Barrie Sajor, Konditi Dominic Bernard Onyango
Department of Electrical Engineering, Pan Africa University Institute for Basic Sciences, Technology, and Innovation (PAUSTI), Juja, Kenya.
Department of Electrical & Electronic Engineering, Technical University of Kenya, Nairobi, Kenya.
Heliyon. 2021 Jun 25;7(6):e07412. doi: 10.1016/j.heliyon.2021.e07412. eCollection 2021 Jun.
As the fifth-generation (5G) mobile communication service is expected to operate in one of the 11 candidate frequency bands of 24.25-27.5 GHz, compatibility and coexistence with other adjacent wireless applications must be evaluated. In this paper, the adjacent channel interference (ACI) between Land-Earth Station in Motion (L-ESIM), 5G base station (BS), and user equipment (UE) operating in the adjacent frequency bands is assessed. The minimum coupling loss (MCL) method is used by considering the worst-case scenario to evaluate the effect of geostationary orbit-fixed satellite service's (GSO-FSS) frequency band of 27.5-29.5 GHz on the 5G radio access network (BS and UE) from L-ESIM. From the numerical simulations, minimum separation distances of 35 km and 12 km were recorded for the BS and UE to meet the maximum acceptable interference of -147 dBW/MHz. The obtained results will protect the 5G RAN from harmful interference by ensuring adjacent channel compatibility and coexistence with L-ESIM in their future deployment.
由于第五代(5G)移动通信服务预计将在24.25 - 27.5 GHz的11个候选频段之一中运行,因此必须评估其与其他相邻无线应用的兼容性和共存性。本文评估了在相邻频段运行的移动地球站(L-ESIM)、5G基站(BS)和用户设备(UE)之间的邻道干扰(ACI)。通过考虑最坏情况,使用最小耦合损耗(MCL)方法来评估地球静止轨道固定卫星服务(GSO-FSS)的27.5 - 29.5 GHz频段对来自L-ESIM的5G无线接入网络(BS和UE)的影响。从数值模拟中可知,为满足-147 dBW/MHz的最大可接受干扰,BS和UE的最小间隔距离分别记录为35 km和12 km。所得结果将通过确保在未来部署中与L-ESIM的邻道兼容性和共存性,保护5G无线接入网络免受有害干扰。