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    Aviation

    Ready For Takeoff – Turn Your Aviation Passion Into A Career

    The Ready For Takeoff podcast will help you transform your aviation passion into an aviation career. Every week we bring you instruction and inspiring interviews with top aviators in their field who reveal their flight path to an exciting career in the skies.

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    Copyright: © Nolly Productions, Inc.

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    Latest Episodes:
    RFT 179: AOG/MEL/CDL Apr 20, 2018
    Show notes

    Aircraft on Ground or AOG is a term in aviation maintenance indicating that a problem is serious enough to prevent an aircraft from flying. Generally there is a rush to acquire the parts to put the aircraft (A/C) back into service, and prevent further delays or cancellations of the planned itinerary. AOG applies to any aviation materials or spare parts that are needed immediately for an aircraft to return to service. AOG suppliers refer qualified personnel and dispatch the parts required to repair the aircraft for an immediate return to service. AOG also is used to describe critical shipments for parts or materials for aircraft "out of service" or OTS at a location.

    In aviation, master minimum equipment list, or MMEL, is a categorized list of on-board systems, instruments and equipment that may be inoperative for flight. Specific procedures or conditions may be associated with operation of the relevant item. It is considered by default that any equipment or system related to airworthiness which is not included in the MMEL is required to be operative. The MMEL is defined on a per aircraft model basis.

    MEL (Minimum Equipment List): MEL is based upon the MMEL (Master Minimum Equipment List). MMEL is defined on a per aircraft model basis. MEL is prepared by the operator by taking reference of the MMEL keeping in mind the type and number of equipment installed. Initial issue of the MEL and its subsequent revisions will be approved by competent authority.

    The philosophy behind MEL is to authorize release of flight with inoperative equipment only when the inoperative equipment does not render the aircraft unairworthy for the particular flight to avoid revenue loss to the operator and discomfort to the passengers.

    Limitations, procedures and substitutions may be used to provide conditions under which the inoperative equipment will not make the operation unsafe or the aircraft unairworthy. This is not a philosophy which permits reduced safety in order to fly to a base where repairs can be made, but rather a philosophy which permits safe operations for a take off from a maintenance base or en-route stop.

    It may not include items like galley equipment, entertainment systems, passenger convenience equipment, which do not affect the airworthiness of an aircraft. All items which affect the airworthiness of aircraft or safety of those carried on board and are not included in MEL are required to be operative.

    Minimum equipment lists are issued to specific aircraft and specific operators. In order to use a minimum equipment list, that specific company must receive a letter of authorization from the national aviation authorities of the countries where the aircraft will operate.

    A minimum equipment list is required in the United States by the Federal Aviation Administration:

    • When operating any turbine-powered aircraft such as jets or turboprops.
    • When operating under part 135 (Commuter and on-demand operations)
    • When operating under part 125 (Non-airline large aircraft operations)

    The CDL evolved over several years from what was commonly known as a “missing parts list,” which was a list of non-structural external parts of an airplane that were found missing after flight. The missing parts list is known today as the CDL.

    The CDL plays an important role in the operator’s ability to safely continue flight operations. It is a list of externally exposed aircraft parts that may be missing for flight while the aircraft remains Airworthy. CDLs are developed by aircraft manufacturers, approved by the FAA, and tailored for each model aircraft.

    A CDL is developed for most U.S.-built transport 14 CFR part 25 aircraft and many 14 CFR part 23 aircraft by aircraft manufacturers during the initial certification process. However, they are not a required element for aircraft certification. The manufacturer makes the decision to develop or not to develop a CDL. If deemed necessary, the aircraft manufacturer develops a proposed CDL and submits it to the responsible Aircraft Certification Office (ACO). The ACO reviews, evaluates, conducts the required testing, and coordinates with the appropriate Aircraft Evaluation Group (AEG), if needed, to resolve any problems and/or discrepancies.


    RFT 178: Air Disasters Writer Samme Chittum Apr 16, 2018
    Show notes

    Samme Chittum is an award-winning writer of fiction and nonfiction, and is currently a writer for Smithsonian Channel's Air Disasters series. She has a PhD and two Masters Degrees.

    Samme started her journalistic career as a police reporter, covering crimes and accidents. Her first nonfiction book about an air accident was The Flight 981 Disaster: Tragedy, Treachery, and the Pursuit of Truth, the story of the Turkish Airlines DC-10 air disaster that occurred in 1974.

    Her book Southern Storm: The Tragedy of Flight 242 recounts the tragic crash of Southern Airways Flight 242, a DC-9 that lost power of both engines due to massive water and hail ingestion.

    Her book about the crash of the Concorde, Last Days of the Concorde: The Crash of Flight 4590 and the End of Supersonic Passenger Travel is now available for pre-order.


    RFT 177: Laws of Learning Apr 13, 2018
    Show notes

    Readiness

    The basic needs of the learner must be satisfied before he or she is ready or capable of learning (see Chapter 1, Human Behavior). The instructor can do little to motivate the learner if these needs have not been met. This means the learner must want to learn the task being presented and must possess the requisite knowledge and skill. In SBT, the instructor attempts to make the task as meaningful as possible and to keep it within the learner’s capabilities. Students best acquire new knowledge when they see a clear reason for doing so, often show a strong interest in learning what they believe they need to know next, and tend to set aside things for which they see no immediate need. For example, beginning flight students commonly ignore the flight instructor’s suggestion to use the trim control. These students believe the control yoke is an adequate way to manipulate the aircraft’s control surfaces. Later in training, when they must divert their attention away from the controls to other tasks, they realize the importance of trim. Instructors can take two steps to keep their students in a state of readiness to learn. First, instructors should communicate a clear set of learning objectives to the student and relate each new topic to those objectives. Second, instructors should introduce topics in a logical order and leave students with a need to learn the next topic. The development and use of a well-designed curriculum accomplish this goal. Readiness to learn also involves what is called the “teachable moment” or a moment of educational opportunity when a person is particularly responsive to being taught something. One of the most important skills to develop as an instructor is the ability to recognize and capitalize on “teachable moments” in aviation training. An instructor can find or create teachable moments in flight training activity: pattern work, air work in the local practice area, cross-country, flight review, or instrument proficiency check. Teachable moments present opportunities to convey information in a way that is relevant, effective, and memorable to the student. They occur when a learner can clearly see how specific information or skills can be used in the real world. For example, while on final approach several deer cross the runway. Bill capitalizes on this teachable moment to stress the importance of always being ready to perform a go-around.

    Effect

    All learning involves the formation of connections and connections are strengthened or weakened according to the law of effect. Responses to a situation that are followed by satisfaction are strengthened; responses followed by discomfort are weakened, either strengthening or weakening the connection of learning. Thus, learning is strengthened when accompanied by a pleasant or satisfying feeling, and weakened when associated with an unpleasant feeling. Experiences that produce feelings of defeat, frustration, anger, confusion, or futility are unpleasant for the student. For example, if Bill teaches landings to Beverly during the first flight, she is likely to feel inferior and be frustrated, which weakens the learning connection. The learner needs to have success in order to have more success in the future. It is important for the instructor to create situations designed to promote success. Positive training experiences are more apt to lead to success and motivate the learner, while negative training experiences might stimulate forgetfulness or avoidance. When presented correctly, SBT provides immediate positive experiences in terms of real world applications. To keep learning pleasant and to maintain student motivation, an instructor should make positive comments about the student’s progress before discussing areas that need improving. Flight instructors have an opportunity to do this during the flight debriefing. For example, Bill praises Beverly on her aircraft control during all phases of flight, but offers constructive comments on how to better maintain the runway centerline during landings.

    Exercise

    Connections are strengthened with practice and weakened when practice is discontinued, which reflects the adage “use it or lose it.” The learner needs to practice what has been learned in order to understand and remember the learning. Practice strengthens the learning connection; disuse weakens it. Exercise is most meaningful and effective when a skill is learned within the context of a real world application.

    Primacy

    Primacy, the state of being first, often creates a strong, almost unshakable impression and underlies the reason an instructor must teach correctly the first time and the student must learn correctly the first time. For example, a maintenance student learns a faulty riveting technique. Now the instructor must correct the bad habit and reteach the correct technique. Relearning is more difficult than initial learning. Also, if the task is learned in isolation, it is not initially applied to the overall performance, or if it must be relearned, the process can be confusing and time consuming. The first experience should be positive, functional, and lay the foundation for all that is to follow.

    Intensity

    Immediate, exciting, or dramatic learning connected to a real situation teaches a learner more than a routine or boring experience. Real world applications (scenarios) that integrate procedures and tasks the learner is capable of learning make a vivid impression and he or she is least likely to forget the experience. For example, using realistic scenarios has been shown to be effective in the development of proficiency in flight maneuvers, tasks, and single-pilot resource management (SRM) skills.

    Recency

    The principle of recency states that things most recently learned are best remembered. Conversely, the further a learner is removed in time from a new fact or understanding, the more difficult it is to remember. For example, it is easy for a learner to recall a torque value used a few minutes earlier, but it is more difficult or even impossible to remember an unfamiliar one used a week earlier. Instructors recognize the principle of recency when they carefully plan a summary for a ground school lesson, a shop period, or a postflight critique. The instructor repeats, restates, or reemphasizes important points at the end of a lesson to help the learner remember them. The principle of recency often determines the sequence of lectures within a course of instruction. In SBT, the closer the training or learning time is to the time of the actual scenario, the more apt the learner is to perform successfully. This law is most effectively addressed by making the training experience as much like the scenario as possible.


    RFT 175: Airline Drug Testing Apr 06, 2018
    Show notes

    Anyone in a safety-sensitive position in transportation must be tested for drug use, both pre-employment and on a random basis, as well as for suspected drug use. In airline operations, the following positions are subject to this testing:

    Flight crewmember duties.

    Flight attendant duties.

    Flight instruction duties.

    Aircraft dispatcher duties.

    Aircraft maintenance and preventive maintenance duties.

    Ground security coordinator duties.

    Aviation screening duties.

    Air traffic control duties.

    In addition to the previously-screened marijuana, cocaine and heroin, as of January 2018 the drug tests for synthetic opioids.


    RFT 174: Free Flier Heath Owens Apr 02, 2018
    Show notes

    Heath Owens is not the typical professional pilot Ready for Takeoff guest. In fact, Heath is not yet a pilot. But he is an aviation fanatic who has broken the code on how to fly for FREE, and his enthusiasm is contagious, and he has some great ideas for our listeners who want to learn how to get in the air without spending a lot of - or any - money.

    And Heath explains how he got started in aviation insurance. I think you're going to find his story fascinating.


    RFT 173: Upgrading Right To Left Mar 30, 2018
    Show notes

    Even if you are type rated the in the airplane, there is a lot more to upgrading than learning how to fly the airplane from a different seat. You'll find that most of the real-life challenges you face as Captain have nothing to do with engine failure on takeoff!

    At many airlines, when it took more than 10 years to make Captain, copilots would have a lot of exposure to good and bad Captains, and would have the opportunity to see countless airborne decisions and evaluate their results. With rapid advancement now days, it's possible copilots will not have the extensive mentoring that existed previously.

    At most airlines there is some form of New Captain training to give the prospective aircraft commander training and instruction on a variety of operational topics, such as Leadership, Crewmember Mentoring, Crew Resource Management (CRM), Inflight Medical Issues, Decision-Making, Management, Fatigue-Risk Management, Stress, Aviation Law, Company Procedures and Performance.


    RFT 172: Robert "Cujo" Teschner Mar 26, 2018
    Show notes

    Robert "Cujo" Teschner served as the U.S. Air Force's debrief expert during his time as an F-15C instructor pilot at the U.S. Air Force Weapons School at Nellis AFB, NV. He personally designed and taught the first-ever core debrief fundamentals course to all Weapons School students across all disciplines. He authored the paper "The Vocabulary of the Debrief," which was published in the Weapons School Review, and served as the subject author and senior adviser on a paper presenting the fundamentals of debrief methodology. Cujo has spent countless hours teaching debrief fundamentals to both military and business professionals. After retiring from the Air Force, Cujo founded VMax Group.


    RFT 171: Airline Upgrading Mar 23, 2018
    Show notes

    Upgrading from airline First Officer (copilot) to Captain involves more than simply moving from the right seat to the left. If a new type rating is required, there will be ground school and simulator training, and the ubiquitous check ride.

    Simulator training may consist of traditional Appendix H Training to ATP Practical Test Standards and the newer Advanced Qualification Program, and will be conducted in a Level C or Level D simulator.

    After training is complete, the new Captain must complete Operating Experience (OE) - formerly called Initial Operating Experience (IOE) in accordance with FAR 121.434, which consists of 25 hours of supervised inflight training on regular revenue flights with a Line Check Airman in the right seat. At the completion of OE, if it the pilot's initial Captain certification, an FAA Aviation Safety Inspector will ride along on one leg of the OE to observe the PIC's performance during the latter stages of OE.


    RFT 170: Afterburner President Joel "Thor" Neeb Mar 19, 2018
    Show notes

    From the Afterburner website:

    As an F-15 pilot, Thor escorted the U.S. President through the sky and flew missions to ensure the safety of the country after the attacks of 9/11. He was the tactical leader of 300 of the most senior combat pilots in the Air Force and he oversaw the execution of a $150M/year flight program. Thor was named the Top Instructor Pilot at the Air Force Flight Training Headquarters and he’s flown thousands of missions teaching pilots from 25 countries around the world. He received his Bachelor’s Degree at the United States Air Force Academy and is a summa cum laude graduate of the McCombs School of Business at the University of Texas.

    For most of 2015, Thor led a team of Afterburner consultants that was embedded in Silicon Valley with one of the top-five largest software companies in the world. While there, Thor supported the successful completion of more than 50 projects or “Missions” created from the CEO’s key strategic objectives.

    Thor is humbled to have had the incredible experiences that executive leadership within the military and Afterburner have afforded him, but he’s most proud of the following accomplishments. In 2010, Thor was diagnosed with Stage IV cancer and given about a 15% chance to live. Instead of giving up, Thor decided to give back. He started a youth outreach program in San Antonio that has grown to help more than 15,000 at-risk kids. Their efforts have been featured on every news channel for 100 miles and one national media outlet. In 2012, he was selected out of 62,000 people to receive the AETC National Public Service Award.

    Thor completed the New Zealand Ironman Triathlon in March of 2015 to commemorate the five-year anniversary of his Stage IV cancer diagnosis and to raise awareness for the rare and deadly cancer that he battles.

    Thor sits on the board of several national organizations and is the co-founder of a military support corporation. As Afterburner’s President, Thor leads our team of more than 70 elite military professionals. He has helped achieve strategic objectives and foster elite teams for Fortune 100 companies within the tech industry, pharmaceuticals, finance, medical devices, retail apparel and several NFL teams.

    Thor hosts the Thorcast podcast.


    RFT 169: RTO Mar 15, 2018
    Show notes

    In aviation terminology, a rejected takeoff (RTO) or aborted takeoff is the situation in which it is decided to abort the takeoff of an airplane. There can be many reasons for deciding to perform a rejected takeoff, but they are usually due to suspected or actual technical failures, like an engine failure such as a compressor stall occurring during the takeoff run.

    A rejected takeoff is normally performed only if the aircraft's speed is below the critical engine failure speed (sometimes called decision speed) known as V1 , which for larger multi-engine airplanes is calculated before each flight.The Federal Aviation Administration defines V1 as: "the maximum speed in the takeoff at which the pilot must take the first action (e.g., apply brakes, reduce thrust, deploy speed brakes) to stop the airplane within the accelerate-stop distance. V1 also means the minimum speed in the takeoff, following a failure of the critical engine at VEF, at which the pilot can continue the takeoff and achieve the required height above the takeoff surface within the takeoff distance." Below the decision speed, the airplane should be able to stop safely before the end of the runway. Above the decision speed, the airplane may overshoot the runway if the takeoff is aborted, and, therefore, a rejected takeoff is normally not performed above this speed, unless there is reason to doubt the airplane's ability to fly. If a serious failure occurs or is suspected above V1 but the airplane's ability to fly is not in doubt, the takeoff is continued despite the (suspected) failure and the airplane will attempt to land again as soon as possible.

    Single-engine aircraft will normally reject any takeoff after an engine failure, regardless of speed, as there is no power available to continue the takeoff. Even if the airplane is already airborne, if sufficient runway remains, an attempt to land straight ahead on the runway may be made. This may also apply to some light twin engine airplanes.

    Before the takeoff roll is started, the autobrake system of the aircraft, if available, is set to the RTO mode. The autobrake system will automatically apply maximum brakes if throttle is reduced to idle or reverse thrust during the takeoff roll.

    An RTO is usually seen as one of the hardest tests an airplane has to undergo for its certification trials. The RTO test is performed under the worst possible conditions; i.e. with fully worn out brakes, the plane loaded to maximum takeoff weight and no use of thrust reverst. During an RTO test most of the kinetic energy of the airplane is converted to heat by the brakes, which may cause the fusible plugs of the tires to melt, causing them to deflate. Small brake fires are acceptable as long as they do not spread to the airplane body within five minutes (the maximum likely time for arrival of the airport fire fighters). Most modern flight manuals specify 80 (Boeing) or 100 (Airbus) knots as the beginning of the "high speed" regime of the takeoff run, and recommend only rejecting the takeoff only in the case of
    • Engine fire
    • Engine failure
    • predictive windshear
    • aircraft unsafe to fly
    A significant high-speed rejected takeoff accident highlights the importance of performing a high-speed RTO in the case of an uncontained engine failure that resulted in a fuselage fire. In this accident, the crew initially thought that they had experienced a tire failure and elected to RTO at 126 knots (V1 was 146). The engine fire indication did not occur for 9 more seconds. If they had continued the takeoff, it is likely that all occupants would have perished instead of the 55 of the 131 passengers. For discussion reference, a B777 at maximum takeoff weigh of 520,000 pounds on a standard day at sea level has a balanced field length of 6950 feet (Reference). On a typical runway length of 12,000 feet, such as runway 18L or 18R at Orlando International Airport, that leaves almost a mile of additional runway available for stopping.

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