Fundamentals of Physics
Fundamentals of Physics
10th Edition
ISBN: 9781118230718
Author: David Halliday
Publisher: Wiley, John & Sons, Incorporated
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Chapter 43, Problem 13P
To determine

To

(a) calculate the electric potential energy associated with the repulsion between the two fragments, when 236U fissions, assuming that the nuclei are spherical and are touching each other.

(b) compare this electric potential energy with the energy released in a typical fission event.

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Watch the video of Cooper’s play, while conducting and documenting your observation using a chosen observation tool. Case Study 1b - Cooper Carol has asked you to support the babies and toddler’s room educators this week. She has requested that you complete an observation on Cooper, who is a 10-month-old toddler. Carol wants to see how well you conduct an observation and is interested in how you manage to communicate in any observations made, using a strengths-based, non-judgemental, anti-biased approach, as this is a fundamental part of creating a supportive and respectful culture at Little Catalysts ELC. Video: Cooper's play (6:45 min)  Resources Module 7 eLearns Template: Learning story observation, Section 1 Template: Running record observation, Section 1 Template: Anecdotal record observation, Section 1 Video: Cooper's play (6:45 min)   Complete and upload an observation of Cooper to support educators in future curriculum planning. Choose one (1) of the observation…
1. An ideal gas is taken through a four process cycle abcda. State a has a pressure of 498,840 Pa. Complete the tables and plot/label all states and processes on the PV graph. Complete the states and process diagrams on the last page. Also, provide proper units for each column/row heading in the tables. Pressure (Pa) 500,000 450,000 400,000 350,000 300,000 250,000 200,000 150,000 100,000 Process ab bc cd da States P( ) V( ) 50,000 0 0.000 T = 500 K T= 200 K 0.001 0.002 0.003 0.004 0.005 Volume (m^3) Nature of Process isothermal expansion to Vb = 0.005 m³ (T = 500 K) isometric isothermal compression to V₁ = 0.003 m³ (T = 200 K) adiabatic compression to VA = 0.001 m³ b C a T() U ( ) Processes a-b Q( ) +802.852 W() AU ( ) b-c c→d +101.928 da Cycle
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