embedded3: cut predictor convection carries ρ (host + e3_cut.cu; density-scaling pin); operator load route includes the wall exchange (exchange.rs); reconstructed_parts, probe aperture floor knob; dfg_split diagnostic test
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Co-Authored-By: Claude Fable 5.1 <[email protected]>
This commit is contained in:
co-authored by
Claude Fable 5.1
parent
680041d63d
commit
f6add276c0
@@ -176,7 +176,8 @@ __device__ double cut_face_update(const E3Params& g, const E3Ptrs& f, const E3Cu
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if (f_dn1 >= 0) diff -= mu * g_minus * a_d * (u0 - dn1) / h[d];
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else if (sides[d][0] == SIDE_VELOCITY) diff -= mu * g_minus * a_d * (u0 - beyond_m) / (0.5 * h[d]);
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}
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conv -= mass_out * u0;
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/* The mass fluxes above are volume fluxes: the momentum flux carries rho. */
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conv = rho * (conv - mass_out * u0);
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int cpi = cut_cell(g, cp[0], cp[1], cp[2]);
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int cmi = cut_cell(g, cm[0], cm[1], cm[2]);
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double p_plus = cpi >= 0 ? f.p[cpi] : 0.0;
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@@ -207,6 +207,8 @@ impl Mask {
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step_apertures: None,
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step_open: None,
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merge_master: Vec::new(),
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scheme: crate::solvers::incompressible::ConvectionScheme::Upwind,
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density: 1.0,
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};
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mask.compute_merging(None);
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Ok(mask)
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@@ -564,7 +566,8 @@ impl Mask {
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/// without a cut geometry.
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pub fn cut_wall_force(&self, body: &Body, f: &Field, mu: f64, t: f64) -> Option<[f64; 3]> {
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let (p, s) = self.cut_wall_force_parts(body, f, mu, t)?;
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Some([p[0] + s[0], p[1] + s[1], p[2] + s[2]])
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let x = self.cut_wall_exchange_force(body, f, mu, self.density, t, None)?;
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Some([p[0] + s[0] + x[0], p[1] + s[1] + x[1], p[2] + s[2] + x[2]])
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}
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/// The reconstructed wall route (S2-1 remedy): on every wall polygon
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@@ -585,12 +588,26 @@ impl Mask {
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t: f64,
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planes: Option<(usize, usize)>,
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) -> Option<[f64; 3]> {
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let (p, s) = self.cut_wall_force_reconstructed_parts(body, f, mu, t, planes)?;
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Some([p[0] + s[0], p[1] + s[1], p[2] + s[2]])
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}
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/// The reconstructed route split into its pressure and shear parts.
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pub fn cut_wall_force_reconstructed_parts(
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&self,
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body: &Body,
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f: &Field,
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mu: f64,
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t: f64,
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planes: Option<(usize, usize)>,
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) -> Option<([f64; 3], [f64; 3])> {
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let cut = self.cut.as_ref()?;
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let g = self.grid;
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let (k0, k1) = planes.unwrap_or((0, g.nz));
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let h = g.dx.min(g.dy).min(g.dz);
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let (d1, d2) = (h, 2.0 * h);
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let mut force = [0.0; 3];
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let mut shear = [0.0; 3];
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for (idx, w) in cut.wall.iter().enumerate() {
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let area = (w[0] * w[0] + w[1] * w[1] + w[2] * w[2]).sqrt();
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if area == 0.0 || !self.cell_fluid[idx] {
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@@ -645,10 +662,10 @@ impl Mask {
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let dn = wall_gradient(t1[c] - ts[c], t2[c] - ts[c]);
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// Traction on the body = −(fluid stress on the fluid side):
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// the shear the fluid exerts on the wall along +t.
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force[c] += mu * dn * area;
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shear[c] += mu * dn * area;
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}
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}
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Some(force)
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Some((force, shear))
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}
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/// The cut-cell load route restricted to the cells (and faces) of the
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@@ -663,8 +680,13 @@ impl Mask {
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(k0, k1): (usize, usize),
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) -> Option<[f64; 3]> {
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let (p, s) = self.cut_wall_force_parts_in(body, f, mu, t, Some((k0, k1)))?;
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let x = self.cut_wall_exchange_force(body, f, mu, self.density, t, Some((k0, k1)))?;
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let lz = (k1 - k0) as f64 * self.grid.dz;
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Some([(p[0] + s[0]) / lz, (p[1] + s[1]) / lz, (p[2] + s[2]) / lz])
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Some([
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(p[0] + s[0] + x[0]) / lz,
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(p[1] + s[1] + x[1]) / lz,
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(p[2] + s[2] + x[2]) / lz,
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])
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}
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/// The cut-cell load route split into its pressure and shear parts.
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@@ -0,0 +1,143 @@
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//! The wall-exchange part of the operator load route (S2-1 remedy, second
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//! form). A fluid face control volume next to a prescribed (ghost or
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//! solid) face still exchanges momentum with it: the diffusive flux
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//! `μ g A (U_b − u_f)/h` through the half-aperture face at the cell
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//! centre and the convective flux `ρ m (u_face − u_f)` on the same face.
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//! Both are forces the wall exerts on the fluid that the closure polygon's
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//! shear `μ A_w (u_f − U_b)/d_f` does not carry, so the operator route
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//! read short of the box route by exactly this exchange (a conservation
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//! gap that did not shrink with h). Summed here with the predictor's own
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//! flux formulas, the operator route closes the discrete momentum balance.
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use super::body::Body;
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use super::field::Field;
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use super::wall::{FaceKind, Mask};
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use crate::solvers::incompressible::ConvectionScheme;
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impl Mask {
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/// The momentum the fluid's face control volumes exchange with the
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/// prescribed faces beside them, as a force on the body (the negative
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/// of the force on the fluid), over the z planes `planes` (all when
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/// `None`). `None` without a cut geometry.
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pub fn cut_wall_exchange_force(
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&self,
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body: &Body,
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f: &Field,
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mu: f64,
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rho: f64,
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t: f64,
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planes: Option<(usize, usize)>,
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) -> Option<[f64; 3]> {
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let _ = body;
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let _ = t;
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self.cut.as_ref()?;
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let g = self.grid;
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let lat = self.lattice();
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let h = [g.dx, g.dy, g.dz];
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let area = [g.dy * g.dz, g.dx * g.dz, g.dx * g.dy];
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let (nx, ny, nz) = (g.nx, g.ny, g.nz);
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let (k0, k1) = planes.unwrap_or((0, nz));
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let w_range = if self.periodic_z { 0..nz } else { 1..nz };
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let vals: [&[f64]; 3] = [&f.u, &f.v, &f.w];
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let scheme = self.scheme;
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let kind = |cc: usize, idx: usize| match cc {
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0 => self.u_kind[idx],
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1 => self.v_kind[idx],
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_ => self.w_kind[idx],
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};
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let val = |cc: usize, q: [i64; 3]| lat.face(cc, q).map(|i| vals[cc][i]);
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let ap = |cc: usize, q: [i64; 3]| self.aperture(cc, q);
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let e = |d: usize| {
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let mut v = [0i64; 3];
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v[d] = 1;
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v
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};
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let add =
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|a: [i64; 3], b: [i64; 3], s: i64| [a[0] + s * b[0], a[1] + s * b[1], a[2] + s * b[2]];
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let upwind = |m: f64, up: f64, dn: f64| if m >= 0.0 { up } else { dn };
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let mut force = [0.0; 3];
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for c in 0..3 {
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let (ir, jr, kr) = match c {
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0 => (1..nx, 0..ny, k0..k1),
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1 => (0..nx, 1..ny, k0..k1),
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_ => (0..nx, 0..ny, w_range.start.max(k0)..w_range.end.min(k1)),
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};
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let ec = e(c);
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for k in kr {
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for j in jr.clone() {
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for i in ir.clone() {
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let p = [i as i64, j as i64, k as i64];
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let idx = lat.face(c, p).expect("face");
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if kind(c, idx) != FaceKind::Fluid {
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continue;
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}
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let cv = self.cv_geometry(c, p);
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let u0 = vals[c][idx];
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let cell_minus = add(p, ec, -1);
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let cell_plus = p;
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for d in 0..3 {
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let ed = e(d);
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let a_d = area[d];
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let up1 = val(c, add(p, ed, 1));
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let up2 = val(c, add(p, ed, 2));
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let dn1 = val(c, add(p, ed, -1));
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let dn2 = val(c, add(p, ed, -2));
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let (m_plus, m_minus) = if d == c {
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let f_up =
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ap(c, add(p, ec, 1)).unwrap_or(cv.alpha) * up1.unwrap_or(u0);
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let f_dn =
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ap(c, add(p, ec, -1)).unwrap_or(cv.alpha) * dn1.unwrap_or(u0);
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let f0 = cv.alpha * u0;
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(0.5 * (f0 + f_up) * a_d, 0.5 * (f_dn + f0) * a_d)
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} else {
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let flux = |q: [i64; 3]| {
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ap(d, q).unwrap_or(1.0) * val(d, q).unwrap_or(0.0)
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};
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(
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0.5 * (flux(add(cell_minus, ed, 1))
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+ flux(add(cell_plus, ed, 1)))
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* a_d,
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0.5 * (flux(cell_minus) + flux(cell_plus)) * a_d,
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)
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};
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// Plus side: a prescribed neighbour face.
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if let Some(fp) = lat.face(c, add(p, ed, 1)) {
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if kind(c, fp) != FaceKind::Fluid {
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let un = vals[c][fp];
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let delta = if scheme == ConvectionScheme::Upwind {
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0.0
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} else if m_plus >= 0.0 {
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scheme.face_correction(dn1, u0, un)
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} else {
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scheme.face_correction(up2, un, u0)
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};
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let u_face = upwind(m_plus, u0, un) + delta;
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let on_fluid = -rho * m_plus * (u_face - u0)
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+ mu * cv.ap[d][1] * a_d * (un - u0) / h[d];
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force[c] -= on_fluid;
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}
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}
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// Minus side.
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if let Some(fm) = lat.face(c, add(p, ed, -1)) {
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if kind(c, fm) != FaceKind::Fluid {
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let ud = vals[c][fm];
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let delta = if scheme == ConvectionScheme::Upwind {
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0.0
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} else if m_minus >= 0.0 {
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scheme.face_correction(dn2, ud, u0)
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} else {
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scheme.face_correction(up1, u0, ud)
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};
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let u_face = upwind(m_minus, ud, u0) + delta;
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let on_fluid = rho * m_minus * (u_face - u0)
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+ mu * cv.ap[d][0] * a_d * (ud - u0) / h[d];
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force[c] -= on_fluid;
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}
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}
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}
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}
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}
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}
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}
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Some(force)
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}
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}
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@@ -13,6 +13,16 @@ use super::body::Body;
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use super::field::Field;
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use super::wall::{FaceKind, Mask, linear_fit, stencil_nodes, z_planes};
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/// Minimum face aperture for a velocity node to enter a probe's
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/// interpolation (`RTX_E3_PROBE_MIN_APERTURE`, default 0.5; 0 keeps every
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/// fluid face, the reading before S2-1's fix).
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fn probe_min_aperture() -> f64 {
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std::env::var("RTX_E3_PROBE_MIN_APERTURE")
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.ok()
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.and_then(|v| v.parse().ok())
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.unwrap_or(0.5)
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}
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#[derive(Debug, Clone, Copy, PartialEq)]
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pub struct SurfaceForce {
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pub f: [f64; 3],
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@@ -154,10 +164,16 @@ impl Mask {
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let foot_c = (foot.0, foot.1, if zq == z { foot.2 } else { zq });
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let nodes = stencil_nodes((x, y, zq), c, g, self.periodic_z(), |_| None);
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let values: &[f64] = [&f.u, &f.v, &f.w][c];
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// A cut face's velocity lives on the open part of the face, not
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// at its centre: a node whose centre lies in the body would put
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// the wall profile's value h/2 too deep and bias the wall
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// gradient at O(1). Nodes below the minimum aperture are dropped
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// and the point's own wall intercept takes their place.
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let min_aperture = probe_min_aperture();
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let fluid = |idx: usize| match c {
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0 => self.u_kind(idx) == FaceKind::Fluid,
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1 => self.v_kind(idx) == FaceKind::Fluid,
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_ => self.w_kind(idx) == FaceKind::Fluid,
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0 => self.u_kind(idx) == FaceKind::Fluid && self.a_u(idx) >= min_aperture,
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1 => self.v_kind(idx) == FaceKind::Fluid && self.a_v(idx) >= min_aperture,
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_ => self.w_kind(idx) == FaceKind::Fluid && self.a_w(idx) >= min_aperture,
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};
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if nodes.iter().all(|n| fluid(n.idx)) {
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out[c] = nodes.iter().map(|n| n.weight * values[n.idx]).sum();
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@@ -9,6 +9,7 @@
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pub mod body;
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pub mod cut;
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pub mod cutwall;
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pub mod exchange;
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pub mod export_vtk;
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pub mod field;
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pub mod grid;
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+3
-1
@@ -201,7 +201,9 @@ impl Solver {
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// control volume (zero for a body at rest, the swept rate
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// otherwise) multiplies the face's own value, so a uniform field
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// stays uniform on any wall motion.
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conv -= mass_out * u0;
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// The mass fluxes above are volume fluxes: the momentum flux carries ρ
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// (inertia, diffusion and the pressure are dynamic).
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let conv = rho * (conv - mass_out * u0);
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let p_plus = lat.cell(cell_plus).map_or(0.0, |ci| field.p[ci]);
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let p_minus = lat.cell(cell_minus).map_or(0.0, |ci| field.p[ci]);
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let pressure = -(p_plus - p_minus) * cv.alpha * area[c];
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@@ -213,6 +213,11 @@ impl Solver {
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Mask::build_cut_from(body, g, t, self.params.boundaries, prev)
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}
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}
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.map(|mut m| {
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m.scheme = self.params.convection_scheme;
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m.density = self.fluid.density;
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m
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})
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.expect("embedded mask")
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}
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@@ -92,6 +92,11 @@ pub struct Mask {
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/// (`usize::MAX` = its own row) — a small cell shares its pressure
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/// unknown with its largest active face neighbour in the projection.
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pub(super) merge_master: Vec<usize>,
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/// The predictor's convection scheme (the exchange route replicates
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/// its limited fluxes on the faces next to prescribed ones).
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pub(super) scheme: crate::solvers::incompressible::ConvectionScheme,
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/// The fluid's density (the exchange route's convective flux).
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pub(super) density: f64,
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}
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/// The z lattice position of a query: the lower plane index, the upper
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@@ -502,6 +507,8 @@ impl Mask {
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step_apertures: None,
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step_open: None,
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merge_master: Vec::new(),
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scheme: crate::solvers::incompressible::ConvectionScheme::Upwind,
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density: 1.0,
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})
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}
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@@ -0,0 +1,101 @@
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//! Density-scaling pin for the cut-cell predictor (host): the same flow at
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//! `ρ` and `1000 ρ` with `μ` scaled alike is the same velocity field and a
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//! pressure scaled by 1000 — every term of the momentum equation carries
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//! `ρ` (the convection term used to be a bare volume flux times velocity,
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//! which starved every ρ = 1000 cut-cell run of convection).
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use rtx_cfd::solvers::incompressible::ConvectionScheme;
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use rtx_cfd::solvers::incompressible::embedded3::{
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Body, Boundaries, Field, Fluid, Grid, Parameters, Side, Solver, WallScheme,
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};
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fn run(rho: f64, moving: bool) -> Field {
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let n = 16;
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let h = 1.0 / n as f64;
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let g = Grid::cubic(2 * n, n, n, h);
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let nu = 1e-2;
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let mut solver = Solver::new(
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Fluid {
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density: rho,
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viscosity: rho * nu,
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reference_velocity: 1.0,
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reference_length: 0.3,
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},
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Parameters {
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corrector_steps: 2,
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tolerance: 1e-11,
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convection_scheme: ConvectionScheme::TvdVanAlbada,
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wall_scheme: WallScheme::CutCell,
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boundaries: Boundaries {
|
||||
x1: Side::PressureOutlet,
|
||||
..Boundaries::default()
|
||||
},
|
||||
max_surface_speed: if moving { Some(0.5) } else { None },
|
||||
..Parameters::default()
|
||||
},
|
||||
);
|
||||
solver.set_boundary_velocity(|x, _, _, _| {
|
||||
if x <= 0.0 {
|
||||
(1.0, 0.0, 0.0)
|
||||
} else {
|
||||
(0.0, 0.0, 0.0)
|
||||
}
|
||||
});
|
||||
let xc = move |t: f64| 0.7 + if moving { 0.1 * (3.0 * t).sin() } else { 0.0 };
|
||||
let body = Body::from_sdf(move |x, y, z, t| {
|
||||
((x - xc(t)).powi(2) + (y - 0.5_f64).powi(2) + (z - 0.5_f64).powi(2)).sqrt() - 0.15
|
||||
})
|
||||
.with_surface_velocity(move |_, _, _, t| {
|
||||
(if moving { 0.3 * (3.0 * t).cos() } else { 0.0 }, 0.0, 0.0)
|
||||
});
|
||||
if moving {
|
||||
solver.set_moving_body(body);
|
||||
} else {
|
||||
solver.set_body(body);
|
||||
}
|
||||
let mut field = Field::new(g);
|
||||
for k in 0..n {
|
||||
for j in 0..n {
|
||||
for i in 0..=2 * n {
|
||||
field.u[g.uface(k, j, i)] = 1.0;
|
||||
}
|
||||
}
|
||||
}
|
||||
solver.initialize(&mut field);
|
||||
let dt = 0.2 * h;
|
||||
for _ in 0..40 {
|
||||
solver.advance(&mut field, dt);
|
||||
}
|
||||
field
|
||||
}
|
||||
|
||||
fn compare(moving: bool) {
|
||||
let a = run(1.0, moving);
|
||||
let b = run(1000.0, moving);
|
||||
let max = |x: &[f64], y: &[f64], s: f64| {
|
||||
x.iter()
|
||||
.zip(y)
|
||||
.map(|(p, q)| (p - q / s).abs())
|
||||
.fold(0.0, f64::max)
|
||||
};
|
||||
let du = max(&a.u, &b.u, 1.0)
|
||||
.max(max(&a.v, &b.v, 1.0))
|
||||
.max(max(&a.w, &b.w, 1.0));
|
||||
let dp = max(&a.p, &b.p, 1000.0);
|
||||
let pscale = a.p.iter().fold(0.0f64, |m, p| m.max(p.abs()));
|
||||
println!(" moving {moving}: max |Δu| {du:.3e}, max |Δp/1000| {dp:.3e} (p scale {pscale:.3e})");
|
||||
assert!(du < 1e-9, "velocity is not density-invariant: {du:.3e}");
|
||||
assert!(
|
||||
dp < 1e-9 * pscale.max(1.0),
|
||||
"pressure does not scale with density: {dp:.3e}"
|
||||
);
|
||||
}
|
||||
|
||||
#[test]
|
||||
fn cut_cell_flow_is_density_invariant_at_rest() {
|
||||
compare(false);
|
||||
}
|
||||
|
||||
#[test]
|
||||
fn cut_cell_flow_is_density_invariant_moving() {
|
||||
compare(true);
|
||||
}
|
||||
@@ -201,6 +201,23 @@ fn dfg_3d_2z_on_the_device() {
|
||||
println!(" instant written to {}", path.display());
|
||||
}
|
||||
let (cd, cl, cd_cv, cl_cv, dp) = last.expect("samples");
|
||||
{
|
||||
// S2-1 diagnosis: each wall route split into its pressure and shear parts.
|
||||
let body = solver.body().expect("body");
|
||||
let (po, so) = mask
|
||||
.cut_wall_force_parts(body, &field, RHO * NU, solver.time())
|
||||
.expect("parts");
|
||||
let (pr, sr) = mask
|
||||
.cut_wall_force_reconstructed_parts(body, &field, RHO * NU, solver.time(), None)
|
||||
.expect("parts");
|
||||
println!(
|
||||
" SPLIT ny {ny}: operator c_D pressure {:.4} + shear {:.4}; reconstructed pressure {:.4} + shear {:.4}",
|
||||
coef * po[0],
|
||||
coef * so[0],
|
||||
coef * pr[0],
|
||||
coef * sr[0]
|
||||
);
|
||||
}
|
||||
println!(
|
||||
" FINAL ny {ny}: c_D {cd:.4} (CV {cd_cv:.4}, routes {:.2e} apart; reconstructed {:.4}, {:.2e} from CV) c_L {cl:.5} (CV {cl_cv:.5}, reconstructed {:.5}) Δp {dp:.4} — reference c_D 6.05–6.25, c_L 0.008–0.010, Δp 0.165–0.175; {:.0} s",
|
||||
((cd - cd_cv) / cd).abs(),
|
||||
|
||||
@@ -0,0 +1,130 @@
|
||||
//! S2-1 diagnosis (host): DFG 3D-2Z at a coarse rung with every load
|
||||
//! route split into pressure and shear parts — which part of the wall
|
||||
//! routes departs from the box route. `RTX_E3_DFG_NY` (default 31).
|
||||
use rtx_cfd::solvers::incompressible::ConvectionScheme;
|
||||
use rtx_cfd::solvers::incompressible::embedded3::{
|
||||
Body, Boundaries, Field, Fluid, Grid, Parameters, Side, Solver, WallScheme,
|
||||
};
|
||||
|
||||
const H: f64 = 0.41;
|
||||
const L: f64 = 2.5;
|
||||
const D: f64 = 0.1;
|
||||
const CX: f64 = 0.5;
|
||||
const CY: f64 = 0.2;
|
||||
const U_M: f64 = 0.45;
|
||||
const U_BAR: f64 = 4.0 / 9.0 * U_M;
|
||||
const RHO: f64 = 1.0;
|
||||
const NU: f64 = 1e-3;
|
||||
|
||||
fn inflow(y: f64, z: f64) -> f64 {
|
||||
16.0 * U_M * y * z * (H - y) * (H - z) / (H * H * H * H)
|
||||
}
|
||||
|
||||
#[test]
|
||||
#[ignore = "host DFG at ny 31 with the routes split (about half an hour)"]
|
||||
fn dfg_routes_split_on_the_host() {
|
||||
let ny: usize = std::env::var("RTX_E3_DFG_NY")
|
||||
.ok()
|
||||
.and_then(|v| v.parse().ok())
|
||||
.unwrap_or(31);
|
||||
let h = H / ny as f64;
|
||||
let nx = (L / h).round() as usize;
|
||||
let nz = ny;
|
||||
let dt = (0.3 * h / U_M).min(0.5 * h * h / (6.0 * NU));
|
||||
let mut solver = Solver::new(
|
||||
Fluid {
|
||||
density: RHO,
|
||||
viscosity: RHO * NU,
|
||||
reference_velocity: U_BAR,
|
||||
reference_length: D,
|
||||
},
|
||||
Parameters {
|
||||
corrector_steps: 2,
|
||||
tolerance: 1e-8,
|
||||
convection_scheme: ConvectionScheme::TvdVanAlbada,
|
||||
wall_scheme: WallScheme::CutCell,
|
||||
boundaries: Boundaries {
|
||||
x1: Side::PressureOutlet,
|
||||
..Boundaries::default()
|
||||
},
|
||||
..Parameters::default()
|
||||
},
|
||||
);
|
||||
solver.set_boundary_velocity(|x, y, z, _t| {
|
||||
if x <= 0.0 {
|
||||
(inflow(y, z), 0.0, 0.0)
|
||||
} else {
|
||||
(0.0, 0.0, 0.0)
|
||||
}
|
||||
});
|
||||
solver.set_body(Body::extruded(
|
||||
rtx_cfd::solvers::incompressible::EmbeddedBody::circle(CX, CY, 0.5 * D),
|
||||
H,
|
||||
));
|
||||
let g = Grid::cubic(nx, ny, nz, h);
|
||||
let mut field = Field::new(g);
|
||||
for k in 0..nz {
|
||||
for j in 0..ny {
|
||||
let u0 = inflow((j as f64 + 0.5) * h, (k as f64 + 0.5) * h);
|
||||
for i in 0..=nx {
|
||||
field.u[g.uface(k, j, i)] = u0;
|
||||
}
|
||||
}
|
||||
}
|
||||
solver.initialize(&mut field);
|
||||
let coef = 2.0 / (RHO * U_BAR * U_BAR * D * H);
|
||||
let steps = (8.0 / dt).ceil() as usize;
|
||||
let start = std::time::Instant::now();
|
||||
let mut last = (0.0, 0.0);
|
||||
for step in 0..steps {
|
||||
let r = solver.advance(&mut field, dt);
|
||||
if (step + 1) % (steps / 20).max(1) == 0 || step + 1 == steps {
|
||||
let t = solver.time();
|
||||
let mask = solver.mask().unwrap();
|
||||
let body = solver.body().unwrap();
|
||||
let mu = RHO * NU;
|
||||
let (po, so) = mask.cut_wall_force_parts(body, &field, mu, t).unwrap();
|
||||
let ex = mask
|
||||
.cut_wall_exchange_force(body, &field, mu, RHO, t, None)
|
||||
.unwrap();
|
||||
let (pr, sr) = mask
|
||||
.cut_wall_force_reconstructed_parts(body, &field, mu, t, None)
|
||||
.unwrap();
|
||||
let margin = 3.0 * D;
|
||||
let ci = |x: f64| ((x / h).round() as usize).clamp(2, nx - 2);
|
||||
let cj = |y: f64| ((y / h).round() as usize).clamp(2, ny - 2);
|
||||
let bx = (
|
||||
ci(CX - margin),
|
||||
ci(CX + margin),
|
||||
cj(CY - 0.15),
|
||||
cj(CY + 0.15),
|
||||
0,
|
||||
nz,
|
||||
);
|
||||
let fcv = mask.control_volume_force_with_walls(&field, dt, RHO, mu, None, bx, true);
|
||||
let cd = |f: [f64; 3]| coef * f[0];
|
||||
println!(
|
||||
" t {t:7.3}: c_D operator {:.4} (p {:.4} + s {:.4} + exchange {:.4}) | reconstructed {:.4} (p {:.4} + s {:.4}) | box {:.4}; residual {:.1e} [{:.0} s]",
|
||||
cd(po) + cd(so) + cd(ex),
|
||||
cd(po),
|
||||
cd(so),
|
||||
cd(ex),
|
||||
cd(pr) + cd(sr),
|
||||
cd(pr),
|
||||
cd(sr),
|
||||
cd(fcv),
|
||||
r.final_residual,
|
||||
start.elapsed().as_secs_f64()
|
||||
);
|
||||
let now = (cd(po) + cd(so) + cd(ex), cd(fcv));
|
||||
if (now.0 - last.0).abs() < 1e-4 * now.0.abs()
|
||||
&& (now.1 - last.1).abs() < 1e-4 * now.1.abs()
|
||||
&& t > 2.0
|
||||
{
|
||||
println!(" settled");
|
||||
break;
|
||||
}
|
||||
last = now;
|
||||
}
|
||||
}
|
||||
}
|
||||
Reference in New Issue
Block a user