Name: _____________________ Class: Physics 214
SSN/ID:   _____________________ Section & Group: ____________
Lab 5 - Buoyancy

Objective
These experiments are aimed at: a) the determination of the density of an irregularly shaped object from the volume of fluid displaced when it is immersed in a fluid and it's mass when measured on a balance and b) the demonstration of the principles governing fluid behaviour.

Equipment
See the Java and Shockwave applets below. All data and calculations can be recorded using these sheets and your handout.

Definition
The Java applet shows a simple experiment concerning the buoyancy in a liquid: A solid body hanging from a spring balance is dipped into a liquid by dragging the mouse. In this case, the measured force, which is equal to the difference between the weight and the buoyant force, is reduced. This is symbolized as: Fmeasured = Fgravity - Fbuoyant, where the weight is simply the force due to gravity (w = Fgravity = mg). Finally, the Law of Archimedes tells us that the buoyant force is equal to the weight of the replaced liquid. This is symbolized by: Fbuoyant = wreplaced_water.

Procedure

The Buoyant Force

  1. Set the base area and height of the body to your liking
  2. Set the density of the body (Dbody) to < 1.0 gm/cc
  3. Record the volume, density, and weight of the body
  4. Lower the body into the water and record the Buoyant Force, FB, on the body and the weightwater that was displaced
  5. How does the FB compare to wbody?
  6. Does the body float? Please record your answer in the table below.
  7. Repeat the above for a Dbody = 1.0 gm/cc and for a Dbody > 1.0 gm/cc

The Java Applet:


This Java applet shows a simple experiment concerning the buoyancy in a liquid: A solid body hanging from a spring balance is dipped into a liquid (by dragging the mouse!). In this case the measured force, which is equal to the difference of weight and buoyant force, is reduced.

You can change (within certain limits) the preselected values of base area, height and densities by using the appropriate text fields. After you have pressed the "Enter" key, the program will indicate the new values of depth, replaced volume, buoyant force, weight and measured force. A gravitational acceleration of g = 9.81 m/s2 was presupposed.

If you see the words "Maximum exceeded!" (red letters), you have to choose an adequate measuring range.

Law of Archimedes:
The buoyant force is equal to the weight of the replaced liquid or gas.

URL: http://home.a-city.de/walter.fendt/phe/buoyforce.htm


Run Base Area
[cm2]
Height
[cm]
Volumebody
[cm3]
Dbody
[gm/cc]
weightbody
[N]
Buoyant Force, FB
[N]
weightwater
[N]
Float?
1.                  
2.                  
3.                  

Questions

  1. What is the relationship between the density of each object and whether or not it floats in the pail?
  2. Is there a relationship between the volume (& density) of the body, density of the liquid, and whether or not the body floats in the liquid?
  3. How does the weight of the replaced water relate to the FB? Can you calculate the weight of the replaced water if you know Dwater = 1.0 gm/cc? If so, please show how using the data you recorded above.

Notes