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Find the equation of the line passing through ( −5 , 2 ) and ( 2 , 2 ) .

Horizontal line: y = 2

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Determining whether graphs of lines are parallel or perpendicular

Parallel lines have the same slope and different y- intercepts. Lines that are parallel to each other will never intersect. For example, [link] shows the graphs of various lines with the same slope, m = 2.

Coordinate plane with the x-axis ranging from negative 8 to 8 in intervals of 2 and the y-axis ranging from negative 7 to 7.  Three functions are graphed on the same plot: y = 2 times x minus 3; y = 2 times x plus 1 and y = 2 times x plus 5.
Parallel lines

All of the lines shown in the graph are parallel because they have the same slope and different y- intercepts.

Lines that are perpendicular intersect to form a 90° -angle. The slope of one line is the negative reciprocal of the other. We can show that two lines are perpendicular if the product of the two slopes is −1 : m 1 m 2 = −1. For example, [link] shows the graph of two perpendicular lines. One line has a slope of 3; the other line has a slope of 1 3 .

m 1 m 2 = −1 3 ( 1 3 ) = −1
Coordinate plane with the x-axis ranging from negative 3 to 6 and the y-axis ranging from negative 2 to 5.  Two functions are graphed on the same plot: y = 3 times x minus 1 and y = negative x/3 minus 2.  Their intersection is marked by a box to show that it is a right angle.
Perpendicular lines

Graphing two equations, and determining whether the lines are parallel, perpendicular, or neither

Graph the equations of the given lines, and state whether they are parallel, perpendicular, or neither: 3 y = 4 x + 3 and 3 x 4 y = 8.

The first thing we want to do is rewrite the equations so that both equations are in slope-intercept form.

First equation:

3 y = −4 x + 3 y = 4 3 x + 1

Second equation:

3 x 4 y = 8 −4 y = −3 x + 8 y = 3 4 x - 2

See the graph of both lines in [link]

Coordinate plane with the x-axis ranging from negative 4 to 5 and the y-axis ranging from negative 4 to 4.  Two functions are graphed on the same plot: y = negative 4 times x/3 plus 1 and y = 3 times x/4 minus 2.  A box is placed at the intersection to note that it forms a right angle.

From the graph, we can see that the lines appear perpendicular, but we must compare the slopes.

m 1 = 4 3 m 2 = 3 4 m 1 m 2 = ( 4 3 ) ( 3 4 ) = −1

The slopes are negative reciprocals of each other, confirming that the lines are perpendicular.

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Graph the two lines and determine whether they are parallel, perpendicular, or neither: 2 y x = 10 and 2 y = x + 4.

Parallel lines: equations are written in slope-intercept form.

Coordinate plane with the x-axis ranging from negative 5 to 5 and the y-axis ranging from negative 1 to 6.  Two functions are graphed on the same plot: y = x/2 plus 5 and y = x/2 plus 2.  The lines do not cross.
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Writing the equations of lines parallel or perpendicular to a given line

As we have learned, determining whether two lines are parallel or perpendicular is a matter of finding the slopes. To write the equation of a line parallel or perpendicular to another line, we follow the same principles as we do for finding the equation of any line. After finding the slope, use the point-slope formula to write the equation of the new line.

Given an equation for a line, write the equation of a line parallel or perpendicular to it.

  1. Find the slope of the given line. The easiest way to do this is to write the equation in slope-intercept form.
  2. Use the slope and the given point with the point-slope formula.
  3. Simplify the line to slope-intercept form and compare the equation to the given line.

Writing the equation of a line parallel to a given line passing through a given point

Write the equation of line parallel to a 5 x + 3 y = 1 and passing through the point ( 3 , 5 ) .

First, we will write the equation in slope-intercept form to find the slope.

5 x + 3 y = 1 3 y = 5 x + 1 y = 5 3 x + 1 3

The slope is m = 5 3 . The y- intercept is 1 3 , but that really does not enter into our problem, as the only thing we need for two lines to be parallel is the same slope. The one exception is that if the y- intercepts are the same, then the two lines are the same line. The next step is to use this slope and the given point with the point-slope formula.

y 5 = 5 3 ( x 3 ) y 5 = 5 3 x + 5 y = 5 3 x + 10

The equation of the line is y = 5 3 x + 10. See [link] .

Coordinate plane with the x-axis ranging from negative 8 to 8 in intervals of 2 and the y-axis ranging from negative 2 to 12 in intervals of 2.  Two functions are graphed on the same plot: y = negative 5 times x/3 plus 1/3 and y = negative 5 times x/3 plus 10.  The lines do not cross.
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Questions & Answers

Three charges q_{1}=+3\mu C, q_{2}=+6\mu C and q_{3}=+8\mu C are located at (2,0)m (0,0)m and (0,3) coordinates respectively. Find the magnitude and direction acted upon q_{2} by the two other charges.Draw the correct graphical illustration of the problem above showing the direction of all forces.
Kate Reply
To solve this problem, we need to first find the net force acting on charge q_{2}. The magnitude of the force exerted by q_{1} on q_{2} is given by F=\frac{kq_{1}q_{2}}{r^{2}} where k is the Coulomb constant, q_{1} and q_{2} are the charges of the particles, and r is the distance between them.
Muhammed
What is the direction and net electric force on q_{1}= 5µC located at (0,4)r due to charges q_{2}=7mu located at (0,0)m and q_{3}=3\mu C located at (4,0)m?
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what is the change in momentum of a body?
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8m/s²
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I believe temperature being an intensive property does not change for any amount of boiling water whereas heat being an extensive property changes with amount/size of the system.
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temperature for any amount of water to boil at ntp is 100⁰C (it is a state function and and intensive property) and it depends both will give same amount of heat because the surface available for heat transfer is greater in case of the kettle as well as the heat stored in it but if you talk.....
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field is a region of space under the influence of some physical properties
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No. According to Isac Newtons law. this two bodies maybe you and the wall beside you. Attracting depends on the mass och each body and distance between them.
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What is specific heat capacity
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Specific heat capacity is a measure of the amount of energy required to raise the temperature of a substance by one degree Celsius (or Kelvin). It is measured in Joules per kilogram per degree Celsius (J/kg°C).
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specific heat capacity is the amount of energy needed to raise the temperature of a substance by one degree Celsius or kelvin
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Source:  OpenStax, Algebra and trigonometry. OpenStax CNX. Nov 14, 2016 Download for free at https://legacy.cnx.org/content/col11758/1.6
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