Could someone please tell me how did we get these values for bearings?
2 Answers
Explanation:
#"bearings are given as measures from the "#
#• color(blue)" North line in a clockwise direction"#
#"they are usually expressed as 3 figures"#
#rArr90^@-=090^@#
#(a)#
#2i+3j" is positioned in the first quadrant"#
#•color(white)(x)theta=tan^-1(y/x)#
#rArrtheta=tan^-1(3/2)~~56^@larrcolor(blue)"related acute angle"#
#"this angle is measured anticlockwise from the x-axis"#
#rArr"angle from north line "=90-56=34#
#rArr"bearing "=034^@#
#(b)#
#4i-j" is positioned in the fourth quadrant"#
#theta=tan^-1(1/4)~~14^@larrcolor(blue)"related acute angle"#
#rArr"angle from north line "=90+14=104^@#
#rArr"bearing "=104^@#
#(c)#
#-3i+2j" is positioned in the second quadrant"#
#rArrtan^-1(2/3)~~34^@larrcolor(blue)"related acute angle"#
#rArr"angle from north line "=270+34=304^@#
#["measured from north line, west is "270^@]#
#(d)#
#-2i-j" is in the third quadrant"#
#rArrtheta=tan^-1(1/2)~~27^@larrcolor(blue)"related acute angle"#
#"this angle is positioned below the x-axis in the third quad."#
#rArr"angle from north line "=180+(90-27)=243^@#
#rArr"bearing "=243^@#
See below
Explanation:
Using the unit vectors i and j:
From the diagram we can see that the unit vector i is the direction due east, and the unit vector j is the direction due north.
The magnitude of
The angle the vector makes with the x axis is given by:
On the diagram we will solve question a.
Magnitude:
Bearings are always given in relation to North, this is why we need to find
I will do question b, because it is in a different quadrant. This will show you how to deal with negative angles.
Magnitude:
You should now be able to find the other results. It pays to do a rough sketch so you know where to calculate the angles.
