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This deck focuses on Images Formed By Lenses, giving you a quick way to review the definitions, rules, and examples that matter most for AP Physics 2.
Study Images Formed By Lenses in AP Physics 2 with focused flashcards that help you recognize the idea, recall the key rule, and apply it in practice-style prompts.
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What happens to the image if the object is moved closer to a lens than the focal point?
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Image becomes virtual and upright. Object inside focal length produces virtual, upright image.
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This deck focuses on Images Formed By Lenses, giving you a quick way to review the definitions, rules, and examples that matter most for AP Physics 2.
Work through these flashcards in short sessions. Try to answer each prompt before flipping the card, then revisit any cards you miss until the explanation feels automatic.
Answer: Image becomes virtual and upright. Object inside focal length produces virtual, upright image.
Answer: di=60 cm. Using lens formula: 201=301+di1
Answer: di=30 cm. Using lens formula: 101=151+di1
Answer: Image is inverted. Negative magnification means image is flipped vertically.
Answer: di=24 cm. Using lens formula: 121=241+di1
Answer: m=−2. Magnification equals negative distance ratio: m=−2550
Answer: f=0.2 m. Power equals reciprocal of focal length: f=51
Answer: m=0.5. Magnification equals negative ratio: m=−10(−5)=0.5
Answer: P=−2 D. Negative power indicates diverging lens: P=−0.51
Answer: Concave lens. Diverging lens spreads light to correct nearsightedness.
Answer: m=0.5. Magnification equals negative ratio: m=−10(−5)=0.5
Answer: Diopter (D). Standard unit for measuring lens refractive power.
Answer: f=−0.25 m. Focal length equals reciprocal of power: f=−41
Answer: Image distance di is positive. Real images form on opposite side of lens from object.
Answer: Image is real, inverted, and same size. Object at center of curvature equals twice focal length.
Answer: hi=6 cm. Image height equals object height times magnification.
Answer: Convex lens. Brings parallel rays together at focal point.
Answer: Convex lens. Converging lens creates enlarged virtual image for close objects.
Answer: When image distance di is negative. Negative di means image forms on same side as object.
Answer: When image distance di is negative. Negative di means image forms on same side as object.
Answer: Real, inverted, and reduced. Object farther than twice the focal length produces these characteristics.
Answer: Virtual and magnified. Object inside focal length produces enlarged virtual image.
Answer: f1=do1+di1. Relates focal length to object and image distances.
Answer: Real, inverted, and at F. Parallel rays from infinity converge at focal point.
Answer: P=−2 D. Negative power indicates diverging lens: P=−0.51
Answer: Real, inverted, and same size. Object at twice focal length creates unit magnification.
Answer: di=30 cm. Using lens formula: 101=151+di1
Answer: Virtual, upright, and reduced. Concave lenses always diverge light, creating virtual images.
Answer: Convex lens. Brings parallel rays together at focal point.
Answer: di=24 cm. Using lens formula: 121=241+di1
Answer: Image size decreases. Magnification decreases as object distance increases.
Answer: More curvature, higher power. More curved surfaces bend light more, increasing power.
Answer: Real, inverted, and at F. Parallel rays from infinity converge at focal point.
Answer: Real, inverted, and reduced. Object farther than twice the focal length produces these characteristics.
Answer: Image distance di is positive. Real images form on opposite side of lens from object.
Answer: Image is inverted. Negative magnification means image is flipped vertically.
Answer: More curvature, shorter focal length. Greater curvature increases light bending, reducing focal length.
Answer: Diopter (D). Standard unit for measuring lens refractive power.
Answer: Convex lens. Converging lens focuses light to correct farsightedness.
Answer: Real, inverted, and magnified. Object between focal points creates enlarged real image.
Answer: Virtual, upright, and reduced. Concave lenses always produce diminished virtual images.
Answer: Concave lens. Diverging lens spreads light to correct nearsightedness.
Answer: f=0.2 m. Power equals reciprocal of focal length: f=51
Answer: Focal length is negative. Concave lenses diverge light, making f negative by convention.
Answer: Power P=f1 (in meters). Reciprocal of focal length measured in meters.
Answer: Magnification m=hohi=−dodi. Ratio of image to object height equals negative distance ratio.
Answer: Concave lens. Diverging lens cannot form real images regardless of object position.
Answer: di is negative. Virtual images form on same side as object.
Answer: No image is formed. Parallel rays emerge, creating no convergence point.
Answer: m=−2. Magnification equals negative distance ratio: m=−2550
Answer: Virtual, upright, and reduced. Concave lenses always produce diminished virtual images.
Answer: More curvature, shorter focal length. Greater curvature increases light bending, reducing focal length.
Answer: No image is formed. Parallel rays emerge, creating no convergence point.
Answer: Real, inverted, and magnified. Object between focal points creates enlarged real image.
Answer: Magnification m=hohi=−dodi. Ratio of image to object height equals negative distance ratio.
Answer: m=−dodi. Negative sign accounts for image orientation relative to object.
Answer: Distance from lens center to focal point. Where parallel rays converge or appear to diverge.
Answer: Virtual, upright, and reduced. Concave lenses always diverge light, creating virtual images.
Answer: Real, inverted, and same size. Object at twice focal length creates unit magnification.