Doc.: IEEE 802.11-11/0568r0 Submission April 2011 Shusaku Shimada 1 Industrial Channels of Usecase 1d/2 Date: 2011-4-26 Authors:

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doc.: IEEE /0568r0 Submission April 2011 Shusaku Shimada 1 Industrial Channels of Usecase 1d/2 Date: Authors:

doc.: IEEE /0568r0 Submission April 2011 Shusaku Shimada 2 Abstract In term of usecase-1d (Industrial Process Sensors) and use case-2 (Backhaul aggregation of sensors), the sigma of log-normal shadow fading should be larger then 11n CM e.g. 5-7dB for LOS (Rice) and 7-10dB for NLOS. In addition, the movement of nodes and obstacles have to be identified. An idea of channel model based on 11n CM is shown as well as the coverage distance and link budget; (1) Shadowing and moving velocities of nodes and obstacles. (2) Rough estimation of link budget. (3) Outdoor channel based on 11n CM; F and modified B & E.

doc.: IEEE /0568r0 Submission April 2011 Shusaku Shimada 3 Shadowing and moving velocities of nodes and obstacles

doc.: IEEE /0568r0 Submission April 2011 Shusaku Shimada 4 Shadow Fading in usecase 1d/2 Even in the industrial plants (uc 1d) or the road side sensors (uc 2), the shadow fading is well fitted by ordinal log normal statistics (*), provided that the sigma is larger than 11n indoor model (4-6dB); 7dB (even for Ricean LOS) to 10dB (NLOS, occultation by fixed large metallic obstacles like Tanks, Machine, etc.) are measured and reported, provided that shadowing is independent for each cluster. → Hence 8dB for sigma of shadowing after BP is viable estimation. * (1) T. S. Rappaport and C. D. McGillem, “UHF fading in factories,” IEEE J. Select. Areas Commun., vol. 7, no. 1, pp. 40–48, Jan * (2) S. Kjesbu and T. Brunsvik, “Radiowave propagation in industrial environments,” in Proc. 26th Annual Conference of the IEEE Industrial Electronics Society, vol. 4, pp. 2425–2430, Oct * (3) Emmeric Tanghe, Wout Joseph, et al., “The Industrial Indoor Channel: Large-Scale and Temporal Fading at 900, 2400, and 5200 MHz ” IEEE trans. on wireless communications vol. 7, no. 7, Jul. 2008

doc.: IEEE /0568r0 Submission April 2011 Shusaku Shimada 5 Velocity of nodes and obstacles in usecase 1d/2 AP and STA are fixed still in usecase 1d/2 and the velocities are well below 0.1km/h. While most obstacles in usecase 1d/2 are stationary, the vehicle and vessels have to be taken account ; (1) Parking vehicles obstruct the propagation path (shadowing) (2) Product or Vehicle which may be possibly passing by is a reflector as Doppler source, of which velocity can be up to 20km/h. (3) Berthing vessels may alter the propagation channels drastically as a large stationary reflector, while the change happens infrequently. → Hence a tap with the wider Doppler spread within all other narrow spread taps is justifiable.

doc.: IEEE /0568r0 Submission April 2011 Shusaku Shimada 6 Path Loss model parameters in usecase 1d/2 Model Usecase d BP (m) Slope before d BP Slope after d BP Shadow fading std. dev. (dB) before d BP (LOS) Shadow fading std. dev. (dB) after d BP (NLOS) Usecase 1d and Usecase 2a/b

doc.: IEEE /0568r0 Submission April 2011 Shusaku Shimada 7 Coverage distance and rough estimation of link budget

doc.: IEEE /0568r0 Submission April 2011 Shusaku Shimada 8  Small urban Hata, Tx Power 200mW (Backhaul link) 20mW (Sensor leaf link) Ant Height (Backhaul link) H AP = 10m H STA = 5m Ant Height (Sensor leaf link) H AP = 5m H STA = 1m Shadowing Sigma 8dB Fading margin 3dB (Backhaul link) 8dB (Sensor leaf link) Link budget in Industrial high-rise complex

doc.: IEEE /0568r0 Submission April 2011 Shusaku Shimada 9 Link budget in Industrial low-rise field  Suburban Hata Tx Power 200mW (Backhaul link) 20mW (Sensor leaf link) Ant Height (Backhaul link) H AP = 10m H STA = 5m Ant Height (Sensor leaf link) H AP = 5m H STA = 1m Shadowing Sigma 8dB Fading margin 3dB (Backhaul link) 5dB (Sensor leaf link)

doc.: IEEE /0568r0 Submission April 2011 Shusaku Shimada 10 Link budget in Industrial low-rise field (Long Distance)  Suburban Hata Tx Power 200mW (Backhaul link) 20mW (Sensor leaf link) Ant Height (Backhaul link) H AP = 20m H STA = 6m Ant Height (Sensor leaf link) H AP = 10m H STA = 3m Shadowing max 4dB Fading margin 3dB

doc.: IEEE /0568r0 Submission April 2011 Shusaku Shimada 11 Wider coverage by Relay (Mesh) Typical industrial plant occupies 0.5km radius area, while larger industrial cluster sometimes spans up to 2km distance. → Hence, AP Relay is instrumental. Longer interference radius in sub-GHz bands has to be considered. → Throughput degradation due to interference from nodes within same MBSS should be well managed. Resilience by mesh path diversity is preferable. → 11s deserves.

doc.: IEEE /0568r0 Submission April 2011 Shusaku Shimada 12 An idea of outdoor channel based on 11n CM Model F, modified B and E

doc.: IEEE /0568r0 Submission April 2011 Shusaku Shimada 13 Channel of industrial usecase-1d/2 Stationary nodes. Both AP and STA are fixed still. ( << 0.1km/h ) Multipath-rich by large scale structures, similar to indoor Cluster-Ray. (e.g. Tank, Machine, Tower : 4 to 16 times larger than indoor office) Deep Shadow Fading by parked vehicle (e.g. Tank lorry) Infrequent drastic change of channel condition. (e.g. Ship berthing) Fast moving reflectors occasionally passing by. ( < 20km/h ) (e.g. Vehicle, Moving product in plant (Rolled steel sheet), etc.)

doc.: IEEE /0568r0 Submission April 2011 Shusaku Shimada 14 11n CM-E/F and industrial usecase-1d/2b (1) 11n CM defines indoor and outdoor channels in term of stationary AP to STA link with relatively small coverage area. Even if assumed RMS delay spread of 150ns in model F and corresponding max. delay of about 1 uS may be limited for outdoor usecases, 11n model F as is has to be useful, provided that the sampling rate is carefully managed, e.g. degeneration or decimation. Large structures in high-rise industrial complex are similar to CM-E of indoor office, if it is modified to scale 4 times wider ray separation and cluster span (delay times) corresponding to outdoor distance. In addition, CM-B as a simple 16 times area expansion model should be useful, i.e. using 16 times tap spacing of 160ns with 1.28us max delay.

doc.: IEEE /0568r0 Submission April 2011 Shusaku Shimada 15 11n CM-F and industrial usecase-1d/2b (2) PDP 11n CM-F Vehicular Doppler Degenerated or Decimated Under-sampled Approx. Identical PDP Vehicular Doppler

doc.: IEEE /0568r0 Submission April 2011 Shusaku Shimada 16 11n CM-Enlarged B & E for usecase-1d/2b (3) PDP 11n CM-E PDP 11ah Enlarged CM-B & E Preserving AS still as is, while expand DP span over 4 times delay for CM-E, 16 times for CM-B. 10ns730ns 40ns 2920ns 22dB 34+dB Homothetic Expansion More path attenuation by longer distance accordingly

doc.: IEEE /0568r0 Submission April 2011 Shusaku Shimada 17 End