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1   package org.djunits.quantity;
2   
3   import org.djunits.quantity.def.Quantity;
4   import org.djunits.unit.AbstractUnit;
5   import org.djunits.unit.UnitRuntimeException;
6   import org.djunits.unit.Unitless;
7   import org.djunits.unit.Units;
8   import org.djunits.unit.scale.LinearScale;
9   import org.djunits.unit.scale.Scale;
10  import org.djunits.unit.si.SIUnit;
11  import org.djunits.unit.system.UnitSystem;
12  
13  /**
14   * Magnetic flux is the total magnetic field passing through a given area, measured in webers (Wb).
15   * <p>
16   * Copyright (c) 2025-2026 Delft University of Technology, Jaffalaan 5, 2628 BX Delft, the Netherlands. All rights reserved. See
17   * for project information <a href="https://djunits.org" target="_blank">https://djunits.org</a>. The DJUNITS project is
18   * distributed under a <a href="https://djunits.org/docs/license.html" target="_blank">three-clause BSD-style license</a>.
19   * @author Alexander Verbraeck
20   */
21  public class MagneticFlux extends Quantity<MagneticFlux>
22  {
23      /** Constant with value zero. */
24      public static final MagneticFlux ZERO = MagneticFlux.ofSi(0.0);
25  
26      /** Constant with value one. */
27      public static final MagneticFlux ONE = MagneticFlux.ofSi(1.0);
28  
29      /** Constant with value NaN. */
30      @SuppressWarnings("checkstyle:constantname")
31      public static final MagneticFlux NaN = MagneticFlux.ofSi(Double.NaN);
32  
33      /** Constant with value POSITIVE_INFINITY. */
34      public static final MagneticFlux POSITIVE_INFINITY = MagneticFlux.ofSi(Double.POSITIVE_INFINITY);
35  
36      /** Constant with value NEGATIVE_INFINITY. */
37      public static final MagneticFlux NEGATIVE_INFINITY = MagneticFlux.ofSi(Double.NEGATIVE_INFINITY);
38  
39      /** Constant with value MAX_VALUE. */
40      public static final MagneticFlux POS_MAXVALUE = MagneticFlux.ofSi(Double.MAX_VALUE);
41  
42      /** Constant with value -MAX_VALUE. */
43      public static final MagneticFlux NEG_MAXVALUE = MagneticFlux.ofSi(-Double.MAX_VALUE);
44  
45      /** */
46      private static final long serialVersionUID = 600L;
47  
48      /**
49       * Instantiate a MagneticFlux quantity with a unit.
50       * @param valueInUnit the value, expressed in the unit
51       * @param unit the unit in which the value is expressed
52       */
53      public MagneticFlux(final double valueInUnit, final MagneticFlux.Unit unit)
54      {
55          super(valueInUnit, unit);
56      }
57  
58      /**
59       * Instantiate a MagneticFlux quantity with a unit, expressed as a String.
60       * @param valueInUnit the value, expressed in the unit
61       * @param abbreviation the String abbreviation of the unit in which the value is expressed
62       */
63      public MagneticFlux(final double valueInUnit, final String abbreviation)
64      {
65          this(valueInUnit, Units.resolve(MagneticFlux.Unit.class, abbreviation));
66      }
67  
68      /**
69       * Construct MagneticFlux quantity.
70       * @param value Scalar from which to construct this instance
71       */
72      public MagneticFlux(final MagneticFlux value)
73      {
74          super(value.si(), MagneticFlux.Unit.SI);
75          setDisplayUnit(value.getDisplayUnit());
76      }
77  
78      /**
79       * Return a MagneticFlux instance based on an SI value.
80       * @param si the si value
81       * @return the MagneticFlux instance based on an SI value
82       */
83      public static MagneticFlux ofSi(final double si)
84      {
85          return new MagneticFlux(si, MagneticFlux.Unit.SI);
86      }
87  
88      @Override
89      public MagneticFlux instantiateSi(final double si)
90      {
91          return ofSi(si);
92      }
93  
94      @Override
95      public SIUnit siUnit()
96      {
97          return MagneticFlux.Unit.SI_UNIT;
98      }
99  
100     /**
101      * Returns a MagneticFlux representation of a textual representation of a value with a unit. The String representation that
102      * can be parsed is the double value in the unit, followed by a localized or English abbreviation of the unit. Spaces are
103      * allowed, but not required, between the value and the unit.
104      * @param text the textual representation to parse into a MagneticFlux
105      * @return the Scalar representation of the value in its unit
106      * @throws IllegalArgumentException when the text cannot be parsed
107      * @throws NullPointerException when the text argument is null
108      */
109     public static MagneticFlux valueOf(final String text)
110     {
111         return Quantity.valueOf(text, ZERO);
112     }
113 
114     /**
115      * Returns a MagneticFlux based on a value and the textual representation of the unit, which can be localized.
116      * @param valueInUnit the value, expressed in the unit as given by unitString
117      * @param unitString the textual representation of the unit
118      * @return the Scalar representation of the value in its unit
119      * @throws IllegalArgumentException when the unit cannot be parsed or is incorrect
120      * @throws NullPointerException when the unitString argument is null
121      */
122     public static MagneticFlux of(final double valueInUnit, final String unitString)
123     {
124         return Quantity.of(valueInUnit, unitString, ZERO);
125     }
126 
127     @Override
128     public MagneticFlux.Unit getDisplayUnit()
129     {
130         return (MagneticFlux.Unit) super.getDisplayUnit();
131     }
132 
133     /**
134      * Calculate the division of MagneticFlux and MagneticFlux, which results in a Dimensionless quantity.
135      * @param v quantity
136      * @return quantity as a division of MagneticFlux and MagneticFlux
137      */
138     public final Dimensionless divide(final MagneticFlux v)
139     {
140         return new Dimensionless(this.si() / v.si(), Unitless.BASE);
141     }
142 
143     /**
144      * Calculate the division of MagneticFlux and ElectricPotential, which results in a Duration scalar.
145      * @param v scalar
146      * @return scalar as a division of MagneticFlux and ElectricPotential
147      */
148     public final Duration divide(final ElectricPotential v)
149     {
150         return new Duration(this.si() / v.si(), Duration.Unit.SI);
151     }
152 
153     /**
154      * Calculate the division of MagneticFlux and Duration, which results in a ElectricPotential scalar.
155      * @param v scalar
156      * @return scalar as a division of MagneticFlux and Duration
157      */
158     public final ElectricPotential divide(final Duration v)
159     {
160         return new ElectricPotential(this.si() / v.si(), ElectricPotential.Unit.SI);
161     }
162 
163     /**
164      * Calculate the division of MagneticFlux and Area, which results in a MagneticFluxDensity scalar.
165      * @param v scalar
166      * @return scalar as a division of MagneticFlux and Area
167      */
168     public final MagneticFluxDensity divide(final Area v)
169     {
170         return new MagneticFluxDensity(this.si() / v.si(), MagneticFluxDensity.Unit.SI);
171     }
172 
173     /**
174      * Calculate the division of MagneticFlux and MagneticFluxDensity, which results in a Area scalar.
175      * @param v scalar
176      * @return scalar as a division of MagneticFlux and MagneticFluxDensity
177      */
178     public final Area divide(final MagneticFluxDensity v)
179     {
180         return new Area(this.si() / v.si(), Area.Unit.SI);
181     }
182 
183     /**
184      * Calculate the division of MagneticFlux and ElectricCurrent, which results in a ElectricalInductance scalar.
185      * @param v scalar
186      * @return scalar as a division of MagneticFlux and ElectricCurrent
187      */
188     public final ElectricalInductance divide(final ElectricCurrent v)
189     {
190         return new ElectricalInductance(this.si() / v.si(), ElectricalInductance.Unit.SI);
191     }
192 
193     /**
194      * Calculate the division of MagneticFlux and ElectricalInductance, which results in a ElectricCurrent scalar.
195      * @param v scalar
196      * @return scalar as a division of MagneticFlux and ElectricalInductance
197      */
198     public final ElectricCurrent divide(final ElectricalInductance v)
199     {
200         return new ElectricCurrent(this.si() / v.si(), ElectricCurrent.Unit.SI);
201     }
202 
203     /******************************************************************************************************/
204     /********************************************** UNIT CLASS ********************************************/
205     /******************************************************************************************************/
206 
207     /**
208      * MagneticFlux.Unit encodes the units of total magnetic field passing through a given area.
209      * <p>
210      * Copyright (c) 2025-2026 Delft University of Technology, Jaffalaan 5, 2628 BX Delft, the Netherlands. All rights reserved.
211      * See for project information <a href="https://djunits.org" target="_blank">https://djunits.org</a>. The DJUNITS project is
212      * distributed under a <a href="https://djunits.org/docs/license.html" target="_blank">three-clause BSD-style license</a>.
213      * @author Alexander Verbraeck
214      */
215     @SuppressWarnings("checkstyle:constantname")
216     public static class Unit extends AbstractUnit<MagneticFlux.Unit, MagneticFlux>
217     {
218         /** The dimensions of the magnetic flux: kgm2/s2A. */
219         public static final SIUnit SI_UNIT = SIUnit.of("kgm2/s2A");
220 
221         /** Weber. */
222         public static final MagneticFlux.Unit Wb = new MagneticFlux.Unit("Wb", "weber", 1.0, UnitSystem.SI_DERIVED);
223 
224         /** The SI or BASE unit. */
225         public static final MagneticFlux.Unit SI = Wb.generateSiPrefixes(false, false);
226 
227         /** mWb. */
228         public static final MagneticFlux.Unit mWb = Units.resolve(MagneticFlux.Unit.class, "mWb");
229 
230         /** muWb. */
231         public static final MagneticFlux.Unit muWb = Units.resolve(MagneticFlux.Unit.class, "muWb");
232 
233         /** nWb. */
234         public static final MagneticFlux.Unit nWb = Units.resolve(MagneticFlux.Unit.class, "nWb");
235 
236         /** Maxwell. */
237         public static final MagneticFlux.Unit Mx = Wb.deriveUnit("Mx", "Maxwell", 1.0E-8, UnitSystem.CGS);
238 
239         /**
240          * Create a new MagneticFlux unit.
241          * @param id the id or main abbreviation of the unit
242          * @param name the full name of the unit
243          * @param scaleFactorToBaseUnit the scale factor of the unit to convert it TO the base (SI) unit
244          * @param unitSystem the unit system such as SI or IMPERIAL
245          */
246         public Unit(final String id, final String name, final double scaleFactorToBaseUnit, final UnitSystem unitSystem)
247         {
248             super(id, name, new LinearScale(scaleFactorToBaseUnit), unitSystem);
249         }
250 
251         /**
252          * Return a derived unit for this unit, with textual abbreviation(s) and a display abbreviation.
253          * @param textualAbbreviation the textual abbreviation of the unit, which doubles as the id
254          * @param displayAbbreviation the display abbreviation of the unit
255          * @param name the full name of the unit
256          * @param scale the scale to use to convert between this unit and the standard (e.g., SI, BASE) unit
257          * @param unitSystem unit system, e.g. SI or Imperial
258          */
259         public Unit(final String textualAbbreviation, final String displayAbbreviation, final String name, final Scale scale,
260                 final UnitSystem unitSystem)
261         {
262             super(textualAbbreviation, displayAbbreviation, name, scale, unitSystem);
263         }
264 
265         @Override
266         public SIUnit siUnit()
267         {
268             return SI_UNIT;
269         }
270 
271         @Override
272         public Unit getBaseUnit()
273         {
274             return SI;
275         }
276 
277         @Override
278         public MagneticFlux ofSi(final double si)
279         {
280             return MagneticFlux.ofSi(si);
281         }
282 
283         @Override
284         public Unit deriveUnit(final String textualAbbreviation, final String displayAbbreviation, final String name,
285                 final double scaleFactor, final UnitSystem unitSystem)
286         {
287             if (getScale() instanceof LinearScale ls)
288             {
289                 return new MagneticFlux.Unit(textualAbbreviation, displayAbbreviation, name,
290                         new LinearScale(ls.getScaleFactorToBaseUnit() * scaleFactor), unitSystem);
291             }
292             throw new UnitRuntimeException("Only possible to derive a unit from a unit with a linear scale");
293         }
294 
295     }
296 }