A truncated cone of length L cm traveling through a fluid at a speed of 8.38 m/s is shown. The narrow end of the cylinder has a diameter of 2.32cm, whereas the wider end has a diameter of 3.53 cm. The drag force acting on the cylinder is 24.6 newtons. V The drag force Fa acting on an object passing through a fluid is given by 1 F₁ = PATU² where A is the effective cross-sectional area of the object, I (the Greek letter gamma) is the drag coefficient, p is the density of the fluid, and v is the speed of the object. Calculate the drag coefficient I of the object if the fluid is water of density 1000.00 kg/m³. r=

University Physics Volume 1
18th Edition
ISBN:9781938168277
Author:William Moebs, Samuel J. Ling, Jeff Sanny
Publisher:William Moebs, Samuel J. Ling, Jeff Sanny
Chapter14: Fluid Mechanics
Section: Chapter Questions
Problem 93P: A spherical particle falling at a terminal speed in a liquid must have the gravitational force...
icon
Related questions
icon
Concept explainers
Topic Video
Question
A truncated cone of length ? cm traveling through a fluid at a speed of 8.38 m/s is shown. The narrow end of the cylinder has a diameter of 2.32cm, whereas the wider end has a diameter of 3.53 cm. The drag force acting on the cylinder is 24.6 newtons. The drag force ?? acting on an object passing through a fluid is given by ?d=12??Γ?2 where ? is the effective cross‑sectional area of the object, Γ (the Greek letter gamma) is the drag coefficient, ? is the density of the fluid, and ? is the speed of the object. Calculate the drag coefficient Γ of the object if the fluid is water of density 1000.00 kg/m3.
A truncated cone of length L cm traveling through a fluid at a speed of 8.38 m/s is shown. The narrow end of the cylinder has a
diameter of 2.32cm, whereas the wider end has a diameter of 3.53 cm. The drag force acting on the cylinder is 24.6 newtons.
V
The drag force Fa acting on an object passing through a fluid is given by
1
Fa
-
PAT²
where A is the effective cross-sectional area of the object, I' (the Greek letter gamma) is the drag coefficient, p is the density of
the fluid, and v is the speed of the object.
Calculate the drag coefficient I of the object if the fluid is
water of density 1000.00 kg/m³.
T =
Transcribed Image Text:A truncated cone of length L cm traveling through a fluid at a speed of 8.38 m/s is shown. The narrow end of the cylinder has a diameter of 2.32cm, whereas the wider end has a diameter of 3.53 cm. The drag force acting on the cylinder is 24.6 newtons. V The drag force Fa acting on an object passing through a fluid is given by 1 Fa - PAT² where A is the effective cross-sectional area of the object, I' (the Greek letter gamma) is the drag coefficient, p is the density of the fluid, and v is the speed of the object. Calculate the drag coefficient I of the object if the fluid is water of density 1000.00 kg/m³. T =
Expert Solution
Step 1: Given data

The diameter of the narrow end: d subscript 1 equals 2.32 space cm equals 0.0232 space straight m

The diameter of the wider end: d subscript 2 equals 3.53 space cm equals 0.0353 space straight m

the drag force: F subscript d equals 24.6 space straight N

The speed of the cone through the fluid: v equals 8.38 space straight m divided by straight s

The density of the fluid: rho equals 1000.00 space kg divided by straight m cubed



trending now

Trending now

This is a popular solution!

steps

Step by step

Solved in 4 steps with 21 images

Blurred answer
Knowledge Booster
Fluid Pressure
Learn more about
Need a deep-dive on the concept behind this application? Look no further. Learn more about this topic, physics and related others by exploring similar questions and additional content below.
Similar questions
Recommended textbooks for you
University Physics Volume 1
University Physics Volume 1
Physics
ISBN:
9781938168277
Author:
William Moebs, Samuel J. Ling, Jeff Sanny
Publisher:
OpenStax - Rice University
Physics for Scientists and Engineers: Foundations…
Physics for Scientists and Engineers: Foundations…
Physics
ISBN:
9781133939146
Author:
Katz, Debora M.
Publisher:
Cengage Learning
Principles of Physics: A Calculus-Based Text
Principles of Physics: A Calculus-Based Text
Physics
ISBN:
9781133104261
Author:
Raymond A. Serway, John W. Jewett
Publisher:
Cengage Learning
College Physics
College Physics
Physics
ISBN:
9781938168000
Author:
Paul Peter Urone, Roger Hinrichs
Publisher:
OpenStax College