Decomposition of Projectile Motion

A high-school physics illustration decomposing projectile motion into uniform horizontal motion and vertical free fall with stroboscopic positions.

Physics illustration of projectile motion with a stroboscopic trajectory, velocity arrows, and a data table for 0.1-0.4 seconds.
Start with this prompt

A high-school physics illustration decomposing projectile motion into uniform horizontal motion and vertical free fall with stroboscopic positions.

Try Kimi Design
Create a 4:3 landscape high-school physics teaching illustration titled "Decomposition of Projectile Motion: Uniform Horizontal Motion, Vertical Free Fall." Use a stroboscopic trajectory to show positions at equal time intervals: evenly spaced horizontal projections, with vertical spacing increasing in the ratio 1, 3, 5, 7; draw the component velocities and resultant velocity at two points, and include a data table of displacement and velocity values for 0.1–0.4 seconds.

Warm off-white paper background with charcoal-black axes and trajectory; use ultramarine for all velocity arrows, both components and resultants, and very light gray line borders for the data table. Align the curve, velocity arrows, formulas, and data table to a common baseline; the composition should read like a classroom explanation page in a scientific journal — precise, restrained, with a clear focal point.
Recolor velocity arrows crimson

Changes all velocity arrows from ultramarine to crimson; the axes and trajectory stay the same.

Try Kimi Design
Create a 4:3 landscape high-school physics teaching illustration titled "Decomposition of Projectile Motion: Uniform Horizontal Motion, Vertical Free Fall." Use a stroboscopic trajectory to show positions at equal time intervals: evenly spaced horizontal projections, with vertical spacing increasing in the ratio 1, 3, 5, 7; draw the component velocities and resultant velocity at two points, and include a data table of displacement and velocity values for 0.1–0.4 seconds.

Warm off-white paper background with charcoal-black axes and trajectory; use ultramarine for all velocity arrows, both components and resultants, and very light gray line borders for the data table. Align the curve, velocity arrows, formulas, and data table to a common baseline; the composition should read like a classroom explanation page in a scientific journal — precise, restrained, with a clear focal point.
Extend the data table

Extends the data table from 0.1-0.4 seconds to 0.1-0.5 seconds; the trajectory stays the same.

Try Kimi Design
Create a 4:3 landscape high-school physics teaching illustration titled "Decomposition of Projectile Motion: Uniform Horizontal Motion, Vertical Free Fall." Use a stroboscopic trajectory to show positions at equal time intervals: evenly spaced horizontal projections, with vertical spacing increasing in the ratio 1, 3, 5, 7; draw the component velocities and resultant velocity at two points, and include a data table of displacement and velocity values for 0.1–0.4 seconds.

Warm off-white paper background with charcoal-black axes and trajectory; use ultramarine for all velocity arrows, both components and resultants, and very light gray line borders for the data table. Align the curve, velocity arrows, formulas, and data table to a common baseline; the composition should read like a classroom explanation page in a scientific journal — precise, restrained, with a clear focal point.
Restyle as notebook page

Changes the reference from a scientific journal page to grid notebook paper; the content stays the same.

Try Kimi Design
Create a 4:3 landscape high-school physics teaching illustration titled "Decomposition of Projectile Motion: Uniform Horizontal Motion, Vertical Free Fall." Use a stroboscopic trajectory to show positions at equal time intervals: evenly spaced horizontal projections, with vertical spacing increasing in the ratio 1, 3, 5, 7; draw the component velocities and resultant velocity at two points, and include a data table of displacement and velocity values for 0.1–0.4 seconds.

Warm off-white paper background with charcoal-black axes and trajectory; use ultramarine for all velocity arrows, both components and resultants, and very light gray line borders for the data table. Align the curve, velocity arrows, formulas, and data table to a common baseline; the composition should read like a classroom explanation page in a scientific journal — precise, restrained, with a clear focal point.