हिंदी

While boarding an aeroplane, a passenger got hurt. The pilot showing promptness and concern, made arrangements to hospitalise the injured and so the plane started late by 30 minutes.

Advertisements
Advertisements

प्रश्न

While boarding an aeroplane, a passenger got hurt. The pilot showing promptness and concern, made arrangements to hospitalise the injured and so the plane started late by 30 minutes. To reach the destination, 1500 km away, in time, the pilot increased the speed by 100 km/hour. Find the original speed of the plane.

योग
Advertisements

उत्तर

Let the original speed of the plane be x km/hr.

Increased speed of the plane = (x + 100) km/hr.

Total distance = 1500 km.

We know that, 

\[\text {Time } = \frac{\text {Distance}}{\text {Speed}}\]

Time taken to reach the destination at original speed = t1 = \[\frac{1500}{x}\]

Time taken to reach the destination at increasing speed = t2 = \[\frac{1500}{x + 100}\] hr

According to the question,

t1 – t2 = 30 min

⇒ `1500/x - 1500/(x + 100) = 30/60`

⇒ `(1500(x + 100) - 1500x)/(x(x + 100)) = 1/2`

⇒ `(1500x + 150000 - 1500x)/(x^2 + 100x) = 1/2`

Since, speed cannot be negative.

Thus, the original speed/hour of the plane is 500 km/hr.

⇒ `150000/(x^2 + 100x) = 1/2`

⇒ 300000 = x2 + 100x

⇒ x2 + 100x – 300000 = 0

⇒ x2 + 600x – 500x – 300000 = 0

⇒ x(x + 600) – 500(x + 600) = 0

⇒ (x – 500)(x + 600) = 0

⇒ x – 500 = 0 or x + 600 = 0

⇒ x = 500 or x = –600

Since, speed cannot be negative.

Thus, the original speed/hour of the plane is 500 km/hr.

shaalaa.com
  क्या इस प्रश्न या उत्तर में कोई त्रुटि है?
अध्याय 4: Quadratic Equations - Exercise 4.8 [पृष्ठ ५९]

APPEARS IN

आर.डी. शर्मा Mathematics [English] Class 10
अध्याय 4 Quadratic Equations
Exercise 4.8 | Q 13 | पृष्ठ ५९
आर.एस. अग्रवाल Mathematics [English] Class 10
अध्याय 4 Quadratic Equations
EXERCISE 4D | Q 44. | पृष्ठ २२७
Share
Notifications

Englishहिंदीमराठी


      Forgot password?
Use app×