College Physics
11th Edition
ISBN: 9781305952300
Author: Raymond A. Serway, Chris Vuille
Publisher: Cengage Learning
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Chapter 30.6, Problem 30.2QQ
To determine
The reaction that will not occur.
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Determine which of the following reactions can occur. For
those that cannot occur, determine the conservation law (or
laws) violated.
(a) p→ ㅠ + mo
(b) p + p → p + p + 7°
(c) p+p - p+ n*
(e) n → p+e- + ī,
(d) * → ut + v.
(f) → ut + n
Which of the following reactions cannot occur? (Select all that apply.)
γ + p → n + π0p + p → 2γπ+ + p → K+ + Σ+π0 + n → K+ + Σ-
Each of the following reactions is forbidden. Determine
what conservation laws are violated for each reaction.
(a) p +p - u+ + e-
(b) T +p - p + a*
(c) p + p → p+ p+n
(d) y + p → n+ 7°
(e) v,+p → n + e*
Chapter 30 Solutions
College Physics
Ch. 30.6 - Prob. 30.1QQCh. 30.6 - Prob. 30.2QQCh. 30 - Prob. 1CQCh. 30 - Prob. 2CQCh. 30 - Prob. 3CQCh. 30 - Prob. 4CQCh. 30 - Prob. 5CQCh. 30 - Prob. 6CQCh. 30 - Prob. 7CQCh. 30 - Prob. 8CQ
Ch. 30 - Prob. 9CQCh. 30 - Prob. 10CQCh. 30 - Prob. 11CQCh. 30 - Prob. 12CQCh. 30 - Prob. 1PCh. 30 - Prob. 2PCh. 30 - Prob. 3PCh. 30 - Prob. 4PCh. 30 - Prob. 5PCh. 30 - Prob. 6PCh. 30 - Prob. 7PCh. 30 - Prob. 8PCh. 30 - Prob. 9PCh. 30 - Prob. 10PCh. 30 - Prob. 11PCh. 30 - Prob. 12PCh. 30 - Prob. 13PCh. 30 - Prob. 14PCh. 30 - Prob. 15PCh. 30 - Find the energy released in the fusion reaction...Ch. 30 - Find the energy released in the fusion reaction...Ch. 30 - Prob. 18PCh. 30 - Prob. 19PCh. 30 - Prob. 20PCh. 30 - Prob. 21PCh. 30 - Prob. 22PCh. 30 - Prob. 23PCh. 30 - Prob. 24PCh. 30 - Prob. 25PCh. 30 - Prob. 26PCh. 30 - Prob. 27PCh. 30 - Prob. 28PCh. 30 - Prob. 29PCh. 30 - Prob. 30PCh. 30 - Prob. 31PCh. 30 - Prob. 32PCh. 30 - Prob. 33PCh. 30 - Prob. 34PCh. 30 - Prob. 35PCh. 30 - Prob. 36PCh. 30 - Prob. 37APCh. 30 - Prob. 38APCh. 30 - Prob. 39APCh. 30 - Prob. 40APCh. 30 - Prob. 41APCh. 30 - Prob. 42APCh. 30 - Prob. 43APCh. 30 - Prob. 44APCh. 30 - Prob. 45APCh. 30 - Prob. 46APCh. 30 - Prob. 47APCh. 30 - Prob. 48APCh. 30 - Prob. 49APCh. 30 - Prob. 50AP
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- For the following two reactions, the first may occur but the second cannot. Explain. K0 → π++π− (can occur) ^0 → π+ + π− (cannot occur)arrow_forwardName at least one conservation law that prevents each of the following reactions from occurring. (a) π− + p → Σ+ + π0 (b) μ− → π− + υe (c) p → π+ + π++ π−arrow_forwardEach of the following reactions is forbidden. Determine a conservation law that is violated for each reaction. (a) p + P- → μ++ e− (b) π− + p → p + π+ (c) p + p → p + π+ (d) p + p → p + p + n (e) γ + p → n + π0arrow_forward
- Which of the following reactions cannot occur? (Select all that apply.) 1)π- → μ- + vμ 2)μ+ → e+ + ve + vμ 3)p + p → p + p + p 4)n → p + e- + vearrow_forward1) For each of the following reactions work out the fastest interaction through which the conservation laws allow it to proceed. Explain your answers. If the reaction is forbidden by all interactions explain why: -+ a. pn++μ+ +μ¯ b. Aºp+e¯ c. μ΄ →e + V d. p+p→y+Y e. Kºn++ π + π° +7° f. π+pAº + Kº g. Aºn+p h. pnº+e+ + ve i. n→p+e+V₂arrow_forwardWhich of the following are possible reactions? (Select all that apply.) 1)10n + 23592U → 14054Xe + 9438Sr + 2(10n) 2) 10n + 23592U → 13250Sn + 10142Mo + 3(10n) 3)10n + 23994Pu → 12753I + 9341Nb + 3(10n)arrow_forward
- The first of the following two reactions can occur, but thesecond cannot. Explain.KS0 → π+ + π- (can occur)L0 → π+ + π- (cannot occur)arrow_forward1) Complete the reaction: 242Am + ? n → 90Sr + 149La + 4n a) n b) 2n c) 3n d) 4n e) 5n 2) Calculate the energy (in MeV) released in the nuclear fission reaction. The atomic masses are 242Am = 242.059549 u, 90Sr = 89.9077387 u, and 149La = 148.934733 u. (Express your answer to six significant figures).arrow_forward235/92U+1/0n→ 140/54Xe+94/38Sr+2 1/0n mass of 235/92U=235.04393u mass of 140/54Xe=139.92144u mass of 94/38Sr=93.91523u mass of 1/0n=1.008665u Part A: What is the reaction energy Q of this reaction? Use c2=931.5MeV/u. Part B: Using fission, what mass m of uranium-235 would be necessary to supply all of the energy that the United States uses in a year, roughly 1.0×10^19J ?arrow_forward
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