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Fix for #129
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1 changed files with 42 additions and 36 deletions
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@ -10,21 +10,20 @@
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// Section: Partitioning
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_partition_cutpaths = [
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["flat", [[0,0],[1,0]]],
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["sawtooth", [[0,-0.5], [0.5,0.5], [1,-0.5]]],
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["sinewave", [for (a=[0:5:360]) [a/360,sin(a)/2]]],
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["comb", let(dx=0.5*sin(2)) [[0,0],[0+dx,0.5],[0.5-dx,0.5],[0.5+dx,-0.5],[1-dx,-0.5],[1,0]]],
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["finger", let(dx=0.5*sin(20)) [[0,0],[0+dx,0.5],[0.5-dx,0.5],[0.5+dx,-0.5],[1-dx,-0.5],[1,0]]],
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["dovetail", [[0,-0.5], [0.3,-0.5], [0.2,0.5], [0.8,0.5], [0.7,-0.5], [1,-0.5]]],
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["hammerhead", [[0,-0.5], [0.35,-0.5], [0.35,0], [0.15,0], [0.15,0.5], [0.85,0.5], [0.85,0], [0.65,0], [0.65,-0.5],[1,-0.5]]],
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["jigsaw", concat(
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arc(N=6, r=5/16, cp=[0,-3/16], start=270, angle=125),
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arc(N=12, r=5/16, cp=[1/2,3/16], start=215, angle=-250),
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arc(N=6, r=5/16, cp=[1,-3/16], start=145, angle=125)
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)
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],
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];
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function _partition_subpath(type) =
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type=="flat"? [[0,0],[1,0]] :
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type=="sawtooth"? [[0,-0.5], [0.5,0.5], [1,-0.5]] :
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type=="sinewave"? [for (a=[0:5:360]) [a/360,sin(a)/2]] :
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type=="comb"? let(dx=0.5*sin(2)) [[0,0],[0+dx,0.5],[0.5-dx,0.5],[0.5+dx,-0.5],[1-dx,-0.5],[1,0]] :
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type=="finger"? let(dx=0.5*sin(20)) [[0,0],[0+dx,0.5],[0.5-dx,0.5],[0.5+dx,-0.5],[1-dx,-0.5],[1,0]] :
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type=="dovetail"? [[0,-0.5], [0.3,-0.5], [0.2,0.5], [0.8,0.5], [0.7,-0.5], [1,-0.5]] :
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type=="hammerhead"? [[0,-0.5], [0.35,-0.5], [0.35,0], [0.15,0], [0.15,0.5], [0.85,0.5], [0.85,0], [0.65,0], [0.65,-0.5],[1,-0.5]] :
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type=="jigsaw"? concat(
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arc(r=5/16, cp=[0,-3/16], start=270, angle=125),
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arc(r=5/16, cp=[1/2,3/16], start=215, angle=-250),
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arc(r=5/16, cp=[1,-3/16], start=145, angle=125)
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) :
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assert(false, str("Unsupported cutpath type: ", type));
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function _partition_cutpath(l, h, cutsize, cutpath, gap) =
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@ -35,24 +34,26 @@ function _partition_cutpath(l, h, cutsize, cutpath, gap) =
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assert(is_finite(cutsize) || is_vector(cutsize,2))
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assert(is_string(cutpath) || is_path(cutpath,2)),
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cutsize = is_vector(cutsize)? cutsize : [cutsize*2, cutsize],
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cutpath = is_path(cutpath)? cutpath : (
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let(idx = search([cutpath], _partition_cutpaths))
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idx==[[]]? assert(in_list(cutpath,_partition_cutpaths,idx=0)) :
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_partition_cutpaths[idx.x][1]
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),
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cutpath = is_path(cutpath)? cutpath :
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_partition_subpath(cutpath),
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reps = ceil(l/(cutsize.x+gap)),
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cplen = (cutsize.x+gap) * reps,
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path = deduplicate(concat(
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[[-l/2, cutpath[0].y*cutsize.y]],
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[for (i=[0:1:reps-1], pt=cutpath) v_mul(pt,cutsize)+[i*(cutsize.x+gap)+gap/2-cplen/2,0]],
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[[ l/2, cutpath[len(cutpath)-1].y*cutsize.y]]
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))
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) path;
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)),
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stidxs = [for (i = idx(path)) if (path[i].x < -l/2) i],
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enidxs = [for (i = idx(path)) if (path[i].x > +l/2) i],
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stidx = stidxs? last(stidxs) : 0,
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enidx = enidxs? enidxs[0] : -1,
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trunc = select(path, stidx, enidx)
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) trunc;
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// Module: partition_mask()
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// Usage:
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// partition_mask(l, w, h, [cutsize], [cutpath], [gap], [inverse], [spin], [orient]);
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// partition_mask(l, w, h, [cutsize], [cutpath], [gap], [inverse], [spin], [orient],);
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// Description:
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// Creates a mask that you can use to difference or intersect with an object to remove half of it, leaving behind a side designed to allow assembly of the sub-parts.
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// Arguments:
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@ -65,6 +66,7 @@ function _partition_cutpath(l, h, cutsize, cutpath, gap) =
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// inverse = If true, create a cutpath that is meant to mate to a non-inverted cutpath.
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// spin = Rotate this many degrees around the Z axis. See [spin](attachments.scad#spin). Default: `0`
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// orient = Vector to rotate top towards. See [orient](attachments.scad#orient). Default: `UP`
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// $slop = The amount to shrink the mask by, to correct for printer-specific fitting.
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// Examples:
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// partition_mask(w=50, gap=0, cutpath="jigsaw");
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// partition_mask(w=50, gap=30, cutpath="jigsaw");
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@ -79,17 +81,22 @@ function _partition_cutpath(l, h, cutsize, cutpath, gap) =
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// partition_mask(w=20, cutpath="dovetail");
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// partition_mask(w=20, cutpath="hammerhead");
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// partition_mask(w=20, cutpath="jigsaw");
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module partition_mask(l=100, w=100, h=100, cutsize=10, cutpath=undef, gap=0, inverse=false, spin=0, orient=UP)
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module partition_mask(l=100, w=100, h=100, cutsize=10, cutpath="jigsaw", gap=0, inverse=false, anchor=CENTER, spin=0, orient=UP)
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{
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cutsize = is_vector(cutsize)? point2d(cutsize) : [cutsize*2, cutsize];
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path = _partition_cutpath(l, h, cutsize, cutpath, gap);
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fullpath = concat(path, [[l/2,w*(inverse?-1:1)], [-l/2,w*(inverse?-1:1)]]);
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rot(from=UP,to=orient) {
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rotate(spin) {
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linear_extrude(height=h, convexity=10) {
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midpath = select(path,1,-2);
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sizepath = concat([path[0]+[-$slop,0]], midpath, [last(path)+[$slop,0]], [[+(l/2+$slop), (w+$slop)*(inverse?-1:1)], [-(l/2+$slop), (w+$slop)*(inverse?-1:1)]]);
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bnds = pointlist_bounds(sizepath);
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fullpath = concat(path, [[last(path).x, w*(inverse?-1:1)], [path[0].x, w*(inverse?-1:1)]]);
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attachable(anchor,spin,orient, size=point3d(bnds[1]-bnds[0],h)) {
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linear_extrude(height=h, center=true, convexity=10) {
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intersection() {
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offset(delta=-$slop) polygon(fullpath);
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square([l, w*2], center=true);
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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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@ -104,10 +111,11 @@ module partition_mask(l=100, w=100, h=100, cutsize=10, cutpath=undef, gap=0, inv
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// w = The width of the part to be masked, back from the cut plane.
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// h = The height of the part to be masked.
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// cutsize = The width of the cut pattern to be used.
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// cutpath = The cutpath to use. Standard named paths are "flat", "sawtooth", "sinewave", "comb", "finger", "dovetail", "hammerhead", and "jigsaw". Alternatively, you can give a cutpath as a 2D path, where X is between 0 and 1, and Y is between -0.5 and 0.5.
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// cutpath = The cutpath to use. Standard named paths are "flat", "sawtooth", "sinewave", "comb", "finger", "dovetail", "hammerhead", and "jigsaw". Alternatively, you can give a cutpath as a 2D path, where X is between 0 and 1, and Y is between -0.5 and 0.5. Default: "jigsaw"
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// gap = Empty gaps between cutpath iterations. Default: 0
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// spin = Rotate this many degrees around the Z axis. See [spin](attachments.scad#spin). Default: `0`
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// orient = Vector to rotate top towards. See [orient](attachments.scad#orient). Default: `UP`
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// $slop = The width of the cut mask, to correct for printer-specific fitting. Min: 0.1.
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// Examples:
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// partition_cut_mask(gap=0, cutpath="dovetail");
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// partition_cut_mask(gap=30, cutpath="dovetail");
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@ -121,15 +129,13 @@ module partition_mask(l=100, w=100, h=100, cutsize=10, cutpath=undef, gap=0, inv
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// partition_cut_mask(cutpath="dovetail");
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// partition_cut_mask(cutpath="hammerhead");
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// partition_cut_mask(cutpath="jigsaw");
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module partition_cut_mask(l=100, h=100, cutsize=10, cutpath=undef, gap=0, spin=0, orient=UP)
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module partition_cut_mask(l=100, h=100, cutsize=10, cutpath="jigsaw", gap=0, anchor=CENTER, spin=0, orient=UP)
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{
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cutsize = is_vector(cutsize)? cutsize : [cutsize*2, cutsize];
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path = _partition_cutpath(l, h, cutsize, cutpath, gap);
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rot(from=UP,to=orient) {
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rotate(spin) {
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linear_extrude(height=h, convexity=10) {
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stroke(path, width=max(0.1, $slop*2));
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}
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attachable(anchor,spin,orient, size=[l,cutsize.y,h]) {
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linear_extrude(height=h, center=true, convexity=10) {
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stroke(path, width=max(0.1, $slop*2));
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}
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}
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}
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@ -160,7 +166,7 @@ module partition_cut_mask(l=100, h=100, cutsize=10, cutpath=undef, gap=0, spin=0
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// partition(spread=12, cutpath="dovetail") cylinder(h=50, d=80, center=false);
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// partition(spread=12, cutpath="hammerhead") cylinder(h=50, d=80, center=false);
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// partition(cutpath="jigsaw") cylinder(h=50, d=80, center=false);
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module partition(size=100, spread=10, cutsize=10, cutpath=undef, gap=0, spin=0)
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module partition(size=100, spread=10, cutsize=10, cutpath="jigsaw", gap=0, spin=0)
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{
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size = is_vector(size)? size : [size,size,size];
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cutsize = is_vector(cutsize)? cutsize : [cutsize*2, cutsize];
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