Task 3: Your work is to study the following well-type manometer that will be used for students in the fluid mechanics lab: The manometer is built with a tube diameter of 20 mm and a reservoir diameter of 10 cm. Wher there is no pressure difference across the manometer, the elevations on both sides are the same a A* level. 30 cm Water Figure 3: Schematic for task 3. 1. When a high pressure is applied to the left side, the water in the small tube goes 30 cm up, calculate Pa. 2. Explain the use and limitations of manometers. Then suggest two points for using well- type manometer for accurate measurements worite vour answer in 75 words or less

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Task 3:
Your work is to study the following well-type manometer that will be used for students in the fluid
mechanics lab:
The manometer is built with a tube diameter of 20 mm and a reservoir diameter of 10 cm. When
there is no pressure difference across the manometer, the elevations on both sides are the same at
A* level.
30 cm
A*
Water
Figure 3: Schematic for task 3.
1. When a high pressure is applied to the left side, the water in the small tube goes 30 cm up,
calculate Pa-
2. Explain the use and limitations of manometers. Then suggest two points for using well-
type manometer for accurate measurements, write your answer in 75 words or less.
Transcribed Image Text:Task 3: Your work is to study the following well-type manometer that will be used for students in the fluid mechanics lab: The manometer is built with a tube diameter of 20 mm and a reservoir diameter of 10 cm. When there is no pressure difference across the manometer, the elevations on both sides are the same at A* level. 30 cm A* Water Figure 3: Schematic for task 3. 1. When a high pressure is applied to the left side, the water in the small tube goes 30 cm up, calculate Pa- 2. Explain the use and limitations of manometers. Then suggest two points for using well- type manometer for accurate measurements, write your answer in 75 words or less.
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