2021-10-01 14:37:07 +02:00
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# -*- coding: utf-8 -*-
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"""
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Created on Tue Aug 24 16:24:52 2021
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@author: Joschka
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"""
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import matplotlib.pyplot as plt
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import numpy as np
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from src import B_field_calculation as bf
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from src import coil_class as BC
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2022-09-02 13:30:37 +02:00
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#from IPython import get_ipython
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#get_ipython().run_line_magic('matplotlib', 'qt')
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2021-10-01 14:37:07 +02:00
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#get_ipython().run_line_magic('matplotlib', 'inline')
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x = np.linspace(-1, 1, 11)
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z = np.linspace(-1, 1, 11)
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I_current = 5*16
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HH_Coil = HH_Coil_comp = BC.BCoil(HH = 1, distance = 54 ,radius = 37,layers = 1, windings = 1,wire_width = 8, wire_height = 8)
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HH_Coil.set_R_outer(49.3)
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2022-09-02 13:30:37 +02:00
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HH_Coil.set_d_min(47.4)
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2021-10-01 14:37:07 +02:00
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HH_Coil.print_info()
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2021-10-20 16:49:17 +02:00
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Bz, Bx = HH_Coil.B_field(I_current, x, z, raster = 50)
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2021-10-01 14:37:07 +02:00
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Bz_curv = BC.BCoil.curv(Bz, z)
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HH_Coil.cooling(I_current,30)
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print(f"B_z(0) = {Bz[1]:.2f} G")
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print(f"B_z_curvature(0) = {Bz_curv[1]:.4f} G/cm^2")
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2022-09-02 13:30:37 +02:00
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# %%
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2021-10-01 14:37:07 +02:00
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B = []
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Curv = []
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2022-09-02 13:30:37 +02:00
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array_width = np.arange(2.5,6,0.1)
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2021-10-01 14:37:07 +02:00
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#array_width = [5.7]
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for width in array_width:
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2022-09-02 13:30:37 +02:00
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height = 16/width
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2021-10-01 14:37:07 +02:00
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HH_Coil = HH_Coil_comp = BC.BCoil(HH = 1, distance = 54 ,radius = 37,layers = 1, windings = 1,wire_width = width, wire_height = height)
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2022-09-02 13:30:37 +02:00
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HH_Coil.set_R_outer(50)
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HH_Coil.set_d_min(47.4)
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#AHH_Coil.print_info()
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2021-10-01 14:37:07 +02:00
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2021-10-20 16:49:17 +02:00
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Bz, Bx = HH_Coil.B_field(I_current, x, z, raster = 30)
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2021-10-01 14:37:07 +02:00
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Bz_curv = BC.BCoil.curv(Bz, z)
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HH_Coil.cooling(I_current,30)
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B.append(Bz[5])
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Curv.append(Bz_curv[5])
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print(f"width = {width}mm, height = {height}mm")
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print(f"B_z(0) = {Bz[5]:.2f} G")
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print(f"B_z_curvature(0) = {Bz_curv[5]:.4f} G/cm^2")
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plt.plot(array_width,Curv)
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#plt.plot(array_width,B)
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plt.ylabel("curvature")
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plt.xlabel("total width [mm]")
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plt.show()
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2022-09-02 13:30:37 +02:00
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# %%
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HH_Coil = HH_Coil_comp = BC.BCoil(HH = 1, distance = 54 ,radius = 37,layers = 1, windings = 1,wire_width = 8, wire_height = 8)
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HH_Coil.set_R_outer(49.3)
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HH_Coil.set_d_min(47.4)
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#set up axis
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x = np.linspace(-15, 15, 30001)
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z = np.linspace(-15, 15, 30001)
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# New coil
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Wire_1 = [0.5, 0.568]
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#Wire_1 = [0.45, 0.514]
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#I_current = 0.94
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HH_Coil = HH_Coil_comp = BC.BCoil(HH = 1, distance = 54 ,radius = 37,layers = 1, windings = 1,wire_width = 4, wire_height = 4)
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HH_Coil.set_R_outer(50)
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HH_Coil.set_d_min(47.4)
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HH_Coil.print_info()
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R = HH_Coil.resistance(22.5)
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print(f"U = {1 * R}")
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I_current = 55
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# 0.4 to get from +-30300
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HH_Coil.print_info()
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#Bz, Bx = AHH_Coil.B_field(I_current, x, z, raster = 7)
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Bz, Bx_tot = HH_Coil.B_tot_along_axis(I_current, x, z, raster = 7)
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Bz_curv = BC.BCoil.curv(Bz, z)
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#AHH_Coil.cooling(I_current,28)
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print(f"Bz(0) = {Bz[15000]} G")
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print(f"B_z_curvature(0) = {Bz_curv[15000]:.10f} G/cm^2")
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#print(f"Bz(1 μm) = {Bz[15001]}")
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#print(f"Bz(1 mm) = {Bz[16000]}")
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print(f"Diff B +/- 1 μm: {Bz[15001] - Bz[15000]}, relative: {(Bz[15001] - Bz[15000])/Bz[15000]}")
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print(f"Diff B +/- 0.5 mm: {Bz[15500] - Bz[15000]}, relative: {(Bz[15500] - Bz[15000])/Bz[15000]}")
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print(f"Diff B +/- 1 mm: {Bz[16000] - Bz[15000]}, relative: {(Bz[16000] - Bz[15000])/Bz[15000]}")
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