A commercial aircraft flies at a Mach number of 0.67 at an altitude where the air temperature is -19.15 C. Assume ISA conditions.

We are given the Mach number and air temperature. We can use the equation for the speed of sound in air in terms of temperature in ISA conditions:

a = (331.3 + 0.606T) m/s

where a is the speed of sound in m/s and T is the air temperature in degrees Celsius. At -19.15 C, we have:

a = (331.3 + 0.606(-19.15)) m/s
= 320.8 m/s

The Mach number is defined as the ratio of the speed of the aircraft to the speed of sound, so we can write:

M = v/a

where M is the Mach number and v is the speed of the aircraft.

Solving for v, we get:

v = Ma = 0.67 x 320.8 = 215.0 m/s

To find the altitude, we need to use the standard atmosphere table. At ISA conditions, the speed of sound is 340.3 m/s at sea level and decreases with altitude. We can use the formula for the variation of temperature with altitude:

T = T0 - Lh

where T0 is the temperature at sea level (15 C), L is the lapse rate (-6.5 C/km), h is the altitude in km, and T is the temperature at the given altitude.

Solving for h, we get:

h = (T0 - T)/L = (15 - (-19.15))/(-6.5) = 5.98 km

Converting to metres, we get:

h = 5.98 km x 1000 m/km = 5980 m

Therefore, the aircraft is flying at an altitude of 5980 m.

To find the equivalent airspeed, we use the formula:

EAS = TAS/√(ρ/ρ0)

where EAS is the equivalent airspeed, TAS is the true airspeed in m/s, ρ is the air density at altitude, and ρ0 is the air density at sea level. We can assume a standard value of ρ0 = 1.225 kg/m3.

To find ρ, we use the standard atmosphere table to find the pressure and temperature at the given altitude. We can assume a value of 101325 Pa for the sea level pressure.

At 5980 m, the temperature is given by:

T = T0 - Lh = 15 - 6.5 x 5.98 = -21.27 C

The pressure can be found from the formula:

p/p0 = (T/T0)^(-g/RL)

where p is the pressure at altitude, p0 is the sea level pressure, g is the acceleration due to gravity (9.81 m/s2), R is the specific gas constant for air (287 J/kg K), and L is the lapse rate (-6.5 C/km).

Using the given values, we get:

p/p0 = (T/T0)^(-g/RL) = (253.88/288.15)^(-9.81/(-6.5 x 287)) = 0.300

Therefore, the pressure at 5980 m is:

p = 0.300 x 101325 = 30398 Pa

The air density can be found from the ideal gas law:

ρ = p/(RT)

where R is the specific gas constant for air and T is the temperature in Kelvin. Converting the temperature to Kelvin, we get:

T = -21.27 + 273.15 = 251.88 K

Substituting the values, we get:

ρ = 30398/(287 x 251.88) = 0.375 kg/m3

Now we can find the equivalent airspeed:

EAS = TAS/√(ρ/ρ0) = 215.0/√(0.375/1.225) = 275.8 m/s

Converting to feet per second, we get:

EAS = 275.8 x 3.281 = 905.0 ft/s

Therefore, the aircraft is flying at an equivalent airspeed of 905.0 ft/s.