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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 287: Atmospheric Stability Apr 04, 2019
    Show notes

    From the Pilot’s Handbook of Aeronautical Knowledge:

    The stability of the atmosphere depends on its ability to resist vertical motion. A stable atmosphere makes vertical movement difficult, and small vertical disturbances dampen out and disappear. In an unstable atmosphere, small vertical air movements tend to become larger, resulting in turbulent airflow and convective activity. Instability can lead to significant turbulence, extensive vertical clouds, and severe weather. Rising air expands and cools due to the decrease in air pressure as altitude increases. The opposite is true of descending air; as atmospheric pressure increases, the temperature of descending air increases as it is compressed. Adiabatic heating and adiabatic cooling are terms used to describe this temperature change.

    The adiabatic process takes place in all upward and downward moving air. When air rises into an area of lower pressure, it expands to a larger volume. As the molecules of air expand, the temperature of the air lowers. As a result, when a parcel of air rises, pressure decreases, volume increases, and temperature decreases. When air descends, the opposite is true. The rate at which temperature decreases with an increase in altitude is referred to as its lapse rate. As air ascends through the atmosphere, the average rate of temperature change is 2 °C (3.5 °F) per 1,000 feet. Since water vapor is lighter than air, moisture decreases air density, causing it to rise. Conversely, as moisture decreases, air becomes denser and tends to sink. Since moist air cools at a slower rate, it is generally less stable than dry air since the moist air must rise higher before its temperature cools to that of the surrounding air. The dry adiabatic lapse rate (unsaturated air) is 3 °C (5.4 °F) per 1,000 feet. The moist adiabatic lapse rate varies from 1.1 °C to 2.8 °C (2 °F to 5 °F) per 1,000 feet. The combination of moisture and temperature determine the stability of the air and the resulting weather. Cool, dry air is very stable and resists vertical movement, which leads to good and generally clear weather. The greatest instability occurs when the air is moist and warm, as it is in the tropical regions in the summer. Typically, thunderstorms appear on a daily basis in these regions due to the instability of the surrounding air.

    As air rises and expands in the atmosphere, the temperature decreases. There is an atmospheric anomaly that can occur; however, that changes this typical pattern of atmospheric behavior. When the temperature of the air rises with altitude, a temperature inversion exists. Inversion layers are commonly shallow layers of smooth, stable air close to the ground. The temperature of the air increases with altitude to a certain point, which is the top of the inversion. The air at the top of the layer acts as a lid, keeping weather and pollutants trapped below. If the relative humidity of the air is high, it can contribute to the formation of clouds, fog, haze, or smoke resulting in diminished visibility in the inversion layer. Surface-based temperature inversions occur on clear, cool nights when the air close to the ground is cooled by the lowering temperature of the ground. The air within a few hundred feet of the surface becomes cooler than the air above it. Frontal inversions occur when warm air spreads over a layer of cooler air, or cooler air is forced under a layer of warmer air.

    From AC 006B:

    Vertical Motion Effects on an Unsaturated Air Parcel. As a bubble or parcel of air ascends (rises), it moves into an area of lower pressure (pressure decreases with height). As this occurs, the parcel expands. This requires energy, or work, which takes heat away from the parcel, so the air cools as it rises. This is called an adiabatic process. The term adiabatic means that no heat transfer occurs into, or out of, the parcel. Air has low thermal conductivity, so transfer of heat by conduction is negligibly small.

    The rate at which the parcel cools as it is lifted is called the lapse rate. The lapse rate of a rising, unsaturated parcel (air with relative humidity less than 100 percent) is approximately 3 °C per 1,000 feet (9.8 °C per kilometer). This is called the dry adiabatic lapse rate. This means for each 1,000-foot increase in elevation, the parcel’s temperature decreases by 3 °C. Concurrently, the dewpoint decreases approximately 0.5 °C per 1,000 feet (1.8 °C per kilometer). The parcel’s temperature-dewpoint spread decreases, while its relative humidity increases.

    This process is reversible if the parcel remains unsaturated and, thus, does not lose any water vapor. A descending (subsiding) air parcel compresses as it moves into an area of higher pressure. The atmosphere surrounding the parcel does work on the parcel, and energy is added to the compressed parcel, which warms it. Thus, the temperature of a descending air parcel increases approximately 3 °C per 1,000 feet (9.8 °C per kilometer). Concurrently, the dewpoint increases approximately 0.5 °C per 1,000 feet (1.8 °C per kilometer). The parcel’s temperature-dewpoint spread increases, while its relative humidity decreases.

    The parcel and the surrounding environmental air temperatures are then compared. If the lifted parcel is colder than the surrounding air, it will be denser (heavier) and sink back to its original level. In this case, the parcel is stable because it resists upward displacement. If the lifted parcel is the same temperature as the surrounding air, it will be the same density and remain at the same level. In this case, the parcel is neutrally stable. If the lifted parcel is warmer and, therefore, less dense (lighter) than the surrounding air, it will continue to rise on its own until it reaches the same temperature as its environment. This final case is an example of an unstable parcel. Greater temperature differences result in greater rates of vertical motion.


    RFT 278: Air Traffic Controller Gabriel Staschill Apr 01, 2019
    Show notes

    Gabriel Staschill is an ATC controller in Germany, and he shares insights into the similarities, and differences, between air traffic controllers and pilots.


    RFT 277: EGPWS Mar 28, 2019
    Show notes

    From Wikipedia:

    In the late 1960s, a series of controlled flight into terrain (CFIT) accidents took the lives of hundreds of people. A CFIT accident is one where a properly functioning airplane under the control of a fully qualified and certified crew is flown into terrain, water or obstacles with no apparent awareness on the part of the crew.

    Beginning in the early 1970s, a number of studies examined the occurrence of CFIT accidents. Findings from these studies indicated that many such accidents could have been avoided if a warning device called a ground proximity warning system (GPWS) had been used. As a result of these studies and recommendations from the U.S. National Transportation Safety Board (NTSB), in 1974 the FAA required all large turbine and turbojet airplanes to install TSO-approved GPWS equipment.

    The ICAO recommended the installation of GPWS in 1979.

    C. Donald Bateman, a Canadian-born engineer, developed and is credited with the invention of GPWS.[

    In March 2000, the U.S. FAA amended operating rules to require that all U.S. registered turbine-powered airplanes with six or more passenger seats (exclusive of pilot and copilot seating) be equipped with an FAA-approved TAWS. The mandate affects aircraft manufactured after March 29, 2002.

    Prior to the development of GPWS, large passenger aircraft were involved in 3.5 fatal CFIT accidents per year, falling to 2 per year in the mid-1970s. A 2006 report stated that from 1974, when the U.S. FAA made it a requirement for large aircraft to carry such equipment, until the time of the report, there had not been a single passenger fatality in a CFIT crash by a large jet in U.S. airspace.[

    After 1974, there were still some CFIT accidents that GPWS was unable to help prevent, due to the "blind spot" of those early GPWS systems. More advanced systems were developed.

    Older TAWS, or deactivation of the EGPWS, or ignoring its warnings when airport is not in its database, or even the entire EGPWS altogether still leave aircraft vulnerable to possible CFIT incidents. In April 2010, a Polish Air Force Tupolev Tu-154M aircraft crashed near Smolensk, Russia, in a possible CFIT accident killing all passengers and crew, including the Polish President.[11][12][13][14] The aircraft was equipped with TAWS made by Universal Avionics Systems of Tucson. According to the Russian Interstate Aviation Committee TAWS was turned on. However, the airport where the aircraft was going to land (Smolensk (XUBS)) is not in the TAWS database. In January 2008 a Polish Air Force Casa C-295M crashed in a CFIT accident near Mirosławiec, Poland, despite being equipped with EGPWS; the EGPWS warning sounds had been disabled, and the pilot-in-command was not properly trained with EGPWS.[

    The FAA specifications[19]have detailed requirements for when certain warnings should sound in the cockpit.

    The system monitors an aircraft's height above ground as determined by a radar altimeter. A computer then keeps track of these readings, calculates trends, and will warn the flight crew with visual and audio messages if the aircraft is in certain defined flying configurations ("modes").

    The modes are:

    1. Excessive descent rate ("SINK RATE" "PULL UP")[
    2. Excessive terrain closure rate ("TERRAIN" "PULL UP")
    3. Altitude loss after take off or with a high power setting ("DON'T SINK")
    4. Unsafe terrain clearance ("TOO LOW – TERRAIN" "TOO LOW – GEAR" "TOO LOW – FLAPS")
    5. Excessive deviation below glideslope ("GLIDESLOPE")
    6. Excessively steep bank angle ("BANK ANGLE")
    7. Windshear protection ("WINDSHEAR")

    The traditional GPWS does have a blind spot. Since it can only gather data from directly below the aircraft, it must predict future terrain features. If there is a dramatic change in terrain, such as a steep slope, GPWS will not detect the aircraft closure rate until it is too late for evasive action.

    In the late 1990s improvements were developed and the system is now named "Enhanced Ground Proximity Warning System" (EGPWS/TAWS). The system is combined with a worldwide digital terrain database and relies on Global Positioning System (GPS) technology. On-board computers compare current location with a database of the Earth's terrain. The Terrain Display gives pilots a visual orientation to high and low points nearby the aircraft.

    EGPWS software improvements are focused on solving two common problems; no warning at all, and late or improper response.

    The primary cause of CFIT occurrences with no GPWS warning is landing short. When the landing gear is down and landing flaps are deployed, the GPWS expects the airplane to land and therefore, issues no warning. EGPWS introduces the Terrain Clearance Floor (TCF) function, which provides GPWS protection even in the landing configuration.

    The occurrence of a GPWS alert typically happens at a time of high workload and nearly always surprises the flight crew. Almost certainly, the aircraft is not where the pilot thinks it should be, and the response to a GPWS warning can be late in these circumstances. Warning time can also be short if the aircraft is flying into steep terrain since the downward looking radio altimeter is the primary sensor used for the warning calculation. The EGPWS improves terrain awareness and warning times by introducing the Terrain Display and the Terrain Data Base Look Ahead protection.

    In commercial and airline operations there are legally mandated procedures that must be followed should an EGPWS caution or warning occur. Both pilots must respond and act accordingly once the alert has been issued. An Indonesian captain has been charged with manslaughter for not adhering to these procedures.

    Main article: TAWS § TAWS Types

    TAWS equipment is not required by the U.S. FAA in piston-engined aircraft, but optional equipment categorized as TAWS Type C may be installed. Depending on the type of operation, TAWS is only required to be installed into turbine-powered aircraft with six or more passenger seats.

    A smaller and less expensive version of EGPWS was developed by AlliedSignal (now merged with Honeywell) for general aviation and private aircraft.

    For fast military aircraft, the high speed and low altitude that may frequently be flown make traditional GPWS systems unsuitable, as the blind spot becomes the critical part. Thus, an enhanced system is required, taking inputs not only from the radar altimeter, but also from inertial navigation system (INS), Global Positioning System(GPS), and flight control system (FCS), using these to accurately predict the flight path of the aircraft up to 5 miles (8.0 km) ahead. Digital maps of terrain and obstacle features are then used to determine whether a collision is likely if the aircraft does not pull up at a given pre-set g-level. If a collision is predicted, a cockpit warning may be provided. This is the type of system deployed on aircraft such as the Eurofighter Typhoon.[22] The U.S. FAA has also conducted a study about adapting 3-D military thrust vectoring to recover civil jetliners from catastrophes.

    On May 5, 2016 a military GPWS called Automatic Ground Collision Avoidance System (Auto-GCAS) equipped aboard an F-16 made a dramatic save after a trainee pilot lost consciousness from excessive G forces during basic fighter maneuver training. In an approximately 55 degree nose down attitude at 8,760 ft and 652 KIAS(750 mph), the Auto-GCAS detected the aircraft was going to strike the terrain and executed an automatic recovery and saved the pilot's life.


    RFT 276: French Navy Pilot Pierre-Henri Chuet Mar 25, 2019
    Show notes

    Pierre-Henri (nick name Até) is a dual Canadian and French citizen. Até grew up on RAF Linton-On-Ouse with an exchange instructor father on the RAF Jet Provost.

    After being Europe’s youngest pilot at 15 in 2001 and flying in the French national Precision Flying team for the 2006 World Championships, he joined the French Navy to fly jets.

    After 26 months as an exchange Officer in the US NAVY he graduated as a Naval Aviator and flew Super-Etendard from the aircraft carrier Charles de Gaulle.

    In 2014 he transitioned to the Dassault Rafale.

    Até deployed several times including after the 2015 French terrorist attacks.

    He flew missions over Iraq, flying combat missions from the French aircraft carrier both at night and day. He received a Cross for Military Valour for meritorious action in the face of the enemy.

    Flying several seasons in the French Navy Tactical Display as wingman he became the Leader of the display in 2017. Meanwhile, he was appointed Rafale Navy Subject Matter Expert at just 29 and chief instructor for the Rafale in the Navy at 30 years old.

    Leaving the military to fly for a Major Airline on the Boeing 737MAX, he decided to share his experience.

    Até holds over 2500 hours of flight time including more than 1850 hours on fighter aircraft. He flew a wide range of aircraft from general aviation or aerobatic aircraft to Business jets and of course fighter aircraft.

    He has completed over 200 carrier landings.

    Enjoying triathlon, he took part in the 2007 Amateur Long distance Triathlon World Championships and in the 2009 Amateur Short Distance Duathlon World Championships.

    He has spoken for events or companies like Dassault, Safran, MBDA, Thales, The London Tech Week, EdTechXEurope, and banks

    Até is married with a family of three and now lives in Hampshire, UK.


    RFT 275: WAI Recap With Jennifer Aupke Mar 21, 2019
    Show notes

    The Women In Aviation conference was held in Long Beach from 14-16 March 2019. Our previous guest, Jennifer Aupke, attended and is providing an exciting recap of the event, including her meeting with notable aviation luminaries.

    WAI Membership is open to women and men from all segments of the aviation industry, and all members may participate in their numerous scholarships. For more membership information, visit the WAI website.


    RFT 274: Combat Rescue Pilot Jennifer Aupke Mar 18, 2019
    Show notes

    Experienced Combat Rescue Instructor Pilot 👣 with a demonstrated history building teams and innovating for military officer training and combat planning and operations. Experienced in planning, programming, budget and execution operations at multiple levels as well as requirements management and operational test and evaluations. 340 combat hours and 76 saves. Motivational speaker, blogger, and change agent.

    Previously served as executive officer to MAJCOM leadership (Four and Two star generals and SES), learning strategic communication and high level task management covering multiple directorates and operational capabilities. Ranked #1 of 17 execs in general officer’s career.

    Skilled in Government Acquisition (Program Manager lvl 1), PPBE, Requirements management and Operational Test and Evaluation. Served multiple deployments to Iraq and Afghanistan. Airplane and Rotary wing Multiengine Land Instrument and commercial Rating.

    Innovator. Disruptor. Connector. Strong operations professional with a global perspective- M.S. focused in Leadership and Liberal Studies from Duquesne University. AFWERX contributor, DEF AGORA lead, Principal/Founder The Milieux Project, Advisory Board Member, GirlApproved.

    Member of: EAA, WAI, Whirly Girls, and the Friends of CAP


    RFT 273: Chief Pilot Deborah Hecker Mar 13, 2019
    Show notes

    Deborah Hecker originally had no intention of becoming a pilot. She graduated college with a degree in International Relations with the intention of becoming an attorney, went backpacking through the Middle East, and returned to study for her LSAT (Law School Admissions Test). On her birthday, a friend gave her a present of an airplane introductory flight, and she was hooked.

    She bought a used Cessna 172 and pursued her ratings. She built up her time and got her first flying job flying automotive parts around the northeast. She later was hired by Piedmont, and eventually ended up flying for American Airlines.

    Deborah performed management duties for American in addition to her flying, and worked her way up to Chief Pilot.

    Deborah also has created several scholarships, all under the umbrella of Women In Aviation International (WAI). These scholarships are open to men as well as women - the only requirement is to be a member of WAI:

    Keep Flying Scholarship

    American Airlines Engineering Scholarship

    American Airlines Veterans Initiative Scholarship


    RFT: Airline Pilot/Martial Artist Valerie Walker Mar 07, 2019
    Show notes

    Adapted from Aero Crew News

    Captain Valerie Walker started her aviation career in unconventional, adventurous ways full of interesting challenges. She was a flight instructor, police aerial patrol pilot in fixed wing and helicopters, DC-3 bush-pilot in Botswana, South Africa, Flight Test Pilot for Plane & Pilot and Air Progress magazines, plus various freelance aviation jobs. She was hired into Western Airlines’ first class to include a female airline pilot and many years later retired from Delta Airlines as a captain rated on the 727, 737, 757 and 767. Throughout her career she pursued her second passion in martial arts and continues to train, teach and hone that craft. On March 8, 1976, she was hired into Western Airlines’ first class to include a female airline pilot. Martial arts and flying have always been her two passions. Martial arts had to be put on the back-burner as she put everything she had into aviation. she built her flying experience as a with less than reassuring equipment or procedural safety margins. In her teens and twenties, the military didn’t accept women as pilots, so her career path was unconventional, adventurous and full of interesting challenges that made her adaptable and able to think outside the box. Later, aviation blessed her with the resources to pursue a variety of martial arts disciplines, and she’s done so for the last 35 years. She became a first-degree black belt in Kenpo Karate while continuing to train in Wing Chun, Jiu Jitsu, Aikido, Hapkido and Kendo. After 9/11, Valerie was one of 40 airline pilots selected to be in the first class of Federal Flight Deck Officers. They trained with Special Forces instructors in hand-to-hand combat and firearm retention, as well as in law and shoot/don’t shoot scenarios. At that time, she began developing a combination of the best common principles and thought processes from all of my martial arts disciplines. Her goal was to develop a 10-minute briefing for flight crews with no martial arts backgrounds yet who might encounter a terrorist situation. An airplane isn’t a politely scripted martial arts dojo. It’s a place where an unexpected real life-or-death situation can occur which requires us to be situationally aware and employ a few tools that are easily remembered; that don’t require a great deal of fine motor-skill finesse, and are good for fighting in the tight confines of a hollow tube that’s shooting through the air at Mach .82 with its tail on fire with no visible means of support and packed with panicked strangers. Valerie retired from Delta Airlines and still teaches martial arts, still trains, and is still always learning.


    RFT 270: F-111/O-2A Pilot B/Gen Rico Aponte Mar 04, 2019
    Show notes

    From Wikipedia:

    Aponte was raised and educated in San Juan, the capital of Puerto Rico. After receiving his primary and secondary education, he enrolled in the University of Puerto Rico and joined the campus ROTC program. On December 29, 1972, he earned a Bachelor of Science degree in civil engineering and was commissioned a Second Lieutenant in the United States Air Force.

    Aponte was assigned to Moody Air Force Base in the state of Georgia and completed his pilot training in August 1974. He was then reassigned to the 27th Tactical Fighter Wing at Cannon Air Force Base, New Mexicoas pilot-weapons system officer and aircraft commander General Dynamics F-111D. He was promoted to First Lieutenant on May 1, 1975. Aponte flew the F-111 F and D models, the 02-A and T-38 aircraft.F-111 - Type of aircraft flown by Aponte

    Aponte became a Captain on May 1, 1977 and served as aircraft commander and instructor pilot of the F-111F aircraft of the 48th Tactical Fighter Wing, Royal Air Force Lakenheath in the United Kingdom from August 1978 to May 1981. During this period, he earned his Master of Science degree in management science from Troy State University.

    In May 1981, he returned to the United States and served as instructor pilot of the 0-2A aircraft, assigned to the 549th Tactical Air Support Training Squadron at Patrick Air Force Base in Florida. During this period, Aponte attended the United States Marine CorpsWeapons and Tactics Instructor School in Marine Corps Air Station Yuma located in Arizona, the United States Air Force Squadron Officer's School and United States Air Force Air Command and Staff College (the latter two by correspondence). He served at Patrick Air Force Base until May 1984, when he was sent to Howard Air Force Base in Panama. Aponte was promoted to major on October 1, 1984 and was the chief of the Latin American Political Military Affairs Division and deputy director for Latin American Affairs.

    On June 1988, Aponte was reassigned to Cannon Air Force Base in New Mexico where he served as aircraft commander F111-D, 523rd Tactical Fighter Squadron and from 1989 to December 1989 as chief, Quality Assurance of 27th Tactical Fighter Group.[

    In August 1990, Aponte joined the Air Force Reserve and was assigned to Deputy Chief of Staff for Air and Space Operations Western Hemisphere Division in the Pentagon in Washington, D.C.. At the Pentagon, Aponte was the international political officer who led the reserve officers assigned to the Western Hemisphere, European and Defense Attached Directorates. In 1992, the U.S. Air Force Demonstration Squadron, The Thunderbirds, selected him as the Spanish Language Narrator for their highly successful Latin America Tour. He was promoted to Lieutenant Colonel on June 18, 1993 and completed by seminar Air War College in 1994. From November 1999 to January 2001, he served as individual mobilization augmentee to Deputy Under Secretary International Affairs. He was promoted to the rank of Colonel on August 1, 1997.

    In January 2001, he was assigned as a mobilization assistant to the deputy to the Chief Air Force Reserve. There he led transformation efforts and was a tiger team member in response to frequent mobilization and demobilization issues resulting from Operations Enduring Freedom and Iraqi Freedom.

    In April 2003, Aponte became the Deputy Director for Operations, Headquarters United States Southern Command in Miami, Florida. Aponte was promoted to Brigadier General on March 1, 2003. In October 2004, he was named Director, J-7, of the United States Southern Command.

    His directorate is the focal point for transformation initiatives, knowledge management, experimentation and gaming within the U. S. Southern Command. The directorate seeks out new concepts and rigorously tests them both in simulation and as part of operational experiments. The first transformation initiative was the startup of the Secretary of Defense mandated Standing Joint Force Headquarters (SJFHQ). The SJFHQ, consists of planning, operations, knowledge management, and information superiority experts who form the backbone of the Joint Task Force command structure in the event of contingency operations. Aponte retired July 1, 2007.


    RFT 269: NAT Changes Feb 28, 2019
    Show notes

    From Ops Group

    Starting 28th March 2019, a new trial will be implemented on the NAT called ASEPS (Advanced Surveillance Enhanced Procedural Separation) using ADS-B in the Shanwick, Gander and Santa Maria FIRs.

    Compliant aircraft will see a reduction in longitudinal separation to as close as 14 NM. This is not restricted to particular tracks or altitudes, just between properly equipped aircraft – you’ll need RVSM/HLA approval, ADS-B, and to be fully PBCS compliant (that means meeting the specifications of RNP4, RCP240 and RSP180). Read this ICAO Bulletin for all the details.

    When the ASEPS trial starts, there will also be some changes to the contingency and weather deviation procedures. Before, there was a lot of confusion around the wording of these two procedures – this has now been made much clearer, and they have even included a nice little graphic to help us understand what to do. Read this ICAO Bulletin for all the details.

    ICAO have published all these changes in their updated NAT 007 Doc valid for 28th March 2019.

    Further reading:

    • On Nov 1st we had a call with 140 Opsgroup members about upcoming changes on the NAT in 2019, and how we can effect change. Opsgroup members can find the PDF notes of this in your Dashboard.
    • A big thing driving the ASEPS trial is the rollout of Space-based ADS-B, which is scheduled to complete its deployment by 30 Dec 2018, giving us worldwide, pole-to-pole surveillance of aircraft. For more on that, and how it will affect operations on the NAT specifically, read the article by Mitch Launius here.
    • Use our quick guide to figure out where you are welcome on the NAT, depending on what equipment and training you have.
    • All the big changes on the NAT in 2018 are covered on our page here.

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