mirror of
https://github.com/JustinSDK/dotSCAD.git
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145 lines
3.9 KiB
OpenSCAD
145 lines
3.9 KiB
OpenSCAD
use <along_with.scad>
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use <bezier_smooth.scad>
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use <util/reverse.scad>
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use <util/dedup.scad>
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use <turtle/lsystem3.scad>
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use <curve.scad>
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use <dragon_head.scad>
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use <dragon_scales.scad>
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use <path_extrude.scad>
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use <bezier_curve.scad>
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hilbert_dragon();
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module hilbert_dragon() {
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module one_segment(body_r, body_fn, one_scale_data) {
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rotate([-90, 0, 0])
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dragon_body_scales(body_r, body_fn, one_scale_data);
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points = [[0, 0, 0], [0, .1, 1], [0, 1, 1.5]] * 4.5;
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path = bezier_curve(0.1, points);
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// dorsal fin
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translate([0, 3.2, -3])
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rotate([-65, 0, 0])
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path_extrude([[0, -.25], [0.5, 0], [0, .75], [-0.5, 0]] * 4.5, path, scale = .05);
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translate([0, -2.5, 1])
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rotate([-10, 0, 0])
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scale([1.1, 0.8, 1.25])
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sphere(body_r * 1.075, $fn = 8);
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}
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body_r = 5;
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body_fn = 12;
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scale_fn = 5;
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scale_tilt_a = -3;
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lines = hilbert_curve();
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hilbert_path = dedup([each [for(line = lines) line[0]], lines[len(lines) - 1][1]]);
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smoothed_hilbert_path = bezier_smooth(hilbert_path, 0.45, t_step = 0.15);
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dragon_body_path = reverse([for(i = [1:len(smoothed_hilbert_path) - 2]) smoothed_hilbert_path[i]]);
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one_body_scale_data = one_body_scale(body_r, body_fn, scale_fn, scale_tilt_a);
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along_with(dragon_body_path, scale = [0.425, 0.6, 0.425])
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scale(0.035)
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one_segment(body_r, body_fn, one_body_scale_data);
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// tail
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translate([0, -.012, -.54])
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scale([0.017, 0.017, 0.025])
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rotate([0, 0, -12])
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mirror([0, 0, .2])
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tail();
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translate([.06, 0, -2.4])
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scale(0.033)
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rotate([0, -15, 0])
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dragon_head();
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}
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module tail() {
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$fn = 4;
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tail_scales(75, 2.5, 4.25, -4, 1.25);
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tail_scales(100, 1.25, 4.5, -7, 1);
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tail_scales(110, 1.25, 3, -9, 1);
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tail_scales(120, 2.5, 2, -9, 1);
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translate([0, 0, -1.6])
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rotate([0, -25, 0])
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scale([1.3, 1.2, .9])
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hair();
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module hair() {
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tail_hair = [
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[3, -1],
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[5, -1.5],
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[8, -1],
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[9.5, 0],
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[8, -0.4],
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[6.5, -0.3],
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[8, 0],
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[12, 1.5],
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[15, 4],
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[17, 10],
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[14, 8],
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[12, 7],
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[9, 6],
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[11.5, 10],
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[13, 12],
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[16, 14],
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[12, 13],
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[8, 11],
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[9, 13],
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[4, 9],
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[2, 8],
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[-1, 3]
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];
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rotate([-2.5, 0, 0])
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translate([-1, 1, 5.5])
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scale([.8, 1, 1.3]) {
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translate([2, 0, -3])
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scale([2, 1, .8])
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rotate([-90, 70, 15])
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linear_extrude(.75, center = true)
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polygon(tail_hair);
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scale([.85, .9, .6])
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translate([2, 0, -5])
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scale([1.75, 1, .8])
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rotate([-90, 70, 15]) {
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linear_extrude(1.5, scale = 0.5)
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polygon(tail_hair);
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mirror([0, 0, 1])
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linear_extrude(1.5, scale = 0.5)
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polygon(tail_hair);
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}
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scale([.6, .7, .9])
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translate([2, 0, -4])
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scale([2, 1, .85])
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rotate([-90, 65, 15]) {
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linear_extrude(3.5, scale = 0.5)
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polygon(tail_hair);
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mirror([0, 0, 1])
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linear_extrude(3.5, scale = 0.5)
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polygon(tail_hair);
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}
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}
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}
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}
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function hilbert_curve() =
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let(
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axiom = "A",
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rules = [
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["A", "B-F+CFC+F-D&F^D-F+&&CFC+F+B//"],
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["B", "A&F^CFB^F^D^^-F-D^|F^B|FC^F^A//"],
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["C", "|D^|F^B-F+C^F^A&&FA&F^C+F+B^F^D//"],
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["D", "|CFB-F+B|FA&F^A&&FB-F+B|FC//"]
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]
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)
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lsystem3(axiom, rules, 2, 90, 1, 0, [0, 0, 0]); |