surface tension reimplemented as running average (and maybe correct values now)
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@@ -2,28 +2,65 @@ mod trajectory;
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use trajectory::*;
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mod energy;
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use energy::*;
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use std::env;
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const LJ_EPS : f64 = 1.0;
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const LJ_SIG : f64 = 1.0;
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fn get_virial(distance_sqr: f64) -> f64 {
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let r2 = LJ_SIG.powi(2)/distance_sqr;
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let r6 = r2 * r2 * r2;
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return 48.0 * LJ_EPS / LJ_SIG * ( r6*r6 - 0.5*r6 )
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fn get_virial(distance: f64) -> f64 {
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let r7 = (LJ_SIG/distance).powi(7);
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let r13 = (LJ_SIG/distance).powi(13);
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return 24.0 * LJ_EPS / LJ_SIG * ( r7-2.0*r13 );
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}
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#[test]
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fn test_get_viral() {
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let result = get_virial(2.5);
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let expected = 0.038999477;
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assert!( (result - expected) < 0.0001, "{}", result );
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}
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fn get_distance_with_pbc(x1: f64, x2: f64, length: f64, half_length: f64) -> f64 {
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let mut d = x1-x2;
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let mut d = (x1-x2).abs();
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if d > half_length { d -= length }
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else if d < -half_length { d += length }
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return d;
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}
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fn eval_surface_tension(box_z: f64, p_zz: f64, p_xy: f64) -> f64 {
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return box_z / 2.0 * (p_zz - p_xy);
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}
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#[test]
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fn test_eval_surface_tension() {
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let expected = 2.0;
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let result = eval_surface_tension(2.0,5.0,3.0);
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assert!( (result-expected).abs() < 0.0001, "{}", result );
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}
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fn main() {
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let mut trj_reader = TrjReader::new(&"2phases/1kk_100step.xyz".to_string());
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// parse args
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let args: Vec<String> = env::args().collect();
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let mut filename = "montecarlo.xyz".to_string();
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let mut skip: usize = 0;
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for i in 0..args.len() {
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if args[i] == "-f" {
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filename = args[i + 1].clone();
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} else if args[i] == "-s" {
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skip = args[i + 1].parse::<usize>().unwrap();
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}
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}
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// open file and skip to requiested position
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let mut trj_reader = TrjReader::new(&filename);
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if skip > 0 { trj_reader.skip(skip) };
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// trajectory information
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let mut frame = trj_reader.next_frame();
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println!("{:?}", frame);
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let volume = frame.box_x * frame.box_y * frame.box_z;
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let density = frame.num_particles as f64 / volume;
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@@ -35,16 +72,15 @@ fn main() {
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let mut frame_count = 0;
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let mut p_xy_sum = 0.0;
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// let mut p_y_sum = 0.0;
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let mut p_z_sum = 0.0;
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let variable_without_name = frame.temperature/LJ_EPS * density;
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println!("~~~ THIS IS A RUNNING AVERAGE! ~~~");
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loop {
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frame_count += 1;
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let mut trace_xy = 0.0;
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// let mut trace_y = 0.0;
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let mut trace_z = 0.0;
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for i in 0..num_particles {
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for j in i+1..num_particles {
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@@ -53,66 +89,31 @@ fn main() {
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let dx = get_distance_with_pbc(frame.rx[i], frame.rx[j], frame.box_x, box_half_x);
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let dy = get_distance_with_pbc(frame.ry[i], frame.ry[j], frame.box_y, box_half_y);
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let dz = get_distance_with_pbc(frame.rz[i], frame.rz[j], frame.box_z, box_half_z);
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let virial = get_virial(dist_sqrt);
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let virial = get_virial(dist);
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trace_xy += (dx * dx + dy * dy) / dist * virial;
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// trace_y += (dy * dy) / dist * virial;
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trace_z += (dz * dz) / dist * virial;
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}
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}
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let p_xy = variable_without_name - 1.0/(2.0*volume)*(trace_xy/num_particles as f64);
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// let p_yy = variable_without_name - 1.0/volume*(trace_y/num_particles);
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let p_zz = variable_without_name - 1.0/volume*(trace_z/num_particles as f64);
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let p_xy = variable_without_name - 1.0/(2.0*volume)*(trace_xy);
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let p_zz = variable_without_name - 1.0/volume*(trace_z);
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p_xy_sum += p_xy;
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// p_y_sum += p_yy;
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p_z_sum += p_zz;
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///////////////////////////////////
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if frame_count % 100 == 0 {
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print!(".");
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}
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if frame_count % 100 == 0 {
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if frame_count % 10 == 0 {
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let p_z_avg = p_z_sum / frame_count as f64;
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let p_xy_avg = p_xy_sum / frame_count as f64;
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let p_diff = p_z_avg - p_xy_avg;
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let surface_tension = (frame.box_z/2.0)*p_diff;
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println!("{} zz: {} xy: {} diff: {} tension: {}", frame_count, p_z_avg, p_xy_avg, p_diff, surface_tension);
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frame_count = 0;
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p_z_sum = 0.0;
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p_xy_sum = 0.0;
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// trace_xy_sum = 0.0;
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// trace_z_sum = 0.0;
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// p_tangial_sum = 0.0;
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// p_normal_sum = 0.0
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let surface_tension = eval_surface_tension(frame.box_z, p_z_avg, p_xy_avg);
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println!("Frame {}\t\tzz: {:.5}\txy: {:.5}\tdifference: {:.5}\t\ttension: {:.5}", frame_count, p_z_avg, p_xy_avg, p_diff, surface_tension);
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// frame_count = 0;
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// p_z_sum = 0.0;
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// p_xy_sum = 0.0;
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}
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if !trj_reader.update_with_next(&mut frame) { break }
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}
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}
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// for slab in 0..NUM_SLABS {
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//
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// // calculate slab density
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// let slab_end_z = slab_height * slab as f64;
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// let slab_start_z = slab_end_z - slab_height;
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// let mut slab_particle_count = 0;
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// for i in 0..frame.num_particles {
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// if slab_start_z > frame.rz[i] && frame.rz[i] < slab_end_z {
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// slab_particle_count += 1;
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// }
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// }
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// let slab_density = slab_particle_count as f64 / slab_volume;
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//
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// for i in 0..frame.num_particles {
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// for j in i+1..frame.num_particles {
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//
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// }
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// }
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//
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// println!("Slab {}\tDensity: {}", slab, slab_density);
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// }
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