EXAMPLE 2.2 A manometer connects an oil pipeline and a water pipeline as shown in Fig. 24. Determine the difference in pressure between the two pipelines using the readings on the manometer. Use Sa = 0.86 and S=13.6. Air Water 8 cm 6 cm 4 cm Mercury Oil Figure 2.4

Structural Analysis
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Chapter2: Loads On Structures
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EXAMPLE 2.2 A manometer connects an oil pipeline and a water pipeline as shown in Fig. 2.4. Determine
the difference in pressure between the two pipelines using the readings on the manometer. Use Sal = 0.86 and
SH = 13.6.
Air
Water
8 cm
6 cm
4 cm
Mercury
Oil
Figure 2.4
If the manometer top in Fig. 2.17 is open, then the mercury level is 10 cm below the pressureless air pipe. The
manometer top is sealed and the air pipe is press urized. Estimate the reading for H for a pressure of 200 kPa
in the air pipe. Assume an isothermal process for the air above the mercury.
2.20
Manometer
top
Air
15 cm
H
Mercury
Figure 217
Transcribed Image Text:EXAMPLE 2.2 A manometer connects an oil pipeline and a water pipeline as shown in Fig. 2.4. Determine the difference in pressure between the two pipelines using the readings on the manometer. Use Sal = 0.86 and SH = 13.6. Air Water 8 cm 6 cm 4 cm Mercury Oil Figure 2.4 If the manometer top in Fig. 2.17 is open, then the mercury level is 10 cm below the pressureless air pipe. The manometer top is sealed and the air pipe is press urized. Estimate the reading for H for a pressure of 200 kPa in the air pipe. Assume an isothermal process for the air above the mercury. 2.20 Manometer top Air 15 cm H Mercury Figure 217
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