{"id":20029,"date":"2023-07-20T17:00:22","date_gmt":"2023-07-20T15:00:22","guid":{"rendered":"https:\/\/www.drone-normandie.com\/aerodynamic-forces\/"},"modified":"2023-07-20T17:00:22","modified_gmt":"2023-07-20T15:00:22","slug":"aerodynamic-forces","status":"publish","type":"post","link":"https:\/\/drone-normandie.com\/en\/aerodynamic-forces\/","title":{"rendered":"Aerodynamic forces"},"content":{"rendered":"\t\t<div data-elementor-type=\"wp-post\" data-elementor-id=\"20029\" class=\"elementor elementor-20029\" data-elementor-post-type=\"post\">\n\t\t\t\t\t\t<section class=\"elementor-section elementor-top-section elementor-element elementor-element-78fee270 elementor-section-boxed elementor-section-height-default elementor-section-height-default\" data-id=\"78fee270\" data-element_type=\"section\" data-e-type=\"section\">\n\t\t\t\t\t\t<div class=\"elementor-container elementor-column-gap-default\">\n\t\t\t\t\t<div class=\"elementor-column elementor-col-100 elementor-top-column elementor-element elementor-element-57275426\" data-id=\"57275426\" data-element_type=\"column\" data-e-type=\"column\">\n\t\t\t<div class=\"elementor-widget-wrap elementor-element-populated\">\n\t\t\t\t\t\t<div class=\"elementor-element elementor-element-48177ff elementor-widget elementor-widget-text-editor\" data-id=\"48177ff\" data-element_type=\"widget\" data-e-type=\"widget\" data-widget_type=\"text-editor.default\">\n\t\t\t\t<div class=\"elementor-widget-container\">\n\t\t\t\t\t\t\t\t\t<div class=\"fr-view\">\n<p><strong>Aerodynamic resultant<\/strong><\/p>\n<p>The flow of air around the fuselage creates a force called the Aerodynamic Resultant (Ra), which is broken down into its components parallel and perpendicular to the relative wind: drag and lift. The other forces acting on the aircraft are traction and weight.<\/p>\n<p>In the following diagrams, the orders of magnitude between lift and drag are disproportionate, for ease of reading. The lift\/drag ratio (glide ratio) is around 10 on light aircraft, i.e. lift is 10 times greater than drag.<\/p>\n<p><img decoding=\"async\" class=\"fr-fic fr-dib\" src=\"https:\/\/files.cdn.thinkific.com\/file_uploads\/118798\/images\/eca\/d9e\/0ab\/portance_trainee_traction_poids.jpg\" srcset=\"https:\/\/files.cdn.thinkific.com\/file_uploads\/118798\/images\/eca\/d9e\/0ab\/portance_trainee_traction_poids.jpg?width=1920 1x, https:\/\/files.cdn.thinkific.com\/file_uploads\/118798\/images\/eca\/d9e\/0ab\/portance_trainee_traction_poids.jpg?width=1920&amp;dpr=2 2x, https:\/\/files.cdn.thinkific.com\/file_uploads\/118798\/images\/eca\/d9e\/0ab\/portance_trainee_traction_poids.jpg?width=1920&amp;dpr=3 3x\"><br \/><img decoding=\"async\" class=\"fr-fic fr-dib\" src=\"https:\/\/files.cdn.thinkific.com\/file_uploads\/118798\/images\/90e\/dc1\/3b2\/portance_trainee_traction_poids_drone.jpg\" srcset=\"https:\/\/files.cdn.thinkific.com\/file_uploads\/118798\/images\/90e\/dc1\/3b2\/portance_trainee_traction_poids_drone.jpg?width=1920 1x, https:\/\/files.cdn.thinkific.com\/file_uploads\/118798\/images\/90e\/dc1\/3b2\/portance_trainee_traction_poids_drone.jpg?width=1920&amp;dpr=2 2x, https:\/\/files.cdn.thinkific.com\/file_uploads\/118798\/images\/90e\/dc1\/3b2\/portance_trainee_traction_poids_drone.jpg?width=1920&amp;dpr=3 3x\"><\/p>\n<p><strong>Level flight<\/strong><\/p>\n<p>Lift balances weight, traction balances drag. The entire system is in equilibrium.<\/p>\n<p><strong>Expression of lift :<\/strong><strong><br \/><\/strong><img decoding=\"async\" class=\"fr-fic fr-fil fr-dib\" src=\"https:\/\/files.cdn.thinkific.com\/file_uploads\/118798\/images\/222\/582\/82b\/equation_portance.PNG\" srcset=\"https:\/\/files.cdn.thinkific.com\/file_uploads\/118798\/images\/222\/582\/82b\/equation_portance.PNG?width=1920 1x, https:\/\/files.cdn.thinkific.com\/file_uploads\/118798\/images\/222\/582\/82b\/equation_portance.PNG?width=1920&amp;dpr=2 2x, https:\/\/files.cdn.thinkific.com\/file_uploads\/118798\/images\/222\/582\/82b\/equation_portance.PNG?width=1920&amp;dpr=3 3x\"><img decoding=\"async\" class=\"fr-fic fr-dii\" src=\"https:\/\/wikimedia.org\/api\/rest_v1\/media\/math\/render\/svg\/1f7d439671d1289b6a816e6af7a304be40608d64\" srcset=\"https:\/\/wikimedia.org\/api\/rest_v1\/media\/math\/render\/svg\/1f7d439671d1289b6a816e6af7a304be40608d64?width=1920 1x, https:\/\/wikimedia.org\/api\/rest_v1\/media\/math\/render\/svg\/1f7d439671d1289b6a816e6af7a304be40608d64?width=1920&amp;dpr=2 2x, https:\/\/wikimedia.org\/api\/rest_v1\/media\/math\/render\/svg\/1f7d439671d1289b6a816e6af7a304be40608d64?width=1920&amp;dpr=3 3x\" alt=\"\\rho  \" data-fr-image-pasted=\"true\">  is the density, characterizing the medium in which displacement takes place.<br \/><img decoding=\"async\" class=\"fr-fic fr-dii\" src=\"https:\/\/wikimedia.org\/api\/rest_v1\/media\/math\/render\/svg\/af0f6064540e84211d0ffe4dac72098adfa52845\" srcset=\"https:\/\/wikimedia.org\/api\/rest_v1\/media\/math\/render\/svg\/af0f6064540e84211d0ffe4dac72098adfa52845?width=1920 1x, https:\/\/wikimedia.org\/api\/rest_v1\/media\/math\/render\/svg\/af0f6064540e84211d0ffe4dac72098adfa52845?width=1920&amp;dpr=2 2x, https:\/\/wikimedia.org\/api\/rest_v1\/media\/math\/render\/svg\/af0f6064540e84211d0ffe4dac72098adfa52845?width=1920&amp;dpr=3 3x\" alt=\"V\" data-fr-image-pasted=\"true\">  is speed.<br \/><img decoding=\"async\" class=\"fr-fic fr-dii\" src=\"https:\/\/wikimedia.org\/api\/rest_v1\/media\/math\/render\/svg\/4611d85173cd3b508e67077d4a1252c9c05abca2\" srcset=\"https:\/\/wikimedia.org\/api\/rest_v1\/media\/math\/render\/svg\/4611d85173cd3b508e67077d4a1252c9c05abca2?width=1920 1x, https:\/\/wikimedia.org\/api\/rest_v1\/media\/math\/render\/svg\/4611d85173cd3b508e67077d4a1252c9c05abca2?width=1920&amp;dpr=2 2x, https:\/\/wikimedia.org\/api\/rest_v1\/media\/math\/render\/svg\/4611d85173cd3b508e67077d4a1252c9c05abca2?width=1920&amp;dpr=3 3x\" alt=\"S\" data-fr-image-pasted=\"true\">  is the surface area of the object (known as the wing area for an aerodyne wing).<br \/><img decoding=\"async\" class=\"fr-fic fr-dii\" src=\"https:\/\/wikimedia.org\/api\/rest_v1\/media\/math\/render\/svg\/785a192e3331793e37b1be0c5315d196da1a7049\" srcset=\"https:\/\/wikimedia.org\/api\/rest_v1\/media\/math\/render\/svg\/785a192e3331793e37b1be0c5315d196da1a7049?width=1920 1x, https:\/\/wikimedia.org\/api\/rest_v1\/media\/math\/render\/svg\/785a192e3331793e37b1be0c5315d196da1a7049?width=1920&amp;dpr=2 2x, https:\/\/wikimedia.org\/api\/rest_v1\/media\/math\/render\/svg\/785a192e3331793e37b1be0c5315d196da1a7049?width=1920&amp;dpr=3 3x\" alt=\"C\\,\" data-fr-image-pasted=\"true\">  is the lift coefficient.<\/p>\n<p><strong>Drag coefficient :<\/strong><br \/><img decoding=\"async\" class=\"fr-fic fr-dib fr-fil\" src=\"https:\/\/files.cdn.thinkific.com\/file_uploads\/118798\/images\/e9e\/53e\/ab8\/equation_train%C3%A9e.PNG\" srcset=\"https:\/\/files.cdn.thinkific.com\/file_uploads\/118798\/images\/e9e\/53e\/ab8\/equation_train%C3%A9e.PNG?width=1920 1x, https:\/\/files.cdn.thinkific.com\/file_uploads\/118798\/images\/e9e\/53e\/ab8\/equation_train%C3%A9e.PNG?width=1920&amp;dpr=2 2x, https:\/\/files.cdn.thinkific.com\/file_uploads\/118798\/images\/e9e\/53e\/ab8\/equation_train%C3%A9e.PNG?width=1920&amp;dpr=3 3x\"><\/p>\n<p><img decoding=\"async\" class=\"fr-fic fr-dii\" src=\"https:\/\/wikimedia.org\/api\/rest_v1\/media\/math\/render\/svg\/21f7a347531697cdde7264342d4f7ee6495ee230\" srcset=\"https:\/\/wikimedia.org\/api\/rest_v1\/media\/math\/render\/svg\/21f7a347531697cdde7264342d4f7ee6495ee230?width=1920 1x, https:\/\/wikimedia.org\/api\/rest_v1\/media\/math\/render\/svg\/21f7a347531697cdde7264342d4f7ee6495ee230?width=1920&amp;dpr=2 2x, https:\/\/wikimedia.org\/api\/rest_v1\/media\/math\/render\/svg\/21f7a347531697cdde7264342d4f7ee6495ee230?width=1920&amp;dpr=3 3x\" alt=\"{\\displaystyle F_{\\mathrm &lt;wpml_curved wpml_value='x'&gt;&lt;\/wpml_curved&gt; }\\,}\" data-fr-image-pasted=\"true\">is the drag force, which by definition is the component of the force in the direction of the velocity vector,<img decoding=\"async\" class=\"fr-fic fr-dii\" src=\"https:\/\/wikimedia.org\/api\/rest_v1\/media\/math\/render\/svg\/a1d651c28959a0f15127c097ff4488b123d9e708\" srcset=\"https:\/\/wikimedia.org\/api\/rest_v1\/media\/math\/render\/svg\/a1d651c28959a0f15127c097ff4488b123d9e708?width=1920 1x, https:\/\/wikimedia.org\/api\/rest_v1\/media\/math\/render\/svg\/a1d651c28959a0f15127c097ff4488b123d9e708?width=1920&amp;dpr=2 2x, https:\/\/wikimedia.org\/api\/rest_v1\/media\/math\/render\/svg\/a1d651c28959a0f15127c097ff4488b123d9e708?width=1920&amp;dpr=3 3x\" alt=\"\\rho \\,\" data-fr-image-pasted=\"true\">  is the density of the fluid,<img decoding=\"async\" class=\"fr-fic fr-dii\" src=\"https:\/\/wikimedia.org\/api\/rest_v1\/media\/math\/render\/svg\/8b67d1fd725a759a151374b793113d7a78a65da4\" srcset=\"https:\/\/wikimedia.org\/api\/rest_v1\/media\/math\/render\/svg\/8b67d1fd725a759a151374b793113d7a78a65da4?width=1920 1x, https:\/\/wikimedia.org\/api\/rest_v1\/media\/math\/render\/svg\/8b67d1fd725a759a151374b793113d7a78a65da4?width=1920&amp;dpr=2 2x, https:\/\/wikimedia.org\/api\/rest_v1\/media\/math\/render\/svg\/8b67d1fd725a759a151374b793113d7a78a65da4?width=1920&amp;dpr=3 3x\" alt=\"v\\,\" data-fr-image-pasted=\"true\">  is the object&#8217;s velocity relative to the fluid,<img decoding=\"async\" class=\"fr-fic fr-dii\" src=\"https:\/\/wikimedia.org\/api\/rest_v1\/media\/math\/render\/svg\/933054f2b86e79da95030b113a7c7dfdff643268\" srcset=\"https:\/\/wikimedia.org\/api\/rest_v1\/media\/math\/render\/svg\/933054f2b86e79da95030b113a7c7dfdff643268?width=1920 1x, https:\/\/wikimedia.org\/api\/rest_v1\/media\/math\/render\/svg\/933054f2b86e79da95030b113a7c7dfdff643268?width=1920&amp;dpr=2 2x, https:\/\/wikimedia.org\/api\/rest_v1\/media\/math\/render\/svg\/933054f2b86e79da95030b113a7c7dfdff643268?width=1920&amp;dpr=3 3x\" alt=\"S\\,\" data-fr-image-pasted=\"true\">  is the reference surface.<\/p>\n<p><strong>Lift coefficient :<\/strong><strong><img decoding=\"async\" class=\"fr-fic fr-dib fr-fil\" src=\"https:\/\/files.cdn.thinkific.com\/file_uploads\/118798\/images\/d54\/533\/37d\/coefficient_de_portance.PNG\" srcset=\"https:\/\/files.cdn.thinkific.com\/file_uploads\/118798\/images\/d54\/533\/37d\/coefficient_de_portance.PNG?width=1920 1x, https:\/\/files.cdn.thinkific.com\/file_uploads\/118798\/images\/d54\/533\/37d\/coefficient_de_portance.PNG?width=1920&amp;dpr=2 2x, https:\/\/files.cdn.thinkific.com\/file_uploads\/118798\/images\/d54\/533\/37d\/coefficient_de_portance.PNG?width=1920&amp;dpr=3 3x\"><\/strong><\/p>\n<p><strong>F<\/strong><sub><br \/>\n  <strong>z<\/strong><br \/>\n<\/sub> in newtons<br \/><img decoding=\"async\" class=\"fr-fic fr-dii\" src=\"https:\/\/wikimedia.org\/api\/rest_v1\/media\/math\/render\/svg\/fa2ac3df06ac2f6913ab4c6de22ffb2bd40ffb66\" srcset=\"https:\/\/wikimedia.org\/api\/rest_v1\/media\/math\/render\/svg\/fa2ac3df06ac2f6913ab4c6de22ffb2bd40ffb66?width=1920 1x, https:\/\/wikimedia.org\/api\/rest_v1\/media\/math\/render\/svg\/fa2ac3df06ac2f6913ab4c6de22ffb2bd40ffb66?width=1920&amp;dpr=2 2x, https:\/\/wikimedia.org\/api\/rest_v1\/media\/math\/render\/svg\/fa2ac3df06ac2f6913ab4c6de22ffb2bd40ffb66?width=1920&amp;dpr=3 3x\" alt=\"{\\displaystyle q={\\frac &lt;wpml_curved wpml_value='1'&gt;&lt;\/wpml_curved&gt;&lt;wpml_curved wpml_value='2'&gt;&lt;\/wpml_curved&gt;}\\rho V^&lt;wpml_curved wpml_value='2'&gt;&lt;\/wpml_curved&gt;}\" data-fr-image-pasted=\"true\"><img decoding=\"async\" class=\"fr-fic fr-dii\" src=\"https:\/\/wikimedia.org\/api\/rest_v1\/media\/math\/render\/svg\/a1d651c28959a0f15127c097ff4488b123d9e708\" srcset=\"https:\/\/wikimedia.org\/api\/rest_v1\/media\/math\/render\/svg\/a1d651c28959a0f15127c097ff4488b123d9e708?width=1920 1x, https:\/\/wikimedia.org\/api\/rest_v1\/media\/math\/render\/svg\/a1d651c28959a0f15127c097ff4488b123d9e708?width=1920&amp;dpr=2 2x, https:\/\/wikimedia.org\/api\/rest_v1\/media\/math\/render\/svg\/a1d651c28959a0f15127c097ff4488b123d9e708?width=1920&amp;dpr=3 3x\" alt=\"\\rho \\,\" data-fr-image-pasted=\"true\">= density of the fluid in <abbr title=\"kilogram per cubic metre\"><sup>kg\/m3<\/sup><\/abbr><img decoding=\"async\" class=\"fr-fic fr-dii\" src=\"https:\/\/wikimedia.org\/api\/rest_v1\/media\/math\/render\/svg\/af0f6064540e84211d0ffe4dac72098adfa52845\" srcset=\"https:\/\/wikimedia.org\/api\/rest_v1\/media\/math\/render\/svg\/af0f6064540e84211d0ffe4dac72098adfa52845?width=1920 1x, https:\/\/wikimedia.org\/api\/rest_v1\/media\/math\/render\/svg\/af0f6064540e84211d0ffe4dac72098adfa52845?width=1920&amp;dpr=2 2x, https:\/\/wikimedia.org\/api\/rest_v1\/media\/math\/render\/svg\/af0f6064540e84211d0ffe4dac72098adfa52845?width=1920&amp;dpr=3 3x\" alt=\"V\" data-fr-image-pasted=\"true\">= travel speed in <abbr title=\"meter per second\">m\/s<\/abbr>.<img decoding=\"async\" class=\"fr-fic fr-dii\" src=\"https:\/\/wikimedia.org\/api\/rest_v1\/media\/math\/render\/svg\/933054f2b86e79da95030b113a7c7dfdff643268\" srcset=\"https:\/\/wikimedia.org\/api\/rest_v1\/media\/math\/render\/svg\/933054f2b86e79da95030b113a7c7dfdff643268?width=1920 1x, https:\/\/wikimedia.org\/api\/rest_v1\/media\/math\/render\/svg\/933054f2b86e79da95030b113a7c7dfdff643268?width=1920&amp;dpr=2 2x, https:\/\/wikimedia.org\/api\/rest_v1\/media\/math\/render\/svg\/933054f2b86e79da95030b113a7c7dfdff643268?width=1920&amp;dpr=3 3x\" alt=\"S\\,\" data-fr-image-pasted=\"true\">  reference surface (projected surface in the x-y plane for a wing).<\/p>\n<p><u><strong>To sum up:<\/strong><\/u><\/p>\n<p>\u03c1<strong>: air density<br \/><\/strong>Density depends on altitude, temperature and atmospheric humidity.<\/p>\n<p><strong>S: wing area<br \/><\/strong>The wing area can vary depending on the flap and\/or slat extension. We consider<br \/>however, is a constant value.<\/p>\n<p><strong>V: air speed of the aircraft<\/strong><\/p>\n<p><strong>Fz: lift<\/strong><\/p>\n<p><strong>Cz: lift coefficient<\/strong><br \/>A dimensionless number that essentially represents the wing&#8217;s incidence.<\/p>\n<p><strong>Cx: drag coefficient<br \/><\/strong>Dimensionless number representing everything that opposes forward motion (profile drag, induced drag, etc.).<\/p>\n<p><\/p>\n<p><strong>Climbing flight<\/strong><\/p>\n<p><strong><img decoding=\"async\" class=\"fr-dib fr-fil\" src=\"https:\/\/files.cdn.thinkific.com\/file_uploads\/118798\/images\/386\/609\/16e\/1536575991794.jpg\" srcset=\"https:\/\/files.cdn.thinkific.com\/file_uploads\/118798\/images\/386\/609\/16e\/1536575991794.jpg?width=1920 1x, https:\/\/files.cdn.thinkific.com\/file_uploads\/118798\/images\/386\/609\/16e\/1536575991794.jpg?width=1920&amp;dpr=2 2x, https:\/\/files.cdn.thinkific.com\/file_uploads\/118798\/images\/386\/609\/16e\/1536575991794.jpg?width=1920&amp;dpr=3 3x\"><\/strong><\/p>\n<p>Lift remains perpendicular to the relative wind, while weight remains vertical. This creates a weight component parallel to the relative wind, which adds to the drag. To compensate for this increase in drag, power must be added. If you&#8217;re already at full throttle, you can&#8217;t go any higher, you&#8217;ve reached the propulsion ceiling.<\/p>\n<p><strong>Descending flight<\/strong><\/p>\n<p><img decoding=\"async\" class=\"fr-dib fr-fil\" src=\"https:\/\/files.cdn.thinkific.com\/file_uploads\/118798\/images\/fb2\/6d1\/cc0\/1536576119210.jpg\" srcset=\"https:\/\/files.cdn.thinkific.com\/file_uploads\/118798\/images\/fb2\/6d1\/cc0\/1536576119210.jpg?width=1920 1x, https:\/\/files.cdn.thinkific.com\/file_uploads\/118798\/images\/fb2\/6d1\/cc0\/1536576119210.jpg?width=1920&amp;dpr=2 2x, https:\/\/files.cdn.thinkific.com\/file_uploads\/118798\/images\/fb2\/6d1\/cc0\/1536576119210.jpg?width=1920&amp;dpr=3 3x\"><\/p>\n<p>In this case, the weight includes a component which is parallel to the relative wind, but which is added to traction, or which replaces traction in the case of gliding without an engine or with a reduced engine.<\/p>\n<p><strong><u>Load factor :<\/u> <\/strong>This is a variable that expresses the force applied to the aircraft structure. The load factor is the ratio between the total load supported by the structure of a device and the actual weight of that device.<br \/><em>(calculation: load factor = lift\/weight)<\/em><\/p>\n<p>In <strong>straight<\/strong> flight (straight line at constant speed) <strong>in level<\/strong> flight (constant altitude), the vertical load factor is 1 (i.e. lift = weight and drag = drag).<br \/>When an aircraft makes a turn or exits a dive, the load factor increases.<br \/>For example, an aircraft in a symmetrical horizontal turn with a roll angle of 60\u00b0 is subject to a load factor of 2. In this case, the aircraft&#8217;s structure has to support twice its weight, and the pilot has to increase the aircraft&#8217;s angle of incidence to produce more lift.<\/p>\n<p><strong><br \/>\n  <u>Finesse:<\/u><br \/>\n<\/strong> We talk about &#8220;finesse&#8221; for all flying &#8220;objects&#8221;: paragliders, hang gliders, helicopters, gliders and airplanes, of course. A plane&#8217;s &#8220;glide ratio&#8221; is its ability to glide with all engines off.<strong><u><br \/><\/u><\/strong>The glide ratio of a fixed-wing <a title=\"Aerodyne\" href=\"https:\/\/fr.wikipedia.org\/wiki\/A%C3%A9rodyne\">aerodyne<\/a> is the ratio of its <a title=\"Lift (fluid mechanics)\" href=\"https:\/\/fr.wikipedia.org\/wiki\/Portance_(m%C3%A9canique_des_fluides)\">lift<\/a> to its aerodynamic <a title=\"Drag\" href=\"https:\/\/fr.wikipedia.org\/wiki\/Tra%C3%AEn%C3%A9e\">drag<\/a>. Gliding (without traction\/propulsion) at  <a title=\"True speed\" href=\"https:\/\/fr.wikipedia.org\/wiki\/Vitesse_vraie\">true speed<\/a>  (speed of the aircraft in relation to the mass of air in which it is moving), and therefore at constant slope, is equal to the ratio between the horizontal distance covered and the height of fall, or the ratio between the horizontal speed and the vertical speed (<a title=\"Fall rate\" href=\"https:\/\/fr.wikipedia.org\/wiki\/Taux_de_chute\">sink rate<\/a>). Of course, this definition must be adapted to the object under study: boat <a title=\"Sail (ship)\" href=\"https:\/\/fr.wikipedia.org\/wiki\/Voile_(navire)\">sail<\/a>, <a title=\"Hull (boat)\" href=\"https:\/\/fr.wikipedia.org\/wiki\/Car%C3%A8ne_(bateau)\">hull<\/a> profile&#8230;<\/p>\n<p><img decoding=\"async\" class=\"fr-fic fr-dii\" src=\"https:\/\/files.cdn.thinkific.com\/file_uploads\/118798\/images\/2f5\/869\/2a1\/1600708426691.jpg\" srcset=\"https:\/\/files.cdn.thinkific.com\/file_uploads\/118798\/images\/2f5\/869\/2a1\/1600708426691.jpg?width=1920 1x, https:\/\/files.cdn.thinkific.com\/file_uploads\/118798\/images\/2f5\/869\/2a1\/1600708426691.jpg?width=1920&amp;dpr=2 2x, https:\/\/files.cdn.thinkific.com\/file_uploads\/118798\/images\/2f5\/869\/2a1\/1600708426691.jpg?width=1920&amp;dpr=3 3x\" alt=\"{\\displaystyle {\\rm &lt;wpml_curved wpml_value='finesse'&gt;&lt;\/wpml_curved&gt;}={P \\over T}={{rm {distance~horizontal~run}} \\over {\\rm {lost height}}}={v_{\\mathrm &lt;wpml_curved wpml_value='horizontal'&gt;&lt;\/wpml_curved&gt; } \\over v_{\\mathrm &lt;wpml_curved wpml_value='vertical'&gt;&lt;\/wpml_curved&gt; }}}\"><\/p>\n<\/div>\n\t\t\t\t\t\t\t\t<\/div>\n\t\t\t\t<\/div>\n\t\t\t\t\t<\/div>\n\t\t<\/div>\n\t\t\t\t\t<\/div>\n\t\t<\/section>\n\t\t\t\t<\/div>\n\t\t","protected":false},"excerpt":{"rendered":"<p>Aerodynamic resultant The flow of air around the fuselage creates a force called the Aerodynamic Resultant (Ra), which is broken down into its components parallel and perpendicular to the relative wind: drag and lift. The other forces acting on the aircraft are traction and weight. In the following diagrams, the orders of magnitude between lift [&hellip;]<\/p>\n","protected":false},"author":3,"featured_media":19916,"comment_status":"closed","ping_status":"open","sticky":false,"template":"","format":"standard","meta":{"footnotes":""},"categories":[247],"tags":[],"class_list":["post-20029","post","type-post","status-publish","format-standard","has-post-thumbnail","hentry","category-drone-en"],"yoast_head":"<!-- This site is optimized with the Yoast SEO plugin v27.9 - https:\/\/yoast.com\/product\/yoast-seo-wordpress\/ -->\n<title>Aerodynamic forces - Drone Normandie \u2014 Photo &amp; vid\u00e9o a\u00e9rienne professionnelle<\/title>\n<meta name=\"robots\" content=\"index, follow, max-snippet:-1, max-image-preview:large, max-video-preview:-1\" \/>\n<link rel=\"canonical\" href=\"https:\/\/drone-normandie.com\/en\/aerodynamic-forces\/\" \/>\n<meta property=\"og:locale\" content=\"en_US\" \/>\n<meta property=\"og:type\" content=\"article\" \/>\n<meta property=\"og:title\" content=\"Aerodynamic forces - Drone Normandie \u2014 Photo &amp; vid\u00e9o a\u00e9rienne professionnelle\" \/>\n<meta property=\"og:description\" content=\"Aerodynamic resultant The flow of air around the fuselage creates a force called the Aerodynamic Resultant (Ra), which is broken down into its components parallel and perpendicular to the relative wind: drag and lift. The other forces acting on the aircraft are traction and weight. In the following diagrams, the orders of magnitude between lift [&hellip;]\" \/>\n<meta property=\"og:url\" content=\"https:\/\/drone-normandie.com\/en\/aerodynamic-forces\/\" \/>\n<meta property=\"og:site_name\" content=\"Drone Normandie \u2014 Photo &amp; vid\u00e9o a\u00e9rienne professionnelle\" \/>\n<meta property=\"article:published_time\" content=\"2023-07-20T15:00:22+00:00\" \/>\n<meta property=\"og:image\" content=\"https:\/\/files.cdn.thinkific.com\/file_uploads\/118798\/images\/eca\/d9e\/0ab\/portance_trainee_traction_poids.jpg\" \/>\n<meta name=\"author\" content=\"Damien\" \/>\n<meta name=\"twitter:card\" content=\"summary_large_image\" \/>\n<meta name=\"twitter:label1\" content=\"Written by\" \/>\n\t<meta name=\"twitter:data1\" content=\"Damien\" \/>\n\t<meta name=\"twitter:label2\" content=\"Est. reading time\" \/>\n\t<meta name=\"twitter:data2\" content=\"3 minutes\" \/>\n<!-- \/ Yoast SEO plugin. -->","yoast_head_json":{"title":"Aerodynamic forces - Drone Normandie \u2014 Photo &amp; vid\u00e9o a\u00e9rienne professionnelle","robots":{"index":"index","follow":"follow","max-snippet":"max-snippet:-1","max-image-preview":"max-image-preview:large","max-video-preview":"max-video-preview:-1"},"canonical":"https:\/\/drone-normandie.com\/en\/aerodynamic-forces\/","og_locale":"en_US","og_type":"article","og_title":"Aerodynamic forces - Drone Normandie \u2014 Photo &amp; vid\u00e9o a\u00e9rienne professionnelle","og_description":"Aerodynamic resultant The flow of air around the fuselage creates a force called the Aerodynamic Resultant (Ra), which is broken down into its components parallel and perpendicular to the relative wind: drag and lift. The other forces acting on the aircraft are traction and weight. In the following diagrams, the orders of magnitude between lift [&hellip;]","og_url":"https:\/\/drone-normandie.com\/en\/aerodynamic-forces\/","og_site_name":"Drone Normandie \u2014 Photo &amp; vid\u00e9o a\u00e9rienne professionnelle","article_published_time":"2023-07-20T15:00:22+00:00","og_image":[{"url":"https:\/\/files.cdn.thinkific.com\/file_uploads\/118798\/images\/eca\/d9e\/0ab\/portance_trainee_traction_poids.jpg","type":"","width":"","height":""}],"author":"Damien","twitter_card":"summary_large_image","twitter_misc":{"Written by":"Damien","Est. reading time":"3 minutes"},"schema":{"@context":"https:\/\/schema.org","@graph":[{"@type":"Article","@id":"https:\/\/drone-normandie.com\/en\/aerodynamic-forces\/#article","isPartOf":{"@id":"https:\/\/drone-normandie.com\/en\/aerodynamic-forces\/"},"author":{"name":"Damien","@id":"https:\/\/drone-normandie.com\/en\/#\/schema\/person\/86b707f863b1c081c630be778794de87"},"headline":"Aerodynamic forces","datePublished":"2023-07-20T15:00:22+00:00","mainEntityOfPage":{"@id":"https:\/\/drone-normandie.com\/en\/aerodynamic-forces\/"},"wordCount":628,"publisher":{"@id":"https:\/\/drone-normandie.com\/en\/#organization"},"image":{"@id":"https:\/\/drone-normandie.com\/en\/aerodynamic-forces\/#primaryimage"},"thumbnailUrl":"","articleSection":["Drone"],"inLanguage":"en-US"},{"@type":"WebPage","@id":"https:\/\/drone-normandie.com\/en\/aerodynamic-forces\/","url":"https:\/\/drone-normandie.com\/en\/aerodynamic-forces\/","name":"Aerodynamic forces - Drone Normandie \u2014 Photo &amp; 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