Old instructions in Icelandic Wind tunnel test stand airfoil code A driver file for ReplicatorG
342 lines
10 KiB
Matlab
342 lines
10 KiB
Matlab
%
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% Tveggja NACAmptt prófíla-reiknir sem táknbreytir ferlum yfir
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% í G-kóða fyrir frauðplastskera sem staðsettur er í vindgangarými
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% Háskólans í Reykjavík.
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% Innlagsbreytur: m, p, t, c, b, TEo, TEv, inc, n, filename
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% Hver innlagsbreyta fyrir sig er útskýrð þar sem hún kemur fyrir í
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% kóðanum
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% Úttaksbreyta: G-kóði sem skrifaður er í skránna 'filename.gcode'
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% Höfundur: Kristján Orri Magnússon, Háskólinn í Reykjavík, Haust 2011
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%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%
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clc; close all; clear
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% Nafn úttaksskráar. Endingin skal vera .gcode.
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filename=['IMJ_NACA0015_ALLT.gcode']
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%One digit max camber as % of chord, m2 er prófíllinn sem að A-B plan
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%frauðplastskerans teiknar og m er fyrir X-Y planið.
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m=0
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m2=0
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%One digit describing the distance of maximum camber from the airfoil
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%leading edge in tens of percents of the chord. p->X-Y plan, p2->A-B plan
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%% var 45, set í 35
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p=0
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p2=0
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%Two digits describing maximum thickness of the airfoil as percent of the
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%chord. t-> X-Y plan, t2-> A-B plan
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t=15
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t2=15
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%chord length (mm). c ->X-Y plan c2->A-B plan
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c=290
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c2=290
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% Span length(mm). Vænghaf vængs sem skera á út.
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b=500
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%T/E horizontal offset (mm). Lárétt hliðrun trailing edge milli prófíla í
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%XY og AB vængsniðum.
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TEo=0
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%T/E vertical offset (mm). Lóðrétt hliðrun trailing edge milli prófíla í
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%XY og AB vængsniðum.
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TEv=0
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%Incline(rad). Vindingur, horn milli vænglína sitt hvors prófíls.
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inc=0 %20*pi/180
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%number of points (80 is minimum for L/E precision)
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n=300
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%Total span (mm). Hornrétt vegalengd milli XY og AB plana, fasti.
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tsp=935
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%Scale up for shorter than tsp wings
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inc=inc*tsp/b;
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c2=c-(c-c2)*tsp/b;
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TEo=TEo*tsp/b;
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TEv=TEv*tsp/b;
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%scaling for machine units
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c=c*8.889;
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c2=c2*8.889;
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TEo=TEo*8.889; TEv=TEv*8.889;
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%dx þarf að ganga upp í c til að loka prófílnum
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dx=c/n;
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dx2=c2/n;
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%Scaling for equations m=m/100;
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m2=m2/100;
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p=p/10;
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p2=p2/10;
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t=t/100;
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t2=t2/100;
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x=0:dx:c; %Lárétt staðsetning miðað við vænglínu í XY plani
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x2=0:dx2:c2;%Lóðrétt staðsetning miðað við vænglínu í XY plani
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%symmetrical airfoil generator
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yt=(t*c/0.2).*(0.2969.*(x./c).^0.5-0.1281.*(x./c)- 0.3516.*(x./c).^2+0.2843.*(x./c).^3-0.1015.*(x./c).^4);
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yt2=(t2*c2/0.2).*(0.2969.*(x2./c2).^0.5-0.1281.*(x2./c2)- 0.3516.*(x2./c2).^2+0.2843.*(x2./c2).^3-0.1015.*(x2./c2).^4);
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%camber line 1 (XY plan)
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for i=1:length(x)
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if x(i)<p*c
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yc(i)=m.*(x(i)./p^2).*(2*p-x(i)./c)
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else
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yc(i)=m.*(c-x(i))./(1-p)^2.*(1+x(i)./c-2*p);
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end
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end
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th(1)=1;
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for i=2:length(x)
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th(i)=atan((yc(i)-yc(i-1))/dx); %Snertilhorn camber line (XY)
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end
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%camber line 2 (AB plan)
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for i=1:length(x2)
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if x2(i)<p2*c2
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yc2(i)=m2.*(x2(i)./p2^2).*(2*p2-x2(i)./c2);
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else
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yc2(i)=m2.*(c2-x2(i))./(1-p2)^2.*(1+x2(i)./c2-2*p2);
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end
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end
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th2(1)=1;
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for i=2:length(x2)
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th2(i)=atan((yc2(i)-yc2(i-1))/dx); %Snertilhorn camber line (AB)
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end
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%points for profile 1 (XY)
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xu=x-yt.*sin(th); % X upper
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xl=x+yt.*sin(th); % X lower
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yu=yc+yt.*cos(th); % Y upper
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yl=yc-yt.*cos(th); % Y lower
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xu=fliplr(xu); %Snúið við til að fá samfella hreyfingu yfir prófílinn
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yu=fliplr(yu);
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%points for profile 2 (AB)
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xu2=x2-yt2.*sin(th2)+100000; %A upper (án vindings)
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xl2=x2+yt2.*sin(th2)+100000; %A lower (án vindings)
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yu2=yc2+yt2.*cos(th2); %B upper
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yl2=yc2-yt2.*cos(th2); %B lower
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fu=atan(yu2./xu2); %Vænglínu AB prófíls snúið um hornið inc
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fl=atan(yl2./xl2);
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yu2=xu2.*sin(fu+inc)-100000*sin(inc);
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yl2=xl2.*sin(fl+inc)-100000*sin(inc);
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xu2=xu2.*cos(fu+inc)-100000*cos(inc);
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xl2=xl2.*cos(fl+inc)-100000*cos(inc);
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yu2=yu2-yu2(end)+TEv; %Hliðrun A upper í lárétta stefnu
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yl2=yl2-yl2(end)+TEv; %Hliðrun A lower í lárétta stefnu
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xu2=xu2+c-xu2(end)-TEo;%Hliðrun B upper í lóðrétta stefnu
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xl2=xl2+c-xl2(end)-TEo;
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%Hliðrn B lower í lóðrétta stefnu
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xu2=fliplr(xu2); %Snúið við til að fá samfella hreyfingu yfir prófílinn
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yu2=fliplr(yu2);
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%Wing plotted in 3D for visualization
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z11=zeros(length(xu))
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z12=zeros(length(xl))
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z21=zeros(length(xu2))
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z22=zeros(length(xl2))
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z21=z21+tsp*8.889
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z22=z22+tsp*8.889
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% figure(1)
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% hold on
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% plot3(xu,yu,z11,'r',xl,yl,z12,'r')
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% plot3(xu2,yu2,z21,'r',xl2,yl2,z22,'r')
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% for i=1:10:length(xu)
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% plot3([xu(i) xu2(i)],[yu(i) yu2(i)],[z11(i) z21(i)],'*')
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% plot3([xl(i) xl2(i)],[yl(i) yl2(i)],[z11(i) z21(i)],'*')
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% end
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% axis equal
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% %grid on
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% hold off
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%% IMJ taka úr fyrir prífíl innan úr væng
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%bein lína frá TE að enda gats fyrir prófíl, y fasti
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%xl_ad=linspace(xl(length(xl)),xl(length(xl))- (0.75*xl(end)-(350/2)) ,50);
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% xl_adII=linspace(xl(length(xl)), (0.15*xl(length(xl))+(350/2)+300)/2 ,15);
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xl_adII=linspace(xl(length(xl)), (0.15*xl(length(xl))+(350/2)+300)*2-200 ,15);
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yl_adII=linspace(yl(length(yl)),yl(length(yl)),15);
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%% Taka úr fyrir hringjum
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% á miðri leið
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%hringurinn
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r=50
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x_hring=xl_adII(length(xl_adII));
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y_hring=yl_adII(length(yl_adII));
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th = 0:pi/10:2*pi;
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xun = r * cos(th)% + x;
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yunit = r * sin(th)% + y;
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xunit=xun+x_hring
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% að næsta hring á LE
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xl_n_hring=linspace(xl_adII(length(xl_adII)), 250 ,15);
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yl_n_hring=linspace(yl(length(yl)),yl(length(yl)),15);
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% hringurinn
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x_hringII = xl_n_hring(length(xl_n_hring))
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y_hringII = yl_n_hring(length(yl_n_hring))
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xunitII = xun+x_hringII
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%%
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%klára línuna að prófíl gati;
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% xl_adI=linspace(xl_adII(length(xl_adII)), (0.15*xl(length(xl))+(350/2)+300) ,15);
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xl_adI=linspace(xunitII(length(xunitII)), (0.15*xl(length(xl))+(350/2)+300) ,15);
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yl_adI=linspace(yl(length(yl)),yl(length(yl)),15);
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% lína niður frá miðjum prófil í horn 1 niðri hægra megin, x fasti
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xl_horn_I=linspace(xl_adI(length(xl_adI)),xl_adI(length(xl_adI)),10);
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yl_horn_I=linspace(yl_adI(length(yl_adI)),yl_adI(length(yl_adI))-140,10);
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% lína til vinstri frá neðra hægra horni að neðra vinstra horni, y fasti
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xl_horn_II=linspace(xl_horn_I(length(xl_horn_I)),xl_horn_I(length(xl_horn_I))-280,10);
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yl_horn_II=linspace(yl_horn_I(length(yl_horn_I)),yl_horn_I(length(yl_horn_I)),10);
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% lína frá neðra vinstra horni að efra vinstra horni, x fasti
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xl_horn_III=linspace(xl_horn_II(length(xl_horn_II)),xl_horn_II(length(xl_horn_II)),10);
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yl_horn_III=linspace(yl_horn_II(length(yl_horn_II)),yl_horn_II(length(yl_horn_II))+280,10);
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% lína frá efra vinstra horni að efra hægri horni, y fast
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xl_horn_IIII=linspace(xl_horn_III(length(xl_horn_III)),xl_horn_III(length(xl_horn_III))+280,10);
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yl_horn_IIII=linspace(yl_horn_III(length(yl_horn_III)),yl_horn_III(length(yl_horn_III)),10);
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% lína frá efra hægra horni og niður í miðjan prófíl, x fasti
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xl_ad_lok=linspace(xl_horn_IIII(length(xl_horn_IIII)),xl_horn_IIII(length(xl_horn_IIII)),10);
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%yl_ad_lok=linspace(yl_horn_IIII(length(yl_horn_IIII)),yl_horn_IIII(length(yl_horn_IIII))-125,10);
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yl_ad_lok=linspace(yl_horn_IIII(length(yl_horn_IIII)),0,10);
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%% Taka úr fyrir snúru
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% upp um nokkra milla í horn uppi vinstra, x fasti
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xl_snura_UV=linspace(xl_ad_lok(length(xl_ad_lok)),xl_ad_lok(length(xl_ad_lok)),10);
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yl_snura_UV=linspace(yl_ad_lok(length(yl_ad_lok)),yl_ad_lok(length(yl_ad_lok))+70,10);
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% horn uppi hægra, y fasti
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xl_snura_UH=linspace(xl_snura_UV(length(xl_snura_UV)),xl_snura_UV(length(xl_snura_UV))+400,10);
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yl_snura_UH=linspace(yl_snura_UV(length(yl_snura_UV)),yl_snura_UV(length(yl_snura_UV)),10);
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% upp um nokkra milla í hornuppi vinstra, x fasti
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xl_snura_NH=linspace(xl_snura_UH(length(xl_snura_UH)),xl_snura_UH(length(xl_snura_UH)),10);
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yl_snura_NH=linspace(yl_snura_UH(length(yl_snura_UH)),yl_snura_UH(length(yl_snura_UH))-(2*70),10);
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% horn niðri vinstra , y fasti
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xl_snura_NV=linspace(xl_snura_NH(length(xl_snura_NH)),xl_snura_NH(length(xl_snura_NH))-400,10);
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yl_snura_NV=linspace(yl_snura_NH(length(yl_snura_NH)),yl_snura_NH(length(yl_snura_NH)),10);
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% upp um nokkra milla í hornuppi vinstra, x fasti
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xl_snura_mid=linspace(xl_snura_NV(length(xl_snura_NV)),xl_snura_NV(length(xl_snura_NV)),10);
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yl_snura_mid=linspace(yl_snura_NV(length(yl_snura_NV)),yl_snura_NV(length(yl_snura_NV))+70,10);
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%%
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% til baka á TE, y fasti
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xl_til_baka=linspace(xl_ad_lok(length(xl_ad_lok)),xl(length(xl)),29);
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%yl_til_baka=linspace(yl_ad_lok(length(yl_ad_lok)),yl(length(yl)),29);
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yl_til_baka=linspace(0,0,29);
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figure(11)
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plot(xl_adII,yl_adII,'k')
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hold on
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plot(xunit,yunit,'c*')
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plot(xl_n_hring,yl_n_hring,'r')
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plot(xunitII,yunit,'c*')
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plot(xl_adI,yl_adI,'r')
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plot(xl_horn_I,yl_horn_I,'g')
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plot(xl_horn_II,yl_horn_II)
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plot(xl_horn_III,yl_horn_III)
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plot(xl_horn_IIII,yl_horn_IIII)
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plot(xl_ad_lok,yl_ad_lok)
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plot(xl_snura_UV,yl_snura_UV)
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plot(xl_snura_UH,yl_snura_UH)
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plot(xl_snura_NH,yl_snura_NH)
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plot(xl_snura_NV,yl_snura_NV)
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plot(xl_snura_mid,yl_snura_mid)
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plot(xl_til_baka,yl_til_baka)
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% setja saman í einn vigur
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x_box=horzcat(xl_adII, xunit, xl_n_hring, xunitII, xl_adI, xl_horn_I, xl_horn_II, xl_horn_III, xl_horn_IIII, xl_ad_lok, xl_snura_UV, xl_snura_UH, xl_snura_NH, xl_snura_NV, xl_snura_mid, xl_til_baka)
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y_box=horzcat(yl_adII, yunit, yl_n_hring, yunit, yl_adII, yl_horn_I, yl_horn_II, yl_horn_III, yl_horn_IIII, yl_ad_lok, yl_snura_UV, yl_snura_UH, yl_snura_NH, yl_snura_NV, yl_snura_mid, yl_til_baka)
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% setja inn í réttan vigur xl og yl
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xl=horzcat( xl)
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yl=horzcat( yl)
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figure(13)
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plot(xl,yl)
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%%
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%
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for i=1:length(x_box)-1
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%if i <= n
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xb(i)=x_box(i+1)-x_box(i);
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yb(i)=y_box(i+1)-y_box(i);
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% end
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% xb(i+length(x))=xl(i+1)-xl(i);
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% yb(i+length(x))=yl(i+1)-yl(i);
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end
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% GCODE táknbreytir -> breytir línuvigrum í færslulínur G-kóða.
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% Fyrst er vigrum breytt úr staðsetningarvigrum yfir í færsuvigra
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for i=1:n%+166
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%if i <= n
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xx(i)=xu(i+1)-xu(i);
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yy(i)=yu(i+1)-yu(i);
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%end
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xx(i+length(x))=xl(i+1)-xl(i);
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yy(i+length(x))=yl(i+1)-yl(i);
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end
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% for i=1:n
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% aa(i)=xu2(i+1)-xu2(i);
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% bb(i)=-1*(yu2(i+1)-yu2(i));
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% aa(i+length(x2))=xl2(i+1)-xl2(i);
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% bb(i+length(x2))=-1*(yl2(i+1)-yl2(i));
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% end
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xx=horzcat(xb, xx)
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yy=horzcat(yb, yy)
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ll=0
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l=0
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figure(10)
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for k=1:length(xx)
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l=l+xx(k)
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ll=ll+yy(k)
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plot(l,ll,'-*r')
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hold on
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end
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aa=xx
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bb=yy*(-1)
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%Svo er skráin opnuð
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fid=fopen(filename,'wt');
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%Og g-kóðinn skrifaður í hana
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fprintf(fid,['G1 A' num2str(-TEo) ' B' num2str(-TEv) ' F3500\n'])
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%Hliðrun
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for i=1: 2*n+length(xb)
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fprintf(fid,['G1 X' num2str(xx(i)) ' Y' num2str(yy(i)) ' F4000\n']);
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fprintf(fid,['G1 A' num2str(aa(i)) ' B' num2str(bb(i)) ' F4000\n']);
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end
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