1use std::f64::consts::PI;
2use crate::atmosphere;
3
4const PEREZ_COEFFICIENTS: [[f64; 6]; 8] = [
8 [-0.0083117, 0.5877277, -0.0620636, -0.0596012, 0.0721249, -0.0220216],
9 [0.1299457, 0.6825954, -0.1513752, -0.0189325, 0.0659650, -0.0288748],
10 [0.3296958, 0.4868735, -0.2210958, 0.0554140, -0.0639588, -0.0260542],
11 [0.5682053, 0.1874990, -0.2951290, 0.1088631, -0.1519229, -0.0139754],
12 [0.8730280, -0.3920403, -0.3616149, 0.2255647, -0.4620442, 0.0012448],
13 [1.1326077, -1.2367284, -0.4118494, 0.2877813, -0.8230357, 0.0558225],
14 [1.0601591, -1.5999137, -0.3589221, 0.2642124, -1.1272340, 0.1310694],
15 [0.6777470, -0.3272588, -0.2504286, 0.1561313, -1.3765031, 0.2506212],
16];
17
18#[inline]
20pub fn aoi(surface_tilt: f64, surface_azimuth: f64, solar_zenith: f64, solar_azimuth: f64) -> f64 {
21 let tilt_rad = surface_tilt.to_radians();
22 let surf_az_rad = surface_azimuth.to_radians();
23 let zen_rad = solar_zenith.to_radians();
24 let sol_az_rad = solar_azimuth.to_radians();
25
26 let cos_aoi = zen_rad.cos() * tilt_rad.cos()
27 + zen_rad.sin() * tilt_rad.sin() * (sol_az_rad - surf_az_rad).cos();
28
29 let cos_aoi = cos_aoi.clamp(-1.0, 1.0);
30 cos_aoi.acos().to_degrees()
31}
32
33#[inline]
35pub fn get_extra_radiation(dayofyear: i32) -> f64 {
36 let b = 2.0 * PI * ((dayofyear - 1) as f64) / 365.0;
37 let rover_r0_sqrd = 1.00011
38 + 0.034221 * b.cos()
39 + 0.00128 * b.sin()
40 + 0.000719 * (2.0 * b).cos()
41 + 0.000077 * (2.0 * b).sin();
42 1366.1 * rover_r0_sqrd
43}
44
45#[inline]
47pub fn isotropic(surface_tilt: f64, dhi: f64) -> f64 {
48 dhi * (1.0 + surface_tilt.to_radians().cos()) / 2.0
49}
50
51#[inline]
57pub fn haydavies(surface_tilt: f64, _surface_azimuth: f64, dhi: f64, dni: f64, dni_extra: f64, solar_zenith: f64, _solar_azimuth: f64, aoi_in: f64) -> f64 {
58 let mut a = 0.0;
59 if dni_extra > 0.0 {
60 a = dni / dni_extra;
61 }
62 let a = a.clamp(0.0, 1.0);
63 let mut cos_z = solar_zenith.to_radians().cos();
64 if cos_z < 0.0436 { cos_z = 0.0436; }
65
66 let cos_aoi = aoi_in.to_radians().cos().max(0.0);
67 let r_b = cos_aoi / cos_z;
68
69 dhi * ((1.0 - a) * (1.0 + surface_tilt.to_radians().cos()) / 2.0 + a * r_b)
70}
71
72#[inline]
78pub fn klucher(surface_tilt: f64, _surface_azimuth: f64, dhi: f64, ghi: f64, solar_zenith: f64, _solar_azimuth: f64, aoi_in: f64) -> f64 {
79 let mut f = 0.0;
80 if ghi > 0.0 {
81 let frac = dhi / ghi;
82 f = 1.0 - frac * frac;
83 }
84 let f = f.clamp(0.0, 1.0);
85
86 let _cos_z = solar_zenith.to_radians().cos();
87 let cos_aoi = aoi_in.to_radians().cos().max(0.0);
88 let tilt_rad = surface_tilt.to_radians();
89
90 let term1 = 1.0 + f * (tilt_rad / 2.0).sin().powi(3);
91 let term2 = 1.0 + f * cos_aoi.powi(2) * (solar_zenith.to_radians().sin()).powi(3);
92
93 dhi * ((1.0 + tilt_rad.cos()) / 2.0) * term1 * term2
94}
95
96#[inline]
103pub fn perez(surface_tilt: f64, _surface_azimuth: f64, dhi: f64, dni: f64, dni_extra: f64, solar_zenith: f64, _solar_azimuth: f64, airmass: f64, aoi_in: f64) -> f64 {
104 let mut cos_z = solar_zenith.to_radians().cos();
105 if cos_z < 0.0436 { cos_z = 0.0436; } let cos_aoi = aoi_in.to_radians().cos().max(0.0); let _a = (dni_extra * 1e-6).max(1.0); let delta = dhi * airmass / dni_extra;
111
112 let mut epsilon = 1.0;
113 if dhi > 0.0 {
114 epsilon = ((dhi + dni) / dhi + 1.041 * solar_zenith.to_radians().powi(3)) /
115 (1.0 + 1.041 * solar_zenith.to_radians().powi(3));
116 }
117
118 let bin = if epsilon < 1.065 { 0 }
119 else if epsilon < 1.230 { 1 }
120 else if epsilon < 1.500 { 2 }
121 else if epsilon < 1.950 { 3 }
122 else if epsilon < 2.800 { 4 }
123 else if epsilon < 4.500 { 5 }
124 else if epsilon < 6.200 { 6 }
125 else { 7 };
126
127 let coeffs = PEREZ_COEFFICIENTS[bin];
128 let mut f1 = coeffs[0] + coeffs[1] * delta + coeffs[2] * solar_zenith.to_radians();
129 f1 = f1.max(0.0);
130 let f2 = coeffs[3] + coeffs[4] * delta + coeffs[5] * solar_zenith.to_radians();
131
132 let a_perez = cos_aoi;
133 let b_perez = cos_z;
134
135 dhi * ((1.0 - f1) * (1.0 + surface_tilt.to_radians().cos()) / 2.0 + f1 * a_perez / b_perez + f2 * surface_tilt.to_radians().sin())
136}
137
138#[inline]
145pub fn erbs(ghi: f64, zenith: f64, _day_of_year: u32, dni_extra: f64) -> (f64, f64) {
146 if ghi <= 0.0 || zenith >= 90.0 { return (0.0, 0.0); }
147 let mut cos_z = zenith.to_radians().cos();
148 if cos_z < 0.0436 { cos_z = 0.0436; }
149
150 let kt = ghi / (dni_extra * cos_z);
151
152 let kd = if kt <= 0.22 {
153 1.0 - 0.09 * kt
154 } else if kt <= 0.80 {
155 0.9511 - 0.1604 * kt + 4.388 * kt.powi(2) - 16.638 * kt.powi(3) + 12.336 * kt.powi(4)
156 } else {
157 0.165
158 };
159
160 let dhi = ghi * kd.clamp(0.0, 1.0);
161 let dni = ((ghi - dhi) / cos_z).max(0.0);
162
163 (dni, dhi)
164}
165
166#[inline]
173pub fn boland(ghi: f64, zenith: f64, dni_extra: f64) -> (f64, f64) {
174 if ghi <= 0.0 || zenith >= 90.0 { return (0.0, 0.0); }
175 let cos_z = zenith.to_radians().cos().max(0.0436);
176
177 let kt = ghi / (dni_extra * cos_z);
178
179 let a_coeff = 8.645;
182 let b_coeff = 0.613;
183 let kd = 1.0 / (1.0 + (a_coeff * (kt - b_coeff)).exp());
184 let dhi = ghi * kd.clamp(0.0, 1.0);
185 let dni = ((ghi - dhi) / cos_z).max(0.0);
186
187 (dni, dhi)
188}
189
190#[inline]
199pub fn dirint(ghi: f64, zenith: f64, _dew_point: f64, _pressure: f64, dni_extra: f64) -> (f64, f64) {
200 if ghi <= 0.0 || zenith >= 90.0 { return (0.0, 0.0); }
203 let cos_z = zenith.to_radians().cos().max(0.0436);
204
205 let kt = ghi / (dni_extra * cos_z);
206
207 let kd = if kt <= 0.2 {
209 0.99
210 } else if kt <= 0.8 {
211 0.95 - 0.9 * (kt - 0.2)
212 } else {
213 0.15
214 };
215
216 let dhi = ghi * kd.clamp(0.0, 1.0);
217 let dni = ((ghi - dhi) / cos_z).max(0.0);
218 (dni, dhi)
219}
220
221#[inline]
223pub fn poa_direct(aoi_in: f64, dni: f64) -> f64 {
224 let aoi_rad = aoi_in.to_radians();
225 if aoi_rad.abs() > std::f64::consts::PI / 2.0 {
226 0.0
227 } else {
228 (dni * aoi_rad.cos()).max(0.0)
229 }
230}
231
232#[allow(clippy::too_many_arguments)]
239#[inline]
240pub fn reindl(surface_tilt: f64, dhi: f64, ghi: f64, dni: f64, dni_extra: f64, solar_zenith: f64, aoi_in: f64) -> f64 {
241 let mut a = 0.0;
242 if dni_extra > 0.0 { a = dni / dni_extra; }
243 let a = a.clamp(0.0, 1.0);
244
245 let cos_z = solar_zenith.to_radians().cos().max(0.0436);
246 let cos_aoi = aoi_in.to_radians().cos().max(0.0);
247 let r_b = cos_aoi / cos_z;
248
249 let f = if ghi > 0.0 { (dni / ghi).powi(2) } else { 0.0 };
250
251 let tilt_rad = surface_tilt.to_radians();
252 let term1 = dhi * (1.0 - a) * (1.0 + tilt_rad.cos()) / 2.0 * (1.0 + f * (tilt_rad / 2.0).sin().powi(3));
253 let term2 = dhi * a * r_b;
254
255 term1 + term2
256}
257
258#[inline]
262pub fn clearness_index(ghi: f64, solar_zenith: f64, dni_extra: f64) -> f64 {
263 let cos_z = solar_zenith.to_radians().cos().max(0.01);
264 let ghi_extra = dni_extra * cos_z;
265 if ghi_extra <= 0.0 { 0.0 } else { (ghi / ghi_extra).clamp(0.0, 1.0) }
266}
267
268#[inline]
273pub fn clearness_index_zenith_independent(clearness_idx: f64, _solar_zenith: f64, airmass_absolute: f64) -> f64 {
274 let am = airmass_absolute.max(1.0);
275 let denominator = 1.031 * (-1.4 / (0.9 + 9.4 / am)).exp() + 0.1;
277 (clearness_idx / denominator).max(0.0)
278}
279
280#[inline]
289pub fn aoi_projection(surface_tilt: f64, surface_azimuth: f64, solar_zenith: f64, solar_azimuth: f64) -> f64 {
290 let tilt_rad = surface_tilt.to_radians();
291 let surf_az_rad = surface_azimuth.to_radians();
292 let zen_rad = solar_zenith.to_radians();
293 let sol_az_rad = solar_azimuth.to_radians();
294
295 let projection = zen_rad.cos() * tilt_rad.cos()
296 + zen_rad.sin() * tilt_rad.sin() * (sol_az_rad - surf_az_rad).cos();
297
298 projection.clamp(-1.0, 1.0)
299}
300
301#[inline]
312pub fn beam_component(surface_tilt: f64, surface_azimuth: f64, solar_zenith: f64, solar_azimuth: f64, dni: f64) -> f64 {
313 let proj = aoi_projection(surface_tilt, surface_azimuth, solar_zenith, solar_azimuth);
314 (dni * proj).max(0.0)
315}
316
317#[inline]
331pub fn get_ground_diffuse(surface_tilt: f64, ghi: f64, albedo: f64) -> f64 {
332 ghi * albedo * (1.0 - surface_tilt.to_radians().cos()) * 0.5
333}
334
335#[derive(Debug, Clone, Copy)]
337pub struct PoaComponents {
338 pub poa_global: f64,
340 pub poa_direct: f64,
342 pub poa_diffuse: f64,
344 pub poa_sky_diffuse: f64,
346 pub poa_ground_diffuse: f64,
348}
349
350#[inline]
362pub fn poa_components(aoi_val: f64, dni: f64, poa_sky_diffuse: f64, poa_ground_diffuse: f64) -> PoaComponents {
363 let poa_direct = (dni * aoi_val.to_radians().cos()).max(0.0);
364 let poa_diffuse = poa_sky_diffuse + poa_ground_diffuse;
365 let poa_global = poa_direct + poa_diffuse;
366
367 PoaComponents {
368 poa_global,
369 poa_direct,
370 poa_diffuse,
371 poa_sky_diffuse,
372 poa_ground_diffuse,
373 }
374}
375
376pub type TotalIrradiance = PoaComponents;
378
379#[derive(Debug, Clone, Copy, PartialEq, Eq)]
381pub enum DiffuseModel {
382 Isotropic,
383 Klucher,
384 HayDavies,
385 Reindl,
386 Perez,
387}
388
389#[allow(clippy::too_many_arguments)]
406#[inline]
407pub fn get_sky_diffuse(
408 surface_tilt: f64,
409 surface_azimuth: f64,
410 solar_zenith: f64,
411 solar_azimuth: f64,
412 dni: f64,
413 ghi: f64,
414 dhi: f64,
415 model: DiffuseModel,
416 dni_extra: Option<f64>,
417 airmass: Option<f64>,
418) -> f64 {
419 let aoi_val = aoi(surface_tilt, surface_azimuth, solar_zenith, solar_azimuth);
420
421 match model {
422 DiffuseModel::Isotropic => isotropic(surface_tilt, dhi),
423 DiffuseModel::Klucher => klucher(surface_tilt, surface_azimuth, dhi, ghi, solar_zenith, solar_azimuth, aoi_val),
424 DiffuseModel::HayDavies => {
425 let extra = dni_extra.unwrap_or(0.0);
426 haydavies(surface_tilt, surface_azimuth, dhi, dni, extra, solar_zenith, solar_azimuth, aoi_val)
427 }
428 DiffuseModel::Reindl => {
429 let extra = dni_extra.unwrap_or(0.0);
430 reindl(surface_tilt, dhi, ghi, dni, extra, solar_zenith, aoi_val)
431 }
432 DiffuseModel::Perez => {
433 let extra = dni_extra.unwrap_or(0.0);
434 let am = airmass.unwrap_or_else(|| atmosphere::get_relative_airmass(solar_zenith));
435 perez(surface_tilt, surface_azimuth, dhi, dni, extra, solar_zenith, solar_azimuth, am, aoi_val)
436 }
437 }
438}
439
440#[allow(clippy::too_many_arguments)]
456#[inline]
457pub fn get_total_irradiance(
458 surface_tilt: f64,
459 surface_azimuth: f64,
460 solar_zenith: f64,
461 solar_azimuth: f64,
462 dni: f64,
463 ghi: f64,
464 dhi: f64,
465 albedo: f64,
466 model: DiffuseModel,
467 dni_extra: Option<f64>,
468 airmass: Option<f64>,
469) -> TotalIrradiance {
470 let aoi_val = aoi(surface_tilt, surface_azimuth, solar_zenith, solar_azimuth);
471
472 let sky_diffuse = get_sky_diffuse(
473 surface_tilt, surface_azimuth, solar_zenith, solar_azimuth,
474 dni, ghi, dhi, model, dni_extra, airmass,
475 );
476
477 let ground_diffuse = get_ground_diffuse(surface_tilt, ghi, albedo);
478
479 poa_components(aoi_val, dni, sky_diffuse, ground_diffuse)
480}
481
482#[derive(Debug, Clone, Copy)]
484pub struct DiscOutput {
485 pub dni: f64,
487 pub kt: f64,
489 pub airmass: f64,
491}
492
493fn disc_kn(kt: f64, am: f64) -> (f64, f64) {
495 let am = am.min(12.0);
496
497 let (a, b, c) = if kt <= 0.6 {
498 (
499 0.512 + kt * (-1.56 + kt * (2.286 - 2.222 * kt)),
500 0.37 + 0.962 * kt,
501 -0.28 + kt * (0.932 - 2.048 * kt),
502 )
503 } else {
504 (
505 -5.743 + kt * (21.77 + kt * (-27.49 + 11.56 * kt)),
506 41.4 + kt * (-118.5 + kt * (66.05 + 31.9 * kt)),
507 -47.01 + kt * (184.2 + kt * (-222.0 + 73.81 * kt)),
508 )
509 };
510
511 let delta_kn = a + b * (c * am).exp();
512 let knc = 0.866 + am * (-0.122 + am * (0.0121 + am * (-0.000653 + 1.4e-05 * am)));
513 let kn = knc - delta_kn;
514
515 (kn, am)
516}
517
518#[inline]
535pub fn disc(ghi: f64, solar_zenith: f64, day_of_year: i32, pressure: Option<f64>) -> DiscOutput {
536 let max_zenith = 87.0;
537 let min_cos_zenith = 0.065;
538
539 let b = 2.0 * PI * ((day_of_year - 1) as f64) / 365.0;
541 let rover = 1.00011 + 0.034221 * b.cos() + 0.00128 * b.sin()
542 + 0.000719 * (2.0 * b).cos() + 0.000077 * (2.0 * b).sin();
543 let i0 = 1370.0 * rover;
544
545 let cos_z = solar_zenith.to_radians().cos().max(min_cos_zenith);
547 let ghi_extra = i0 * cos_z;
548 let kt = if ghi_extra > 0.0 { (ghi / ghi_extra).clamp(0.0, 1.0) } else { 0.0 };
549
550 let mut am = {
553 let z = solar_zenith;
554 let cos_z = z.to_radians().cos();
555 let c = 93.885 - z;
556 if c <= 0.0 {
557 f64::NAN
558 } else {
559 1.0 / (cos_z + 0.15 * c.powf(-1.253))
560 }
561 };
562 if let Some(p) = pressure {
563 am = atmosphere::get_absolute_airmass(am, p);
564 }
565
566 let (kn, am) = disc_kn(kt, am);
567 let mut dni = kn * i0;
568
569 if solar_zenith > max_zenith || ghi < 0.0 || dni < 0.0 {
570 dni = 0.0;
571 }
572
573 DiscOutput { dni, kt, airmass: am }
574}
575
576#[derive(Debug, Clone, Copy)]
578pub struct ErbsDriesseOutput {
579 pub dni: f64,
581 pub dhi: f64,
583 pub kt: f64,
585}
586
587#[inline]
603pub fn erbs_driesse(ghi: f64, solar_zenith: f64, day_of_year: i32) -> ErbsDriesseOutput {
604 let max_zenith = 87.0;
605 let min_cos_zenith = 0.065;
606
607 let ghi = ghi.max(0.0);
608
609 let dni_extra = get_extra_radiation(day_of_year);
610
611 let cos_z = solar_zenith.to_radians().cos().max(min_cos_zenith);
613 let ghi_extra = dni_extra * cos_z;
614 let kt = if ghi_extra > 0.0 { (ghi / ghi_extra).clamp(0.0, 1.0) } else { 0.0 };
615
616 let p = [12.26911439571261, -16.4705084246973, 4.24692671521831700,
618 -0.11390583806313881, 0.946296633571001];
619
620 let df = if kt <= 0.216 {
622 1.0 - 0.09 * kt
623 } else if kt <= 0.792 {
624 p[0] * kt.powi(4) + p[1] * kt.powi(3) + p[2] * kt.powi(2) + p[3] * kt + p[4]
626 } else {
627 0.165
628 };
629
630 let dhi = df * ghi;
631 let mut dni = (ghi - dhi) / solar_zenith.to_radians().cos();
632
633 let bad = solar_zenith > max_zenith || ghi < 0.0 || dni < 0.0;
634 let dhi = if bad { ghi } else { dhi };
635 if bad {
636 dni = 0.0;
637 }
638
639 ErbsDriesseOutput { dni, dhi, kt }
640}
641
642#[inline]
653pub fn king(surface_tilt: f64, dhi: f64, ghi: f64, solar_zenith: f64) -> f64 {
654 let cos_tilt = surface_tilt.to_radians().cos();
655 let sky_diffuse = dhi * (1.0 + cos_tilt) / 2.0
656 + ghi * (0.012 * solar_zenith - 0.04) * (1.0 - cos_tilt) / 2.0;
657 sky_diffuse.max(0.0)
658}
659
660#[inline]
679pub fn dirindex(
680 ghi: f64,
681 ghi_clearsky: f64,
682 dni_clearsky: f64,
683 zenith: f64,
684 day_of_year: i32,
685 pressure: Option<f64>,
686) -> f64 {
687 let dni_extra = get_extra_radiation(day_of_year);
688 let p = pressure.unwrap_or(101325.0);
689
690 let (dni_dirint, _) = dirint(ghi, zenith, 0.0, p, dni_extra);
691 let (dni_dirint_clear, _) = dirint(ghi_clearsky, zenith, 0.0, p, dni_extra);
692
693 if dni_dirint_clear <= 0.0 {
694 return 0.0;
695 }
696
697 let dni = dni_clearsky * dni_dirint / dni_dirint_clear;
698 dni.max(0.0)
699}
700
701const PD_KNOTS: [f64; 13] = [
707 0.000, 0.000, 0.000,
708 0.061, 0.187, 0.333, 0.487, 0.643, 0.778, 0.839,
709 1.000, 1.000, 1.000,
710];
711
712const PD_COEFS: [[[f64; 13]; 3]; 2] = [
716 [
718 [-0.053, -0.008, 0.131, 0.328, 0.557, 0.861, 1.212, 1.099, 0.544, 0.544, 0.000, 0.000, 0.000],
720 [ 0.529, 0.588, 0.770, 0.471, 0.241, -0.323, -1.239, -1.847, 0.157, 0.157, 0.000, 0.000, 0.000],
722 [-0.028, -0.062, -0.167, -0.216, -0.300, -0.355, -0.444, -0.365, -0.213, -0.213, 0.000, 0.000, 0.000],
724 ],
725 [
727 [-0.071, -0.060, -0.026, 0.069, 0.086, 0.240, 0.305, 0.275, 0.118, 0.118, 0.000, 0.000, 0.000],
729 [ 0.061, 0.072, 0.106, -0.105, -0.085, -0.467, -0.797, -1.132, -1.455, -1.455, 0.000, 0.000, 0.000],
731 [-0.019, -0.022, -0.032, -0.028, -0.012, -0.008, 0.047, 0.124, 0.292, 0.292, 0.000, 0.000, 0.000],
733 ],
734];
735
736fn pd_splev(x: f64, coefs: &[f64; 13]) -> f64 {
740 let t = &PD_KNOTS;
741 let k = 2_usize; let n = t.len() - k - 1; let x = x.clamp(t[k], t[n]);
746
747 let mut span = k;
750 for i in k..n {
751 if t[i + 1] > x {
752 span = i;
753 break;
754 }
755 span = i;
756 }
757
758 let mut d = [0.0_f64; 3]; for j in 0..=k {
761 let idx = span - k + j;
762 if idx < 13 {
763 d[j] = coefs[idx];
764 }
765 }
766
767 for r in 1..=k {
769 for j in (r..=k).rev() {
770 let left = span + j - k;
771 let right = span + 1 + j - r;
772 let denom = t[right] - t[left];
773 if denom.abs() < 1e-15 {
774 d[j] = 0.0;
775 } else {
776 let alpha = (x - t[left]) / denom;
777 d[j] = (1.0 - alpha) * d[j - 1] + alpha * d[j];
778 }
779 }
780 }
781
782 d[k]
783}
784
785fn pd_calc_delta(dhi: f64, dni_extra: f64, solar_zenith: f64, airmass: Option<f64>) -> f64 {
787 let am = match airmass {
788 Some(a) => {
789 if solar_zenith >= 90.0 {
790 atmosphere::get_relative_airmass(89.999)
792 } else {
793 a
794 }
795 }
796 None => {
797 if solar_zenith >= 90.0 {
798 atmosphere::get_relative_airmass(89.999)
799 } else {
800 atmosphere::get_relative_airmass(solar_zenith)
801 }
802 }
803 };
804
805 let am = if am.is_nan() { atmosphere::get_relative_airmass(89.999) } else { am };
806
807 if dni_extra <= 0.0 || am <= 0.0 {
808 return 0.0;
809 }
810
811 dhi / (dni_extra / am)
812}
813
814fn pd_calc_zeta(dhi: f64, dni: f64, zenith: f64) -> f64 {
816 if dhi <= 0.0 && dni <= 0.0 {
817 return 0.0;
818 }
819
820 let sum = dhi + dni;
821 let mut zeta = if sum > 0.0 { dni / sum } else { 0.0 };
822
823 if dhi == 0.0 {
824 zeta = 0.0;
825 }
826
827 let kappa = 1.041;
829 let kterm = kappa * zenith.to_radians().powi(3);
830 let denom = 1.0 - kterm * (zeta - 1.0);
831 if denom.abs() > 1e-15 {
832 zeta /= denom;
833 }
834
835 zeta
836}
837
838fn pd_f(i: usize, j: usize, zeta: f64) -> f64 {
840 pd_splev(zeta, &PD_COEFS[i - 1][j - 1])
841}
842
843#[allow(clippy::too_many_arguments)]
865#[inline]
866pub fn perez_driesse(
867 surface_tilt: f64,
868 surface_azimuth: f64,
869 dhi: f64,
870 dni: f64,
871 dni_extra: f64,
872 solar_zenith: f64,
873 solar_azimuth: f64,
874 airmass: Option<f64>,
875) -> f64 {
876 let delta = pd_calc_delta(dhi, dni_extra, solar_zenith, airmass);
877 let zeta = pd_calc_zeta(dhi, dni, solar_zenith);
878
879 let z = solar_zenith.to_radians();
880
881 let f1 = pd_f(1, 1, zeta) + pd_f(1, 2, zeta) * delta + pd_f(1, 3, zeta) * z;
882 let f2 = pd_f(2, 1, zeta) + pd_f(2, 2, zeta) * delta + pd_f(2, 3, zeta) * z;
883
884 let f1 = f1.clamp(0.0, 0.9);
886
887 let a = aoi_projection(surface_tilt, surface_azimuth, solar_zenith, solar_azimuth).max(0.0);
889
890 let b = solar_zenith.to_radians().cos().max(85.0_f64.to_radians().cos());
892
893 let term1 = 0.5 * (1.0 - f1) * (1.0 + surface_tilt.to_radians().cos());
894 let term2 = f1 * a / b;
895 let term3 = f2 * surface_tilt.to_radians().sin();
896
897 (dhi * (term1 + term2 + term3)).max(0.0)
898}
899