How can I find dip direction and a dip of a plane with known normal vectors?
11 visualizaciones (últimos 30 días)
Mostrar comentarios más antiguos
I have a question about converting normal vector components of a plane into dip and dip direction. I have a txt file containing multiple colums and three of than being nx, ny, and nz? Can you please help me on how to find a dip direction and a dip of a plane. Note - some of my nz values are negative. Below I am posting a core that i wrote but it is not giving be good values for dip direction. Thank you for your help
load('artificial_slope.txt') %loading data
% defining input values based of input txt file
nx = data(:,4)
ny = data(:,5)
nz = data(:,6)
% abs vaue of nz component to eliminite minus sign
nz_abs = abs(nz)
% dip calculation
dip_disc = acos(nz_abs)*(180/pi)
% dip direction calculation (giving wrong results)
dip_dir = (360-atan2(ny,nx) * (180/pi))-90
1 comentario
Matt J
el 19 de Oct. de 2022
Since most people in the forum are probably not aeronautical engineers, you will increase your chances of a response if you define some of the specialized terminology, like dip and dip direction. Figure illustrations may also be helpful.
Respuestas (1)
Bjorn Gustavsson
el 19 de Oct. de 2022
Editada: Bjorn Gustavsson
el 20 de Oct. de 2022
Some corrections you might consider are:
load('artificial_slope.txt') %loading data
% defining input values based of input txt file
nx = data(:,4);
ny = data(:,5);
nz = data(:,6);
n = [nx,ny,nz];
n = n./vecnorm(n,2,2); % normalize to unit-vectors. People promise to only give you the unit-length
% normal-vector, if you normalize it you're sure it is. Big
% difference. Big.
% abs vaue of nz component to eliminite minus sign
% nz_abs = abs(nz) Scrap this. Handle the dip-direction some other way.
% This is too brutal and too early.
% dip calculation
dip_disc = acos(n(:,3))*(180/pi);
% dip direction calculation (giving wrong results)
dip_dir = atan2(n(:,2),n(:,1))*180/pi; % should be counter-clock-wise from your x-direction.
% If x is East and y is North and you want
% clock-wise from North:
dip_dir = atan2(n(:,1),n(:,2))*180/pi;
That should be it. There are many conventions for azimuthal angles. Just step through the different possibilities one by one till you stumble onto the one that fits.
HTH
2 comentarios
Hrvoje Lukacic
el 20 de Oct. de 2022
Thank you for the answer. I tried to run the code and as soon as I do the normalization of the vector I am getting wrong results for the dip angle (angle between the plane and the horizontal) . So if I calculate the dip with original nz I get the correct result and when I use normalised the result is wrong. Why is thet, what does normalization do to the vector data
Bjorn Gustavsson
el 20 de Oct. de 2022
My bad, I forgot that you had a whole array of normal-vectors. I think I've corrected the normalization now, it relies on the intelligently-extended element-wise division for the normalization, if you have a very old matlab-version that would have to be done with a repmat to get the dimensions to match.
HTH
Ver también
Productos
Community Treasure Hunt
Find the treasures in MATLAB Central and discover how the community can help you!
Start Hunting!