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Emergency Procedures for Cessna 152

Cessna 152 · Emergency Procedures

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Overview

This section outlines the emergency procedures for the Cessna 152, providing pilots with essential checklists and amplified procedures to handle various in-flight emergencies. The Cessna 152 is a light aircraft that is widely used for flight training and personal flying. Its design emphasizes safety and reliability, making it crucial for pilots to be familiar with emergency protocols. The procedures detailed herein are designed to address engine failures, electrical malfunctions, and other critical situations that may arise during flight. By adhering to these guidelines, pilots can effectively manage emergencies and enhance the safety of their flight operations.

  • Establish glide speed of 60 KIAS during engine failure.
  • For engine fire, set mixture to idle cut-off and turn off the master switch.
  • Monitor electrical systems; respond to over-voltage or discharge promptly.
  • In a ditching scenario, transmit MAYDAY and secure the cabin.

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Source

Originally published by langleyflyingschool.com. Sprinkle hosts a reference copy with an added summary, specifications and searchable full text.

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Document details

Type
Emergency Procedures
Pages
8
File size
1.4 MB
Publisher
langleyflyingschool.com
How rare is it?
2,927Cessna 152 registered worldwide · 2,204 active

Common. One of the most common aircraft types we track.

Documentation completeness
6/7

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In this document

Engine Failures

In the event of an engine failure during flight, pilots should establish a glide speed of 60 KIAS and attempt to restart the engine by following the checklist. If the engine cannot be restarted, prepare for a forced landing without engine power.

Fires

In case of an engine fire in flight, the mixture should be set to idle cut-off, and the master switch turned off. If the fire is not extinguished, a forced landing should be executed.

Electrical Power Supply System Malfunctions

Monitor the ammeter and over-voltage warning light. If the over-voltage light illuminates, turn off the master switch and then back on. If the light remains on, terminate the flight.

Ditching Procedures

In the event of a ditching, transmit a MAYDAY on 121.5 MHz, secure heavy objects, and approach into the wind. Wing flaps should be set to 30° for landing.

Safety notes

  • Always conduct preflight inspections to minimize emergency situations.
  • Maintain proficiency in emergency procedures and aircraft handling.

Full document text

CESSNA MODEL 152 SECTION 3 EMERGENCY PROCEDURES SECTION 3 SECTION 3 EMERGENCY PROCEDURES EMERGENCY PROCEDURES TABLE OF CONTENTS (Continued) Emergency Operation In Clouds (Vacuum System Failure) Executing A 180° Turn In Clouds CESSNA MODEL 152 Page 3-11 3-11 Emergency Descent Through Clouds 3-11 Recovery From A Spiral Dive 3-12 Flight In Icing Conditions 3-12 Spins 3-12 Rough Engine Operation Or Loss Of Power Carburetor Icing 3-13 3-13 TABLE OF CONTENTS Spark Plug Fouling 3-13 Page Magneto Malfunction 3-14 Low Oil Pressure 3-14 Introduction 3-3 Electrical Power Supply System Malfunctions 3-14 Airspeeds For Emergency Operation 3-3 Excessive Rate Of Charge 3-14 Insufficient Rate Of Charge 3-15 OPERATIONAL CHECKLISTS Engine Failures Engine Failure During Takeoff Run Engine Failure Immediately After Takeoff Engine Failure During Flight 3-3 3-3 3-3 3-4 Forced Landings Emergency Landing Without Engine Power Precautionary Landing With Engine Power Ditching Fires During Start On Ground Engine Fire In Flight Electrical Fire In Flight Cabin Fire Wing Fire Icing Inadvertent Icing Encounter Landing With A Flat Main Tire 3-4 3-4 3-4 3-5 3-5 3-5 3-5 3-6 3-6 3-7 3-7 3-7 3-8 Electrical Power Supply System Malfunctions 3-8 Over-Voltage Light Illuminates 3-8 Ammeter Shows Discharge 3-8 AMPLIFIED PROCEDURES Forced Landings Engine Failure Landing Without Elevator Control Fires 3-9 3-10 3-10 3-10 3-1 3-2 CESSNA MODEL 152 SECTION 3 EMERGENCY PROCEDURES SECTION 3 EMERGENCY PROCEDURES CESSNA MODEL 152 INTRODUCTION Section 3 provides checklist and amplified procedures for coping with emergencies that may occur. Emergencies caused by airplane or engine malfunctions are extremely rare if proper preflight inspections and maintenance are practiced. Enroute weather emergencies can be minim- ized or eliminated by careful flight planning and good judgment when unexpected weather is encountered. However, should an emergency arise, the basic guidelines described in this section should be considered and applied as necessary to correct the problem. Emergency procedures associated with ELT and other optional systems can be found in Section 9. 3. Fuel Shutoff Valve OFF. Ignition Switch -- OFF. 4. 5. Wing Flaps 6. -- AS REQUIRED. Master Switch OFF. ENGINE FAILURE DURING FLIGHT 1. Airspeed 60 KIAS. Carburetor Heat -- ON. 2. Hi & si ti vo co 3. Primer IN and LOCKED. 4. Fuel Shutoff Valve -- ON. Mixture RICH. 6. Ignition Switch -- 5. -- BOTH (or START if propeller is stopped). AIRSPEEDS FOR EMERGENCY OPERATION Engine Failure After Takeoff 1670 Lbs Maneuvering Speed: 60 KIAS 104 KIAS 1500 Lbs .98 KIAS 1350 Lbs 93 KIAS Maximum Glide 60 KIAS Precautionary Landing With Engine Power 55 KIAS Landing Without Engine Power: Wing Flaps Up 65 KIAS 2. Mixture Wing Flaps Down 60 KIAS 3. 4. 5. OPERATIONAL CHECKLISTS 6. 7. Doors -- 8. Touchdown ENGINE FAILURES 9. -- FORCED LANDINGS EMERGENCY LANDING WITHOUT ENGINE POWER 1. Airspeed -- 65 KIAS (flaps UP). 60 KIAS (flaps DOWN). IDLE CUT-OFF. Fuel Shutoff Valve -- OFF. Ignition Switch OFF. 11 Wing Flaps - AS REQUIRED (30° recommended). Master Switch OFF. UNLATCH PRIOR TO TOUCHDOWN. SLIGHTLY TAIL LOW. Brakes APPLY HEAVILY. PRECAUTIONARY LANDING WITH ENGINE POWER ENGINE FAILURE DURING TAKEOFF RUN 1. Throttle -- IDLE. Brakes APPLY. 2. 3. Wing Flaps -- 4. 5. 456 RETRACT. Mixture -- IDLE CUT-OFF. Ignition Switch -- OFF. 6. Master Switch -- OFF. ENGINE FAILURE IMMEDIATELY AFTER TAKEOFF 1. Airspeed 2. Mixture -- 60 KIAS. IDLE CUT-OFF. 3-3 3-4 20°. 1. Airspeed 60 KIAS. 2. Wing Flaps -- 3. 4. Selected Field -- FLY OVER, noting terrain and obstructions, then retract flaps upon reaching a safe altitude and airspeed. Radio and Electrical Switches -- OFF. 5. Wing Flaps -- 30° (on final approach). Airspeed 55 KIAS. -- Master Switch OFF. 6. 7. 8. Doors 9. 10. 11. Brakes -- UNLATCH PRIOR TO TOUCHDOWN. Touchdown SLIGHTLY TAIL LOW. -- Ignition Switch -- OFF. APPLY HEAVILY. CESSNA MODEL 152 SECTION 3 EMERGENCY PROCEDURES SECTION 3 EMERGENCY PROCEDURES CESSNA MODEL 152 DITCHING 3. 2. Fuel Shutoff Valve OFF. Master Switch -- OFF. 1. Radio -- TRANSMIT MAYDAY on 121.5 MHz, giving location an : 4. 2. -- 3. -- intentions. Heavy Objects (in baggage area) SECURE OR JETTISON. Approach High Winds, Heavy Seas INTO THE WIND. Light Winds, Heavy Swells -- PARALLEL TO 4. Wing Flaps 5. Power -- SWELLS. 30°. -- ESTABLISH 300 FT/MIN DESCENT AT 55 KIAS. 6. Cabin Doors -- UNLATCH. 4 5 6 7 8 o' 7. 8. 9. -- Touchdown LEVEL ATTITUDE AT 300 FT/MIN DESCENT. Face -- CUSHION at touchdown with folded coat. -- Airplane EVACUATE through cabin doors. If necessary, open windows and flood cabin to equalize pressure so doors can be opened. 10. Life Vests and Raft INFLATE. FIRES -- 5. 6. Cabin Heat and Air -- OFF (except wing root vents). Airspeed -- 85 KIAS (If fire is not extinguished, increase glide speed to find an airspeed which will provide an incombustible mixture). Forced Landing -- EXECUTE (as described in Emergency Landing Without Engine Power). ELECTRICAL FIRE IN FLIGHT -- OFF. 1. 2. 3. 4. Master Switch All Other Switches (except ignition switch) -- OFF. Vents/Cabin Air/Heat -- CLOSED. Fire Extinguisher -- ACTIVATE (if available). WARNING After discharging an extinguisher within a closed cabin, ventilate the cabin. If fire appears out and electrical power is necessary for continuance of DURING START ON GROUND 1. Cranking CONTINUE, to get a start which would suck the flames and accumulated fuel through the carburetor and into the engine. If engine starts: 2. Power 3. Engine -- 1700 RPM for a few minutes. SHUTDOWN and inspect for damage. If engine fails to start: Cranking CONTINUE in an effort to obtain a start. Fire Extinguisher -- OBTAIN (have ground attendants obtain if not installed). 4. 5. 6. a. Engine SECURE. Master Switch OFF. -- b. Ignition Switch -- OFF. C. 7. 8. Fuel Shutoff Valve -- OFF. Fire EXTINGUISH using fire extinguisher, wool blanket, or dirt. Fire Damage INSPECT, repair damage or replace damaged

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components or wiring before conducting another flight. ENGINE FIRE IN FLIGHT 1. Mixture IDLE CUT-OFF. flight: 5. Master Switch __ ON. 6. Circuit Breakers -- 7. 8. CHECK for faulty circuit, do not reset. -- Radio/Electrical Switches ON one at a time, with delay after each until short circuit is localized. Vents/Cabin Air/Heat -- OPEN when it is ascertained that fire is completely extinguished. CABIN FIRE 1. Master Switch -- OFF. 23 2. 3. 4. Vents/Cabin Air/Heat -- CLOSED (to avoid drafts). Fire Extinguisher -- ACTIVATE (if available). WARNING After discharging an extinguisher within a closed cabin, ventilate the cabin. Land the airplane as soon as possible to inspect for damage. 3-5 3-6 CESSNA MODEL 152 SECTION 3 EMERGENCY PROCEDURES SECTION 3 WING FIRE 1. Navigation Light Switch -- OFF. 2. Strobe Light Switch (if installed) -- OFF. 3. Pitot Heat Switch (if installed) -- OFF. NOTE EMERGENCY PROCEDURES LANDING WITH A FLAT MAIN TIRE 1. Wing Flaps -- AS DESIRED. 2. 3. Approach - NORMAL. CESSNA MODEL 152 Touchdown -- GOOD TIRE FIRST, hold airplane off flat tire as long as possible with aileron control. Perform a side slip to keep the flames away from the fuel tank and cabin, and land as soon as possible, with flaps retracted. ICING INADVERTENT ICING ENCOUNTER 1. Turn pitot heat switch ON (if installed). 2. Turn back or change altitude to obtain an outside air temperature that is less conducive to icing. 3. 4. 5. 6. 7. 8. 9. Pull cabin heat control full out to obtain maximum defroster air temperature. For greater air flow at reduced temperatures, adjust the cabin air control as required. Open the throttle to increase engine speed and minimize ice build- up on propeller blades. Watch for signs of carburetor air filter ice and apply carburetor heat as required. An unexpected loss in engine speed could be caused by carburetor ice or air intake filter ice. Lean the mixture for maximum RPM, if carburetor heat is used continuously. Plan a landing at the nearest airport. With an extremely rapid ice build-up, select a suitable "off airport" landing site. With an ice accumulation of 1/4 inch or more on the wing leading edges, be prepared for significantly higher stall speed. Leave wing flaps retracted. With a severe ice build-up on the horizontal tail, the change in wing wake airflow direction caused by wing flap extension could result in a loss of elevator effective- ness. Open left window and, if practical, scrape ice from a portion of the windshield for visibility in the landing approach. Perform a landing approach using a forward slip, if necessary, for improved visibility. 10. 11. 12. Perform a landing in level attitude. Approach at 65 to 75 KIAS depending upon the amount of ice accumulation. ELECTRICAL POWER SUPPLY SYSTEM MALFUNCTIONS OVER-VOLTAGE LIGHT ILLUMINATES 1. Master Switch OFF (both sides). Master Switch 2. 3. -- ON. Over-Voltage Light -- OFF. If over-voltage light illuminates again: 4. Flight TERMINATE as soon as practical. AMMETER SHOWS DISCHARGE 1. Alternator Li ai m 2. -- OFF. Nonessential Electrical Equipment -- OFF. 3. Flight TERMINATE as soon as practical. 3-7 3-8 CESSNA MODEL 152 SECTION 3 EMERGENCY PROCEDURES SECTION 3 EMERGENCY PROCEDURES CESSNA MODEL 152 AMPLIFIED PROCEDURES ENGINE FAILURE If an engine failure occurs during the takeoff run, the most important thing to do is stop the airplane on the remaining runway. Those extra items on the checklist will provide added safety after a failure of this type. Prompt lowering of the nose to maintain airspeed and establish a glide attitude is the first response to an engine failure after takeoff. In most cases, the landing should be planned straight ahead with only small changes in direction to avoid obstructions. Altitude and airspeed are seldom sufficient to execute a 180° gliding turn necessary to return to the runway. The checklist procedures assume that adequate time exists to secure the fuel and ignition systems prior to touchdown. After an engine failure in flight, the best glide speed as shown in figure 3-1 should be established as quickly as possible. While gliding toward a suitable landing area, an effort should be made to identify the cause of the failure. If time permits, an engine restart should be attempted as shown in the checklist. If the engine cannot be restarted, a forced landing without power must be completed. HEIGHT ABOVE TERRAIN - FT 12,000 10,000 8000 6000 4000 2000 * SPEED 60 KIAS PROPELLER WINDMILLING * FLAPS UP * ZERO WIND 0 2 4 6 8 10 14 16 18 20 12 GROUND DISTANCE - NAUTICAL MILES Figure 3-1. Maximum Glide FORCED LANDINGS If all attempts to restart the engine fail and a forced landing is imminent, select a suitable field and prepare for the landing as discussed under the Emergency Landing Without Engine Power checklist. Before attempting an "off airport" landing with engine power available, one should fly over the landing area at a safe but low altitude to inspect the terrain for obstructions and surface conditions, proceeding as discussed under the Precautionary Landing With Engine Power checklist. Prepare for ditching by securing or jettisoning heavy objects located in the baggage area and collect folded coats for protection of occupants' face at touchdown. Transmit Mayday message on 121.5 MHz giving location and intentions. LANDING WITHOUT ELEVATOR CONTROL Trim for horizontal flight (with an airspeed of approximately 55 KIAS and flaps lowered to 20°) by using throttle and elevator trim controls. Then do not change the elevator trim control setting; control the glide angle by adjusting power exclusively. At flareout, the nose-down moment resulting from power reduction is an adverse factor and the airplane may hit on the nose wheel. Consequent- ly, at flareout, the trim control should be set at the full nose-up position and the power adjusted so that the airplane will rotate to the horizontal attitude for touchdown. Close the throttle at touchdown. FIRES Although engine fires are extremely rare in flight, the steps of the appropriate checklist should be followed if one is encountered. After completion of this procedure, execute a forced landing. Do not attempt to restart the engine. The initial indication of an electrical fire is usually the odor of burning insulation. The checklist for this problem should result in elimination of the fire. 3-9 3-10 CESSNA MODEL 152 SECTION 3 EMERGENCY PROCEDURES SECTION 3 EMERGENCY PROCEDURES CESSNA MODEL 152 EMERGENCY OPERATION IN CLOUDS (Vacuum System Failure) In the event of a vacuum system failure during flight in marginal weather, the directional indicator and attitude indicator will be disabled, and the pilot will have to rely on the turn coordinator if he inadvertently flies into clouds. The following instructions assume that only the electrically-powered turn coordinator is operative, and that the pilot is not completely proficient in instrument flying. EXECUTING A 180° TURN IN CLOUDS Upon inadvertently entering the clouds, an immediate plan should be made to turn back as follows: 1. 2. 3. 4. 5. Note the time of the minute hand and observe the position of the sweep second hand on the clock. When the sweep second hand indicates the nearest half-minute, initiate a standard rate left turn, holding the turn coordinator symbolic airplane wing opposite the lower left index mark for 60 seconds. Then roll back to level flight by leveling the miniature airplane. Check accuracy of the turn by observing the compass heading which should be the reciprocal of the original heading. If necessary, adjust heading primarily with skidding motions rather than rolling motions so that the compass will read more accurately. Maintain altitude and airspeed by cautious application of elevator control. Avoid overcontrolling by keeping the hands off the control wheel as much as possible and steering only with rudder. EMERGENCY DESCENT THROUGH CLOUDS If conditions preclude reestablishment of VFR flight by a 180° turn, a descent through a cloud deck to VFR conditions may be appropriate. If possible, obtain radio clearance for an emergency descent through clouds. To guard against a spiral dive, choose an easterly or westerly heading to minimize compass card swings due to changing bank angles. In addition, keep hands off the control wheel and steer a straight course with rudder control by monitoring the turn coordinator. Occasionally check the compass heading and make minor corrections to hold an approximate course. Before descending into the clouds, set up a stabilized let-down condition as follows: 1. Apply full rich mixture. 2. Use full carburetor heat. 3. 4. 5. 6. 7. Reduce power to set up a 500 to 800 ft/min rate of descent. Adjust the elevator trim for a stabilized descent at 70 KIAS. Keep hands off control wheel. Monitor turn coordinator and make corrections by rudder alone. Check trend of compass card movement and make cautious corrections with rudder to stop turn. 8. Upon breaking out of clouds, resume normal cruising flight. RECOVERY FROM A SPIRAL DIVE If a spiral is encountered, proceed as follows: 1. 2. 3. 4. 5. 6. 7. Close the throttle. Stop the turn by using coordinated aileron and rudder control to align the symbolic airplane in the turn coordinator with the horizon reference line. Cautiously apply elevator back pressure to slowly reduce the airspeed to 70 KIAS. Adjust the elevator trim control to maintain a 70 KIAS glide. Keep hands off the control wheel, using rudder control to hold a straight heading. Apply carburetor heat. Clear engine occasionally, but avoid using enough power to disturb the trimmed glide. 8. Upon breaking out of clouds, resume normal cruising flight. FLIGHT IN ICING CONDITIONS Flight into icing conditions is prohibited. An inadvertent encounter with these conditions can best be handled using the checklist procedures. The best procedure, of course, is to turn back or change altitude to escape icing conditions. SPINS Should an inadvertent spin occur, the following recovery procedure should be used: 1. 2. 3. PLACE AILERONS IN NEUTRAL POSITION. RETARD THROTTLE TO IDLE POSITION. APPLY AND HOLD FULL RUDDER OPPOSITE TO THE DIREC- TION OF ROTATION. 3-11 3-12 CESSNA MODEL 152 SECTION 3 EMERGENCY PROCEDURES 4. JUST AFTER THE RUDDER REACHES THE STOP, MOVE THE CONTROL WHEEL BRISKLY FORWARD FAR ENOUGH TO BREAK THE STALL. Full down elevator may be required at aft center of gravity loadings to assure optimum recoveries. HOLD THESE CONTROL INPUTS UNTIL ROTATION STOPS. Premature relaxation of the control inputs may extend the recov- ery. 5. 6. AS ROTATION STOPS, NEUTRALIZE RUDDER, AND MAKE A SMOOTH RECOVERY FROM THE RESULTING DIVE. NOTE If disorientation precludes a visual determination of the direction of rotation, the symbolic airplane in the turn coordinator may be referred to for this information. For additional information on spins and spin recovery, see the discus- sion under SPINS in Normal Procedures (Section 4). ROUGH ENGINE OPERATION OR LOSS OF POWER CARBURETOR ICING A gradual loss of RPM and eventual engine roughness may result from the formation of carburetor ice. To clear the ice, apply full throttle and pull the carburetor heat knob full out until the engine runs smoothly; then remove carburetor heat and readjust the throttle. If conditions require the continued use of carburetor heat in cruise flight, use the minimum amount of heat necessary to prevent ice from forming and lean the mixture slightly for smoothest engine operation. SPARK PLUG FOULING A slight engine roughness in flight may be caused by one or more spark plugs becoming fouled by carbon or lead deposits. This may be verified by turning the ignition switch momentarily from BOTH to either L or R position. An obvious power loss in single ignition operation is evidence of spark plug or magneto trouble. Assuming that spark plugs are the more likely cause, lean the mixture to the recommended lean setting for cruising flight. If the problem does not clear up in several minutes, determine if a richer mixture setting will produce smoother operation. If not, proceed to the nearest airport for repairs using the BOTH position of SECTION 3 EMERGENCY PROCEDURES CESSNA MODEL 152 the ignition switch unless extreme roughness dictates the use of a single ignition position. MAGNETO MALFUNCTION A sudden engine roughness or misfiring is usually evidence of magneto problems. Switching from BOTH to either L or R ignition switch position will identify which magneto is malfunctioning. Select different power settings and enrichen the mixture to determine if continued operation on BOTH magnetos is practicable. If not, switch to the good magneto and proceed to the nearest airport for repairs. LOW OIL PRESSURE If low oil pressure is accompanied by normal oil temperature, there is a possibility the oil pressure gage or relief valve is malfunctioning. A leak in the line to the gage is not necessarily cause for an immediate precautionary landing because an orifice in this line will prevent a sudden loss of oil from the engine sump. However, a landing at the nearest airport would be advisable to inspect the source of trouble. If a total loss of oil pressure is accompanied by a rise in oil temperature, there is good reason to suspect an engine failure is imminent. Reduce engine power immediately and select a suitable forced landing field. Use only the minimum power required to reach the desired touchdown spot. ELECTRICAL POWER SUPPLY SYSTEM MALFUNCTIONS Malfunctions in the electrical power supply system can be detected by periodic monitoring of the ammeter and over-voltage warning light; however, the cause of these malfunctions is usually difficult to determine. A broken alternator drive belt or wiring is most likely the cause of alternator failures, although other factors could cause the problem. A damaged or improperly adjusted voltage regulator can also cause mal- functions. Problems of this nature constitute an electrical emergency and should be dealt with immediately. Electrical power malfunctions usually fall into two categories: excessive rate of charge and insufficient rate of charge. The paragraphs below describe the recommended remedy for each situation. EXCESSIVE RATE OF CHARGE After engine starting and heavy electrical usage at low engine speeds 3-13 3-14 CESSNA MODEL 152 SECTION 3 EMERGENCY PROCEDURES (such as extended taxiing) the battery condition will be low enough to accept above normal charging during the initial part of a flight. However, after thirty minutes of cruising flight, the ammeter should be indicating less than two needle widths of charging current. If the charging rate were to remain above this value on a long flight, the battery would overheat and evaporate the electrolyte at an excessive rate. Electronic components in the electrical system could be adversely affected by higher than normal voltage if a faulty voltage regulator setting is causing the overcharging. To preclude these possibilites, an over-voltage sensor will automatically shut down the alternator and the over-voltage warning light will illumi- nate if the charge voltage reaches approximately 31.5 volts. Assuming that the malfunction was only momentary, an attempt should be made to reactivate the alternator system. To do this, turn both sides of the master switch off and then on again. If the problem no longer exists, normal alternator charging will resume and the warning light will go off. If the light illuminates again, a malfunction is confirmed. In this event, the flight should be terminated and/or the current drain on the battery minimized because the battery can supply the electrical system for only a limited period of time. If the emergency occurs at night, power must be conserved for later use of the landing light and flaps during landing. INSUFFICIENT RATE OF CHARGE If the ammeter indicates a continuous discharge rate in flight, the alternator is not supplying power to the system and should be shut down since the alternator field circuit may be placing an unnecessary load on the system. All nonessential equipment should be turned off and the flight terminated as soon as practical. 3-15/(3-16 blank)

Type certificate, explained

What's in the Cessna 152 TCDS

A Type Certificate Data Sheet (TCDS) is the FAA's record of what an aircraft type was approved as. It is the source of truth for weights, seating, fuel and the rules the design was certified against. Expand any line to see what it means.

TCDS 3A19Rev 40· Issued 1997
Read the full TCDS

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