{"id":12421,"date":"2021-03-03T08:00:00","date_gmt":"2021-03-02T21:30:00","guid":{"rendered":"https:\/\/education.australiascience.tv\/?p=12421"},"modified":"2021-10-06T17:32:59","modified_gmt":"2021-10-06T07:02:59","slug":"explainer-landing-rovers-with-newtons-laws","status":"publish","type":[8014,8018],"link":"https:\/\/education.australiascience.tv\/explainer-landing-rovers-with-newtons-laws\/","title":{"rendered":"Explainer: Landing Rovers With Newton&#8217;s Laws"},"content":{"rendered":"[vc_row row_type=&#8221;row&#8221; use_row_as_full_screen_section=&#8221;no&#8221; type=&#8221;full_width&#8221; angled_section=&#8221;no&#8221; text_align=&#8221;left&#8221; background_image_as_pattern=&#8221;without_pattern&#8221;][vc_column width=&#8221;5\/6&#8243;][vc_separator color=&#8221;white&#8221;][vc_column_text]<strong>How to land a Mars rover when you\u2019re many, many millions of kilometres away.<\/strong><\/p>\n<p>This resource explains each of Newton&#8217;s laws and how they are used to land rovers, like Perseverance, on Mars. It is best suited to Year 7 and 10 Physics students.<\/p>\n<p>Word Count \/ Video Length: 1118 \/ 3:25 mins \/ 2:59 mins[\/vc_column_text][vc_column_text]\n<figure id=\"attachment_12422\" class=\"thumbnail wp-caption alignnone\" style=\"width: 1200px\"><img loading=\"lazy\" class=\"wp-image-12422 size-full\" src=\"https:\/\/education.australiascience.tv\/wp-content\/uploads\/2021\/03\/Image_Touchdown-of-Perseverance_Illustration.jpg\" alt=\"\" width=\"1200\" height=\"675\" srcset=\"https:\/\/education.australiascience.tv\/wp-content\/uploads\/2021\/03\/Image_Touchdown-of-Perseverance_Illustration.jpg 1200w, https:\/\/education.australiascience.tv\/wp-content\/uploads\/2021\/03\/Image_Touchdown-of-Perseverance_Illustration-300x169.jpg 300w, https:\/\/education.australiascience.tv\/wp-content\/uploads\/2021\/03\/Image_Touchdown-of-Perseverance_Illustration-768x432.jpg 768w, https:\/\/education.australiascience.tv\/wp-content\/uploads\/2021\/03\/Image_Touchdown-of-Perseverance_Illustration-1024x576.jpg 1024w\" sizes=\"(max-width: 1200px) 100vw, 1200px\" \/><figcaption class=\"caption wp-caption-text\">An illustration of NASA\u2019s Perseverance rover landing safely on Mars. Hundreds of critical events must execute perfectly and exactly on time for the rover to land safely on Feb. 18, 2021. Credit: <a href=\"https:\/\/mars.nasa.gov\/resources\/25451\/perseverance-touching-down-on-mars-illustration\/\" target=\"_blank\" rel=\"noopener noreferrer\">NASA \/ JPL-Caltech<\/a>.<\/figcaption><\/figure>\n[\/vc_column_text][vc_column_text]<strong>It takes a lot of thought and a lot of work<\/strong> to land a rover on Mars. It\u2019s not as if you\u2019re on Earth, where you can check things out, take a few samples and make necessary measurements directly.[\/vc_column_text][vc_column_text]To get a lander like <em>Perseverance<\/em> down, scientists and engineers must take into account such things as the target planet\u2019s gravity, the speed the rover will be travelling and the condition of the landing surface.[\/vc_column_text][vc_column_text]Thankfully, one important person has made calculating these things a lot easier: Sir Isaac Newton.[\/vc_column_text][vc_column_text]\n<h3>Projectile motion<\/h3>\n[\/vc_column_text][vc_column_text]Landing anything on a foreign planet requires planning, including determining where to land. These missions cost billions of dollars and years of time just to design and construct them. What if there was a storm the day the rover was due to land? Or if there was a quake and the landing site was destroyed?[\/vc_column_text][vc_column_text]Good thing there are satellites monitoring storms and quakes on Mars. This means that surface conditions are known in advance \u2013 just like us checking the weather forecast before we pick our shoes for the day.[\/vc_column_text][vc_separator color=&#8221;#000000&#8243; type=&#8221;normal&#8221;][vc_column_text]\n<h3>Also: <a href=\"https:\/\/education.australiascience.tv\/mars-rovers-methods-tested-in-flinders-ranges\/\" target=\"_blank\" rel=\"noopener noreferrer\">Mars rover\u2019s methods for finding signs of life given Flinders Ranges test<\/a><\/h3>\n[\/vc_column_text][vc_separator color=&#8221;#000000&#8243; type=&#8221;normal&#8221;][vc_column_text]The Chinese rover <em>Tianwen-1<\/em> entered Mars\u2019 orbit on 10 February 2021, and will remain in orbit for a couple of months to examine its landing site before deploying its lander and rover for touchdown.[\/vc_column_text][vc_column_text]A satellite is also the perfect place for the rovers to send their data before it comes back to Earth.[\/vc_column_text][vc_column_text]\n<figure id=\"attachment_12426\" class=\"thumbnail wp-caption alignright\" style=\"width: 300px\"><a href=\"https:\/\/education.australiascience.tv\/wp-content\/uploads\/2021\/03\/Image_OrbitingCannonBalls.png\" target=\"_blank\" rel=\"noopener noreferrer\"><img loading=\"lazy\" class=\"wp-image-12426 size-medium\" src=\"https:\/\/education.australiascience.tv\/wp-content\/uploads\/2021\/03\/Image_OrbitingCannonBalls-300x290.png\" alt=\"\" width=\"300\" height=\"290\" srcset=\"https:\/\/education.australiascience.tv\/wp-content\/uploads\/2021\/03\/Image_OrbitingCannonBalls-300x290.png 300w, https:\/\/education.australiascience.tv\/wp-content\/uploads\/2021\/03\/Image_OrbitingCannonBalls.png 409w\" sizes=\"(max-width: 300px) 100vw, 300px\" \/><\/a><figcaption class=\"caption wp-caption-text\">The more horizontal force an object is given, the further is travels before it lands (A, B, C). With enough force, it will miss Earth and will continue to fall towards it, always missing (D, E, F). This is how satellites remain in orbit around the Earth. Credit: <a href=\"https:\/\/eo.wikipedia.org\/wiki\/Dosiero:OrbitingCannonBalls.png\" target=\"_blank\" rel=\"noopener noreferrer\">Wikimedia Commons<\/a><\/figcaption><\/figure>\n[\/vc_column_text][vc_column_text]To understand how satellites orbit, first let us think about throwing a ball. The launched ball will travel both horizontally along and vertically down to the ground. It moves horizontally because you provide it with a horizontal force in the throw and it travels down because of the force due to gravity.[\/vc_column_text][vc_column_text]If you throw the ball harder, it will travel further horizontally but it will take the same time to hit the ground because the force due to gravity (9.8 Nkg (or 9.8 ms<sup>-2<\/sup>) on Earth) remains the same.[\/vc_column_text][vc_column_text]If you take the ball higher, it will also take longer to reach the ground as the vertical distance is larger.[\/vc_column_text][vc_column_text]Now, if you take the ball high enough and launch it with enough force, it will move with the same horizontal and vertical motions as our first ball but, will keep missing the Earth since the planet is round. This is exactly how a satellite (including the Moon) stays in orbit: it is always falling towards the Earth but it keeps missing and travels around the planet.[\/vc_column_text][vc_column_text]\n<h3>Newton&#8217;s first law<\/h3>\n[\/vc_column_text][vc_column_text]As a satellite orbits a planet, the horizontal forces acting on the satellite are balanced. This is because there are virtually no frictional forces. This means that the satellite can continue to orbit, gathering data, without the need for a driving force, like a motor.[\/vc_column_text][vc_column_text]Newton&#8217;s first law explains this to us.[\/vc_column_text][vc_column_text]\n<figure id=\"attachment_12425\" class=\"thumbnail wp-caption alignnone\" style=\"width: 720px\"><img loading=\"lazy\" class=\"wp-image-12425\" src=\"https:\/\/education.australiascience.tv\/wp-content\/uploads\/2021\/03\/Image_Sample-in-orbit-1024x576.jpg\" alt=\"\" width=\"720\" height=\"405\" srcset=\"https:\/\/education.australiascience.tv\/wp-content\/uploads\/2021\/03\/Image_Sample-in-orbit-1024x576.jpg 1024w, https:\/\/education.australiascience.tv\/wp-content\/uploads\/2021\/03\/Image_Sample-in-orbit-300x169.jpg 300w, https:\/\/education.australiascience.tv\/wp-content\/uploads\/2021\/03\/Image_Sample-in-orbit-768x432.jpg 768w, https:\/\/education.australiascience.tv\/wp-content\/uploads\/2021\/03\/Image_Sample-in-orbit.jpg 1600w\" sizes=\"(max-width: 720px) 100vw, 720px\" \/><figcaption class=\"caption wp-caption-text\">As part of a Mars sample return mission, a rocket will carry a container of sample tubes with Martian rock and soil samples into orbit around Mars and release it for pick up by another spacecraft. This illustration shows a concept for a Mars Ascent Vehicle (left) releasing a sample container (right) high above the Martian surface. Credit: <a href=\"https:\/\/mars.nasa.gov\/resources\/24766\/mars-ascent-vehicle-deploying-sample-container-in-orbit-artists-concept\/\" target=\"_blank\" rel=\"noopener noreferrer\">NASA \/ JPL-Caltech<\/a><\/figcaption><\/figure>\n[\/vc_column_text][vc_column_text]The first law states: An object at rest will remain at rest, and an object in motion will remain in motion, travelling at the same speed and direction, unless acted upon by an unbalanced force.[\/vc_column_text][vc_column_text]Both the <em>Tianwen-1<\/em> and <em>Perseverance<\/em> communication satellites are moving relative to the surface of Mars and are therefore in motion. As no external unbalanced forces are acting upon them, we know that they will continue at the same horizontal speed as long as we need them to.[\/vc_column_text][vc_column_text]When <em>Tianwen-1\u2019s <\/em>lander and rover are ready to descend, its thrusters will be used. These create an unbalanced force that pushes the lander and rover out of orbit and down to Mars.[\/vc_column_text][vc_separator color=&#8221;#000000&#8243; type=&#8221;normal&#8221;][vc_column_text]\n<h3>Also: <a href=\"https:\/\/education.australiascience.tv\/mars-is-the-place-in-space-to-be\/\" target=\"_blank\" rel=\"noopener noreferrer\">Mars is the place (in space) to be<\/a><\/h3>\n[\/vc_column_text][vc_separator color=&#8221;#000000&#8243; type=&#8221;normal&#8221;][vc_column_text]The thrusters are also needed to slow it to a stop on the surface so it doesn\u2019t crash onto Mars. Knowing how much force is needed requires Newton\u2019s second and third laws.[\/vc_column_text][vc_column_text]\n<h3>Newton\u2019s second law<\/h3>\n[\/vc_column_text][vc_column_text]At the same time as writing his first law, Newton recognised that there was a relationship between the unbalanced force exerted on an object, the mass of that object and the acceleration it would have from the force.[\/vc_column_text][vc_column_text]He identified that the larger the unbalanced force, F, applied on an object of mass, m, the higher the acceleration, a, would be.[\/vc_column_text][vc_column_text]From this, he deduced and wrote his second law: Force (unbalanced) = mass x acceleration.[\/vc_column_text][vc_column_text]The <em>Perseverance<\/em> lander unit had a mass of 1025 kg and so we can use Newton\u2019s second law to calculate the downward force acting on the lander. Mars has an acceleration due to gravity of 3.69 ms<sup>-1<\/sup> and so the downward force is:<\/p>\n<p>F = 1025 x 3.69 = 3782 N<\/p>\n<p>Note: This is a simplified, ideal scenario where we have ignored any drag or other frictional forces.[\/vc_column_text][vc_column_text]A <a href=\"https:\/\/mars.nasa.gov\/mars2020\/timeline\/landing\/entry-descent-landing\/\" target=\"_blank\" rel=\"noopener noreferrer\">parachute was used<\/a> to slow <em>Perseverance<\/em> as it hurtled towards the surface of Mars with this force. The parachute provided an upward force on the lander, which reduce the unbalanced force.[\/vc_column_text][vc_column_text]\n<figure id=\"attachment_12423\" class=\"thumbnail wp-caption alignnone\" style=\"width: 1024px\"><a href=\"https:\/\/education.australiascience.tv\/wp-content\/uploads\/2021\/03\/Image_Parachute-landing-rover.jpg\" target=\"_blank\" rel=\"noopener noreferrer\"><img loading=\"lazy\" class=\"wp-image-12423 size-large\" src=\"https:\/\/education.australiascience.tv\/wp-content\/uploads\/2021\/03\/Image_Parachute-landing-rover-1024x604.jpg\" alt=\"\" width=\"1024\" height=\"604\" srcset=\"https:\/\/education.australiascience.tv\/wp-content\/uploads\/2021\/03\/Image_Parachute-landing-rover-1024x604.jpg 1024w, https:\/\/education.australiascience.tv\/wp-content\/uploads\/2021\/03\/Image_Parachute-landing-rover-300x177.jpg 300w, https:\/\/education.australiascience.tv\/wp-content\/uploads\/2021\/03\/Image_Parachute-landing-rover-768x453.jpg 768w, https:\/\/education.australiascience.tv\/wp-content\/uploads\/2021\/03\/Image_Parachute-landing-rover.jpg 1200w\" sizes=\"(max-width: 1024px) 100vw, 1024px\" \/><\/a><figcaption class=\"caption wp-caption-text\">This illustration shows the events that occur in the final minutes of the nearly seven-month journey that NASA\u2019s Perseverance rover takes to Mars. Credit: <a href=\"https:\/\/mars.nasa.gov\/resources\/25489\/perseverance-rovers-entry-descent-and-landing-profile\/\" target=\"_blank\" rel=\"noopener noreferrer\">NASA \/ JPL-Caltech<\/a>.<\/figcaption><\/figure>\n[\/vc_column_text][vc_column_text]\n<h3>Newton\u2019s third law<\/h3>\n[\/vc_column_text][vc_column_text]To lift a rocket off the Earth, it expels gas towards the ground. Newton\u2019s third law explains how pushing gases downwards, lifts a rocket up.[\/vc_column_text][vc_column_text]\n<figure id=\"attachment_12424\" class=\"thumbnail wp-caption alignright\" style=\"width: 300px\"><img loading=\"lazy\" class=\"wp-image-12424\" src=\"https:\/\/education.australiascience.tv\/wp-content\/uploads\/2021\/03\/Image_Launch-of-rocket-containing-Perseverance-240x300.jpg\" alt=\"\" width=\"300\" height=\"375\" srcset=\"https:\/\/education.australiascience.tv\/wp-content\/uploads\/2021\/03\/Image_Launch-of-rocket-containing-Perseverance-240x300.jpg 240w, https:\/\/education.australiascience.tv\/wp-content\/uploads\/2021\/03\/Image_Launch-of-rocket-containing-Perseverance-768x960.jpg 768w, https:\/\/education.australiascience.tv\/wp-content\/uploads\/2021\/03\/Image_Launch-of-rocket-containing-Perseverance.jpg 800w\" sizes=\"(max-width: 300px) 100vw, 300px\" \/><figcaption class=\"caption wp-caption-text\">A United Launch Alliance (ULA) Atlas V rocket carrying the Mars 2020 mission with the Perseverance rover lifts off from Space Launch Complex-41 at 7:50 a.m. EDT on July 30, 2020. Credit: <a href=\"https:\/\/mars.nasa.gov\/resources\/25179\/morning-launch-for-mars-2020-perseverance\/\" target=\"_blank\" rel=\"noopener noreferrer\">United Launch Alliance<\/a><\/figcaption><\/figure>\n[\/vc_column_text][vc_column_text]The third law states that every action has an equal (in magnitude) and opposite (in direction) reaction.[\/vc_column_text][vc_column_text]So, as the gases are pushed out and down, they push back up on the rocket, lifting it upward. The size of the downward force on the gases will be the same size as the resultant force on the rocket.[\/vc_column_text][vc_column_text]If enough upward force is made by the gases, it will be greater than the downward force due to gravity acting on the rocket. This resultant unbalanced force moves the rocket in the direction of the greater force (so in this case, up) as described by Newton\u2019s second law.[\/vc_column_text][vc_column_text]Thrusters and boosters were also used to land the rover. Gases were forced down and out of the thrusters and so the gases applied an equal force, in the opposite direction, back onto the thrusters. This slowed the speed of the rover enough to land on Mars without crashing.[\/vc_column_text][vc_column_text]Engineers and scientists use very precise calculations to ensure that the downwards force on the rover is only a small amount higher than the upwards force of the thrusters (remember the first law tell us if they were exactly equal, or balanced, the rover would just \u2018hover\u2019 where it was). The result was a smooth and gentle landing with no damage to the expensive equipment \u2013 and an incredibly cool video.[\/vc_column_text][vc_column_text]<iframe loading=\"lazy\" src=\"https:\/\/www.youtube.com\/embed\/4czjS9h4Fpg\" width=\"560\" height=\"315\" frameborder=\"0\" allowfullscreen=\"allowfullscreen\"><\/iframe>[\/vc_column_text][vc_column_text]Spaceship engineers, mathematicians, geologists, astrophysicists, data scientists, fuel chemists and a whole range of other people all had to work together to help <em>Perseverance<\/em> land on Mars. But they always had Newton in the pilot\u2019s seat.[\/vc_column_text][vc_column_text]Now, with the rover safely on the surface of Mars, the next stage of the mission can begin \u2013 searching for ancient life![\/vc_column_text][vc_column_text]<iframe loading=\"lazy\" src=\"https:\/\/www.youtube.com\/embed\/5qqsMjy8Rx0\" width=\"560\" height=\"315\" frameborder=\"0\" allowfullscreen=\"allowfullscreen\"><\/iframe>[\/vc_column_text][vc_separator color=&#8221;#000000&#8243; type=&#8221;normal&#8221;][vc_column_text njt-role=&#8221;not-logged-in&#8221; css=&#8221;.vc_custom_1568767632676{margin-bottom: 0px !important;border-bottom-width: 0px !important;padding-bottom: 0px !important;}&#8221;]\n<p style=\"text-align: center;\">Login or Sign up for <strong>FREE<\/strong> to download a copy of the full teacher resource<\/p>\n[\/vc_column_text][vc_column_text njt-role=&#8221;not-logged-in&#8221;]\n<div id=\"um-admin-form-shortcode\" class=\"postbox \" style=\"text-align: center;\">\n<div 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