Krushnaraj Pandya said:Homework Statement
A line makes some angle T with each of x and z axis, and angle U with y-axis so that sin^2(U)=3sin^2(T).
Homework Equations
2cos^2(T)+cos^2(U)=1 ...(i)
cos^2(x)+sin^2(x)=1
The Attempt at a Solution
Using the above two eqns. give us the correct value for cos^2(T) which is 3/5 as per my textbook but plugging it back into (i) gives us cos^2(U)= -1/5. Am I wrong somewhere or is it a mistake in the book?
Of course for ##\ \cos(U) \ ## having a real number value, its square cannot be negative. Something's wrong.Krushnaraj Pandya said:Homework Statement
A line makes some angle T with each of x and z axis, and angle U with y-axis so that sin^2(U)=3sin^2(T).
Homework Equations
2cos^2(T)+cos^2(U)=1 ...(i)
cos^2(x)+sin^2(x)=1
The Attempt at a Solution
Using the above two eqns. give us the correct value for cos^2(T) which is 3/5 as per my textbook but plugging it back into (i) gives us cos^2(U)= -1/5. Am I wrong somewhere or is it a mistake in the book?
sin^2(U)=3sin^2(T). is given- change it to cos^2 and it gives us thisPeroK said:How are you getting ##\cos^2 T = \frac35##? Clearly that is too large, given your first equation.
Must've been a mistake in the book, thank you very muchSammyS said:Of course for ##\ \cos(U) \ ## having a real number value, its square cannot be negative. Something's wrong.
Alright, Thank you for your help :Dmjc123 said:The maximum value of sin2 U is 1, when U = 90°. Then T is ±45° and sin2 T =1/2, so your initial equation must be wrong.
Does the book give a result for ##\ \cos(U) \,,\text{or } \cos^2(U) \,?##Krushnaraj Pandya said:Must've been a mistake in the book, thank you very much
Krushnaraj Pandya said:sin^2(U)=3sin^2(T). is given- change it to cos^2 and it gives us this
Changing the given equation in sin to cos we get 3cos^2(T)-cos^2(U)=2. Using 2Cos^2(T)+Cos^2(U)=1 we have 2 equations in two variables, adding both gives cos^2(T)=3/5PeroK said:Where did the ##3/5## come from?
The book says cos^2(T)=3/5. which gives a negative value of cos^2(U)SammyS said:Does the book give a result for ##\ \cos(U) \,,\text{or } \cos^2(U) \,?##
Krushnaraj Pandya said:Using 2Cos^2(T)+Cos^2(U)=1
SammyS said:Does the book give a result for ##\ \cos(U) \,,\text{or } \cos^2(U) \,?##
PeroK said:Where did the ##3/5## come from?
There seems to be another anomaly, which is perhaps connected- there is a mcq saying- "A line OP through origin is inclined at 30 and 45 degrees respectively to OX and OY. The angle at which it is inclined to OZ is given by?" And the correct option given is "Not any angle" even though using the same equation ∑cos^2(θ)=1 gives us 3/4 + 1/2 +cos^2(x)=1 which again gives a negative value of cos^2(x)mjc123 said:The maximum value of sin2 U is 1, when U = 90°. Then T is ±45° and sin2 T =1/2, so your initial equation must be wrong.
The direction cosines l,m and n are related as l^2 + m^2 +n^2=1. https://www.askiitians.com/iit-jee-3d-geometry/direction-cosines-of-a-line/ here's a link for referencePeroK said:Where does this equation come from?
Krushnaraj Pandya said:There seems to be another anomaly, which is perhaps connected- there is a mcq saying- "A line OP through origin is inclined at 30 and 45 degrees respectively to OX and OY. The angle at which it is inclined to OZ is given by?" And the correct option given is "Not any angle" even though using the same equation ∑cos^2(θ)=1 gives us 3/4 + 1/2 +cos^2(x)=1 which again gives a negative value of cos^2(x)
Is that the case for the original question as well? Or perhaps they just forgot this relation and only wanted to test if I knew sum of direction cosines is 1? Because the observation that one of it is negative is a secondary one derived after getting the answer in the first place and wasn't noticed by the question-setterPeroK said:Okay, I understand now. You can see that the two cones implied by those angles do not intersect, so no such line exists.
Krushnaraj Pandya said:Is that the case for the original question as well? Or perhaps they just forgot this relation and only wanted to test if I knew sum of direction cosines is 1? Because the observation that one of it is negative is a secondary one derived after getting the answer in the first place and wasn't noticed by the question-setter
Thank you very much, I am quite sure now that that is the casePeroK said:Your guess is as good as mine.
No, a direction cosine squared cannot be negative. The range of direction cosine squared is always between 0 and 1, inclusive.
A direction cosine squared is a mathematical measurement used in geometry and physics to represent the squared value of the cosine of an angle between two vectors. It is often used to determine the orientation and direction of a vector in three-dimensional space.
To calculate a direction cosine squared, you would first find the cosine of the angle between the two vectors and then square the result. This can be done using a calculator or by hand using trigonometric equations.
A negative direction cosine squared does not have a physical meaning. It is not possible for the squared value of a cosine to be negative, as the cosine function has a range of -1 to 1. If a negative value is obtained, it may be an error in calculation or a misunderstanding of the concept.
No, a direction cosine squared cannot be greater than 1. As mentioned before, the range of direction cosine squared is between 0 and 1. If a value greater than 1 is obtained, it may be an error in calculation or a misunderstanding of the concept.