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434 lines
21 KiB
OpenSCAD
434 lines
21 KiB
OpenSCAD
//////////////////////////////////////////////////////////////////////////////////////////////
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// LibFile: involute_gears.scad
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// Involute Spur Gears and Racks
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//
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// by Leemon Baird, 2011, Leemon@Leemon.com
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// http://www.thingiverse.com/thing:5505
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//
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// Additional fixes and improvements by Revar Desmera, 2017-2019, revarbat@gmail.com
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//
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// This file is public domain. Use it for any purpose, including commercial
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// applications. Attribution would be nice, but is not required. There is
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// no warranty of any kind, including its correctness, usefulness, or safety.
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//
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// This is parameterized involute spur (or helical) gear. It is much simpler
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// and less powerful than others on Thingiverse. But it is public domain. I
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// implemented it from scratch from the descriptions and equations on Wikipedia
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// and the web, using Mathematica for calculations and testing, and I now
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// release it into the public domain.
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//
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// To use, add the following line to the beginning of your file:
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// ```
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// include <BOSL2/std.scad>
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// include <BOSL2/involute_gears.scad>
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// ```
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//////////////////////////////////////////////////////////////////////////////////////////////
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// Section: Terminology
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// The outline of a gear is a smooth circle (the "pitch circle") which has
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// mountains and valleys added so it is toothed. There is an inner
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// circle (the "root circle") that touches the base of all the teeth, an
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// outer circle that touches the tips of all the teeth, and the invisible
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// pitch circle in between them. There is also a "base circle", which can
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// be smaller than all three of the others, which controls the shape of
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// the teeth. The side of each tooth lies on the path that the end of a
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// string would follow if it were wrapped tightly around the base circle,
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// then slowly unwound. That shape is an "involute", which gives this
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// type of gear its name.
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// Section: Functions
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// These functions let the user find the derived dimensions of the gear.
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// A gear fits within a circle of radius outer_radius, and two gears should have
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// their centers separated by the sum of their pitch_radius.
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// Function: circular_pitch()
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// Description: Get tooth density expressed as "circular pitch".
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// Arguments:
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// mm_per_tooth = Distance between teeth around the pitch circle, in mm.
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function circular_pitch(mm_per_tooth=5) = mm_per_tooth;
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// Function: diametral_pitch()
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// Description: Get tooth density expressed as "diametral pitch".
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// Arguments:
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// mm_per_tooth = Distance between teeth around the pitch circle, in mm.
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function diametral_pitch(mm_per_tooth=5) = PI / mm_per_tooth;
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// Function: module_value()
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// Description: Get tooth density expressed as "module" or "modulus" in millimeters
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// Arguments:
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// mm_per_tooth = Distance between teeth around the pitch circle, in mm.
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function module_value(mm_per_tooth=5) = mm_per_tooth / PI;
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// Function: adendum()
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// Description: The height of the gear tooth above the pitch radius.
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// Arguments:
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// mm_per_tooth = Distance between teeth around the pitch circle, in mm.
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function adendum(mm_per_tooth=5) = module_value(mm_per_tooth);
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// Function: dedendum()
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// Description: The depth of the gear tooth valley, below the pitch radius.
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// Arguments:
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// mm_per_tooth = Distance between teeth around the pitch circle, in mm.
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// clearance = If given, sets the clearance between meshing teeth.
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function dedendum(mm_per_tooth=5, clearance=undef) =
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(clearance==undef)? (1.25 * module_value(mm_per_tooth)) : (module_value(mm_per_tooth) + clearance);
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// Function: pitch_radius()
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// Description: Calculates the pitch radius for the gear.
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// Arguments:
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// mm_per_tooth = Distance between teeth around the pitch circle, in mm.
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// number of teeth = The number of teeth on the gear.
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function pitch_radius(mm_per_tooth=5, number_of_teeth=11) =
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mm_per_tooth * number_of_teeth / PI / 2;
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// Function: outer_radius()
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// Description:
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// Calculates the outer radius for the gear. The gear fits entirely within a cylinder of this radius.
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// Arguments:
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// mm_per_tooth = Distance between teeth around the pitch circle, in mm.
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// number of teeth = The number of teeth on the gear.
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// clearance = If given, sets the clearance between meshing teeth.
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// interior = If true, calculate for an interior gear.
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function outer_radius(mm_per_tooth=5, number_of_teeth=11, clearance=undef, interior=false) =
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pitch_radius(mm_per_tooth, number_of_teeth) +
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(interior? dedendum(mm_per_tooth, clearance) : adendum(mm_per_tooth));
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// Function: root_radius()
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// Description:
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// Calculates the root radius for the gear, at the base of the dedendum.
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// Arguments:
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// mm_per_tooth = Distance between teeth around the pitch circle, in mm.
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// number of teeth = The number of teeth on the gear.
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// clearance = If given, sets the clearance between meshing teeth.
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// interior = If true, calculate for an interior gear.
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function root_radius(mm_per_tooth=5, number_of_teeth=11, clearance=undef, interior=false)
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= pitch_radius(mm_per_tooth, number_of_teeth) -
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(interior? adendum(mm_per_tooth) : dedendum(mm_per_tooth, clearance));
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// Function: base_radius()
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// Description: Get the base circle for involute teeth.
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// Arguments:
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// mm_per_tooth = Distance between teeth around the pitch circle, in mm.
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// number_of_teeth = The number of teeth on the gear.
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// pressure_angle = Pressure angle in degrees. Controls how straight or bulged the tooth sides are.
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function base_radius(mm_per_tooth=5, number_of_teeth=11, pressure_angle=28)
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= pitch_radius(mm_per_tooth, number_of_teeth) * cos(pressure_angle);
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// Section: Modules
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// Module: gear_tooth_profile()
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// Description:
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// Creates the 2D profile for an individual gear tooth.
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// Arguments:
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// mm_per_tooth = This is the "circular pitch", the circumference of the pitch circle divided by the number of teeth
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// number_of_teeth = Total number of teeth along the rack
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// pressure_angle = Controls how straight or bulged the tooth sides are. In degrees.
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// backlash = Gap between two meshing teeth, in the direction along the circumference of the pitch circle
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// bevelang = Angle of beveled gear face.
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// clearance = Gap between top of a tooth on one gear and bottom of valley on a meshing gear (in millimeters)
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// interior = If true, create a mask for difference()ing from something else.
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// Example(2D):
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// gear_tooth_profile(mm_per_tooth=5, number_of_teeth=20, pressure_angle=20);
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module gear_tooth_profile(
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mm_per_tooth = 3, //this is the "circular pitch", the circumference of the pitch circle divided by the number of teeth
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number_of_teeth = 11, //total number of teeth around the entire perimeter
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pressure_angle = 28, //Controls how straight or bulged the tooth sides are. In degrees.
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backlash = 0.0, //gap between two meshing teeth, in the direction along the circumference of the pitch circle
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bevelang = 0.0, //Gear face angle for bevelled gears.
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clearance = undef, //gap between top of a tooth on one gear and bottom of valley on a meshing gear (in millimeters)
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interior = false
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) {
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function polar(r,theta) = r*[sin(theta), cos(theta)]; //convert polar to cartesian coordinates
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function iang(r1,r2) = sqrt((r2/r1)*(r2/r1) - 1)/PI*180 - acos(r1/r2); //unwind a string this many degrees to go from radius r1 to radius r2
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function q7(f,r,b,r2,t,s) = q6(b,s,t,(1-f)*max(b,r)+f*r2); //radius a fraction f up the curved side of the tooth
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function q6(b,s,t,d) = polar(d,s*(iang(b,d)+t)); //point at radius d on the involute curve
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p = pitch_radius(mm_per_tooth, number_of_teeth);
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c = outer_radius(mm_per_tooth, number_of_teeth, clearance, interior);
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r = root_radius(mm_per_tooth, number_of_teeth, clearance, interior);
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b = base_radius(mm_per_tooth, number_of_teeth, pressure_angle);
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t = mm_per_tooth/2-backlash/2; //tooth thickness at pitch circle
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k = -iang(b, p) - t/2/p/PI*180; //angle to where involute meets base circle on each side of tooth
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scale([1, 1/cos(bevelang), 1])
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translate([0,-r,0])
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polygon(
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points=[
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polar(r-1, -181/number_of_teeth),
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polar(r, -181/number_of_teeth),
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polar(r, r<b ? k : -180/number_of_teeth),
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q7(0/5,r,b,c,k, 1),q7(1/5,r,b,c,k, 1),q7(2/5,r,b,c,k, 1),q7(3/5,r,b,c,k, 1),q7(4/5,r,b,c,k, 1),q7(5/5,r,b,c,k, 1),
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q7(5/5,r,b,c,k,-1),q7(4/5,r,b,c,k,-1),q7(3/5,r,b,c,k,-1),q7(2/5,r,b,c,k,-1),q7(1/5,r,b,c,k,-1),q7(0/5,r,b,c,k,-1),
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polar(r, r<b ? -k : 180/number_of_teeth),
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polar(r, 181/number_of_teeth),
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polar(r-1, 181/number_of_teeth),
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]
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);
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}
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// Module: gear2d()
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// Description:
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// Creates a 2D involute spur gear, with reasonable defaults for all the parameters.
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// Normally, you should just specify the first 2 parameters, and let the rest be default values.
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// Meshing gears must match in mm_per_tooth, pressure_angle, and twist,
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// and be separated by the sum of their pitch radii, which can be found with pitch_radius().
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// Arguments:
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// mm_per_tooth = This is the "circular pitch", the circumference of the pitch circle divided by the number of teeth
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// number_of_teeth = Total number of teeth along the rack
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// teeth_to_hide = Number of teeth to delete to make this only a fraction of a circle
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// pressure_angle = Controls how straight or bulged the tooth sides are. In degrees.
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// clearance = Gap between top of a tooth on one gear and bottom of valley on a meshing gear (in millimeters)
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// backlash = Gap between two meshing teeth, in the direction along the circumference of the pitch circle
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// bevelang = Angle of beveled gear face.
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// interior = If true, create a mask for difference()ing from something else.
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// Example(2D): Typical Gear Shape
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// gear2d(mm_per_tooth=5, number_of_teeth=20);
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// Example(2D): Lower Pressure Angle
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// gear2d(mm_per_tooth=5, number_of_teeth=20, pressure_angle=20);
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// Example(2D): Partial Gear
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// gear2d(mm_per_tooth=5, number_of_teeth=20, teeth_to_hide=15, pressure_angle=20);
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module gear2d(
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mm_per_tooth = 3, //this is the "circular pitch", the circumference of the pitch circle divided by the number of teeth
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number_of_teeth = 11, //total number of teeth around the entire perimeter
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teeth_to_hide = 0, //number of teeth to delete to make this only a fraction of a circle
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pressure_angle = 28, //Controls how straight or bulged the tooth sides are. In degrees.
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clearance = undef, //gap between top of a tooth on one gear and bottom of valley on a meshing gear (in millimeters)
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backlash = 0.0, //gap between two meshing teeth, in the direction along the circumference of the pitch circle
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bevelang = 0.0,
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interior = false
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) {
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r = root_radius(mm_per_tooth, number_of_teeth, clearance, interior);
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ang = 360/number_of_teeth/2;
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union() {
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for (i = [0:number_of_teeth-teeth_to_hide-1] ) {
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rotate(i*360/number_of_teeth) {
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translate([0,r,0]) {
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gear_tooth_profile(
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mm_per_tooth = mm_per_tooth,
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number_of_teeth = number_of_teeth,
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pressure_angle = pressure_angle,
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clearance = clearance,
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backlash = backlash,
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bevelang = bevelang,
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interior = interior
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);
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}
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polygon([
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[-r*sin(ang), r*cos(ang)],
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[0,0],
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[r*sin(ang), r*cos(ang)]
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]);
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}
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}
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}
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}
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// Module: gear()
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// Description:
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// Creates a (potentially helical) involute spur gear.
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// The module `gear()` gives an involute spur gear, with reasonable
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// defaults for all the parameters. Normally, you should just choose
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// the first 4 parameters, and let the rest be default values. The
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// module `gear()` gives a gear in the XY plane, centered on the origin,
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// with one tooth centered on the positive Y axis. The various functions
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// below it take the same parameters, and return various measurements
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// for the gear. The most important is `pitch_radius()`, which tells
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// how far apart to space gears that are meshing, and `outer_radius()`,
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// which gives the size of the region filled by the gear. A gear has
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// a "pitch circle", which is an invisible circle that cuts through
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// the middle of each tooth (though not the exact center). In order
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// for two gears to mesh, their pitch circles should just touch. So
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// the distance between their centers should be `pitch_radius()` for
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// one, plus `pitch_radius()` for the other, which gives the radii of
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// their pitch circles.
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// In order for two gears to mesh, they must have the same `mm_per_tooth`
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// and `pressure_angle` parameters. `mm_per_tooth` gives the number
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// of millimeters of arc around the pitch circle covered by one tooth
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// and one space between teeth. The `pressure_angle` controls how flat or
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// bulged the sides of the teeth are. Common values include 14.5
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// degrees and 20 degrees, and occasionally 25. Though I've seen 28
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// recommended for plastic gears. Larger numbers bulge out more, giving
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// stronger teeth, so 28 degrees is the default here.
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// The ratio of `number_of_teeth` for two meshing gears gives how many
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// times one will make a full revolution when the the other makes one
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// full revolution. If the two numbers are coprime (i.e. are not
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// both divisible by the same number greater than 1), then every tooth
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// on one gear will meet every tooth on the other, for more even wear.
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// So coprime numbers of teeth are good.
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// Arguments:
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// mm_per_tooth = This is the "circular pitch", the circumference of the pitch circle divided by the number of teeth
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// number_of_teeth = Total number of teeth around the entire perimeter
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// thickness = Thickness of gear in mm
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// hole_diameter = Diameter of the hole in the center, in mm
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// teeth_to_hide = Number of teeth to delete to make this only a fraction of a circle
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// pressure_angle = Controls how straight or bulged the tooth sides are. In degrees.
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// clearance = Clearance gap at the bottom of the inter-tooth valleys.
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// backlash = Gap between two meshing teeth, in the direction along the circumference of the pitch circle
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// bevelang = Angle of beveled gear face.
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// twist = Teeth rotate this many degrees from bottom of gear to top. 360 makes the gear a screw with each thread going around once.
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// slices = Number of vertical layers to divide gear into. Useful for refining gears with `twist`.
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// scale = Scale of top of gear compared to bottom. Useful for making crown gears.
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// interior = If true, create a mask for difference()ing from something else.
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// orient = Orientation of the gear. Use the `ORIENT_` constants from `constants.scad`. Default: `ORIENT_Z`.
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// anchor = Alignment of the gear. Use the constants from `constants.scad`. Default: `CENTER`.
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// Example: Spur Gear
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// gear(mm_per_tooth=5, number_of_teeth=20, thickness=8, hole_diameter=5);
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// Example: Beveled Gear
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// gear(mm_per_tooth=5, number_of_teeth=20, thickness=10*cos(45), hole_diameter=5, twist=-30, bevelang=45, slices=12, $fa=1, $fs=1);
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module gear(
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mm_per_tooth = 3, //this is the "circular pitch", the circumference of the pitch circle divided by the number of teeth
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number_of_teeth = 11, //total number of teeth around the entire perimeter
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thickness = 6, //thickness of gear in mm
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hole_diameter = 3, //diameter of the hole in the center, in mm
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teeth_to_hide = 0, //number of teeth to delete to make this only a fraction of a circle
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pressure_angle = 28, //Controls how straight or bulged the tooth sides are. In degrees.
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clearance = undef, //gap between top of a tooth on one gear and bottom of valley on a meshing gear (in millimeters)
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backlash = 0.0, //gap between two meshing teeth, in the direction along the circumference of the pitch circle
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bevelang = 0.0, //angle of bevelled gear face.
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twist = undef, //teeth rotate this many degrees from bottom of gear to top. 360 makes the gear a screw with each thread going around once
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slices = undef, //Number of slices to divide gear into. Useful for refining gears with `twist`.
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interior = false,
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orient = ORIENT_Z,
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anchor = CENTER
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) {
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p = pitch_radius(mm_per_tooth, number_of_teeth);
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c = outer_radius(mm_per_tooth, number_of_teeth, clearance, interior);
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r = root_radius(mm_per_tooth, number_of_teeth, clearance, interior);
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p2 = p - (thickness*tan(bevelang));
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orient_and_anchor([p, p, thickness], orient, anchor, chain=true) {
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difference() {
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linear_extrude(height=thickness, center=true, convexity=10, twist=twist, scale=p2/p, slices=slices) {
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gear2d(
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mm_per_tooth = mm_per_tooth,
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number_of_teeth = number_of_teeth,
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teeth_to_hide = teeth_to_hide,
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pressure_angle = pressure_angle,
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clearance = clearance,
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backlash = backlash,
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bevelang = bevelang,
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interior = interior
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);
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}
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if (hole_diameter > 0) {
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cylinder(h=2*thickness+1, r=hole_diameter/2, center=true);
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}
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if (bevelang != 0) {
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h = (c-r)*sin(bevelang);
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translate([0,0,-thickness/2]) {
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difference() {
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cube([2*c/cos(bevelang),2*c/cos(bevelang),2*h], center=true);
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cylinder(h=h, r1=r, r2=c, center=false);
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}
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}
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}
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}
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children();
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}
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}
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// Module: rack()
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// Description:
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// The module `rack()` gives a rack, which is a bar with teeth. A
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// rack can mesh with any gear that has the same `mm_per_tooth` and
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// `pressure_angle`.
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// Arguments:
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// mm_per_tooth = This is the "circular pitch", the circumference of the pitch circle divided by the number of teeth
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// number_of_teeth = Total number of teeth along the rack
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// thickness = Thickness of rack in mm (affects each tooth)
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// height = Height of rack in mm, from tooth top to back of rack.
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// pressure_angle = Controls how straight or bulged the tooth sides are. In degrees.
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// backlash = Gap between two meshing teeth, in the direction along the circumference of the pitch circle
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// orient = Orientation of the rack. Use the `ORIENT_` constants from `constants.scad`. Default: `ORIENT_X`.
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// anchor = Alignment of the rack. Use the constants from `constants.scad`. Default: `RIGHT`.
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// Example:
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// rack(mm_per_tooth=5, number_of_teeth=10, thickness=5, height=5, pressure_angle=20);
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module rack(
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mm_per_tooth = 5, //this is the "circular pitch", the circumference of the pitch circle divided by the number of teeth
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number_of_teeth = 20, //total number of teeth along the rack
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thickness = 5, //thickness of rack in mm (affects each tooth)
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height = 10, //height of rack in mm, from tooth top to back of rack.
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pressure_angle = 28, //Controls how straight or bulged the tooth sides are. In degrees.
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backlash = 0.0, //gap between two meshing teeth, in the direction along the circumference of the pitch circle
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clearance = undef,
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orient = ORIENT_X,
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anchor = RIGHT
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) {
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a = adendum(mm_per_tooth);
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d = dedendum(mm_per_tooth, clearance);
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xa = a * sin(pressure_angle);
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xd = d * sin(pressure_angle);
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orient_and_anchor([(number_of_teeth-1)*mm_per_tooth, height, thickness], orient, anchor, orig_orient=ORIENT_X, chain=true) {
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left((number_of_teeth-1)*mm_per_tooth/2) {
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linear_extrude(height = thickness, center = true, convexity = 10) {
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for (i = [0:number_of_teeth-1] ) {
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translate([i*mm_per_tooth,0,0]) {
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polygon(
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points=[
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[-1/2 * mm_per_tooth - 0.01, a-height],
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[-1/2 * mm_per_tooth, -d],
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[-1/4 * mm_per_tooth + backlash - xd, -d],
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|
[-1/4 * mm_per_tooth + backlash + xa, a],
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|
[ 1/4 * mm_per_tooth - backlash - xa, a],
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[ 1/4 * mm_per_tooth - backlash + xd, -d],
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|
[ 1/2 * mm_per_tooth, -d],
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|
[ 1/2 * mm_per_tooth + 0.01, a-height],
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|
]
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|
);
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|
}
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|
}
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|
}
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|
}
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|
children();
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|
}
|
|
}
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|
|
|
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//////////////////////////////////////////////////////////////////////////////////////////////
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//example gear train.
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//Try it with OpenSCAD View/Animate command with 20 steps and 24 FPS.
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//The gears will continue to be rotated to mesh correctly if you change the number of teeth.
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|
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/*
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n1 = 11; //red gear number of teeth
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|
n2 = 20; //green gear
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n3 = 5; //blue gear
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n4 = 20; //orange gear
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n5 = 8; //gray rack
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mm_per_tooth = 9; //all meshing gears need the same mm_per_tooth (and the same pressure_angle)
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thickness = 6;
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hole = 3;
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height = 12;
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|
|
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d1 =pitch_radius(mm_per_tooth,n1);
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d12=pitch_radius(mm_per_tooth,n1) + pitch_radius(mm_per_tooth,n2);
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d13=pitch_radius(mm_per_tooth,n1) + pitch_radius(mm_per_tooth,n3);
|
|
d14=pitch_radius(mm_per_tooth,n1) + pitch_radius(mm_per_tooth,n4);
|
|
|
|
translate([ 0, 0, 0]) rotate([0,0, $t*360/n1]) color([1.00,0.75,0.75]) gear(mm_per_tooth,n1,thickness,hole);
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|
translate([ 0, d12, 0]) rotate([0,0,-($t+n2/2-0*n1+1/2)*360/n2]) color([0.75,1.00,0.75]) gear(mm_per_tooth,n2,thickness,hole);
|
|
translate([ d13, 0, 0]) rotate([0,0,-($t-n3/4+n1/4+1/2)*360/n3]) color([0.75,0.75,1.00]) gear(mm_per_tooth,n3,thickness,hole);
|
|
translate([ d13, 0, 0]) rotate([0,0,-($t-n3/4+n1/4+1/2)*360/n3]) color([0.75,0.75,1.00]) gear(mm_per_tooth,n3,thickness,hole);
|
|
translate([-d14, 0, 0]) rotate([0,0,-($t-n4/4-n1/4+1/2-floor(n4/4)-3)*360/n4]) color([1.00,0.75,0.50]) gear(mm_per_tooth,n4,thickness,hole,teeth_to_hide=n4-3);
|
|
translate([(-floor(n5/2)-floor(n1/2)+$t+n1/2-1/2)*9, -d1+0.0, 0]) rotate([0,0,0]) color([0.75,0.75,0.75]) rack(mm_per_tooth,n5,thickness,height);
|
|
*/
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|
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// vim: noexpandtab tabstop=4 shiftwidth=4 softtabstop=4 nowrap
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