37x = - 15
or         17x = -15
or            x  = - 15/17


Note: Sometimes due to a mistake in calculation, terms like x2 do not get cancelled out and you are left with an
equation which is not a linear equation. In such cases, recheck all the steps to fing a error, since all the terms involving x2 have to cancel out


Example 2: Find a positive value of tthe variable x for which the follwong equations is satisfied.

x2 + 13/3x2 + 10 = 1/2


Solution: Let us cross multiplying the equation, we get


2(x2 + 13) = 1(3x2+ 10)
2x2 + 26   = 3x2 + 10
Transposing the terms, we get
3x2 -2x2 = 26 - 10
       x2  = 16
It implies x has two values.
x = + 4 or - 4
since only the positive value of x is required


So, x = + 4


               
Application of Linear Equations in solving Problems





Many problems in almost all topics of Math's involve relationships among known quantities ( numbers or

constant) and unknown quantities (variables). These problems are often stated in words and hence also known as word problems. To solve a word problem, first a suitable equation containing both variables and constants is framed. Then, a suitable solution to this equation is found that satisfies the given word problem.


You need to follow the steps mentioned below to solve a word problem.


Step 1: Read the problem carefully and note down what is given and what is required to be found out.


Step 2: Denote the unknown quantity by some English letter like x, y, z, a, b, c, p, q, r etc.


Step 3: Translate the statements of the problems into mathematical statements.


Step 4: Understand the relationship between variables and constants, and accordingly frame an
equation containing variables and constants.


Step 5: Solve the equation using any one of the methods discussed in this chapter so far.


Step 6: Check whether the solution obtained in Step 5 satisfies the conditions of the word problem.


Checking Solution: The solution of a linear equation may be rational number (negative, positive, fractions etc.) But the solution of an equation, framed for a word problem, has certain limitations depending upon the nature of a variable, say x, whose value you are trying to find to satisfy the given conditions.


If x is number of persons : - It cannot be negative nor a fraction; it has to be whole number.


If x is the age of a person :- it can not be negative


If x is length - it can not be negative.


If x is a digit - It has to be a digit form 0 to 9, it can neither be negative nor a fraction.


Now, observe the following examples to learn how to solve word problems by framing and solving equations


Example: The sum of three consecutive multiples of 5 of 555. Find the numbers.


Solution: There  is need to assume a variable for the unknown quantity. Here we have three unknows but
they are related to each other.


If we assume that first multiple of 5 to be x, th other tow multiple can be written as
x + 5 and x + 10 because they are consecutive multiples of 5 as 555.
Therefore                      x + (x + 5) + (x +10) = 555
                                                     3x + 15 = 555
                                                              3x = 555 – 15                       (transposing 15)
                                                                  = 540
                                                              x  = 540/3
                                                               x = 180

Hence, the required multiples of 5 are 180, 185 and 190




Check:-  Adding these three numbers, we get 180 + 185 + 190 = 555. 





1 comment:

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