A5) The bottom of a iver has a4-m-high beump that approtimatten approximates a Ramkine half body, as in fig below. The pressure at point Bon the bottom is 130KP and the river Velocity is 2.5mls. Use inviscid theory to estimate the water pressure at point A on the bump, cohich is 2 m above poit B. watere Roc 2:5 mLs
A5) The bottom of a iver has a4-m-high beump that approtimatten approximates a Ramkine half body, as in fig below. The pressure at point Bon the bottom is 130KP and the river Velocity is 2.5mls. Use inviscid theory to estimate the water pressure at point A on the bump, cohich is 2 m above poit B. watere Roc 2:5 mLs
Chapter2: Loads On Structures
Section: Chapter Questions
Problem 1P
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![Q5) The bottom of a iver has a4-m-high bump that
Oppronimaton approximates a Ram kine half body, as in
fig below. The poessure at point Bon the bottom is 130 kPo
and the oiver velocity is 2.5mis. Use inviscid
theory
to estimate the water pre ssure at point A on the bump,
cohich is
2 m abovre point B.
ot
wetere eoc](/v2/_next/image?url=https%3A%2F%2Fcontent.bartleby.com%2Fqna-images%2Fquestion%2F5a054c29-5696-4f75-a4e0-003c4e1e6312%2Fad87d1f7-b643-4ffa-bdab-e7743ac6ca27%2F2tmhr5f_processed.png&w=3840&q=75)
Transcribed Image Text:Q5) The bottom of a iver has a4-m-high bump that
Oppronimaton approximates a Ram kine half body, as in
fig below. The poessure at point Bon the bottom is 130 kPo
and the oiver velocity is 2.5mis. Use inviscid
theory
to estimate the water pre ssure at point A on the bump,
cohich is
2 m abovre point B.
ot
wetere eoc
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