你已经派生过 gprMax
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https://gitee.com/sunhf/gprMax.git
已同步 2025-08-06 12:36:51 +08:00
Sources now use pre-calculated waveform values, instead of calculating on-the-fly.
Sources now use iteration counter - no absolute time value required. Transmission line spatial step updated from using magic time step (which showed instabilities) to sqrt(3) x c x dt
这个提交包含在:
@@ -17,6 +17,7 @@
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# along with gprMax. If not, see <http://www.gnu.org/licenses/>.
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from copy import deepcopy
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import decimal as d
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import numpy as np
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@@ -41,51 +42,67 @@ class Source(object):
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self.stop = None
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self.waveformID = None
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def calculate_waveform_values(self, G):
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"""Calculates all waveform values for source for duration of simulation.
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Args:
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G (class): Grid class instance - holds essential parameters describing the model.
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"""
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self.waveformvaluesJ = np.zeros((G.iterations + 1), dtype=floattype)
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self.waveformvaluesM = np.zeros((G.iterations + 1), dtype=floattype)
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waveform = next(x for x in G.waveforms if x.ID == self.waveformID)
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for iteration in range(G.iterations + 1):
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time = G.dt * iteration
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if time >= self.start and time <= self.stop:
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# Set the time of the waveform evaluation to account for any delay in the start
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time -= self.start
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self.waveformvaluesJ[iteration] = waveform.calculate_value(time + 0.5 * G.dt, G.dt)
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self.waveformvaluesM[iteration] = waveform.calculate_value(time, G.dt)
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class VoltageSource(Source):
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"""A voltage source can be a hard source if it's resistance is zero, i.e. the time variation of the specified electric field component is prescribed. If it's resistance is non-zero it behaves as a resistive voltage source."""
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def __init__(self):
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super(Source, self).__init__()
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super().__init__()
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self.resistance = None
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def update_electric(self, abstime, updatecoeffsE, ID, Ex, Ey, Ez, G):
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def update_electric(self, iteration, updatecoeffsE, ID, Ex, Ey, Ez, G):
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"""Updates electric field values for a voltage source.
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Args:
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abstime (float): Absolute time.
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iteration (int): Current iteration (timestep).
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updatecoeffsE (memory view): numpy array of electric field update coefficients.
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ID (memory view): numpy array of numeric IDs corresponding to materials in the model.
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Ex, Ey, Ez (memory view): numpy array of electric field values.
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G (class): Grid class instance - holds essential parameters describing the model.
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"""
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if abstime >= self.start and abstime <= self.stop:
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# Set the time of the waveform evaluation to account for any delay in the start
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time = abstime - self.start
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if iteration * G.dt >= self.start and iteration * G.dt <= self.stop:
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i = self.xcoord
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j = self.ycoord
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k = self.zcoord
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waveform = next(x for x in G.waveforms if x.ID == self.waveformID)
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componentID = 'E' + self.polarisation
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if self.polarisation == 'x':
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if self.resistance != 0:
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Ex[i, j, k] -= updatecoeffsE[ID[G.IDlookup[componentID], i, j, k], 4] * waveform.amp * waveform.calculate_value(time, G.dt) * (1 / (self.resistance * G.dy * G.dz))
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Ex[i, j, k] -= updatecoeffsE[ID[G.IDlookup[componentID], i, j, k], 4] * self.waveformvaluesJ[iteration] * (1 / (self.resistance * G.dy * G.dz))
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else:
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Ex[i, j, k] = -1 * waveform.amp * waveform.calculate_value(time, G.dt) / G.dx
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Ex[i, j, k] = -1 * self.waveformvaluesJ[iteration] / G.dx
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elif self.polarisation == 'y':
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if self.resistance != 0:
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Ey[i, j, k] -= updatecoeffsE[ID[G.IDlookup[componentID], i, j, k], 4] * waveform.amp * waveform.calculate_value(time, G.dt) * (1 / (self.resistance * G.dx * G.dz))
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Ey[i, j, k] -= updatecoeffsE[ID[G.IDlookup[componentID], i, j, k], 4] * self.waveformvaluesJ[iteration] * (1 / (self.resistance * G.dx * G.dz))
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else:
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Ey[i, j, k] = -1 * waveform.amp * waveform.calculate_value(time, G.dt) / G.dy
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Ey[i, j, k] = -1 * self.waveformvaluesJ[iteration] / G.dy
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elif self.polarisation == 'z':
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if self.resistance != 0:
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Ez[i, j, k] -= updatecoeffsE[ID[G.IDlookup[componentID], i, j, k], 4] * waveform.amp * waveform.calculate_value(time, G.dt) * (1 / (self.resistance * G.dx * G.dy))
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Ez[i, j, k] -= updatecoeffsE[ID[G.IDlookup[componentID], i, j, k], 4] * self.waveformvaluesJ[iteration] * (1 / (self.resistance * G.dx * G.dy))
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else:
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Ez[i, j, k] = -1 * waveform.amp * waveform.calculate_value(time, G.dt) / G.dz
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Ez[i, j, k] = -1 * self.waveformvaluesJ[iteration] / G.dz
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def create_material(self, G):
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"""Create a new material at the voltage source location that adds the voltage source conductivity to the underlying parameters.
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@@ -106,7 +123,7 @@ class VoltageSource(Source):
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newmaterial.ID = material.ID + '+VoltageSource_' + str(self.resistance)
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newmaterial.numID = len(G.materials)
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newmaterial.averagable = False
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newmaterial.type += ', voltage-source'
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newmaterial.type += ',\nvoltage-source'
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# Add conductivity of voltage source to underlying conductivity
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if self.polarisation == 'x':
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@@ -124,74 +141,67 @@ class HertzianDipole(Source):
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"""A Hertzian dipole is an additive source (electric current density)."""
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def __init__(self):
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super(Source, self).__init__()
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super().__init__()
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self.dl = None
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def update_electric(self, abstime, updatecoeffsE, ID, Ex, Ey, Ez, G):
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def update_electric(self, iteration, updatecoeffsE, ID, Ex, Ey, Ez, G):
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"""Updates electric field values for a Hertzian dipole.
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Args:
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abstime (float): Absolute time.
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iteration (int): Current iteration (timestep).
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updatecoeffsE (memory view): numpy array of electric field update coefficients.
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ID (memory view): numpy array of numeric IDs corresponding to materials in the model.
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Ex, Ey, Ez (memory view): numpy array of electric field values.
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G (class): Grid class instance - holds essential parameters describing the model.
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"""
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if abstime >= self.start and abstime <= self.stop:
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# Set the time of the waveform evaluation to account for any delay in the start
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time = abstime - self.start
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if iteration * G.dt >= self.start and iteration * G.dt <= self.stop:
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i = self.xcoord
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j = self.ycoord
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k = self.zcoord
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waveform = next(x for x in G.waveforms if x.ID == self.waveformID)
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componentID = 'E' + self.polarisation
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if self.polarisation == 'x':
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Ex[i, j, k] -= updatecoeffsE[ID[G.IDlookup[componentID], i, j, k], 4] * waveform.amp * waveform.calculate_value(time, G.dt) * self.dl * (1 / (G.dx * G.dy * G.dz))
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Ex[i, j, k] -= updatecoeffsE[ID[G.IDlookup[componentID], i, j, k], 4] * self.waveformvaluesJ[iteration] * self.dl * (1 / (G.dx * G.dy * G.dz))
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elif self.polarisation == 'y':
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Ey[i, j, k] -= updatecoeffsE[ID[G.IDlookup[componentID], i, j, k], 4] * waveform.amp * waveform.calculate_value(time, G.dt) * self.dl * (1 / (G.dx * G.dy * G.dz))
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Ey[i, j, k] -= updatecoeffsE[ID[G.IDlookup[componentID], i, j, k], 4] * self.waveformvaluesJ[iteration] * self.dl * (1 / (G.dx * G.dy * G.dz))
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elif self.polarisation == 'z':
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Ez[i, j, k] -= updatecoeffsE[ID[G.IDlookup[componentID], i, j, k], 4] * waveform.amp * waveform.calculate_value(time, G.dt) * self.dl * (1 / (G.dx * G.dy * G.dz))
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Ez[i, j, k] -= updatecoeffsE[ID[G.IDlookup[componentID], i, j, k], 4] * self.waveformvaluesJ[iteration] * self.dl * (1 / (G.dx * G.dy * G.dz))
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class MagneticDipole(Source):
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"""A magnetic dipole is an additive source (magnetic current density)."""
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def __init__(self):
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super(Source, self).__init__()
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super().__init__()
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def update_magnetic(self, abstime, updatecoeffsH, ID, Hx, Hy, Hz, G):
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def update_magnetic(self, iteration, updatecoeffsH, ID, Hx, Hy, Hz, G):
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"""Updates magnetic field values for a magnetic dipole.
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Args:
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abstime (float): Absolute time.
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iteration (int): Current iteration (timestep).
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updatecoeffsH (memory view): numpy array of magnetic field update coefficients.
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ID (memory view): numpy array of numeric IDs corresponding to materials in the model.
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Hx, Hy, Hz (memory view): numpy array of magnetic field values.
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G (class): Grid class instance - holds essential parameters describing the model.
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"""
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if abstime >= self.start and abstime <= self.stop:
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# Set the time of the waveform evaluation to account for any delay in the start
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time = abstime - self.start
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if iteration * G.dt >= self.start and iteration * G.dt <= self.stop:
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i = self.xcoord
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j = self.ycoord
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k = self.zcoord
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waveform = next(x for x in G.waveforms if x.ID == self.waveformID)
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componentID = 'H' + self.polarisation
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if self.polarisation == 'x':
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Hx[i, j, k] -= updatecoeffsH[ID[G.IDlookup[componentID], i, j, k], 4] * waveform.amp * waveform.calculate_value(time, G.dt) * (1 / (G.dx * G.dy * G.dz))
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Hx[i, j, k] -= updatecoeffsH[ID[G.IDlookup[componentID], i, j, k], 4] * self.waveformvaluesM[iteration] * (1 / (G.dx * G.dy * G.dz))
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elif self.polarisation == 'y':
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Hy[i, j, k] -= updatecoeffsH[ID[G.IDlookup[componentID], i, j, k], 4] * waveform.amp * waveform.calculate_value(time, G.dt) * (1 / (G.dx * G.dy * G.dz))
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Hy[i, j, k] -= updatecoeffsH[ID[G.IDlookup[componentID], i, j, k], 4] * self.waveformvaluesM[iteration] * (1 / (G.dx * G.dy * G.dz))
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elif self.polarisation == 'z':
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Hz[i, j, k] -= updatecoeffsH[ID[G.IDlookup[componentID], i, j, k], 4] * waveform.amp * waveform.calculate_value(time, G.dt) * (1 / (G.dx * G.dy * G.dz))
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Hz[i, j, k] -= updatecoeffsH[ID[G.IDlookup[componentID], i, j, k], 4] * self.waveformvaluesM[iteration] * (1 / (G.dx * G.dy * G.dz))
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class TransmissionLine(Source):
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@@ -203,15 +213,15 @@ class TransmissionLine(Source):
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G (class): Grid class instance - holds essential parameters describing the model.
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"""
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super(Source, self).__init__()
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super().__init__()
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self.resistance = None
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# Coefficients for ABC termination of end of the transmission line
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self.abcv0 = 0
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self.abcv1 = 0
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# Spatial step of transmission line (based on magic time step for dispersionless behaviour)
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self.dl = c * G.dt
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# Spatial step of transmission line (N.B if the magic time step is used it results in instabilities for certain impedances)
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self.dl = np.sqrt(3) * c * G.dt
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# Number of cells in the transmission line (initially a long line to calculate incident voltage and current); consider putting ABCs/PML at end
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self.nl = round_value(0.667 * G.iterations)
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@@ -236,14 +246,11 @@ class TransmissionLine(Source):
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G (class): Grid class instance - holds essential parameters describing the model.
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"""
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abstime = 0
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for timestep in range(G.iterations):
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self.Vinc[timestep] = self.voltage[self.antpos]
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self.Iinc[timestep] = self.current[self.antpos]
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self.update_voltage(abstime, G)
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abstime += 0.5 * G.dt
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self.update_current(abstime, G)
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abstime += 0.5 * G.dt
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for iteration in range(G.iterations):
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self.Iinc[iteration] = self.current[self.antpos]
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self.Vinc[iteration] = self.voltage[self.antpos]
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self.update_current(iteration, G)
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self.update_voltage(iteration, G)
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# Shorten number of cells in the transmission line before use with main grid
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self.nl = self.antpos + 1
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@@ -261,11 +268,11 @@ class TransmissionLine(Source):
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self.abcv0 = self.voltage[0]
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self.abcv1 = self.voltage[1]
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def update_voltage(self, time, G):
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def update_voltage(self, iteration, G):
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"""Updates voltage values along the transmission line.
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Args:
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time (float): Absolute time.
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iteration (int): Current iteration (timestep).
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G (class): Grid class instance - holds essential parameters describing the model.
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"""
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@@ -273,17 +280,16 @@ class TransmissionLine(Source):
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self.voltage[1:self.nl] -= self.resistance * (c * G.dt / self.dl) * (self.current[1:self.nl] - self.current[0:self.nl - 1])
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# Update the voltage at the position of the one-way injector excitation
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waveform = next(x for x in G.waveforms if x.ID == self.waveformID)
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self.voltage[self.srcpos] += (c * G.dt / self.dl) * waveform.amp * waveform.calculate_value(time - 0.5 * G.dt, G.dt)
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self.voltage[self.srcpos] += (c * G.dt / self.dl) * self.waveformvaluesJ[iteration]
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# Update ABC before updating current
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self.update_abc(G)
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def update_current(self, time, G):
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def update_current(self, iteration, G):
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"""Updates current values along the transmission line.
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Args:
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time (float): Absolute time.
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iteration (int): Current iteration (timestep).
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G (class): Grid class instance - holds essential parameters describing the model.
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"""
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@@ -291,28 +297,25 @@ class TransmissionLine(Source):
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self.current[0:self.nl - 1] -= (1 / self.resistance) * (c * G.dt / self.dl) * (self.voltage[1:self.nl] - self.voltage[0:self.nl - 1])
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# Update the current one cell before the position of the one-way injector excitation
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waveform = next(x for x in G.waveforms if x.ID == self.waveformID)
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self.current[self.srcpos - 1] += (c * G.dt / self.dl) * waveform.amp * waveform.calculate_value(time - 0.5 * G.dt, G.dt) * (1 / self.resistance)
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self.current[self.srcpos - 1] += (1 / self.resistance) * (c * G.dt / self.dl) * self.waveformvaluesM[iteration]
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def update_electric(self, abstime, updatecoeffsE, ID, Ex, Ey, Ez, G):
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def update_electric(self, iteration, updatecoeffsE, ID, Ex, Ey, Ez, G):
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"""Updates electric field value in the main grid from voltage value in the transmission line.
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Args:
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abstime (float): Absolute time.
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iteration (int): Current iteration (timestep).
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updatecoeffsE (memory view): numpy array of electric field update coefficients.
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ID (memory view): numpy array of numeric IDs corresponding to materials in the model.
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Ex, Ey, Ez (memory view): numpy array of electric field values.
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G (class): Grid class instance - holds essential parameters describing the model.
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"""
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if abstime >= self.start and abstime <= self.stop:
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# Set the time of the waveform evaluation to account for any delay in the start
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time = abstime - self.start
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if iteration * G.dt >= self.start and iteration * G.dt <= self.stop:
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i = self.xcoord
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j = self.ycoord
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k = self.zcoord
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self.update_voltage(time, G)
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self.update_voltage(iteration, G)
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if self.polarisation == 'x':
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Ex[i, j, k] = - self.voltage[self.antpos] / G.dx
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@@ -323,34 +326,32 @@ class TransmissionLine(Source):
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elif self.polarisation == 'z':
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Ez[i, j, k] = - self.voltage[self.antpos] / G.dz
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def update_magnetic(self, abstime, updatecoeffsH, ID, Hx, Hy, Hz, G):
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def update_magnetic(self, iteration, updatecoeffsH, ID, Hx, Hy, Hz, G):
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"""Updates current value in transmission line from magnetic field values in the main grid.
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Args:
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abstime (float): Absolute time.
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iteration (int): Current iteration (timestep).
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updatecoeffsH (memory view): numpy array of magnetic field update coefficients.
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ID (memory view): numpy array of numeric IDs corresponding to materials in the model.
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Hx, Hy, Hz (memory view): numpy array of magnetic field values.
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G (class): Grid class instance - holds essential parameters describing the model.
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"""
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if abstime >= self.start and abstime <= self.stop:
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# Set the time of the waveform evaluation to account for any delay in the start
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time = abstime - self.start
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if iteration * G.dt >= self.start and iteration * G.dt <= self.stop:
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i = self.xcoord
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j = self.ycoord
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k = self.zcoord
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if self.polarisation == 'x':
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self.current[self.antpos] = Ix(i, j, k, G.Hy, G.Hz, G)
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self.current[self.antpos] = Ix(i, j, k, G.Hx, G.Hy, G.Hz, G)
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elif self.polarisation == 'y':
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self.current[self.antpos] = Iy(i, j, k, G.Hx, G.Hz, G)
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self.current[self.antpos] = Iy(i, j, k, G.Hx, G.Hy, G.Hz, G)
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elif self.polarisation == 'z':
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self.current[self.antpos] = Iz(i, j, k, G.Hx, G.Hy, G)
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self.current[self.antpos] = Iz(i, j, k, G.Hx, G.Hy, G.Hz, G)
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self.update_current(time, G)
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self.update_current(iteration, G)
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class PlaneWave(Source):
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|
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