A ball is dropped from a height of 20 m if its velocity increases uniformly at the rate of 10 M per second square with what velocity will it strike the ground.after what time will it strike the ground
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Hey
Given that,
Distance(s)="20m"
Initial velocity(u)=0m/s
Accelaration="10m/s-2"
Using the relation Distance-Time
s=v2 - u2=2a
s= v2-0=2*10
20=v2-0=20
v2-0=20*20
v2=400(underoot)
v=20 m/s
time=v=u=at
20=0+10
20 upon 10=0+10(t)=
time= 2 secs.
Help u
Given that,
Distance(s)="20m"
Initial velocity(u)=0m/s
Accelaration="10m/s-2"
Using the relation Distance-Time
s=v2 - u2=2a
s= v2-0=2*10
20=v2-0=20
v2-0=20*20
v2=400(underoot)
v=20 m/s
time=v=u=at
20=0+10
20 upon 10=0+10(t)=
time= 2 secs.
Help u
adrikasalonip9jrw4:
thanks
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Answered by
11
ɢɪᴠᴇɴ
ɪɴɪᴛɪᴀʟ ᴠᴇʟᴏᴄɪᴛʏ(ᴜ) = 0 ᴍ/ꜱ
ᴀᴄᴄᴇʟᴇʀᴀᴛɪᴏɴ (ᴀ) = 10 ᴍ/ꜱ²
ᴛɪᴍᴇ(ꜱ) = 20 ᴍ
ᴡᴇ ᴋɴᴏᴡ
ᴠ² = ᴜ² + 2ᴀꜱ
ᴘᴜᴛᴛɪɴɢ ᴠᴀʟᴜᴇꜱ:
ᴠ² = 0² + 2 (10 x 20)
ᴠ² = 400
ᴠ = 20 ᴍ/ꜱ
ꜰᴏʀ ᴛɪᴍᴇ:
ᴠ = ᴜ + ᴀᴛ
ᴛ = ᴠ - ᴜ/ᴀ
ᴛ = (20-0)10
= 20/10
= 2
∴ ꜱᴛʀɪᴋɪɴɢ ᴠᴇʟᴏᴄɪᴛʏ = 20 ᴍ/ꜱ
∴ ꜱᴛʀɪᴋɪɴɢ ᴛɪᴍᴇ = 2 ꜱᴇᴄᴏɴᴅꜱ
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