Multi Engine Training Series
- Description
- Curriculum
- Reviews
Master Multi-Engine Flying Before You Step Into the Airplane
Ace Pilot Academy’s Multi-Engine Training Series — Premium Study Course is a complete self-paced training course designed to help pilots understand the concepts that matter most in multi-engine flying.
Enroll today and get full access to the complete Multi-Engine Training Series, including videos, quizzes, study guides, final review, checklist, and certificate of completion.
Launch Price: $79 | Regular Price: $129
This course covers multi-engine V-speeds, Vmc, critical engine, single-engine performance, density altitude, zero sideslip, propeller systems, crossfeed fuel systems, cowl flaps, combustion heaters, anti-ice/de-ice systems, pressurization, turbochargers, and final checkride-style review topics.
This is not just a video library. The course includes structured lessons, quizzes, downloadable study guides, a final review package, and a checkride readiness checklist.
What’s Included
- 14 multi-engine video lessons
- 14 lesson quizzes with explanations
- 14 downloadable PDF study guides
- Module 4 final review lesson
- Module 5 aircraft-specific study guides: PA-30, PA-44, PA-34, and DA42
- Multi-engine checkride readiness checklist
- Multi-Engine DPE Scenario Study Guide
- 30-question final review quiz
Who This Course Is For
This course is designed for:
This course is best for pilots who want structured multi-engine knowledge before training, review, checkout, or checkride preparation.
- Pilots preparing for a commercial multi-engine add-on
- Pilots preparing for MEI training
- Pilots reviewing multi-engine aircraft systems
- Pilots preparing for a multi-engine oral exam
- Instructors looking for structured multi-engine teaching material
- Pilots who want to understand the “why” behind multi-engine operations
What You’ll Learn
Module 1 — Multi-Engine Foundations
- Multi-engine V-speeds
- Minimum controllable airspeed — Vmc
- Multi-engine performance and limitations
- Critical engine
- Service ceiling
- Critical density altitude
- Zero sideslip
Module 2 — Multi-Engine Aircraft Systems
- Propeller systems
- Crossfeed fuel systems
- Cowl flaps
- Combustion heaters
Module 3 — Advanced Multi-Engine Systems
- Anti-ice / de-ice systems
- Aircraft pressurization
- Turbocharger systems
Module 4 — Final Review
- Full-course review
- DPE-style oral review prompts
- Checkride readiness checklist
- 30-question final quiz
Module 5 — Aircraft-Specific Multi-Engine Study Guides
- PA-30 Twin Comanche checkride-ready study guide
- PA-44 Seminole checkride-ready study guide
- PA-34 Seneca checkride-ready study guide
- DA42 Twin Star checkride-ready study guide
- Aircraft-specific V-speeds, systems, limitations, and procedures
- Engine-out flows and aircraft-specific checkride review
- Downloadable PDF study guides for each aircraft
Why Train With Ace Pilot Academy
This course is built to help pilots go beyond memorizing definitions. You will learn how to explain multi-engine concepts clearly, connect them to safety, and understand how aircraft-specific AFM/POH procedures apply.
The goal is simple: help you become more confident, better prepared, and more knowledgeable before you step into the airplane.
Important Note
This course is for training and study purposes. Always follow the aircraft-specific AFM/POH, approved checklists, instructor guidance, and applicable FAA regulations.
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1Lesson 1: Multi-Engine V-Speeds
This lesson introduces the key V-speeds used in multi-engine aircraft operations, including speeds related to controllability, climb performance, and aircraft limitations. Students will learn why these speeds are critical during takeoff, climbout, and engine-failure scenarios, and how to apply them during real-world multi-engine decision-making.
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2Quiz 1: Multi-Engine V-Speeds Quizhis quiz checks your understanding of the key V-speeds used in multi-engine aircraft operations. You will be tested on the meaning and operational importance of speeds related to controllability, single-engine climb performance, and safe decision-making during takeoff, climbout, and engine-failure scenarios.
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3Lesson 2: Minimum Controllable Airspeed — Vmc
This lesson explains minimum controllable airspeed, commonly known as Vmc, and why it is one of the most critical concepts in multi-engine flying. Students will learn how Vmc relates to directional control, critical engine failure, rudder effectiveness, aircraft configuration, and safe decision-making during engine-out operations.
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4Quiz 2: Minimum Controllable Airspeed (Vmc) QuizThis quiz checks your understanding of minimum controllable airspeed in a multi-engine airplane. You will be tested on the meaning of Vmc, the importance of directional control, the effect of critical engine failure, and the factors that can influence controllability during engine-out operations.
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5Lesson 3: Multi-Engine Performance and Limitations
This lesson explains the performance capabilities and limitations of multi-engine airplanes, with special emphasis on single-engine climb performance, aircraft loading, density altitude, configuration, and the importance of understanding what the aircraft can and cannot do after an engine failure.
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6Quiz 3: Multi-Engine Performance and Limitations QuizThis quiz checks your understanding of multi-engine aircraft performance and limitations. You will be tested on single-engine climb capability, density altitude, aircraft configuration, drag, weight, Vyse, and why performance planning is critical before operating a multi-engine airplane.
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7Lesson 4: Determining Critical Engine
This lesson explains how to determine the critical engine in a conventional multi-engine airplane using the major aerodynamic factors associated with engine-out control: P-factor, accelerated slipstream, spiraling slipstream, and torque effect.
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8Quiz 4: Determining Critical Engine QuizThis quiz checks your understanding of the critical engine and the four aerodynamic factors commonly used to explain it: P-factor, accelerated slipstream, spiraling slipstream, and torque effect.
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9Lesson 5: Multi-Engine Service Ceiling
This lesson explains service ceiling, absolute ceiling, single-engine service ceiling, and single-engine absolute ceiling. Students will learn why climb performance decreases with altitude and why single-engine climb capability may be limited, zero, or negative depending on aircraft weight, density altitude, configuration, and drag.
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10Quiz 5: Multi-Engine Service Ceiling QuizThis quiz checks your understanding of service ceiling, absolute ceiling, single-engine service ceiling, single-engine absolute ceiling, and how these limitations affect multi-engine performance planning and engine-out decision-making.
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11Lesson 6: Critical Density Altitude
This lesson explains density altitude and introduces critical density altitude as a training concept used to describe a condition in which a multi-engine airplane’s single-engine climb capability becomes marginal, zero, or negative due to altitude, temperature, weight, and drag.
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12Quiz 6: Critical Density Altitude QuizThis quiz checks your understanding of density altitude, how it affects multi-engine performance, and why a light twin may have little or no single-engine climb capability under hot, high, and heavy conditions.
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13Lesson 7: Zero Sideslip
This lesson explains zero sideslip during one-engine-inoperative flight. Students will learn how proper rudder use, a slight bank into the operating engine, and drag reduction improve aircraft control and single-engine performance.
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14Quiz 7: Zero Sideslip QuizThis quiz checks your understanding of zero sideslip, rudder and bank coordination, drag reduction, and best-performance one-engine-inoperative flight.
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15Lesson 8: Multi-Engine Propeller Systems
This lesson explains multi-engine propeller systems, including constant-speed propeller operation, propeller governors, blade angle, RPM control, feathering, unfeathering, windmilling drag, and why propeller management is critical during engine-out operations.
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16Quiz 8: Multi-Engine Propeller Systems QuizThis quiz checks your understanding of constant-speed propeller operation, propeller governors, blade angle, feathering, windmilling drag, RPM control, and engine-out propeller management.
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17Lesson 9: Multi-Engine Crossfeed Fuel System
This lesson explains the purpose and operation of a multi-engine crossfeed fuel system. Students will learn how crossfeed may be used for fuel management, engine-out endurance, fuel balance, and why crossfeed procedures must always follow the aircraft-specific AFM/POH.
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18Quiz 9: Multi-Engine Crossfeed Fuel System QuizThis quiz checks your understanding of crossfeed fuel system operation, normal feed, fuel selector management, engine-out fuel use, fuel starvation risk, and aircraft-specific AFM/POH procedures.
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19Lesson 10: Introduction to Cowl Flaps
This lesson explains the purpose and operation of cowl flaps in multi-engine aircraft. Students will learn how cowl flaps help regulate engine temperature, why opening cowl flaps increases drag, and why cowl flap procedures must follow the aircraft-specific AFM/POH.
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20Quiz 10: Introduction to Cowl Flaps QuizThis quiz checks your understanding of cowl flap purpose, cooling airflow, engine temperature management, drag tradeoff, and aircraft-specific cowl flap procedures.
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21Lesson 11: Multi-Engine Combustion Heater
This lesson explains how combustion heaters provide cabin heat in some multi-engine aircraft. Students will learn the basic fuel, ignition, airflow, and exhaust process, along with key safety concerns including carbon monoxide risk, overheat protection, abnormal indications, and aircraft-specific AFM/POH procedures.
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22Quiz 11: Multi-Engine Combustion Heater QuizThis quiz checks your understanding of combustion heater operation, fuel and ignition, airflow, exhaust routing, carbon monoxide risk, overheat protection, abnormal indications, and aircraft-specific AFM/POH procedures.
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23Lesson 12: Anti-Ice / De-Ice Systems
This lesson explains the difference between anti-ice and de-ice systems, where ice can form on a multi-engine airplane, how common systems work, and why aircraft-specific AFM/POH limitations determine whether and how those systems may be used.
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24Quiz 12: Anti-Ice / De-Ice Systems QuizThis quiz checks your understanding of anti-ice and de-ice systems, icing hazards, system limitations, protected versus unprotected surfaces, and aircraft-specific AFM/POH procedures.
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25Lesson 13: Aircraft Pressurization
This lesson explains aircraft pressurization basics, including cabin altitude, pressure differential, outflow valve operation, safety valves, hypoxia risk, abnormal indications, and aircraft-specific AFM/POH procedures.
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26Quiz 13: Aircraft Pressurization QuizThis quiz checks your understanding of aircraft pressurization, cabin altitude, differential pressure, outflow valves, safety valves, hypoxia risk, oxygen use, abnormal indications, and aircraft-specific AFM/POH procedures.
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27Lesson 14: Turbocharger Systems
This lesson explains aircraft turbocharger systems, including exhaust-driven compressor operation, manifold pressure, wastegate function, overboost protection, temperature management, turbo lag, high-altitude performance, and aircraft-specific AFM/POH limitations.
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28Quiz 14: Turbocharger Systems QuizThis quiz checks your understanding of turbocharger operation, turbine and compressor function, manifold pressure, wastegate control, overboost protection, temperature management, turbo lag, and aircraft-specific AFM/POH procedures.
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29Multi-Engine Final Review and Checkride Readiness
This final review brings together the major concepts from the Ace Pilot Academy Multi-Engine Training Series. Students will review multi-engine aerodynamics, controllability, performance, engine-out procedures, aircraft systems, advanced systems, and checkride-focused readiness items before completing the final quiz.
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30Multi-Engine Final Review QuizThis final quiz checks your understanding of the full Ace Pilot Academy Multi-Engine Training Series, including multi-engine aerodynamics, V-speeds, Vmc, critical engine, performance limitations, density altitude, zero sideslip, propellers, fuel systems, cowl flaps, combustion heaters, anti-ice/de-ice systems, pressurization, turbochargers, and aircraft-specific AFM/POH procedures.