Title :
28 GHz Angle of Arrival and Angle of Departure Analysis for Outdoor Cellular Communications Using Steerable Beam Antennas in New York City
Author :
Samimi, M. ; Wang, Kangping ; Azar, Y. ; Wong, G.N. ; Mayzus, R. ; Hang Zhao ; Schulz, J.K. ; Shu Sun ; Gutierrez, F. ; Rappaport, T.S.
Author_Institution :
NYU WIRELESS Center, Polytech. Inst. of New York Univ., New York, NY, USA
Abstract :
Propagation measurements at 28 GHz were conducted in outdoor urban environments in New York City using four different transmitter locations and 83 receiver locations with distances of up to 500 m. A 400 mega- chip per second channel sounder with steerable 24.5 dBi horn antennas at the transmitter and receiver was used to measure the angular distributions of received multipath power over a wide range of propagation distances and urban settings. Measurements were also made to study the small-scale fading of closely-spaced power delay profiles recorded at half-wavelength (5.35 mm) increments along a small-scale linear track (10 wavelengths, or 107 mm) at two different receiver locations. Our measurements indicate that power levels for small- scale fading do not significantly fluctuate from the mean power level at a fixed angle of arrival. We propose here a new lobe modeling technique that can be used to create a statistical channel model for lobe path loss and shadow fading, and we provide many model statistics as a function of transmitter- receiver separation distance. Our work shows that New York City is a multipath-rich environment when using highly directional steerable horn antennas, and that an average of 2.5 signal lobes exists at any receiver location, where each lobe has an average total angle spread of 40.3° and an RMS angle spread of 7.8°. This work aims to create a 28 GHz statistical spatial channel model for future 5G cellular networks.
Keywords :
cellular radio; horn antennas; microwave antennas; mobile antennas; radio receivers; radio transmitters; telecommunication channels; 5G cellular networks; New York City; Propagation measurements; angle of arrival analysis; angle of departure analysis; angular distributions; closely-spaced power delay profiles; directional steerable horn antennas; distance 500 m; frequency 28 GHz; lobe modeling technique; lobe path loss; mega-chip; multipath-rich environment; outdoor cellular communications; outdoor urban environments; propagation distances; received multipath power; receiver locations; second channel sounder; shadow fading; statistical channel model; statistical spatial channel model; steerable beam antennas; steerable horn antennas; transmitter locations; transmitter-receiver separation distance; urban settings; wavelength 107 mm; Antenna measurements; Azimuth; Fading; Receiving antennas;
Conference_Titel :
Vehicular Technology Conference (VTC Spring), 2013 IEEE 77th
Conference_Location :
Dresden
DOI :
10.1109/VTCSpring.2013.6691812