{"id":2375,"date":"2018-05-04T03:22:20","date_gmt":"2018-05-03T19:22:20","guid":{"rendered":"https:\/\/gurumuda.net\/physics\/?p=2375"},"modified":"2023-08-06T15:35:08","modified_gmt":"2023-08-06T15:35:08","slug":"partially-elastic-collisions","status":"publish","type":"post","link":"https:\/\/gurumuda.net\/physics\/partially-elastic-collisions.htm","title":{"rendered":"Partially elastic collisions","gt_translate_keys":[{"key":"rendered","format":"text"}]},"content":{"rendered":"<p style=\"text-align: justify;\" align=\"justify\"><span style=\"font-size: 12pt; font-family: 'times new roman', times, serif;\">Partially elastic collisions<\/span><\/p>\n<p class=\"western\" style=\"text-align: justify;\" align=\"justify\"><span lang=\"en-US\" style=\"font-size: 12pt; font-family: 'times new roman', times, serif;\">In partially elastic collisions, the law of conservation of momentum is applicable, while the conservation of kinetic energy law is not applicable. At the time a collision takes place, some kinetic energy is converted to sound energy, heat energy, and internal energy. The use of the word elastic signifies that after the collision, the two objects do not stick together but bounce off.<\/span><\/p>\n<p class=\"western\" style=\"text-align: justify;\" align=\"justify\"><span style=\"font-size: 12pt; font-family: 'times new roman', times, serif;\"><span lang=\"en-US\">An example of partially elastic collision is the one-dimensional collision of two marbles or two pool balls.<\/span><!--more--><\/span><\/p>\n<p class=\"western\" style=\"text-align: justify;\" align=\"justify\"><span lang=\"en-US\" style=\"font-size: 12pt; font-family: 'times new roman', times, serif;\">Example question 1.<br \/>\n<\/span><\/p>\n<p class=\"western\" style=\"text-align: justify;\" align=\"justify\"><span lang=\"en-US\" style=\"font-size: 12pt; font-family: 'times new roman', times, serif;\">Objects A and B with masses of 1 kg and 2 kg, respectively move in opposite directions at speeds of 4 m\/s and 2 m\/s, respectively and collide in a partially elastic collision. If after collision object A moves at a speed of 2 m\/s, what is the speed of object B?<\/span><\/p>\n<p class=\"western\" style=\"text-align: justify;\" align=\"justify\"><span lang=\"en-US\" style=\"font-size: 12pt; font-family: 'times new roman', times, serif;\">Known :<\/span><\/p>\n<p class=\"western\" style=\"text-align: justify;\" align=\"justify\"><span style=\"font-size: 12pt; font-family: 'times new roman', times, serif;\"><span lang=\"en-US\">m<\/span><sub><span lang=\"en-US\">A<\/span><\/sub><span lang=\"en-US\"> = 1 kg, m<\/span><sub><span lang=\"en-US\">B<\/span><\/sub><span lang=\"en-US\"> = 2 kg, v<\/span><sub><span lang=\"en-US\">A<\/span><\/sub><span lang=\"en-US\"> = 4 m\/s (suppose to the right), v<\/span><sub><span lang=\"en-US\">B<\/span><\/sub><span lang=\"en-US\"> = -2 m\/s (suppose to the left), v<\/span><sub><span lang=\"en-US\">A <\/span><\/sub><span lang=\"en-US\">\u2019 = &#8211; 2 m\/s<\/span><\/span><\/p>\n<p class=\"western\" style=\"text-align: justify;\" align=\"justify\"><span style=\"font-size: 12pt; font-family: 'times new roman', times, serif;\"><span lang=\"en-US\">Wanted : v<\/span><sub><span lang=\"en-US\">B<\/span><\/sub><span lang=\"en-US\"> \u2019<\/span><\/span><\/p>\n<p class=\"western\" style=\"text-align: justify;\" align=\"justify\"><span lang=\"en-US\" style=\"font-size: 12pt; font-family: 'times new roman', times, serif;\">Solution :<\/span><\/p>\n<p class=\"western\" style=\"text-align: justify;\" align=\"justify\"><span style=\"font-size: 12pt; font-family: 'times new roman', times, serif;\"><span lang=\"en-US\">m<\/span><sub><span lang=\"en-US\">A<\/span><\/sub><span lang=\"en-US\"> v<\/span><sub><span lang=\"en-US\">A<\/span><\/sub><span lang=\"en-US\"> + m<\/span><sub><span lang=\"en-US\">B <\/span><\/sub><span lang=\"en-US\">v<\/span><sub><span lang=\"en-US\">B <\/span><\/sub><span lang=\"en-US\">= m<\/span><sub><span lang=\"en-US\">A<\/span><\/sub><span lang=\"en-US\"> v<\/span><sub><span lang=\"en-US\">A<\/span><\/sub><span lang=\"en-US\"> \u2019 + m<\/span><sub><span lang=\"en-US\">B<\/span><\/sub><span lang=\"en-US\"> v<\/span><sub><span lang=\"en-US\">B<\/span><\/sub><span lang=\"en-US\"> \u2019<\/span><\/span><\/p>\n<p class=\"western\" style=\"text-align: justify;\" align=\"justify\"><span style=\"font-size: 12pt; font-family: 'times new roman', times, serif;\"><span lang=\"en-US\">(1 kg)(4 m\/s) + (2 kg)(-2 m\/s) = (1 kg)(-2 m\/s) + (2 kg)(v<\/span><sub><span lang=\"en-US\">B<\/span><\/sub><span lang=\"en-US\">\u2019)<\/span><\/span><\/p>\n<p class=\"western\" style=\"text-align: justify;\" align=\"justify\"><span style=\"font-size: 12pt; font-family: 'times new roman', times, serif;\"><span lang=\"en-US\">4 kg m\/s \u2013 4 kg m\/s = -2 kg m\/s + (2 kg) v<\/span><sub><span lang=\"en-US\">B<\/span><\/sub><span lang=\"en-US\">\u2019<\/span><\/span><\/p>\n<p class=\"western\" style=\"text-align: justify;\" align=\"justify\"><span style=\"font-size: 12pt; font-family: 'times new roman', times, serif;\"><span lang=\"en-US\">0 = &#8211; 2 kg m\/s + (2 kg)(v<\/span><sub><span lang=\"en-US\">B<\/span><\/sub><span lang=\"en-US\">\u2019)<\/span><\/span><\/p>\n<p class=\"western\" style=\"text-align: justify;\" align=\"justify\"><span style=\"font-size: 12pt; font-family: 'times new roman', times, serif;\"><span lang=\"en-US\">-2 kg m\/s = &#8211; 2 kg v<\/span><sub><span lang=\"en-US\">B <\/span><\/sub><span lang=\"en-US\">\u2019<\/span><\/span><\/p>\n<p class=\"western\" style=\"text-align: justify;\" align=\"justify\"><span style=\"font-size: 12pt; font-family: 'times new roman', times, serif;\"><span lang=\"en-US\">v<\/span><sub><span lang=\"en-US\">B<\/span><\/sub><span lang=\"en-US\">\u2019 = 1 m\/s<\/span><\/span><\/p>\n<p class=\"western\" style=\"text-align: justify;\" align=\"justify\"><span lang=\"en-US\" style=\"font-size: 12pt; font-family: 'times new roman', times, serif;\">After collision, object B moves at a speed of 1 m\/s (suppose to the right) and object A moves at a speed of 2 m\/s (suppose to the left)<\/span><\/p>\n<p class=\"western\" style=\"text-align: justify;\" align=\"justify\"><span style=\"font-family: 'times new roman', times, serif; font-size: 12pt;\"><span lang=\"en-US\">Example question 2.<\/span><\/span><\/p>\n<p class=\"western\" style=\"text-align: justify;\" align=\"justify\"><span style=\"font-size: 12pt; font-family: 'times new roman', times, serif;\">Object A and B with a mass of 4-kg and 5-kg approach each other in the opposite direction, as shown in the figure below. After collision, both objects reversed direction with speed of A = 4 m.s<sup>-1<\/sup> and speed of B = 2 m.s<sup>&#8211;<\/sup><sup>1<\/sup>. What is the speed of object B before the collision?<\/span><\/p>\n<p class=\"western\" style=\"text-align: justify;\" align=\"justify\"><span style=\"font-size: 12pt; font-family: 'times new roman', times, serif;\"><u>Known :<\/u><\/span><\/p>\n<p class=\"western\" style=\"text-align: justify;\" align=\"justify\"><span style=\"font-size: 12pt; font-family: 'times new roman', times, serif;\">Mass of object A (m<sub>A<\/sub>) = 4 kg<img loading=\"lazy\" decoding=\"async\" class=\"alignright size-full wp-image-2389\" src=\"https:\/\/gurumuda.net\/physics\/wp-content\/uploads\/2018\/05\/Partially-Elastic-Collisions-1.png\" alt=\"Partially Elastic Collisions 1\" width=\"172\" height=\"82\" \/><\/span><\/p>\n<p class=\"western\" style=\"text-align: justify;\" align=\"justify\"><span style=\"font-size: 12pt; font-family: 'times new roman', times, serif;\">Mass of object B (m<sub>B<\/sub>) = 5 kg<\/span><\/p>\n<p class=\"western\" style=\"text-align: justify;\" align=\"justify\"><span style=\"font-size: 12pt; font-family: 'times new roman', times, serif;\">Velocity of object A before collision (v<sub>A<\/sub>) = 6 m\/s<\/span><\/p>\n<p class=\"western\" style=\"text-align: justify;\" align=\"justify\"><span style=\"font-size: 12pt; font-family: 'times new roman', times, serif;\">Velocity of object A after collision (v<sub>A<\/sub>\u2019) = 4 m\/s<\/span><\/p>\n<p class=\"western\" style=\"text-align: justify;\" align=\"justify\"><span style=\"font-size: 12pt; font-family: 'times new roman', times, serif;\">Velocity of object B after collision (v<sub>B<\/sub>\u2019) = -2 m\/s<\/span><\/p>\n<p class=\"western\" style=\"text-align: justify;\" align=\"justify\"><span style=\"font-family: 'times new roman', times, serif; font-size: 12pt;\">Plus and minus sign indicates that both objects move in opposite direction.<\/span><\/p>\n<p class=\"western\" style=\"text-align: justify;\" align=\"justify\"><span style=\"font-size: 12pt; font-family: 'times new roman', times, serif;\"><u>Wanted :<\/u> Velocity of object B before collision (v<sub>B<\/sub>)<\/span><\/p>\n<p class=\"western\" style=\"text-align: justify;\" align=\"justify\"><span style=\"font-family: 'times new roman', times, serif; font-size: 12pt;\"><u>Solution :<\/u><\/span><\/p>\n<p class=\"western\" style=\"text-align: justify;\" align=\"justify\"><span style=\"font-size: 12pt; font-family: 'times new roman', times, serif;\">m<sub>A<\/sub> v<sub>A<\/sub> + m<sub>B<\/sub> v<sub>B<\/sub> = m<sub>A<\/sub> v<sub>A<\/sub>\u2019 + m<sub>B<\/sub> v<sub>B<\/sub>\u2019<\/span><\/p>\n<p class=\"western\" style=\"text-align: justify;\" align=\"justify\"><span style=\"font-size: 12pt; font-family: 'times new roman', times, serif;\">(4)(6) + (5)(-2) = (4)(4) + (5)(v<sub>B<\/sub>\u2019)<\/span><\/p>\n<p class=\"western\" style=\"text-align: justify;\" align=\"justify\"><span style=\"font-size: 12pt; font-family: 'times new roman', times, serif;\">24 \u2013 10 = 16 + 5(v<sub>B<\/sub>\u2019) <\/span><\/p>\n<p class=\"western\" style=\"text-align: justify;\" align=\"justify\"><span style=\"font-size: 12pt; font-family: 'times new roman', times, serif;\">14 &#8211; 16 = 5 (v<sub>B<\/sub>\u2019) <\/span><\/p>\n<p class=\"western\" style=\"text-align: justify;\" align=\"justify\"><span style=\"font-size: 12pt; font-family: 'times new roman', times, serif;\">-2 = 5 (v<sub>B<\/sub>\u2019) <\/span><\/p>\n<p class=\"western\" style=\"text-align: justify;\" align=\"justify\"><span style=\"font-size: 12pt; font-family: 'times new roman', times, serif;\">v<sub>B<\/sub>\u2019 = -2\/5 <\/span><\/p>\n<p class=\"western\" style=\"text-align: justify;\" align=\"justify\"><span style=\"font-size: 12pt; font-family: 'times new roman', times, serif;\">v<sub>B<\/sub>\u2019 = -0.4<\/span><\/p>\n<p class=\"western\" style=\"text-align: justify;\" align=\"justify\"><span style=\"font-family: 'times new roman', times, serif; font-size: 12pt;\">Minus sign indicates that object direction after collision is different with direction before collision.<\/span><\/p>\n<p class=\"western\" style=\"text-align: justify;\" align=\"justify\"><span style=\"font-family: 'times new roman', times, serif; font-size: 12pt;\"><span lang=\"en-US\">Example question 3.<\/span><\/span><\/p>\n<p class=\"western\" style=\"text-align: justify;\" align=\"justify\"><span style=\"font-family: 'times new roman', times, serif; font-size: 12pt;\">Two objects with the same mass approach each other as shown in the figure below. <\/span><\/p>\n<p class=\"western\" style=\"text-align: justify;\" align=\"justify\"><span style=\"font-size: 12pt; font-family: 'times new roman', times, serif;\">If v<sub>2<\/sub>&#8216; is the speed of the object (2) after the collision to rightward with speed of 5 m.s<sup>\u20131<\/sup>, what is the speed of object one v<sub>1 <\/sub>&#8216; (1) after the collision?<\/span><\/p>\n<p class=\"western\" style=\"text-align: justify;\" align=\"justify\"><span style=\"font-family: 'times new roman', times, serif; font-size: 12pt;\"><u>Known :<\/u><\/span><\/p>\n<p class=\"western\" style=\"text-align: justify;\" align=\"justify\"><span style=\"font-size: 12pt; font-family: 'times new roman', times, serif;\">Mass of each object = m<img loading=\"lazy\" decoding=\"async\" class=\"alignright size-medium wp-image-2390\" src=\"https:\/\/gurumuda.net\/physics\/wp-content\/uploads\/2018\/05\/Partially-Elastic-Collisions-2-300x66.png\" alt=\"Partially Elastic Collisions 2\" width=\"300\" height=\"66\" srcset=\"https:\/\/gurumuda.net\/physics\/wp-content\/uploads\/sites\/28\/2018\/05\/Partially-Elastic-Collisions-2-300x66.png 300w, https:\/\/gurumuda.net\/physics\/wp-content\/uploads\/sites\/28\/2018\/05\/Partially-Elastic-Collisions-2.png 360w\" sizes=\"auto, (max-width: 300px) 100vw, 300px\" \/><\/span><\/p>\n<p class=\"western\" style=\"text-align: justify;\" align=\"justify\"><span style=\"font-size: 12pt; font-family: 'times new roman', times, serif;\">Velocity of object 1 before collision (v<sub>1<\/sub>) = 8 m\/s<\/span><\/p>\n<p class=\"western\" style=\"text-align: justify;\" align=\"justify\"><span style=\"font-size: 12pt; font-family: 'times new roman', times, serif;\">Velocity of object 2 before collision (v<sub>2<\/sub>) = 10 m\/s <\/span><\/p>\n<p class=\"western\" style=\"text-align: justify;\" align=\"justify\"><span style=\"font-size: 12pt; font-family: 'times new roman', times, serif;\">Velocity of object 2 after collision (v<sub>2<\/sub>&#8216;) = 5 m\/s<\/span><\/p>\n<p class=\"western\" style=\"text-align: justify;\" align=\"justify\"><span style=\"font-size: 12pt; font-family: 'times new roman', times, serif;\"><u>Wanted :<\/u> Speed of object 1 after collision (v<sub>1<\/sub>&#8216;) <\/span><\/p>\n<p class=\"western\" style=\"text-align: justify;\" align=\"justify\"><span style=\"font-family: 'times new roman', times, serif; font-size: 12pt;\"><u>Solution :<\/u><\/span><\/p>\n<p class=\"western\" style=\"text-align: justify;\" align=\"justify\"><span style=\"font-size: 12pt; font-family: 'times new roman', times, serif;\">m<sub>1<\/sub> v<sub>1<\/sub>+ m<sub>2 <\/sub>v<sub>2<\/sub> = m<sub>1 <\/sub>v<sub>1<\/sub>\u2019 + m<sub>2 <\/sub>v<sub>2<\/sub>\u2019<\/span><\/p>\n<p class=\"western\" style=\"text-align: justify;\" align=\"justify\"><span style=\"font-size: 12pt; font-family: 'times new roman', times, serif;\">m (v<sub>1 <\/sub>+ v<sub>2<\/sub>) = m (v<sub>1<\/sub>\u2019 + v<sub>2<\/sub>\u2019)<\/span><\/p>\n<p class=\"western\" style=\"text-align: justify;\" align=\"justify\"><span style=\"font-size: 12pt; font-family: 'times new roman', times, serif;\">v<sub>1<\/sub> + v<sub>2<\/sub> = v<sub>1<\/sub>\u2019 + v<sub>2<\/sub>\u2019<\/span><\/p>\n<p class=\"western\" style=\"text-align: justify;\" align=\"justify\"><span style=\"font-size: 12pt; font-family: 'times new roman', times, serif;\">8 + 10 = v<sub>1<\/sub>\u2019 + 5<\/span><\/p>\n<p class=\"western\" style=\"text-align: justify;\" align=\"justify\"><span style=\"font-size: 12pt; font-family: 'times new roman', times, serif;\">18 = v<sub>1<\/sub>\u2019 + 5<\/span><\/p>\n<p class=\"western\" style=\"text-align: justify;\" align=\"justify\"><span style=\"font-size: 12pt; font-family: 'times new roman', times, serif;\">v<sub>1<\/sub>\u2019 = 18-5<\/span><\/p>\n<p class=\"western\" style=\"text-align: justify;\" align=\"justify\"><span style=\"font-size: 12pt; font-family: 'times new roman', times, serif;\">v<sub>1<\/sub>\u2019 = 13 m\/s<\/span><\/p>\n<p style=\"text-align: justify;\"><span style=\"font-size: 12pt; font-family: 'times new roman', times, serif;\">20 conceptual questions and answers about partially elastic collisions:<\/span><\/p>\n<p style=\"text-align: justify;\"><span style=\"font-size: 12pt; font-family: 'times new roman', times, serif;\"><strong>1. Question:<\/strong> What is a partially elastic collision? <strong>Answer:<\/strong> A partially elastic collision is one where some kinetic energy is conserved, but not all. The objects rebound off each other but not with their full initial kinetic energies.<\/span><\/p>\n<p style=\"text-align: justify;\"><span style=\"font-size: 12pt; font-family: 'times new roman', times, serif;\"><strong>2. Question:<\/strong> How does a partially elastic collision differ from a perfectly elastic collision? <strong>Answer:<\/strong> In a perfectly elastic collision, the total kinetic energy is conserved, while in a partially elastic collision, only a portion of the kinetic energy is conserved.<\/span><\/p>\n<p style=\"text-align: justify;\"><span style=\"font-size: 12pt; font-family: 'times new roman', times, serif;\"><strong>3. Question:<\/strong> What remains conserved in a partially elastic collision? <strong>Answer:<\/strong> Momentum remains conserved in all types of collisions, including partially elastic ones.<\/span><\/p>\n<p style=\"text-align: justify;\"><span style=\"font-size: 12pt; font-family: 'times new roman', times, serif;\"><strong>4. Question:<\/strong> How is the coefficient of restitution, <span class=\"math math-inline\"><span class=\"katex\"><span class=\"katex-mathml\">\ufffd<\/span><span class=\"katex-html\" aria-hidden=\"true\"><span class=\"base\"><span class=\"mord mathnormal\">e<\/span><\/span><\/span><\/span><\/span>, used to describe the elasticity of a collision? <strong>Answer:<\/strong> For partially elastic collisions, <span class=\"math math-inline\"><span class=\"katex\"><span class=\"katex-mathml\">0&lt;\ufffd&lt;1<\/span><span class=\"katex-html\" aria-hidden=\"true\"><span class=\"base\"><span class=\"mord\">0<\/span><span class=\"mrel\">&lt;<\/span><\/span><span class=\"base\"><span class=\"mord mathnormal\">e<\/span><span class=\"mrel\">&lt;<\/span><\/span><span class=\"base\"><span class=\"mord\">1<\/span><\/span><\/span><\/span><\/span>. The closer <span class=\"math math-inline\"><span class=\"katex\"><span class=\"katex-mathml\">\ufffd<\/span><span class=\"katex-html\" aria-hidden=\"true\"><span class=\"base\"><span class=\"mord mathnormal\">e<\/span><\/span><\/span><\/span><\/span> is to 1, the more elastic the collision.<\/span><\/p>\n<p style=\"text-align: justify;\"><span style=\"font-size: 12pt; font-family: 'times new roman', times, serif;\"><strong>5. Question:<\/strong> Can the coefficient of restitution be greater than 1? <strong>Answer:<\/strong> No. A coefficient of restitution greater than 1 would imply more kinetic energy after the collision than before, which violates energy conservation.<\/span><\/p>\n<p style=\"text-align: justify;\"><span style=\"font-size: 12pt; font-family: 'times new roman', times, serif;\"><strong>6. Question:<\/strong> Why isn&#8217;t all kinetic energy conserved in partially elastic collisions? <strong>Answer:<\/strong> Some kinetic energy is transformed into other forms, such as sound, heat, or deformation of the objects.<\/span><\/p>\n<p style=\"text-align: justify;\"><span style=\"font-size: 12pt; font-family: 'times new roman', times, serif;\"><strong>7. Question:<\/strong> How can you determine the amount of kinetic energy retained in a partially elastic collision? <strong>Answer:<\/strong> By comparing the total kinetic energy before and after the collision.<\/span><\/p>\n<p style=\"text-align: justify;\"><span style=\"font-size: 12pt; font-family: 'times new roman', times, serif;\"><strong>8. Question:<\/strong> Do partially elastic collisions always produce sound? <strong>Answer:<\/strong> Not always, but sound can be produced due to vibrations caused by the collision.<\/span><\/p>\n<p style=\"text-align: justify;\"><span style=\"font-size: 12pt; font-family: 'times new roman', times, serif;\"><strong>9. Question:<\/strong> What happens to the kinetic energy that isn&#8217;t conserved in a partially elastic collision? <strong>Answer:<\/strong> It&#8217;s typically transformed into other forms of energy like heat, sound, or potential energy due to deformation.<\/span><\/p>\n<p style=\"text-align: justify;\"><span style=\"font-size: 12pt; font-family: 'times new roman', times, serif;\"><strong>10. Question:<\/strong> How does material composition affect the elasticity of a collision? <strong>Answer:<\/strong> Some materials, like rubber, tend to undergo more elastic collisions, while others, like clay, tend to be inelastic. However, most real-world collisions are partially elastic due to the materials&#8217; properties and other factors.<\/span><\/p>\n<p style=\"text-align: justify;\"><span style=\"font-size: 12pt; font-family: 'times new roman', times, serif;\"><strong>11. Question:<\/strong> Can two steel balls demonstrate a partially elastic collision? <strong>Answer:<\/strong> Yes. While steel balls may seem to have a nearly perfectly elastic collision, there&#8217;s usually a slight energy loss, making it partially elastic.<\/span><\/p>\n<p style=\"text-align: justify;\"><span style=\"font-size: 12pt; font-family: 'times new roman', times, serif;\"><strong>12. Question:<\/strong> Is the Earth&#8217;s collision with a meteorite considered partially elastic? <strong>Answer:<\/strong> Generally, yes. The impact doesn&#8217;t conserve all kinetic energy as some is transformed into heat, sound, and the creation of a crater.<\/span><\/p>\n<p style=\"text-align: justify;\"><span style=\"font-size: 12pt; font-family: 'times new roman', times, serif;\"><strong>13. Question:<\/strong> Can you have a partially elastic collision in a vacuum? <strong>Answer:<\/strong> Yes. Even without air resistance, the internal properties of the colliding bodies can lead to energy losses.<\/span><\/p>\n<p style=\"text-align: justify;\"><span style=\"font-size: 12pt; font-family: 'times new roman', times, serif;\"><strong>14. Question:<\/strong> How do external forces, like friction, affect the elasticity of a collision? <strong>Answer:<\/strong> External forces can dissipate more kinetic energy, making the collision more inelastic.<\/span><\/p>\n<p style=\"text-align: justify;\"><span style=\"font-size: 12pt; font-family: 'times new roman', times, serif;\"><strong>15. Question:<\/strong> Are there practical applications where understanding partially elastic collisions is crucial? <strong>Answer:<\/strong> Yes, in sports, engineering, and traffic accident analysis, understanding partially elastic collisions can be essential.<\/span><\/p>\n<p style=\"text-align: justify;\"><span style=\"font-size: 12pt; font-family: 'times new roman', times, serif;\"><strong>16. Question:<\/strong> Why do car manufacturers study partially elastic collisions? <strong>Answer:<\/strong> To design vehicles that can absorb impact energy efficiently, protecting the occupants during collisions.<\/span><\/p>\n<p style=\"text-align: justify;\"><span style=\"font-size: 12pt; font-family: 'times new roman', times, serif;\"><strong>17. Question:<\/strong> Can particle interactions at the quantum level be considered partially elastic? <strong>Answer:<\/strong> Yes. While quantum mechanics introduces new phenomena, particles can still undergo interactions where not all kinetic energy is conserved.<\/span><\/p>\n<p style=\"text-align: justify;\"><span style=\"font-size: 12pt; font-family: 'times new roman', times, serif;\"><strong>18. Question:<\/strong> How do molecular interactions relate to partially elastic collisions? <strong>Answer:<\/strong> Molecules can undergo partially elastic collisions when they hit each other, transferring some energy into vibrations or rotations of the molecules.<\/span><\/p>\n<p style=\"text-align: justify;\"><span style=\"font-size: 12pt; font-family: 'times new roman', times, serif;\"><strong>19. Question:<\/strong> Does a basketball bouncing on a court demonstrate a partially elastic collision? <strong>Answer:<\/strong> Yes. Some energy is lost as sound and to the slight deformation of the ball, making the collision partially elastic.<\/span><\/p>\n<p style=\"text-align: justify;\"><span style=\"font-size: 12pt; font-family: 'times new roman', times, serif;\"><strong>20. Question:<\/strong> How does temperature affect the elasticity of collisions in gases? <strong>Answer:<\/strong> As temperature increases, gas molecules move faster and can collide more energetically. However, the elasticity of these collisions depends on molecular properties and doesn&#8217;t directly correlate with temperature.<\/span><\/p>\n<p style=\"text-align: justify;\"><span style=\"font-size: 12pt; font-family: 'times new roman', times, serif;\">Understanding partially elastic collisions provides insights into a range of phenomena in both everyday experiences and specialized scenarios in physics and engineering.<\/span><\/p>\n","protected":false,"gt_translate_keys":[{"key":"rendered","format":"html"}]},"excerpt":{"rendered":"<p>Partially elastic collisions In partially elastic collisions, the law of conservation of momentum is applicable, while the conservation of kinetic energy law is not applicable. At the time a collision takes place, some kinetic energy is converted to sound energy, heat energy, and internal energy. The use of the word elastic signifies that after the &#8230; <a title=\"Partially elastic collisions\" class=\"read-more\" href=\"https:\/\/gurumuda.net\/physics\/partially-elastic-collisions.htm\" aria-label=\"Read more about Partially elastic collisions\">Read more<\/a><\/p>\n","protected":false,"gt_translate_keys":[{"key":"rendered","format":"html"}]},"author":1,"featured_media":0,"comment_status":"closed","ping_status":"closed","sticky":false,"template":"","format":"standard","meta":{"_seopress_titles_title":"","_seopress_titles_desc":"","_seopress_robots_index":"","_seopress_robots_follow":"","_seopress_robots_imageindex":"","_seopress_robots_snippet":"","_seopress_robots_primary_cat":"","_seopress_robots_breadcrumbs":"","_seopress_robots_freeze_modified_date":"","_seopress_robots_custom_modified_date":"","_seopress_robots_canonical":"","_seopress_social_fb_title":"","_seopress_social_fb_desc":"","_seopress_social_fb_img":"","_seopress_social_fb_img_attachment_id":0,"_seopress_social_fb_img_width":0,"_seopress_social_fb_img_height":0,"_seopress_social_twitter_title":"","_seopress_social_twitter_desc":"","_seopress_social_twitter_img":"","_seopress_social_twitter_img_attachment_id":0,"_seopress_social_twitter_img_width":0,"_seopress_social_twitter_img_height":0,"_seopress_redirections_value":"","_seopress_redirections_enabled":"","_seopress_redirections_enabled_regex":"","_seopress_redirections_logged_status":"","_seopress_redirections_param":"","_seopress_redirections_type":0,"_seopress_analysis_target_kw":"Partially elastic collisions","_seopress_news_disabled":"","_seopress_video_disabled":"","_seopress_video":[],"_seopress_pro_schemas_manual":[],"_seopress_pro_rich_snippets_disable_all":"","_seopress_pro_rich_snippets_disable":[],"_seopress_pro_schemas":[],"footnotes":""},"categories":[2],"tags":[],"class_list":["post-2375","post","type-post","status-publish","format-standard","hentry","category-basic-physics-tutorials"],"gt_translate_keys":[{"key":"link","format":"url"}],"_links":{"self":[{"href":"https:\/\/gurumuda.net\/physics\/wp-json\/wp\/v2\/posts\/2375","targetHints":{"allow":["GET"]}}],"collection":[{"href":"https:\/\/gurumuda.net\/physics\/wp-json\/wp\/v2\/posts"}],"about":[{"href":"https:\/\/gurumuda.net\/physics\/wp-json\/wp\/v2\/types\/post"}],"author":[{"embeddable":true,"href":"https:\/\/gurumuda.net\/physics\/wp-json\/wp\/v2\/users\/1"}],"replies":[{"embeddable":true,"href":"https:\/\/gurumuda.net\/physics\/wp-json\/wp\/v2\/comments?post=2375"}],"version-history":[{"count":2,"href":"https:\/\/gurumuda.net\/physics\/wp-json\/wp\/v2\/posts\/2375\/revisions"}],"predecessor-version":[{"id":8577,"href":"https:\/\/gurumuda.net\/physics\/wp-json\/wp\/v2\/posts\/2375\/revisions\/8577"}],"wp:attachment":[{"href":"https:\/\/gurumuda.net\/physics\/wp-json\/wp\/v2\/media?parent=2375"}],"wp:term":[{"taxonomy":"category","embeddable":true,"href":"https:\/\/gurumuda.net\/physics\/wp-json\/wp\/v2\/categories?post=2375"},{"taxonomy":"post_tag","embeddable":true,"href":"https:\/\/gurumuda.net\/physics\/wp-json\/wp\/v2\/tags?post=2375"}],"curies":[{"name":"wp","href":"https:\/\/api.w.org\/{rel}","templated":true}]}}