The capillary drop of mercury in the tube.
Answer to Problem 101EP
The capillary drop in mercury is
Explanation of Solution
Given information:
The diameter of glass tube is
Write the expression for the capillary drop.
Here, capillary drop is
Refer to Table
Write the formula for interpolation of two variables.
Here, the temperature is denoted by variables
Calculation:
Refer to Table
Refer to Table
Prepare the table for temperature and density of mercury.
Temperature, | Density, |
| |
Substitute
Substitute
Here, the negative sign indicates the capillary drop instead of rise.
Conclusion:
The capillary drop in mercury is
Want to see more full solutions like this?
Chapter 2 Solutions
Fluid Mechanics: Fundamentals and Applications
- Determine the capillary rise of the water in the glass tube of diameter 0.35cm, which is immersed vertically in the glass vessel.The surface tension of water is 0.07213 N/m.Take the contact angle of water as theta = 00 The capillary raise of water in the tube is (unit in m)=arrow_forwardFind the capillary raise of the water in the tube of diameter 6mm, which is immersed vertically in the container. The surface tension of water is 0.07115 N/m. Take the angle of contact is = 00 The capillary raise of water in the tube is (unit in mm)= ______arrow_forwardDetermine the capillary rise of the water in the glass tube of diameter 0.68cm, which is immersed vertically in the glass vessel.The surface tension of water is 0.07213 N/m.Take the contact angle of water as = 00 The capillary raise of water in the tube is (unit in m)=arrow_forward
- Determine the height h of the column of mercury in the tube if the level of water in the tube is 0.2 m and the dimensions of the oil and the water listed in the diagram. Let poil = 900 kg/m³, pwater = 1000 kg/m³, PMercury = 13,500 kg/m³. A 0.4 m Oil B 0.3 m h Water Mercury 0.2 marrow_forwardPlease help me answer this problem ASAP badly needed. Thank youarrow_forwardThe initial pressures at A and B are the same at 103 kPa. If the pressure at the liquid at A (SG1 = 1.25) is increased to 148 kPa while keeping the pressure at B constant, determine the new position (Δh, in mm.) of the mercury meniscus inside the tube as shown. Assume no change in the liquid densities. The connecting tube is a 1-cm in diameter, Y1 = 0.51 cm, and the inclination of the tube is 18 degrees with respect to the horizontal. Assume unit weight of air to be negligible.arrow_forward
- A capillary tube of 1.55 mm diameter is immersed vertically in water exposed to the atmosphere. Determine how high water will rise in the tube. Take the contact angle at the inner wall of the tube to be 6° and the surface tension to be 1.00 N/m. Take the density os water to be 1000 kg/m³. The water will rise m in the tube.arrow_forwardA glass tube of internal diameter 3 mm is immersed in mercury. The angle of contact of mercury with glass can be taken as 130°. What will be the level of Hg in the tube relative to the free surface of the liquid outside the tube? Take surface tension of liquid = 0.48 N/m.arrow_forwardI need the answerarrow_forward
- Both the top of the tank and the end of the slanted tube are open to the atmosphere. If L = 3.65 m., x = 98 cm., y = 94 cm., SG1 = 0.98, SG2 = 1.88, what is the angle of tilt (in degrees) of the tube? Accepted answer ranges from 22.42-24.422. Show solution.arrow_forwardDetermine the atmospheric pressure at a location where the barometric reading is 720 mm Hg.arrow_forwardPlease write in clear handwriting water 3.' problem mm. Determine the level difference h. z=15 cM. A force of P=280 N is applied to the piston of a diameter of d=50 mercuryarrow_forward
- International Edition---engineering Mechanics: St...Mechanical EngineeringISBN:9781305501607Author:Andrew Pytel And Jaan KiusalaasPublisher:CENGAGE L