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		<title>Numerical Problems on Newton&#8217;s Law of Gravitation</title>
		<link>https://thefactfactor.com/facts/pure_science/physics/gravitational-force-of-attraction/7022/</link>
					<comments>https://thefactfactor.com/facts/pure_science/physics/gravitational-force-of-attraction/7022/#comments</comments>
		
		<dc:creator><![CDATA[Hemant More]]></dc:creator>
		<pubDate>Wed, 22 Jan 2020 02:54:28 +0000</pubDate>
				<category><![CDATA[Physics]]></category>
		<category><![CDATA[Dimensions of G]]></category>
		<category><![CDATA[Force of gravitation]]></category>
		<category><![CDATA[Gravitation]]></category>
		<category><![CDATA[Gravitational force]]></category>
		<category><![CDATA[Newton's law of gravitation]]></category>
		<category><![CDATA[Principle of superposition of forces]]></category>
		<category><![CDATA[Unit of G]]></category>
		<category><![CDATA[Universal gravitation constant]]></category>
		<category><![CDATA[Vector form of Newton's law of gravitation]]></category>
		<guid isPermaLink="false">https://thefactfactor.com/?p=7022</guid>

					<description><![CDATA[<p>Science &#62; Physics &#62; Gravitation &#62; Numerical Problems on Newton&#8217;s Law of Gravitation In this article, we shall learn numerical problems to calculate the gravitational force of attraction between two bodies. Example &#8211; 01: Calculate the gravitational force of attraction between two metal spheres each of mass 90 kg, if the distance between their centres [&#8230;]</p>
<p>The post <a href="https://thefactfactor.com/facts/pure_science/physics/gravitational-force-of-attraction/7022/">Numerical Problems on Newton&#8217;s Law of Gravitation</a> appeared first on <a href="https://thefactfactor.com">The Fact Factor</a>.</p>
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<h4 class="wp-block-heading"><strong>Science &gt; <a rel="noreferrer noopener" href="https://thefactfactor.com/physics/" target="_blank">Physics</a> &gt; <a rel="noreferrer noopener" href="https://thefactfactor.com/physics/gravitation/" target="_blank">Gravitation</a> &gt; Numerical Problems on Newton&#8217;s Law of Gravitation</strong></h4>



<p>In this article, we shall learn numerical problems to calculate the gravitational force of attraction between two bodies.</p>



<p class="has-text-color has-medium-font-size has-vivid-red-color"><strong>Example &#8211; 01:</strong></p>



<p><strong>Calculate the gravitational force of attraction between two metal spheres each of mass 90 kg, if the distance between their centres is 40 cm. Given G = 6.67 x 10<sup>-11</sup> N m<sup>2</sup>/kg<sup>2</sup>. Will the force of attraction be different if the same bodies are taken on the moon, their separation remaining the same?</strong></p>



<p><strong>Given:</strong> Mass of first body = m<sub>1</sub> = 90 kg, mass of second
body = m<sub>2</sub> = 90 kg, Distance between masses = r = 40 cm = 40&nbsp;x
10<sup>-2</sup> m, G = 6.67 x 10<sup>-11</sup> N m<sup>2</sup>/kg<sup>2</sup> .</p>



<p><strong>To
Find:</strong> Force of attraction = F =?</p>



<p><strong>Solution:</strong></p>



<p class="has-text-align-center">By Newton&#8217;s law of gravitation</p>



<div class="wp-block-image"><figure class="aligncenter size-large"><img decoding="async" width="259" height="75" src="https://thefactfactor.com/wp-content/uploads/2020/01/Newtons-law-of-gravitation-09.png" alt="gravitational force of attraction" class="wp-image-7027"/></figure></div>



<p>If the same
bodies are taken on the moon, their separation remaining the same, the force of
attraction between the two bodies will remain the same, because the force of
attraction between two bodies is unaffected by the presence of the third body
and medium between the two bodies.</p>



<p class="has-text-align-center"><strong>Ans:</strong> The force of attraction between two metal spheres is 3.377 x 10<sup>-6</sup> N</p>



<p class="has-text-align-center">The force of attraction between two bodies remains the same</p>



<p class="has-text-color has-medium-font-size has-vivid-red-color"><strong>Example &#8211; 02:</strong></p>



<p><strong>Find the gravitational force of attraction between the moon and the earth if the mass of the moon is 1/81 times the mass of earth. G = 6.67 x 10<sup>-11</sup> N m<sup>2</sup>/kg<sup>2</sup>, radius of moon’s orbit is 3.58 x 10<sup>5</sup> km. Mass of the earth = 6 x 10<sup>24</sup> Kg.</strong></p>



<p><strong>Given:</strong> Mass of Moon =&nbsp; 1/81 times the mass of earth,&nbsp;m<sub>m&nbsp;</sub>=
1/81 m<sub>e</sub> ,Distance between the moon and earth&nbsp; = r =&nbsp;3.58 x
10<sup>5</sup> km = 3.58 x 10<sup>8</sup> m, G = 6.67 x 10<sup>-11</sup> N m<sup>2</sup>/kg<sup>2</sup>
. Mass of earth = M<sub>e</sub> =&nbsp;6 x 10<sup>24</sup> Kg</p>



<p><strong>To
Find:</strong> Force of attraction = F =?</p>



<p><strong>Solution:</strong></p>



<p class="has-text-align-center">By Newton&#8217;s law of gravitation</p>



<div class="wp-block-image"><figure class="aligncenter size-large"><img fetchpriority="high" decoding="async" width="309" height="359" src="https://thefactfactor.com/wp-content/uploads/2020/01/Newtons-law-of-gravitation-10.png" alt="gravitational force of attraction" class="wp-image-7028" srcset="https://thefactfactor.com/wp-content/uploads/2020/01/Newtons-law-of-gravitation-10.png 309w, https://thefactfactor.com/wp-content/uploads/2020/01/Newtons-law-of-gravitation-10-258x300.png 258w" sizes="(max-width: 309px) 100vw, 309px" /></figure></div>



<p class="has-text-align-center"><strong>Ans: </strong>The gravitational force of attraction between the moon and the earth is 2.213 x 10<sup>20</sup> N</p>



<p class="has-text-color has-medium-font-size has-vivid-red-color"><strong>Example &#8211; 03:</strong></p>



<p><strong>Two bodies of masses 5 kg and 6 x 10<sup>24</sup> kg are placed with their centres 6.4 x 10<sup>6</sup> m apart. Calculate the gravitational force of attraction between the two masses. Also, find the initial acceleration of two masses assuming no other forces act on them.</strong></p>



<p><strong>Given:&nbsp;</strong>Mass of first body = m<sub>1</sub> = 5 kg, mass of second
body = m<sub>2</sub> =&nbsp;6 x 10<sup>24</sup> kg, Distance between masses = r
=&nbsp;6.4 x 10<sup>6</sup> m, G = 6.67 x 10<sup>-11</sup> N m<sup>2</sup>/kg<sup>2</sup>
.</p>



<p><strong>To
Find:</strong>&nbsp;Force of attraction between
two masses = F =? Initial accelerations of the two masses =?</p>



<p><strong>Solution:</strong></p>



<p class="has-text-align-center">By Newton&#8217;s law of gravitation</p>



<div class="wp-block-image"><figure class="aligncenter size-large"><img decoding="async" width="229" height="139" src="https://thefactfactor.com/wp-content/uploads/2020/01/Newtons-law-of-gravitation-11.png" alt="gravitational force of attraction" class="wp-image-7029"/></figure></div>



<p>Initial acceleration
of body of mass 5 kg</p>



<p class="has-text-align-center">By Newton’s second law of motion&nbsp;F = ma</p>



<p class="has-text-align-center">Thus a = F/m = 48.85 / 5 = 9.77 m/s<sup>2</sup></p>



<p class="has-text-align-center">Initial
acceleration of body of mass&nbsp;6 x 10<sup>24</sup> kg</p>



<p class="has-text-align-center">By Newton’s second law of motion F = ma</p>



<p class="has-text-align-center">Thus a = F/m = 48.85 / 6 x 10<sup>24&nbsp;</sup>= 8.142 x 10<sup>-24&nbsp;</sup>m/s<sup>2</sup></p>



<p class="has-text-align-center"><strong>Ans:</strong> The force
of attraction between the two masses = 48.85 N</p>



<p class="has-text-align-center">The Initial acceleration of body of mass 5 kg is 9.77 m/s<sup>2&nbsp;</sup>and</p>



<p class="has-text-align-center">That of body of mass 6 x 10<sup>24</sup> kg&nbsp;is 8.142 x
10<sup>-24&nbsp;</sup>m/s<sup>2</sup>.</p>



<p class="has-text-color has-medium-font-size has-vivid-red-color"><strong>Example &#8211; 04:</strong></p>



<p><strong>A sphere of mass 40 kg is attracted by another spherical mass of 15 kg by a force of 9.8 x 10<sup>-7</sup> N when the distance between their centres is 0.2 m. Find G.</strong></p>



<p><strong>Given:&nbsp;</strong>Mass of first body = m<sub>1</sub> = 40 kg, mass of second
body = m<sub>2</sub> = 15 kg, force between them = F =&nbsp;9.8 x 10<sup>-7</sup>
N, Distance between the masses = r = 0.2 m.</p>



<p><strong>To
Find:</strong> Universal gravitation constant = G
=?</p>



<p><strong>Solution:</strong></p>



<p>By Newton&#8217;s law of gravitation</p>



<div class="wp-block-image"><figure class="aligncenter size-large"><img loading="lazy" decoding="async" width="244" height="123" src="https://thefactfactor.com/wp-content/uploads/2020/01/Newtons-law-of-gravitation-12.png" alt="gravitational force of attraction" class="wp-image-7030"/></figure></div>



<p class="has-text-align-center"><strong>Ans: </strong>The value of&nbsp;universal gravitation constant is 6.533 x 10<sup>-11</sup> N m<sup>2</sup>/kg<sup>2</sup>.</p>



<p class="has-text-color has-medium-font-size has-vivid-red-color"><strong>Example &#8211; 05:</strong></p>



<p><strong>A sphere of mass 100 kg is attracted by another spherical mass of 11.75 kg by a force of 19.6 x 10<sup>-7</sup> N when the distance between their centres is 0.2 m. Find G.</strong></p>



<p><strong>Given:&nbsp;</strong>Mass of first body = m<sub>1</sub> = 100 kg, mass of second
body = m<sub>2</sub> = 11.75 kg,&nbsp;distance between masses = r = 0.2 m,
force between them = F =&nbsp; 19.6 x 10<sup>-7</sup> N,</p>



<p><strong>To
Find:</strong> Universal gravitation constant = G
=?</p>



<p><strong>Solution:</strong></p>



<p class="has-text-align-center">By Newton&#8217;s law of gravitation</p>



<div class="wp-block-image"><figure class="aligncenter size-large"><img loading="lazy" decoding="async" width="270" height="125" src="https://thefactfactor.com/wp-content/uploads/2020/01/Newtons-law-of-gravitation-13.png" alt="" class="wp-image-7031"/></figure></div>



<p class="has-text-align-center"><strong>Ans: </strong>The value of&nbsp;universal gravitation constant is 6.672 x 10<sup>-11</sup> N m<sup>2</sup>/kg<sup>2</sup>.</p>



<p class="has-text-color has-medium-font-size has-vivid-red-color"><strong>Example &#8211; 06:</strong></p>



<p><strong>The distance of a planet from the earth is 2.5 x 10<sup>7</sup> km and the gravitational force between them is 3.82 x 10<sup>18</sup> N. Mass of the planet and earth are equal, each being 5.98 x 10<sup>24</sup> kg. Calculate the universal gravitation constant.</strong></p>



<p><strong>Given:&nbsp;</strong>Mass of Planet = m<sub>1</sub> =&nbsp;5.98 x 10<sup>24</sup>
kg, mass of earth = m<sub>2</sub> =&nbsp;5.98 x 10<sup>24</sup> kg, distance
between them = r =&nbsp;2.5 x 10<sup>7</sup> km =&nbsp;2.5 x 10<sup>10</sup>&nbsp;m,
force between them = F =&nbsp; 19.6 x 10<sup>-7</sup> N,</p>



<p><strong>To
Find:</strong> Universal gravitation constant = G
=?</p>



<p><strong>Solution:</strong></p>



<p class="has-text-align-center">By Newton&#8217;s law of gravitation</p>



<div class="wp-block-image"><figure class="aligncenter size-large"><img loading="lazy" decoding="async" width="271" height="169" src="https://thefactfactor.com/wp-content/uploads/2020/01/Newtons-law-of-gravitation-14.png" alt="" class="wp-image-7032"/></figure></div>



<p class="has-text-align-center"><strong>Ans:</strong> The value of&nbsp;universal gravitation constant is 6.676 x 10<sup>-11</sup> N m<sup>2</sup>/kg<sup>2</sup>.</p>



<p class="has-text-color has-medium-font-size has-vivid-red-color"><strong>Example &#8211; 7:</strong></p>



<p>Three 5 kg
masses are kept at the vertices of an equilateral triangle each of side of 0.25
m. Find the resultant gravitational force on any one mass. G = 6.67 x 10<sup>-11</sup>
S.I. units.</p>



<p><strong>Given:&nbsp;&nbsp;</strong>m<sub>1</sub> =&nbsp;5 kg, m<sub>2</sub>&nbsp;= 5 kg, m<sub>3</sub>&nbsp;=
5 kg,&nbsp;r = 0.25 m, G = 6.67 x 10<sup>-11</sup> N m<sup>2</sup>/kg<sup>2</sup>.</p>



<p><strong>To find: </strong>Force on&nbsp;m<sub>1&nbsp;</sub>=? </p>



<p><strong>Solution:</strong></p>



<div class="wp-block-image"><figure class="aligncenter size-large"><img loading="lazy" decoding="async" width="202" height="152" src="https://thefactfactor.com/wp-content/uploads/2020/01/Newtons-law-of-gravitation-15.png" alt="" class="wp-image-7033"/></figure></div>



<p class="has-text-align-center">By Newton’s law of gravitation, the force on&nbsp;mass m<sub>1</sub>&nbsp;due
to mass m<sub>2</sub>.</p>



<div class="wp-block-image"><figure class="aligncenter size-large"><img loading="lazy" decoding="async" width="278" height="77" src="https://thefactfactor.com/wp-content/uploads/2020/01/Newtons-law-of-gravitation-16.png" alt="gravitational force of attraction" class="wp-image-7034"/></figure></div>



<p class="has-text-align-center">By Newton’s law of gravitation, the force on&nbsp;mass m<sub>1</sub>&nbsp;due
to mass m<sub>3</sub>.</p>



<div class="wp-block-image"><figure class="aligncenter size-large"><img loading="lazy" decoding="async" width="300" height="85" src="https://thefactfactor.com/wp-content/uploads/2020/01/Newtons-law-of-gravitation-17.png" alt="" class="wp-image-7035"/></figure></div>



<p>The angle between F<sub>12&nbsp;</sub>and F<sub>13</sub>&nbsp;is 60°. (Angle&nbsp;of an equilateral triangle). The net force on m<sub>1</sub>&nbsp;is&nbsp;given by</p>



<div class="wp-block-image"><figure class="aligncenter size-large"><img loading="lazy" decoding="async" width="300" height="163" src="https://thefactfactor.com/wp-content/uploads/2020/01/Newtons-law-of-gravitation-18.png" alt="Newtons Law of Gravitation" class="wp-image-7036"/></figure></div>



<p>The two forces are equal, hence their resultant act along
angle bisector towards centroid.</p>



<p class="has-text-align-center"><strong>Ans:</strong>&nbsp; Force on any mass is 4.621 x 10<sup>-8</sup>&nbsp;N towards&nbsp;the centroid</p>



<p class="has-text-color has-text-align-center has-medium-font-size has-vivid-cyan-blue-color"><strong><a href="https://thefactfactor.com/facts/pure_science/physics/newtons-law-of-gravitation/7008/">Previous Topic: Theory of Newton&#8217;s Law of Gravitation</a></strong></p>



<p class="has-text-color has-text-align-center has-medium-font-size has-vivid-cyan-blue-color"><strong><a href="https://thefactfactor.com/facts/pure_science/physics/gravitational-field/7042/">Next Topic: Concept of Gravitational Intensity</a></strong></p>



<h4 class="wp-block-heading"><strong>Science &gt; <a rel="noreferrer noopener" href="https://thefactfactor.com/physics/" target="_blank">Physics</a> &gt; <a rel="noreferrer noopener" href="https://thefactfactor.com/physics/gravitation/" target="_blank">Gravitation</a> &gt; Numerical Problems on Newton&#8217;s Law of Gravitation</strong></h4>
<p>The post <a href="https://thefactfactor.com/facts/pure_science/physics/gravitational-force-of-attraction/7022/">Numerical Problems on Newton&#8217;s Law of Gravitation</a> appeared first on <a href="https://thefactfactor.com">The Fact Factor</a>.</p>
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