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output

write(stellarator, a_tf_wp_no_insulation, centering_force_avg_mn, centering_force_max_mn, centering_force_min_mn, coilcoilgap, coppera_m2, coppera_m2_max, f_a_scu_of_wp, f_vv_actual, fiooic, inductance, max_force_density, max_force_density_mnm, max_lateral_force_density, max_radial_force_density, min_bending_radius, r_coil_major, r_coil_minor, sig_tf_wp, dx_tf_turn_general, t_tf_superconductor_quench, toroidalgap, allowed_quench_voltage, quench_voltage)

Writes stellarator modular coil output to file

This routine writes the stellarator modular coil results to the output file.

Parameters:

Name Type Description Default
stellarator
required
a_tf_wp_no_insulation
required
centering_force_avg_mn
required
centering_force_max_mn
required
centering_force_min_mn
required
coilcoilgap
required
coppera_m2
required
coppera_m2_max
required
f_a_scu_of_wp
required
f_vv_actual
required
fiooic
required
inductance
required
max_force_density
required
max_force_density_mnm
required
max_lateral_force_density
required
max_radial_force_density
required
min_bending_radius
required
r_coil_major
required
r_coil_minor
required
sig_tf_wp
required
dx_tf_turn_general
required
t_tf_superconductor_quench
required
toroidalgap
required
allowed_quench_voltage
required
quench_voltage
required
Source code in process/models/stellarator/coils/output.py
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def write(
    stellarator,
    a_tf_wp_no_insulation,
    centering_force_avg_mn,
    centering_force_max_mn,
    centering_force_min_mn,
    coilcoilgap,
    coppera_m2,
    coppera_m2_max,
    f_a_scu_of_wp,
    f_vv_actual,
    fiooic,
    inductance,
    max_force_density,
    max_force_density_mnm,
    max_lateral_force_density,
    max_radial_force_density,
    min_bending_radius,
    r_coil_major,
    r_coil_minor,
    sig_tf_wp,
    dx_tf_turn_general,
    t_tf_superconductor_quench,
    toroidalgap,
    allowed_quench_voltage,
    quench_voltage,
):
    """Writes stellarator modular coil output to file

    This routine writes the stellarator modular coil results
    to the output file.

    Parameters
    ----------
    stellarator :

    a_tf_wp_no_insulation :

    centering_force_avg_mn :

    centering_force_max_mn :

    centering_force_min_mn :

    coilcoilgap :

    coppera_m2 :

    coppera_m2_max :

    f_a_scu_of_wp :

    f_vv_actual :

    fiooic :

    inductance :

    max_force_density :

    max_force_density_mnm :

    max_lateral_force_density :

    max_radial_force_density :

    min_bending_radius :

    r_coil_major :

    r_coil_minor :

    sig_tf_wp :

    dx_tf_turn_general :

    t_tf_superconductor_quench :

    toroidalgap :

    allowed_quench_voltage :

    quench_voltage :


    """
    po.oheadr(stellarator.outfile, "Modular Coils")

    po.osubhd(stellarator.outfile, "General Coil Parameters :")

    po.ovarre(
        stellarator.outfile,
        "Number of modular coils",
        "(n_tf_coils)",
        tfcoil_variables.n_tf_coils,
    )
    po.ovarre(stellarator.outfile, "Av. coil major radius", "(coil_r)", r_coil_major)
    po.ovarre(stellarator.outfile, "Av. coil minor radius", "(coil_a)", r_coil_minor)
    po.ovarre(
        stellarator.outfile,
        "Av. coil aspect ratio",
        "(coil_aspect)",
        r_coil_major / r_coil_minor,
    )

    po.ovarre(
        stellarator.outfile,
        "Cross-sectional area per coil (m2)",
        "(tfarea/n_tf_coils)",
        tfcoil_variables.a_tf_inboard_total / tfcoil_variables.n_tf_coils,
    )
    po.ovarre(
        stellarator.outfile,
        "Total inboard leg radial thickness (m)",
        "(dr_tf_inboard)",
        build_variables.dr_tf_inboard,
    )
    po.ovarre(
        stellarator.outfile,
        "Total outboard leg radial thickness (m)",
        "(dr_tf_outboard)",
        build_variables.dr_tf_outboard,
    )
    po.ovarre(
        stellarator.outfile,
        "Inboard leg outboard half-width (m)",
        "(tficrn)",
        tfcoil_variables.tficrn,
    )
    po.ovarre(
        stellarator.outfile,
        "Inboard leg inboard half-width (m)",
        "(tfocrn)",
        tfcoil_variables.tfocrn,
    )
    po.ovarre(
        stellarator.outfile,
        "Outboard leg toroidal thickness (m)",
        "(dx_tf_inboard_out_toroidal)",
        tfcoil_variables.dx_tf_inboard_out_toroidal,
    )
    po.ovarre(
        stellarator.outfile, "Minimum coil distance (m)", "(toroidalgap)", toroidalgap
    )
    po.ovarre(
        stellarator.outfile,
        "Minimal left gap between coils (m)",
        "(coilcoilgap)",
        coilcoilgap,
    )
    po.ovarre(
        stellarator.outfile,
        "Minimum coil bending radius (m)",
        "(min_bend_radius)",
        min_bending_radius,
    )
    po.ovarre(
        stellarator.outfile,
        "Mean coil circumference (m)",
        "(len_tf_coil)",
        tfcoil_variables.len_tf_coil,
    )
    po.ovarre(
        stellarator.outfile,
        "Total current (MA)",
        "(c_tf_total)",
        1.0e-6 * tfcoil_variables.c_tf_total,
    )
    po.ovarre(
        stellarator.outfile,
        "Current per coil(MA)",
        "(c_tf_total/n_tf_coils)",
        1.0e-6 * tfcoil_variables.c_tf_total / tfcoil_variables.n_tf_coils,
    )
    po.ovarre(
        stellarator.outfile,
        "Winding pack current density (A/m2)",
        "(j_tf_wp)",
        tfcoil_variables.j_tf_wp,
    )
    po.ovarre(
        stellarator.outfile,
        "Max allowable current density as restricted by quench (A/m2)",
        "(j_tf_wp_quench_heat_max)",
        tfcoil_variables.j_tf_wp_quench_heat_max,
    )
    po.ovarre(
        stellarator.outfile,
        "Overall current density (A/m2)",
        "(oacdcp)",
        tfcoil_variables.oacdcp,
    )
    po.ovarre(
        stellarator.outfile,
        "Maximum field on superconductor (T)",
        "(b_tf_inboard_peak_symmetric)",
        tfcoil_variables.b_tf_inboard_peak_symmetric,
    )
    po.ovarre(
        stellarator.outfile,
        "Total Stored energy (GJ)",
        "(e_tf_magnetic_stored_total_gj)",
        tfcoil_variables.e_tf_magnetic_stored_total_gj,
    )
    po.ovarre(
        stellarator.outfile, "Inductance of TF Coils (H)", "(inductance)", inductance
    )
    po.ovarre(
        stellarator.outfile,
        "Total mass of coils (kg)",
        "(m_tf_coils_total)",
        tfcoil_variables.m_tf_coils_total,
    )

    po.osubhd(stellarator.outfile, "Coil Geometry :")

    po.ovarre(
        stellarator.outfile,
        "Outboard leg centre radius (m)",
        "(r_tf_outboard_mid)",
        build_variables.r_tf_outboard_mid,
    )
    po.ovarre(
        stellarator.outfile,
        "Maximum inboard edge height (m)",
        "(z_tf_inside_half)",
        build_variables.z_tf_inside_half,
    )

    po.osubhd(stellarator.outfile, "Conductor Information :")
    po.ovarre(
        stellarator.outfile,
        "Superconductor mass per coil (kg)",
        "(m_tf_coil_superconductor)",
        tfcoil_variables.m_tf_coil_superconductor,
    )
    po.ovarre(
        stellarator.outfile,
        "Copper mass per coil (kg)",
        "(m_tf_coil_copper)",
        tfcoil_variables.m_tf_coil_copper,
    )
    po.ovarre(
        stellarator.outfile,
        "Steel conduit mass per coil (kg)",
        "(m_tf_wp_steel_conduit)",
        tfcoil_variables.m_tf_wp_steel_conduit,
    )
    po.ovarre(
        stellarator.outfile,
        "Total conductor cable mass per coil (kg)",
        "(m_tf_coil_conductor)",
        tfcoil_variables.m_tf_coil_conductor,
    )
    po.ovarre(
        stellarator.outfile,
        "Cable conductor + void area (m2)",
        "(a_tf_turn_cable_space_no_void)",
        tfcoil_variables.a_tf_turn_cable_space_no_void,
    )
    po.ovarre(
        stellarator.outfile,
        "Cable space coolant fraction",
        "(f_a_tf_turn_cable_space_extra_void)",
        tfcoil_variables.f_a_tf_turn_cable_space_extra_void,
    )
    po.ovarre(
        stellarator.outfile,
        "Conduit case thickness (m)",
        "(dx_tf_turn_steel)",
        tfcoil_variables.dx_tf_turn_steel,
    )
    po.ovarre(
        stellarator.outfile,
        "Cable insulation thickness (m)",
        "(dx_tf_turn_insulation)",
        tfcoil_variables.dx_tf_turn_insulation,
    )

    ap = a_tf_wp_no_insulation
    po.osubhd(stellarator.outfile, "Winding Pack Information :")
    po.ovarre(stellarator.outfile, "Winding pack area", "(ap)", ap)
    po.ovarre(
        stellarator.outfile,
        "Conductor fraction of winding pack",
        "(a_tf_wp_conductor/ap)",
        tfcoil_variables.a_tf_wp_conductor / ap,
    )
    po.ovarre(
        stellarator.outfile,
        "Copper fraction of conductor",
        "(f_a_tf_turn_cable_copper)",
        tfcoil_variables.f_a_tf_turn_cable_copper,
    )
    po.ovarre(
        stellarator.outfile,
        "Structure fraction of winding pack",
        "(a_tf_wp_steel/ap)",
        tfcoil_variables.a_tf_wp_steel / ap,
    )
    po.ovarre(
        stellarator.outfile,
        "Insulator fraction of winding pack",
        "(a_tf_coil_wp_turn_insulation/ap)",
        tfcoil_variables.a_tf_coil_wp_turn_insulation / ap,
    )
    po.ovarre(
        stellarator.outfile,
        "Helium fraction of winding pack",
        "(a_tf_wp_extra_void/ap)",
        tfcoil_variables.a_tf_wp_extra_void / ap,
    )
    po.ovarre(
        stellarator.outfile,
        "Winding radial thickness (m)",
        "(dr_tf_wp_with_insulation)",
        tfcoil_variables.dr_tf_wp_with_insulation,
    )
    po.ovarre(
        stellarator.outfile,
        "Winding toroidal thickness (m)",
        "(dx_tf_wp_primary_toroidal)",
        tfcoil_variables.dx_tf_wp_primary_toroidal,
    )
    po.ovarre(
        stellarator.outfile,
        "Ground wall insulation thickness (m)",
        "(dx_tf_wp_insulation)",
        tfcoil_variables.dx_tf_wp_insulation,
    )
    po.ovarre(
        stellarator.outfile,
        "Number of turns per coil",
        "(n_tf_coil_turns)",
        tfcoil_variables.n_tf_coil_turns,
    )
    po.ovarre(
        stellarator.outfile,
        "Width of each turn (incl. insulation) (m)",
        "(dx_tf_turn_general)",
        dx_tf_turn_general,
    )
    po.ovarre(
        stellarator.outfile,
        "Current per turn (A)",
        "(c_tf_turn)",
        tfcoil_variables.c_tf_turn,
    )
    po.ovarre(stellarator.outfile, "jop/jcrit", "(fiooic)", fiooic)
    po.ovarre(
        stellarator.outfile,
        "Current density in conductor area (A/m2)",
        "(c_tf_total/a_tf_wp_conductor)",
        1.0e-6
        * tfcoil_variables.c_tf_total
        / tfcoil_variables.n_tf_coils
        / tfcoil_variables.a_tf_wp_conductor,
    )
    po.ovarre(
        stellarator.outfile,
        "Current density in SC area (A/m2)",
        "(c_tf_total/a_tf_wp_conductor/f_a_scu_of_wp)",
        1.0e-6
        * tfcoil_variables.c_tf_total
        / tfcoil_variables.n_tf_coils
        / ap
        / f_a_scu_of_wp,
    )
    po.ovarre(
        stellarator.outfile,
        "Superconductor faction of WP (1)",
        "(f_a_scu_of_wp)",
        f_a_scu_of_wp,
    )

    po.osubhd(stellarator.outfile, "Forces and Stress :")
    po.ovarre(
        stellarator.outfile,
        "Maximal toroidally and radially av. force density (MN/m3)",
        "(max_force_density)",
        max_force_density,
    )
    po.ovarre(
        stellarator.outfile,
        "Maximal force density (MN/m)",
        "(max_force_density_Mnm)",
        max_force_density_mnm,
    )
    po.ovarre(
        stellarator.outfile,
        "Maximal stress (approx.) (MPa)",
        "(sig_tf_wp)",
        sig_tf_wp * 1.0e-6,
    )

    po.ovarre(
        stellarator.outfile,
        "Maximal lateral force density (MN/m3)",
        "(max_lateral_force_density)",
        max_lateral_force_density,
    )
    po.ovarre(
        stellarator.outfile,
        "Maximal radial force density (MN/m3)",
        "(max_radial_force_density)",
        max_radial_force_density,
    )

    po.ovarre(
        stellarator.outfile,
        "Max. centering force (coil) (MN)",
        "(centering_force_max_MN)",
        centering_force_max_mn,
    )
    po.ovarre(
        stellarator.outfile,
        "Min. centering force (coil) (MN)",
        "(centering_force_min_MN)",
        centering_force_min_mn,
    )
    po.ovarre(
        stellarator.outfile,
        "Avg. centering force per coil (MN)",
        "(centering_force_avg_MN)",
        centering_force_avg_mn,
    )

    po.osubhd(stellarator.outfile, "Quench Restrictions :")
    po.ovarre(
        stellarator.outfile,
        "Actual quench time (or time constant) (s)",
        "(t_tf_superconductor_quench)",
        t_tf_superconductor_quench,
    )
    po.ovarre(
        stellarator.outfile,
        "Actual quench vaccuum vessel force density (MN/m^3)",
        "(f_vv_actual)",
        f_vv_actual,
    )
    po.ovarre(
        stellarator.outfile,
        "Maximum allowed voltage during quench due to insulation (kV)",
        "(v_tf_coil_dump_quench_max_kv)",
        allowed_quench_voltage,
    )
    po.ovarre(
        stellarator.outfile,
        "Actual quench voltage (kV)",
        "(v_tf_coil_dump_quench_kv)",
        quench_voltage,
        "OP ",
    )
    po.ovarre(
        stellarator.outfile,
        "Current (A) per mm^2 copper (A/mm2)",
        "(coppera_m2)",
        coppera_m2 * 1.0e-6,
    )
    po.ovarre(
        stellarator.outfile,
        "Max Copper current fraction:",
        "(coppera_m2/coppera_m2_max)",
        coppera_m2 / coppera_m2_max,
    )

    po.osubhd(stellarator.outfile, "External Case Information :")

    po.ovarre(
        stellarator.outfile,
        "Case thickness, plasma side (m)",
        "(dr_tf_plasma_case)",
        tfcoil_variables.dr_tf_plasma_case,
    )
    po.ovarre(
        stellarator.outfile,
        "Case thickness, outer side (m)",
        "(dr_tf_nose_case)",
        tfcoil_variables.dr_tf_nose_case,
    )
    po.ovarre(
        stellarator.outfile,
        "Case toroidal thickness (m)",
        "(dx_tf_side_case_min)",
        tfcoil_variables.dx_tf_side_case_min,
    )
    po.ovarre(
        stellarator.outfile,
        "Case area per coil (m2)",
        "(a_tf_coil_inboard_case)",
        tfcoil_variables.a_tf_coil_inboard_case,
    )
    po.ovarre(
        stellarator.outfile,
        "External case mass per coil (kg)",
        "(m_tf_coil_case)",
        tfcoil_variables.m_tf_coil_case,
    )

    po.osubhd(stellarator.outfile, "Available Space for Ports :")

    po.ovarre(
        stellarator.outfile,
        "Max toroidal size of vertical ports (m)",
        "(vporttmax)",
        stellarator_variables.vporttmax,
    )
    po.ovarre(
        stellarator.outfile,
        "Max poloidal size of vertical ports (m)",
        "(vportpmax)",
        stellarator_variables.vportpmax,
    )
    po.ovarre(
        stellarator.outfile,
        "Max area of vertical ports (m2)",
        "(vportamax)",
        stellarator_variables.vportamax,
    )
    po.ovarre(
        stellarator.outfile,
        "Max toroidal size of horizontal ports (m)",
        "(hporttmax)",
        stellarator_variables.hporttmax,
    )
    po.ovarre(
        stellarator.outfile,
        "Max poloidal size of horizontal ports (m)",
        "(hportpmax)",
        stellarator_variables.hportpmax,
    )
    po.ovarre(
        stellarator.outfile,
        "Max area of horizontal ports (m2)",
        "(hportamax)",
        stellarator_variables.hportamax,
    )