60 GHz multi-chip module based on cost effective hybrid multilayer PWB

2007 ◽  
Vol 49 (9) ◽  
pp. 2303-2305 ◽  
Author(s):  
Sung Tae Choi ◽  
Kiyoshi Hamaguchi ◽  
Hiroyo Ogawa ◽  
Kiyohito Tokuda ◽  
Yong Hoon Kim
Keyword(s):  
2015 ◽  
Vol 734 ◽  
pp. 31-39
Author(s):  
Wen Yang Cai ◽  
Gao Yong Luo

The increasing demand for high precision indoor positioning in many public services has urged research to implement cost-effective systems for a rising number of applications. However, current systems with either short-range positioning technology based on wireless local area networks (WLAN) and ZigBee achieving meter-level accuracy, or ultra-wide band (UWB) and 60 GHz communication technology achieving high precision but with high cost required, could not meet the need of indoor wireless positioning. This paper presents a new method of high precision indoor positioning by autocorrelation phase measurement of spread spectrum signal utilizing carrier frequency lower than 1 GHz, thereby decreasing power emission and hardware cost. The phase measurement is more sensitive to the distance of microwave transmission than timing, thus achieving higher positioning accuracy. Simulation results demonstrate that the proposed positioning method can achieve high precision of less than 1 centimeter decreasing when various noise and interference added.


2018 ◽  
Vol 10 (9) ◽  
pp. 1088-1095
Author(s):  
Smriti Agarwal ◽  
Dharmendra Singh

AbstractIn recent years, millimeter wave (MMW) has received tremendous interest among researchers, which offers systems with high data rate communication, portability, and finer resolution. The design of the antenna at MMWs is challenging as it suffers from fabrication and measurement complexities due to associated smaller dimensions. Current state-of-the-art MMW dual-band antenna techniques demand high precision fabrication, which increases the overall cost of the system. Henceforth, the design of an MMW antenna with fabrication and measurement simplicity is quite challenging. In this paper, a simple coplanar waveguide (CPW) fed single-band MMW antenna operating at 94 GHz (W band) and a dual-band MMW antenna operating concurrently at 60 GHz (V band) and 86 GHz (E band) have been designed, fabricated, and measured. A 50 Ω CPW-to-microstrip transition has also been designed to facilitate probe measurement compatibility and to provide proper feeding to the antenna. The fabricated single frequency 94 GHz antenna shows a fractional bandwidth of 11.2% andE-plane (H-plane) gain 6.17 dBi (6.2 dBi). Furthermore, the designed MMW dual-band antenna shows fractional bandwidth: 2/6.4%, andE-plane (H-plane) gain: 7.29 dBi (7.36 dBi)/8.73 dBi (8.68 dBi) at 60/86 GHz, respectively. The proposed antenna provides a simple and cost-effective solution for different MMW applications.


Author(s):  
H. Nakano ◽  
K. Kosemura ◽  
T. Hamada ◽  
Y. Hirachi ◽  
J. Hirokawa ◽  
...  
Keyword(s):  

2007 ◽  
Vol E90-C (4) ◽  
pp. 907-910 ◽  
Author(s):  
T. KAI ◽  
J. HIROKAWA ◽  
M. ANDO ◽  
H. NAKANO ◽  
Y. HIRACHI

Author(s):  
Hiroshi Nakano ◽  
Kinjiro Kosemura ◽  
Tomoko Hamada ◽  
Yasutake Hirachi ◽  
Jiro Hirokawa ◽  
...  
Keyword(s):  

2020 ◽  
Vol 41 (2) ◽  
pp. 177-180
Author(s):  
Abhishek Sharma ◽  
Sushank Chaudhary ◽  
Deepika Thakur ◽  
Vigneswaran Dhasratan

AbstractsFuture 5 G networks can enhance their wireless capacity and speed by effectively using high-frequency millimetre waves. Radio over fibres (RoF) is the promising technology to deliver millimetre waves over optical fibres as it integrates radio domain with wireless domain. The current study employed cost-effective non-return to zero scheme to encode 10 Gbps – 60 GHz data and wavelength division multiplexing scheme to transmit four channels over 60 km optical fibre link.


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