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Can you reverse the teapot spin with your mind?

Can you reverse the teapot spin with your mind?

6,833,669 Aufrufe

Can you reverse the chair's rotation with your mind?

Can you reverse the chair's rotation with your mind?

4,026,660 Aufrufe

Can you reverse the duck spin with your mind?

Can you reverse the duck spin with your mind?

131,460 Aufrufe

Can you reverse the human spin with your mind?

Can you reverse the human spin with your mind?

113,440 Aufrufe

Euler's formula states that e^(iθ) = cos θ + i sin θ. As the angle θ increases, e^(iθ) traces the unit circle in the complex plane. Plotted against θ, that rotation becomes a helix. The real part of the helix projects as the cosine wave Re(z) = cos θ. The imaginary part projects as the sine wave Im(z) = sin θ.

Euler's formula states that e^(iθ) = cos θ + i sin θ. As the angle θ increases, e^(iθ) traces the unit circle in the complex plane. Plotted against θ, that rotation becomes a helix. The real part of the helix projects as the cosine wave Re(z) = cos θ. The imaginary part projects as the sine wave Im(z) = sin θ.

55,150 Aufrufe

Can you reverse the spin of this elephant with your mind?

Can you reverse the spin of this elephant with your mind?

51,413 Aufrufe

A closed outline shaped like the Greek letter pi can be rebuilt as the path of a point carried by a chain of rotating circles, each circle matching one frequency component through its radius and phase, so that successive circles refine the match to the original curve.

A closed outline shaped like the Greek letter pi can be rebuilt as the path of a point carried by a chain of rotating circles, each circle matching one frequency component through its radius and phase, so that successive circles refine the match to the original curve.

12,050 Aufrufe

A pendulum bob midway through its downward swing shows gravitational potential energy converting into kinetic energy, visible as a medium-height blue bar for remaining potential energy, a short orange bar for kinetic energy, and a taller cyan bar of constant height representing the conserved total mechanical energy.

A pendulum bob midway through its downward swing shows gravitational potential energy converting into kinetic energy, visible as a medium-height blue bar for remaining potential energy, a short orange bar for kinetic energy, and a taller cyan bar of constant height representing the conserved total mechanical energy.

12,804 Aufrufe

When a drone applies a force at an angle to a cart resting on a level surface the force produces a horizontal pull that moves the cart forward and a vertical lift that lightens the load on the wheels, illustrating how vectors separate into independent effects along two perpendicular axes.

When a drone applies a force at an angle to a cart resting on a level surface the force produces a horizontal pull that moves the cart forward and a vertical lift that lightens the load on the wheels, illustrating how vectors separate into independent effects along two perpendicular axes.

13,022 Aufrufe

Quadric Morph continuously deforms a sphere through a family of quadric surfaces into a hyperboloid of two sheets, showing the transition from a closed connected shape to two separate open bowls and thereby illustrating the classification of these surfaces in analytic geometry.

Quadric Morph continuously deforms a sphere through a family of quadric surfaces into a hyperboloid of two sheets, showing the transition from a closed connected shape to two separate open bowls and thereby illustrating the classification of these surfaces in analytic geometry.

13,372 Aufrufe

3D rotation matrices about coordinate axes. Rₓ(θ) fixes x and rotates yz-plane [[1 0 0] [0 cosθ −sinθ] [0 sinθ cosθ]]. Rᵧ(θ) fixes y and rotates xz-plane [[cosθ 0 sinθ] [0 1 0] [−sinθ 0 cosθ]]. Rz(θ) fixes z and rotates xy-plane [[cosθ −sinθ 0] [sinθ cosθ 0] [0 0 1]].

3D rotation matrices about coordinate axes. Rₓ(θ) fixes x and rotates yz-plane [[1 0 0] [0 cosθ −sinθ] [0 sinθ cosθ]]. Rᵧ(θ) fixes y and rotates xz-plane [[cosθ 0 sinθ] [0 1 0] [−sinθ 0 cosθ]]. Rz(θ) fixes z and rotates xy-plane [[cosθ −sinθ 0] [sinθ cosθ 0] [0 0 1]].

16,193 Aufrufe

Are you able to reverse the spin with your mind?

Are you able to reverse the spin with your mind?

33,135 Aufrufe

Electromagnetic radiation: oscillating electric and magnetic fields propagate outward from a source at the speed of light. The fields E and B remain mutually perpendicular and orthogonal to the radial unit vector r̂. Intensity I of the radiation decreases with the inverse square of the distance, I ∝ r⁻².

Electromagnetic radiation: oscillating electric and magnetic fields propagate outward from a source at the speed of light. The fields E and B remain mutually perpendicular and orthogonal to the radial unit vector r̂. Intensity I of the radiation decreases with the inverse square of the distance, I ∝ r⁻².

13,498 Aufrufe

A mathematical construction in which one strip completes exactly ten turns. The polar angle of the generating curve is controlled by the exponential φ(θ) = (π/2) e^{-θ/8π}. Successive windings therefore nest inside one another, forming a compact layered rose with an exponentially tapering profile.

A mathematical construction in which one strip completes exactly ten turns. The polar angle of the generating curve is controlled by the exponential φ(θ) = (π/2) e^{-θ/8π}. Successive windings therefore nest inside one another, forming a compact layered rose with an exponentially tapering profile.

13,530 Aufrufe

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