Autodesk Fusion 360 Quiz: Revolve And Sweep
10 questions · exam conditions
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Revolve And SweepQuestion 1 of 10

A closed circular sketch profile extends across the selected construction axis. A designer attempts to revolve the entire circle through a full revolution to create a rounded solid, but Fusion reports that the result would be invalid.

What is the most appropriate correction while retaining a Revolve-based workflow?

Trim the profile at the axis and close a valid half-section whose boundary includes the selected axis.
Keep the complete circle and change the Revolve operation from New Body to Join.
Keep the complete circle and reverse the Revolve direction while retaining a full revolution.
Offset the construction axis farther through the circle and change the Revolve operation to Cut.
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Autodesk Fusion 360 Quiz

Autodesk Fusion 360 Quiz: Revolve And Sweep

Practice Revolve And Sweep in Autodesk Fusion 360 with focused quiz questions that help you check what you know, review explanations, and build confidence with test-style prompts.

What this quiz covers

This quiz focuses on Revolve And Sweep, giving you a quick way to practice the rules, question types, and explanations that matter most for Autodesk Fusion 360.

How to use this quiz

Try each quiz question before looking at the correct answer. Use the explanations to review missed ideas, then come back to similar questions until the pattern feels familiar.

All questions

Question 1

A closed circular sketch profile extends across the selected construction axis. A designer attempts to revolve the entire circle through a full revolution to create a rounded solid, but Fusion reports that the result would be invalid.

What is the most appropriate correction while retaining a Revolve-based workflow?

  1. Trim the profile at the axis and close a valid half-section whose boundary includes the selected axis. (correct answer)
  2. Keep the complete circle and change the Revolve operation from New Body to Join.
  3. Keep the complete circle and reverse the Revolve direction while retaining a full revolution.
  4. Offset the construction axis farther through the circle and change the Revolve operation to Cut.
Explanation: When working with the Revolve tool in Fusion 360, the key rule to internalize is this: a revolve profile must not cross or overlap the axis of revolution. If the profile straddles the axis, Fusion would generate self-intersecting geometry — a mathematically invalid solid — which is why the operation fails. Recognizing this rule immediately points you toward the fix. The correct approach, choice A, is to trim the circle so only the half-section on one side of the axis remains, then close that half-profile so its boundary runs along the axis itself. When you revolve this valid half-section 360°, Fusion sweeps it around the axis cleanly, producing a torus or donut shape without any self-intersection. The profile boundary touching (but not crossing) the axis is perfectly legal and is in fact the standard technique for creating revolved solids like rings and rounded forms. Choice B fails because changing the operation to Join doesn't resolve the geometry violation — an invalid body can't be joined to anything. The self-intersection problem exists regardless of the boolean operation type. Choice C is equally ineffective: reversing the revolve direction doesn't move the profile off the axis, so the same invalid intersection occurs just mirrored. Choice D introduces a new problem rather than solving the original one — offsetting the axis deeper through the circle still leaves the profile crossing the axis, and switching to Cut doesn't fix crossing geometry either. As a study tip, remember this mantra for Revolve in Fusion 360: profile must not cross the axis. Any question describing a failed revolve almost certainly involves a profile straddling the axis, and trimming to a valid half-section is the standard correction.

Question 2

A revolved candidate volume passes partly through an existing housing. The finished model must contain only the material common to the candidate revolution and the housing; all nonoverlapping portions of both volumes are unwanted.

Which Revolve operation directly produces the required result?

  1. Use Join so the revolved candidate and housing become one combined solid body.
  2. Use Cut so the overlapping candidate volume is removed from the existing housing.
  3. Use Intersect so only the shared volume of the revolution and housing is retained. (correct answer)
  4. Use New Body so the entire revolved candidate remains separate from the housing.
Explanation: When working with Boolean operations in Fusion 360, the key is mapping what you want to keep to the operation that produces exactly that result. Ask yourself: do I want everything, just one part minus the other, or only what overlaps? The scenario describes keeping only the shared volume — material that exists in both the revolved shape and the housing simultaneously. That's the textbook definition of a geometric intersection. C is correct: the Intersect operation discards everything that doesn't belong to both bodies, leaving only the overlapping region. Fusion 360 consumes both input bodies and outputs their common volume, which is precisely what the problem requires. A (Join) is the wrong direction entirely. Join merges both bodies into one unified solid, meaning you gain volume — the combined total of both shapes. Nonoverlapping portions are preserved, not discarded, which is the opposite of what's needed. B (Cut) removes the candidate revolution's footprint from the housing — it subtracts, leaving a housing with a hole carved out. You'd lose the overlapping region rather than isolate it, which is the exact material you're supposed to keep. D (New Body) simply creates the revolution as an independent solid without interacting with the housing at all. Both full volumes persist separately; no Boolean logic is applied, so nothing is retained or removed intelligently. A helpful memory trick: think of the three core Boolean operations as add, subtract, and overlap-only. Join adds, Cut subtracts, and Intersect isolates the overlap. When a question describes keeping only shared material, "Intersect" should immediately come to mind.

Question 3

A circular profile is sketched on one construction plane, while the endpoint of a spatial path stops short of that plane. The intended sweep should begin at the center of the circle, but Fusion will not accept the current profile-path combination.

Which change most directly establishes a valid and predictable Sweep relationship?

  1. Convert the circular profile to construction geometry and enable Tangent Chain for the spatial path selection.
  2. Increase the profile diameter until its perimeter crosses the path, leaving the path endpoint away from the profile plane.
  3. Extend the path so its endpoint intersects the profile plane at the circle center, using a coincident relationship where possible. (correct answer)
  4. Move the path parallel to the profile plane and set the Sweep operation to New Body before selecting the profile.
Explanation: When working with Sweep in Fusion 360, the fundamental rule is that the path must physically connect to the profile plane — specifically, the path's endpoint must lie on (or intersect) the plane where the profile exists. Think of it like a train track: the track must meet the station platform, not stop somewhere in open air before it arrives. The scenario describes a path endpoint that falls short of the profile plane, which breaks this geometric requirement. Answer C directly resolves this by extending the path until its endpoint lands on the profile plane, ideally at the circle's center using a coincident constraint. This gives Fusion a clear, unambiguous starting point for the sweep operation — the profile and path are now properly linked, and Fusion can calculate the swept solid predictably. Answer A is a trap: converting the profile to construction geometry would actually remove it from being a valid sweepable profile, since construction geometry is reference-only and cannot define a solid body. Enabling Tangent Chain affects path continuity, not the profile-plane intersection problem. Answer B misunderstands the requirement. Enlarging the profile so its perimeter crosses the path doesn't satisfy the intersection rule — the path endpoint still doesn't reach the profile plane, so Fusion still cannot establish a valid sweep relationship. The profile's size is irrelevant here. Answer D is a distractor that sounds procedural but solves nothing geometrically. Moving the path parallel to the profile plane keeps it disconnected, and setting the operation to New Body is an output setting, not a fix for invalid geometry. Your study tip: whenever a Sweep fails in Fusion 360, first check whether the path endpoint lies on the profile's plane — that single geometric relationship is the most common point of failure.

Question 4

A noncircular sweep profile follows a three-dimensional curved path. The profile must continually reorient so its section remains normal to the local direction of the path rather than retaining its original global orientation.

Which Sweep orientation should be used?

  1. Use Parallel orientation so the profile remains aligned with its original sketch plane throughout the path.
  2. Use Perpendicular orientation so the profile follows the changing local direction of the selected path. (correct answer)
  3. Use Parallel orientation and reverse the path so the section becomes normal at every path point.
  4. Use Perpendicular orientation combined with a fixed taper angle so the profile scales while tracking the path direction.
Explanation: When working with the Sweep tool in Fusion 360, the key concept being tested here is how a profile's orientation is maintained as it travels along a curved 3D path. Ask yourself: should the profile "remember" where it started, or should it continuously adapt to the path's local direction? The passage tells you exactly what behavior is needed — the profile must stay normal (perpendicular) to the path at every point along it. That's precisely what Perpendicular orientation does: it continuously rotates the profile so its face always aligns with the local tangent direction of the path. This keeps the cross-section geometrically consistent and prevents the profile from skewing or distorting as the path curves through 3D space. Answer B is correct. Answer A is wrong because Parallel orientation locks the profile to its original sketch plane's global orientation. On a 3D curved path, this causes the section to tilt away from normal — exactly the problem the passage says you need to avoid. Answer C incorrectly suggests that reversing the path direction fixes this misalignment; path direction affects start/end points, not the fundamental orientation behavior of the sweep. Answer D introduces a taper angle, which controls how the profile scales along the path — it has no effect on whether the profile tracks the path's local direction. Combining taper with Perpendicular orientation is a valid separate technique, but taper alone doesn't solve the normal-tracking problem. A good rule of thumb: whenever a question mentions a profile needing to stay "normal to the path," that's your signal to choose Perpendicular orientation in Fusion 360's Sweep dialog.

Question 5

A handle is to be swept along a curved center path. Its cross-section must enlarge gradually according to a separately sketched control curve rather than by one constant taper value. The control curve begins at the profile and remains separate from the center path.

Which Sweep setup best provides the required control?

  1. Use Single Path with a fixed taper angle and treat the control curve as an unselected reference.
  2. Use Path + Guide Rail, select the control curve as the rail, and enable appropriate profile scaling. (correct answer)
  3. Use Path + Guide Surface, select the profile plane as the guide, and disable profile scaling.
  4. Use Single Path with Parallel orientation and select the control curve as an additional profile.
Explanation: When a Sweep operation needs non-uniform scaling along its path — meaning the cross-section grows or shrinks according to a custom curve rather than a fixed angle — you should immediately think about Fusion 360's Path + Guide Rail option. This mode gives you two separate inputs: the center path that defines the sweep's trajectory, and a guide rail (control curve) that governs how the profile scales as it travels. Path + Guide Rail is exactly right here. By selecting your control curve as the guide rail and enabling profile scaling, Fusion 360 continuously matches the profile's size to the guide rail's geometry at each point along the path. This produces the gradual, variable enlargement the question describes — something no fixed taper value could achieve. Answer A fails because a fixed taper angle produces uniform, constant scaling only. Treating the control curve as an "unselected reference" means Fusion 360 completely ignores it — you get a cone-like taper, not a custom-shaped handle. Answer C confuses two different sweep modes. Path + Guide Surface projects the profile onto a surface to control orientation, not scaling. Selecting the profile plane as the guide surface and disabling scaling would leave you with no custom enlargement at all. Answer D misunderstands Sweep's Single Path mode. In that mode there is no "additional profile" input — Fusion 360 won't accept a second profile here. The control curve would either be ignored or cause an error. Study tip: On Fusion 360 exam questions, whenever you see "variable scaling" or "control curve separate from the path," that's your signal to reach for Path + Guide Rail with profile scaling enabled — it's the only mode designed for that exact workflow.

Question 6

A swept reinforcement follows a curved path and touches an existing enclosure over part of its length. The reinforcement must remain a separately selectable solid body for later manufacturing operations, even though it contacts the enclosure.

Which Sweep operation should the designer select?

  1. Select Join so all contacting sweep material is merged permanently into the existing enclosure body.
  2. Select New Body so the complete swept reinforcement remains independent despite contacting the enclosure. (correct answer)
  3. Select Cut so the reinforcement path creates a matching channel while preserving the swept solid.
  4. Select Intersect so both complete bodies remain independently selectable after the sweep is calculated.
Explanation: When working with Sweep operations in Fusion 360, the key decision is always about how the new swept body should relate to existing bodies in your design. Ask yourself: does the design requirement call for merging, separating, subtracting, or overlapping? Here, the requirement is explicit — the reinforcement must remain a separately selectable solid body even though it physically contacts the enclosure. That points directly to New Body, which tells Fusion 360 to calculate the sweep and store the result as its own independent body, completely unaffected by any geometry it touches. The two bodies can coexist, overlap, or contact each other while still being individually selectable for later operations like manufacturing simulations or shell assignments. That makes B the correct choice. A describes the Join operation, which merges all touching material into the existing body permanently — the exact opposite of what the scenario requires. Once joined, you cannot selectively manipulate the reinforcement as its own entity. C describes Cut, which uses the swept profile to remove material from the existing body, creating a channel or void. It doesn't preserve the swept solid as a body at all — it subtracts it. D is a tempting distractor because "Intersect" sounds like it might keep both bodies independent, but Intersect actually retains only the overlapping volume between the two bodies and discards everything else, leaving you with neither complete body intact. A useful rule of thumb: whenever a question mentions "independently selectable" or "separate for later operations," your answer in Fusion 360 is almost always New Body.

Question 7

A keyed cable has a noncircular cross-section that follows a curved open path. From the beginning to the end of the path, the key must make exactly one quarter turn while the section otherwise remains normal to the path.

Which Sweep configuration most directly controls this result?

  1. Use Path + Guide Surface and select the original profile plane as the controlling guide surface.
  2. Use Parallel orientation and reverse the selected path until the key appears rotated at the endpoint.
  3. Use Perpendicular orientation and specify a taper angle that reduces the profile by one quarter.
  4. Use Perpendicular orientation and specify a quarter-turn Twist Angle over the selected sweep path. (correct answer)
Explanation: When working with the Sweep tool in Fusion 360, you need to distinguish between the options that control profile orientation along the path versus those that control profile rotation. This question tests whether you know which Sweep parameter literally spins the profile around the path axis. The feature you need here is Twist Angle. When you use Perpendicular orientation, the profile stays normal (perpendicular) to the path at every point — exactly what "normal to the path" means in the passage. Adding a Twist Angle then rotates that profile progressively along the path's length. Setting a 90° twist produces exactly one quarter turn from start to finish. Answer D describes this precisely and is the correct choice. Answer A is a trap because Guide Surface controls how the profile tilts relative to a surface — it governs banking or lean, not axial rotation of the profile. Using your original profile plane as a guide surface would not produce a controlled quarter-turn twist. Answer B is incorrect because Parallel orientation keeps the profile aligned with its original world-space orientation rather than staying normal to the path. Reversing the path direction changes which end is the "start," but it doesn't introduce any rotation — it just flips the sweep direction. Answer C confuses Taper Angle with twist. Taper scales the profile inward or outward (like a draft angle on a cone), which changes the profile's size, not its rotational orientation. A quarter-taper would shrink the cross-section, not spin it. Study tip: On Fusion 360 sweep questions, match each parameter to its axis of effect — Twist rotates around the path axis, Taper scales perpendicular to it, and Guide Surface controls banking.

Question 8

An existing solid shaft needs a continuous annular lubrication groove. A sketch plane passing through the shaft axis contains a closed cross-section of the desired groove.

Which configuration will remove the groove uniformly around the shaft?

  1. Revolve the groove section through a full revolution about the shaft axis, with the operation set to Cut. (correct answer)
  2. Revolve the groove section through a full revolution about its nearest edge, with the operation set to Join.
  3. Sweep the groove section along the shaft axis, with the operation set to Cut and orientation set to Parallel.
  4. Revolve the shaft silhouette through a full revolution about the shaft axis, with the operation set to Intersect.
Explanation: When working with rotational features in Fusion 360, the key question to ask is: what geometry am I rotating, around what axis, and what operation do I want? Grooves, channels, and recesses that wrap uniformly around a cylindrical body are almost always created with the Revolve tool combined with a Cut operation. Here's the logic for answer A: you sketch the groove's cross-sectional profile on a plane that passes through the shaft axis, then revolve that closed profile a full 360° around that same axis. Because the axis of revolution is the shaft's centerline, every point of the profile sweeps an equal arc, producing a perfectly uniform annular groove. Setting the operation to Cut removes the revolved volume from the existing solid — exactly what you need. Answer B fails on two counts: revolving around the nearest edge instead of the shaft axis creates an off-center torus-like shape that doesn't align with the shaft geometry, and using Join would add material rather than remove it. Answer C misuses the Sweep tool. Sweeping the profile along the shaft axis moves it linearly, not rotationally — you'd cut a slot that travels down the length of the shaft, not a groove that wraps around it. Answer D revolves the shaft silhouette rather than the groove profile, and Intersect keeps only overlapping material — this would reduce or reshape the shaft itself rather than adding a groove to it. The study tip to remember: for any feature that needs to wrap uniformly around a cylindrical axis (grooves, flanges, chamfers), default to Revolve + Cut around that central axis. If it travels along an axis, use Sweep; if it wraps around one, use Revolve.

Question 9

A designer must create a hollow cylindrical sleeve as one revolved solid. The sleeve has constant wall thickness, open ends, and a central axis that lies in the sketch plane.

Which Revolve setup creates the sleeve without requiring a later Shell or Cut feature?

  1. Select the closed axial wall section, use the centerline as the axis, and apply a full-revolution New Body operation. (correct answer)
  2. Select the closed outer silhouette, use the centerline as the axis, and apply a full-revolution New Body operation.
  3. Select the closed axial wall section, use an end edge as the axis, and apply a full-revolution Join operation.
  4. Select the open outer contour, use the centerline as the axis, and apply a full-revolution Surface operation.
Explanation: When using Fusion 360's Revolve feature to create a hollow cylinder in a single operation, the key question is: what profile shape produces the hollow geometry directly? Think about what you're actually spinning around the axis — the profile becomes the cross-section of the resulting solid. To create a hollow sleeve in one shot, you need to sketch the wall cross-section — a closed rectangular profile representing the sleeve's wall thickness in the axial plane. When you revolve this closed axial wall section 360° around the centerline, Fusion 360 sweeps that wall profile through space, producing a hollow tube with the correct inner diameter, outer diameter, and wall thickness baked in from the start. No Shell or Cut needed afterward. This is exactly what A describes, making it the correct answer. B is tempting but wrong — selecting the closed outer silhouette (the full filled circle of the outer boundary) would revolve into a solid cylinder, not a hollow one. You'd still need Shell or Cut to remove the interior material. C fails because using an end edge as the axis instead of the centerline would swing the profile around the wrong pivot, producing a torus-like shape rather than a concentric sleeve. D describes a Surface operation on an open contour, which generates an open surface shell — not a solid body. The sleeve described in the problem is a solid with wall thickness, so a surface operation is fundamentally the wrong type. Study tip: In Fusion 360, always match your sketch profile to the desired cross-section of the final solid — what you draw is exactly what gets revolved. If you sketch the wall, you get a hollow body; if you sketch the full face, you get a solid.

Question 10

A solid circular profile is swept along a path containing a very tight inside bend. The profile and path are valid and connected, but the Sweep preview fails near the bend. Increasing the profile diameter makes the failure more pronounced.

What is the most likely cause and suitable correction?

  1. The operation is set to New Body; change it to Join even if no target body intersects the sweep.
  2. The path direction is reversed at the bend; reverse the path while keeping the same profile and radius.
  3. The profile is closed instead of open; break the circle and create the result with a solid Sweep operation.
  4. The swept volume self-intersects at the tight bend; reduce the profile size or increase the bend radius. (correct answer)
Explanation: When working with Sweep operations in Fusion 360, always think about the geometric relationship between your profile's size and the curvature of your path. The core rule is simple: the swept volume cannot fold back on itself. When a profile travels around a tight bend, the inner edge of the sweep travels a much shorter arc than the outer edge. If the profile is large enough relative to the bend radius, that inner edge effectively tries to occupy negative space — the geometry self-intersects, and Fusion 360 cannot resolve the resulting invalid solid. This is exactly what's happening in the scenario, and the fact that increasing the profile diameter worsens the failure is the diagnostic clue confirming self-intersection as the culprit. The correct fix, as described in D, is to either reduce the profile size so the inner edge stays clear of itself, or increase the bend radius so the path curves more gently. A is a red herring — the Boolean operation type (New Body vs. Join) controls how the result interacts with existing bodies, not whether the geometry itself is valid. Changing it cannot resolve a self-intersecting sweep. B misidentifies the problem as a path direction issue; while path orientation can affect twist behavior, reversing the path doesn't change the bend's geometry or fix self-intersection. C incorrectly diagnoses the profile type as the culprit — a closed circular profile is perfectly valid for a solid Sweep; the issue is dimensional, not topological. As a study tip, whenever a Sweep fails near a curve, immediately check the ratio of profile size to bend radius — that geometric conflict is the most common failure mode on this type of question.