Minimal distance between two planes moving perpendicularly

In summary, the minimal distance between two planes moving perpendicularly can be determined by analyzing their trajectories and relative positions. The distance is influenced by factors such as the initial separation between the planes and their velocities. Mathematical models often involve vector calculations to establish the shortest distance at any given moment, typically occurring when the planes are closest to intersecting paths. This concept is crucial in fields like aviation and robotics, where precise spatial awareness is essential for safety and navigation.
  • #1
NikolasLund
7
1
Homework Statement
Two planes fly at the same height with speeds v1 =
800 km/h and v2 = 600 km/h, respectively. The planes approach each other; at a certain moment of time, the plane trajectories are perpendicular to each other and both planes are at
the distance a = 20 km from the intersection points of their trajectories. Find the minimal distance between the planes during
their flight assuming their velocities will remain constant.
Relevant Equations
Hint: In the frame of the red plane, the blue plane moves along a line s which forms an angle α = arctan 3/4 with the horizontal dashed line in the figure. The distance of the red plane from this line is most conveniently found considering two similar right triangles, the larger of which is formed by the line s, and the two dashed lines in the figure.
The end result should be 4 km.
This problem is from Prof. Jaan Kalda's study guide to the IPHO. The problem can be solved by optimization, but there is apparently also a geometric approach, which is the one Kalda suggests. Initially I, being naive, tried to solve the problem by calculating the resulting distance the red plane needs to travel after t=1/40h (the time it takes the blue plane to reach the intersection). This, however, yielded a wrong result and prompted me to look at the hint, which didn't help me.
 
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  • #2
Did you try the suggested geometric approach? If not, why not? If yes, what was unclear about it?

The reason your approach gave the incorrect answer was that your presumption of the shortest distance occurring when one of the planes crossed the intersection point is incorrect.
 
  • #3
I attempted it, but could not figure out why the angle formed with the horizontal line is approx. 37 degrees. The resulting vector of the blue plane, in the frame of the red plane, I found to have a length of ##a\sqrt 2##,being constructed by the already given vectors with lengths a. This obviously creates an isolesces triangle, where the angle is 45 degrees instead, which led me to the wrong answer of 3,5 km.
 
  • #4
If two objects have velocities ##\vec v_1## and ##\vec v_2##, respectively, what is the velocity of object 2 relative to object 1?

As for the optimisation route, did you try that one as well? If yes, what was the issues you had with it? Did you manage to write down the distance between the planes as a function of time?
 
  • #5
I managed the optimization with little problem, and got the correct answer there. As for the hint you gave regarding the geometric approach, I think I understand why the angle is ##arctan 3/4## (##|v_2|/|v_1|## ?), but I am not sure how I should correctly use the relative velocity, or the given initial distance a.
PS Sorry for persisting with my lack of understanding, I am sure the problem is easier than I think.
 
  • #6
NikolasLund said:
Homework Statement: Two planes fly at the same height with speeds v1 =
800 km/h and v2 = 600 km/h, respectively. The planes approach each other; at a certain moment of time, the plane trajectories are perpendicular to each other and both planes are at
the distance a = 20 km from the intersection points of their trajectories. Find the minimal distance between the planes during
their flight assuming their velocities will remain constant.
Relevant Equations: Hint: In the frame of the red plane, the blue plane moves along a line s which forms an angle α = arctan 3/4 with the horizontal dashed line in the figure. The distance of the red plane from this line is most conveniently found considering two similar right triangles, the larger of which is formed by the line s, and the two dashed lines in the figure.
Please provide the figure mentioned above.
 
  • #7
NikolasLund said:
Two planes fly at the same height
That statement implies that both trajectories are contained in a common horizontal plane.
Also, the perpendicularity of the respective trajectories is comparable to the x and y axes of a Cartesian coordinate system.

Approaching airplanes.jpg
 
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FAQ: Minimal distance between two planes moving perpendicularly

What is the definition of minimal distance between two planes moving perpendicularly?

The minimal distance between two planes moving perpendicularly refers to the shortest distance between any two points on the surfaces of the planes as they move in a perpendicular manner. This distance is typically measured at a specific moment in time when the planes are closest to each other.

How is the minimal distance calculated between two planes?

The minimal distance can be calculated using geometric principles. If the equations of the two planes are known, one can find the point on each plane that is closest to the other by using optimization techniques or by deriving the distance formula and minimizing it with respect to the coordinates of the points on the planes.

What factors affect the minimal distance between two moving planes?

Several factors can affect the minimal distance, including the orientation of the planes, their initial positions, their velocities, and the rate at which they are moving. The angle at which they intersect and the speed of their movement can also play significant roles in determining how quickly the distance changes.

Can the minimal distance between two planes be zero?

Yes, the minimal distance between two planes can be zero if the planes intersect or if one plane passes through the other. In such cases, at some point in time, the distance between the two planes will be zero, indicating that they share a common point or line.

What real-world applications involve calculating the minimal distance between two planes?

Real-world applications include aerospace engineering, where the movement of aircraft is analyzed, and collision avoidance systems are designed. It is also relevant in robotics, where the movement of robotic arms or vehicles is coordinated to prevent collisions, as well as in computer graphics for rendering and simulating the behavior of objects in motion.

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