Curvature Profiles as Starting Conditions for the Creation of Primordial Black Holes

Authors

  • Durgesh Wadhwa Assistant Professor, Department of Chemistry, Sanskriti University, Mathura, Uttar Pradesh, India Author
  • Gopal Arora Assistant Professor, Department of Chemistry, Sanskriti University, Mathura, Uttar Pradesh, India Author

Keywords:

Black Hole, Curvature, Primordial, Generic, Velocity

Abstract

 This research is part of a larger project to  look at the development there were a number of  primordial black holes during the radiation-dominated  phase of the early universe (PBHs). We offer a beginning  arrangement in dimensions of a curving profile, which  encapsulates initial circumstances for higher intensity  metric disruptions while staying away first from  undifferentiated Newman framework, which again is  essential for PBH formation, while operating within  hexagonal symmetry. When the variance of both the  structure is significantly bigger than the cosmic boundary,  we employ an iterative bordering answer to connect the  bends curve to the spectrometric work and motion fields,  which may have been considered of as minor  perturbations of the average results at an acceptable  enough period. For volume and velocity profiles, we  propose broad analytic solutions. These discoveries allow  us to look into the personality creation of PBHs in a range  of cosmological settings, where the cosmic fluid can be  seen as an infinite mix of numerous components of  complex equations of state. As a result of the start time,  we give analytical answers for volume and mobility  characteristics. After that, two different approaches are  used to define the curved. 

Downloads

Download data is not yet available.

References

S. Leutheusser and M. Van Raamsdonk, “Tensor network models of unitary black hole evaporation,” J. High Energy Phys., 2017.

U. Sharma and I. M. Sheikh, “Investigating self compacting-concrete reinforced with steel & coir fiber,” in Materials Today: Proceedings, 2021.

I. A. Wani and R. ul Rehman Kumar, “Experimental investigation on using sheep wool as fiber reinforcement in concrete giving increment in overall strength,” in Materials Today: Proceedings, 2021.

D. Pathak, R. Pratap Singh, S. Gaur, and V. Balu, “To study the influence of process parameters on weld bead geometry in shielded metal arc welding,” in Materials Today: Proceedings, 2021.

B. P. Abbott et al., “The basic physics of the binary black hole merger GW150914,” Ann. Phys., 2017.

F. Belgiorno and M. Martellini, “Black holes and the third law of thermodynamics,” Int. J. Mod. Phys. D, 2004. [7] G. T. Horowitz, J. E. Santos, and C. Toldo, “Deforming

black holes in AdS,” J. High Energy Phys., 2018. [8] H. Stöcker, B. Koch, and M. Bleicher, “An introduction to mini black holes at LHC,” in Brazilian Journal of Physics, 2007.

J. M. M. Senovilla, “Black holes and trapped surfaces,” in AIP Conference Proceedings, 2010.

S. Stojkovikj, S. Oklevski, O. P. Jasuja, and M. Najdoski, “Visualization of latent fingermarks on thermal paper: A new method based on nitrogen dioxide treatment,” Forensic Chem., 2020.

A. Agarwal, “Neuralgic Amyotrophy of Posterior Interosseous Nerve: A Cryptic and Crucial Entity,” Journal of Ultrasound in Medicine. 2021.

J. Rai, R. C. Tripathi, and N. Gulati, “A comparative study of implementing innovation in education sector due to COVID-19,” in Proceedings of the 2020 9th International Conference on System Modeling and Advancement in Research Trends, SMART 2020, 2020.

C. Stornaiolo, “Cosmological black holes,” Gen. Relativ. Gravit., 2002.

A. Agarwal, S. Agarwal, A. Lalwani, R. Najam, and A. Kumar, “Fetal bradyarrhythmia causing hydrops fetalis: A journey from fetal echo to autopsy,” Ultrasound, 2020.

S. Goel, A. Malhotra, A. Agarwal, S. Chandak, A. Kumar, and A. Khan, “Comparative Efficacy of Ultrasonography and Acoustic Radiation Force Impulse (ARFI) Elastography in Prediction of Malignancy in Thyroid

Nodules,” J. Diagnostic Med. Sonogr., 2020.

A. Agarwal and S. Agarwal, “Fetal micromelia, thoracic dysplasia and polydactyly revisited: A case-based antenatal sonographic approach,” Ultrasound, 2019.

A. Agarwal, S. Agarwal, and S. Chandak, “Role of acoustic radiation force impulse and shear wave velocity in prediction of preterm birth: a prospective study,” Acta radiol., 2018.

A. Gaurav, M. R. Yadav, R. Giridhar, V. Gautam, and R. Singh, “3D-QSAR studies of 4-quinolone derivatives as high-affinity ligands at the benzodiazepine site of brain GABAA receptors,” Med. Chem. Res., 2011.

A. Sesana, “Black Hole Science With the Laser Interferometer Space Antenna,” Frontiers in Astronomy and Space Sciences. 2021.

M. David, J. Nian, and L. A. Pando Zayas, “Gravitational Cardy limit and AdS black hole entropy,” J. High Energy Phys., 2020.

H. Z. Chen, Z. Fisher, J. Hernandez, R. C. Myers, and S. M. Ruan, “Evaporating black holes coupled to a thermal bath,” J. High Energy Phys., 2021.

A. Davey, O. J. C. Dias, and P. Rodgers, “Phase diagram of the charged black hole bomb system,” J. High Energy Phys., 2021.

P. Charalambous, S. Dubovsky, and M. M. Ivanov, “On the vanishing of Love numbers for Kerr black holes,” J. High Energy Phys., 2021.

A. Giveon and N. Itzhaki, “Stringy information and black holes,” J. High Energy Phys., 2020.

S. Hod, “A mystery of black-hole gravitational resonances,” J. Cosmol. Astropart. Phys., 2016.

Downloads

Published

2023-10-30

How to Cite

Curvature Profiles as Starting Conditions for the Creation of Primordial Black Holes . (2023). International Journal of Innovative Research in Engineering & Management, 9(1), 298–302. Retrieved from https://acspublisher.com/journals/index.php/ijirem/article/view/11290