The virial relation for the Q-balls in the thermal logarithmic potential revisited analytically

We study the properties of Q-balls dominated by the thermal logarithmic potential analytically instead of estimating the characters with only some specific values of model variables numerically. In particular, the analytical expressions for radius and energy of this kind of Q-ball are obtained. Acco...

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Main Authors: Yue Zhong, Hongbo Cheng
Format: Article
Language:English
Published: Elsevier 2015-04-01
Series:Physics Letters B
Online Access:http://www.sciencedirect.com/science/article/pii/S0370269315001446
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spelling doaj-6422274d1c524685a153292b0696671e2020-11-24T22:24:35ZengElsevierPhysics Letters B0370-26932015-04-01743347352The virial relation for the Q-balls in the thermal logarithmic potential revisited analyticallyYue Zhong0Hongbo Cheng1Department of Physics, East China University of Science and Technology, Shanghai 200237, ChinaDepartment of Physics, East China University of Science and Technology, Shanghai 200237, ChinaWe study the properties of Q-balls dominated by the thermal logarithmic potential analytically instead of estimating the characters with only some specific values of model variables numerically. In particular, the analytical expressions for radius and energy of this kind of Q-ball are obtained. According to these explicit expressions we demonstrate strictly that the large Q-balls enlarge and the small ones become smaller in the background with lower temperature. The energy per unit charge will not be divergent if the charge is enormous. We find that the lower temperature will lead the energy per unit charge of Q-ball smaller. We also prove rigorously the necessary conditions that the model parameters should satisfy to keep the stability of the Q-balls. When one of model parameters of Q-balls, K, is positive, the Q-balls will not form or survive unless the temperature is high enough. In the case of negative K, the Q-balls are stable no matter the temperature is high or low.http://www.sciencedirect.com/science/article/pii/S0370269315001446
collection DOAJ
language English
format Article
sources DOAJ
author Yue Zhong
Hongbo Cheng
spellingShingle Yue Zhong
Hongbo Cheng
The virial relation for the Q-balls in the thermal logarithmic potential revisited analytically
Physics Letters B
author_facet Yue Zhong
Hongbo Cheng
author_sort Yue Zhong
title The virial relation for the Q-balls in the thermal logarithmic potential revisited analytically
title_short The virial relation for the Q-balls in the thermal logarithmic potential revisited analytically
title_full The virial relation for the Q-balls in the thermal logarithmic potential revisited analytically
title_fullStr The virial relation for the Q-balls in the thermal logarithmic potential revisited analytically
title_full_unstemmed The virial relation for the Q-balls in the thermal logarithmic potential revisited analytically
title_sort virial relation for the q-balls in the thermal logarithmic potential revisited analytically
publisher Elsevier
series Physics Letters B
issn 0370-2693
publishDate 2015-04-01
description We study the properties of Q-balls dominated by the thermal logarithmic potential analytically instead of estimating the characters with only some specific values of model variables numerically. In particular, the analytical expressions for radius and energy of this kind of Q-ball are obtained. According to these explicit expressions we demonstrate strictly that the large Q-balls enlarge and the small ones become smaller in the background with lower temperature. The energy per unit charge will not be divergent if the charge is enormous. We find that the lower temperature will lead the energy per unit charge of Q-ball smaller. We also prove rigorously the necessary conditions that the model parameters should satisfy to keep the stability of the Q-balls. When one of model parameters of Q-balls, K, is positive, the Q-balls will not form or survive unless the temperature is high enough. In the case of negative K, the Q-balls are stable no matter the temperature is high or low.
url http://www.sciencedirect.com/science/article/pii/S0370269315001446
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