Question 1
Skydrol is a common example of which type of hydraulic fluid?
Correct Answer:
Phosphate-ester-base synthetic
Explanation:
Skydrol is a phosphate-ester-based synthetic hydraulic fluid. This type is chosen for aviation because it provides high fire resistance, a high flash point, and excellent stability across a wide temperature range, which is crucial in aircraft hydraulic systems where leaks near hot components could ignite if flammable fluids were used. Its synthetic phosphate-ester composition also offers good dielectric properties, helping to isolate electrical components in the system. Mineral-base, water-based, and silicone-based fluids do not offer the same combination of fire resistance and high-temperature stability needed for aircraft applications, making the phosphate-ester synthetic category the correct match for Skydrol.
Question 2
Before working on landing gear, which procedure isolates energy sources and prevents unexpected re-energization?
Correct Answer:
Follow lockout/tagout procedures
Explanation:
Lockout/tagout procedures create a true zero-energy state before maintenance by identifying every energy source feeding the landing gear, isolating them, applying locks to prevent re-energization, and tagging the equipment to warn others. In landing gear work, energy can come from hydraulics, electricity, pneumatics, and stored mechanical energy. Simply shutting down one part, like hydraulics, doesn’t guarantee no energy will re-energize the system or that all sources are safely isolated. Lockout/tagout ensures all sources are blocked and clearly communicates that work is in progress, with verification that energy has been dissipated before maintenance begins. De-energizing hydraulics alone is not enough because other sources may be present or residual energy still stored. Chocking wheels prevents movement but doesn’t address energy isolation. PPE is about personal protection, not stopping energy.
Question 3
How is hydraulic pressure managed across multiple actuators to ensure reliable gear operation?
Correct Answer:
Redundant hydraulic systems with crossfeed and properly designed valve logic ensure pressure can be applied to all actuators if one path fails.
Explanation:
Reliability comes from redundancy and careful pressure distribution so every actuator can be fed even if one path has an issue. In multi-actuator gear systems, two or more hydraulic circuits are provided with crossfeed lines and smart valve logic. The crossfeed allows pressure to be shared between circuits, so if one line or path leaks or a valve traps pressure, the other circuit can still supply the remaining actuators. Valve logic—sequencing, check valves, isolation valves, and pressure regulators—controls which actuators are pressurized, prevents backflow, and ensures the gear extends, retracts, and locks in the proper order with the right hold pressure. This setup also enables quick shutdowns and safe hold scenarios, while components like accumulators smooth pressure spikes and maintain hold during transient demands. The other options fall short because a single isolated circuit is vulnerable to a single failure, pneumatic power lacks the necessary force and control for gear operations, and manual hand pumps aren’t practical for synchronized, reliable actuation.
Question 4
Which of the following is NOT listed as a method emergency gear extension systems may use?
Correct Answer:
Electric motor
Explanation:
Emergency gear extension systems are designed to move the gear out and lock it even when the primary hydraulic system isn’t available. The typical back-up methods are mechanical/manual extension, alternate hydraulic extension using a separate hydraulic supply, and a pneumatic (compressed air) extension that uses stored air to drive the gear actuators. An electric motor, while it can power actuators in some designs, isn’t usually listed as a separate emergency extension method in standard references. Electrical power may not be available during a failure, and design conventions treat electric-drive as part of a broader system rather than a standalone emergency extension method.
Question 5
What term describes the condition when the front sides of the wheels are closer together than the rear sides?
Correct Answer:
Toed-in
Explanation:
Toe-in describes the condition where the front edges of the wheels are closer together than the rear edges, so the wheels are angled inward when viewed from above. This inward angle helps with straight-line tracking and stability on the ground, providing a self-centering tendency as the tires roll. It’s a deliberate alignment setting that can compensate for suspension sag or load and can influence tire wear and steering feel. The opposite, toe-out, would have the front edges farther apart. If the wheels were perfectly parallel with no toe, that would be a neutral or aligned condition, not toe-in.
Question 1
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About this Exam

Prepare with the Aircraft Landing Gear Systems Practice Test practice quiz. This question bank includes 10 questions covering gear, landing, hydraulic, term, and sides. Use it to review important concepts, identify knowledge gaps, and build confidence for the related exam, course, or assessment.

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Aircraft Landing Gear Systems Practice Test

This practice set contains 10 questions from the matching question bank and focuses on gear, landing, hydraulic, term, and sides. Work through each question carefully, review the provided solutions, and revisit topics that need more study before your next attempt.

This is an independent study resource intended for practice and review; it is not an official examination or an endorsement by any organization named in the title.

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