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@@ -1728,6 +1728,7 @@
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]
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]
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#colbreak()
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#colbreak()
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// Bauelemente
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// Bauelemente
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#bgBlock(fill: colorEineTore)[
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#bgBlock(fill: colorEineTore)[
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#subHeading(fill: colorEineTore)[Bauelemente]
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#subHeading(fill: colorEineTore)[Bauelemente]
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@@ -2012,26 +2013,12 @@
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import cetz.draw: *
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import cetz.draw: *
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import cetz-plot: *
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import cetz-plot: *
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let opts = (x-tick-step: none, y-tick-step: none, size: (3, 2), x-label: [u], y-label: [i])
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let opts = (x-tick-step: none, y-tick-step: none, size: (2, 1), x-label: [u], y-label: [i])
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plot.plot(axis-style: "school-book", ..opts, name: "plot", {
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plot.plot(axis-style: "school-book", ..opts, name: "plot", {
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plot.add(((-1, -1), (2, 2)), style: (stroke: red))
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plot.add(((-1, -1), (1, 1)), style: (stroke: red))
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})
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})
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line((1.7, 0.666 + 0.48), (1.7, 0.666), stroke: (paint: rgb("#009e22")))
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line((1, 0.666), (1.7, 0.666), stroke: (paint: rgb("#009e22")))
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let offset_x = 0.7
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let offset_y = 0.6
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line((1.7 -offset_x, 0.666 + 0.58-offset_y), (1.7-offset_x, 0.666-offset_y), stroke: (paint: rgb("#009e22")))
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line((0.8-offset_x, 0.666-offset_y), (1.7-offset_x, 0.666-offset_y), stroke: (paint: rgb("#009e22")))
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content((1.15,0.35), $1$)
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content((1.40,0.48), $1$)
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content((0.56,-0.1), $Omega$)
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content((1.9,0.9), $S$)
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}))
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}))
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],
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],
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align(left+top)[
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align(left+top)[
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@@ -2233,13 +2220,26 @@
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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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[],
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// Tunneldiode
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[
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Tunneldiode
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#scale(x: 100%, y: 100%, zap.circuit({
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import zap: *
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import cetz.draw: content, line
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tunnel("b1", (0, 0), (1., 0), stroke: black, fill: black)
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}))
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],
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[
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// Konkaver Wiederstand
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],
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[
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],
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[],
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table.cell(colspan: 4, image("../images/schaltungstheorie/kw1.png", height: 1cm)),
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table.cell(colspan: 4, image("../images/schaltungstheorie/kw2.png", height: 1cm)),
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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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@@ -2533,7 +2533,7 @@
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content((0.8, -0.8), text([Input $cal(F)$], fill: rgb("#00318b")))
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content((0.8, -0.8), text([Input $cal(F)$], fill: rgb("#00318b")))
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})
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})
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$ u_1 = - R_d i_2 &quad i_1 = 1/R_d u_2 \
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$ u_1 = - R_d i_2 &quad i_1 = 1/R_d u_2 \
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u_2 = R_d i_1 &quad i_2 = - 1/R_d u_1
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u_2 = R_d i_1 &quad u_2 = - 1/R_d u_1
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$
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$
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],
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],
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[#align(center+horizon, image("../images/schaltungstheorie/knotenpotenzial/gyraptorESD.png", height: 3cm))],
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[#align(center+horizon, image("../images/schaltungstheorie/knotenpotenzial/gyraptorESD.png", height: 3cm))],
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@@ -2665,23 +2665,12 @@
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$A_"NII" = mat(0, R; -1/R, 0)$
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$A_"NII" = mat(0, R; -1/R, 0)$
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],
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],
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[Idealer Zirkulator \ (Drei-Tor)],
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[#image("../images/schaltungstheorie/knotenpotenzial/zirkulatorBild.png", height: 3cm)],
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[#image("../images/schaltungstheorie/knotenpotenzial/circulator.png", height: 3cm)],
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[
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- NICHT Reziprok
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- Verlustlos
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],
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[$ G = mat(0, R, -R; -R, 0, R; R, -R, 0) quad quad quad G = mat(0, G, -G; -G, 0, G; G, -G, 0) \
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u_1 = (i_2 - i_3) R \
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u_2 = (i_3 - i_1) R \
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u_3 = -(u_1 + u_2) $]
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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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// Knoten Spannungs Analyse
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// Knoten Spannungs Analyse
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#pagebreak()
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// Tor Eigenschaften
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// Tor Eigenschaften
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#bgBlock(fill: colorEigenschaften, width: 100%)[
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#bgBlock(fill: colorEigenschaften, width: 100%)[
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#subHeading(fill: colorEigenschaften)[Tor Eigenschaften]
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#subHeading(fill: colorEigenschaften)[Tor Eigenschaften]
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