Reaction calorimeter

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The log-distance path loss model is a radio propagation model that predicts the path loss a signal encounters inside a building or densely populated areas over distance.

Applicable to / Under conditions

The model is applicable to indoor propagation modeling.

Mathematical formulation

The model

Log-distance path loss model is formally expressed as:

PL=PTxdBmPRxdBm=PL0+10γlog10dd0+Xg,

where

PL is the total path loss measured in Decibel (dB)
PTxdBm=10log10PTx1mW is the transmitted power in dBm, where
PTx is the transmitted power in watt.
PRxdBm=10log10PRx1mW is the received power in dBm, where
PRx is the received power in watt.
PL0 is the path loss at the reference distance d0. Unit: Decibel (dB)
d is the length of the path.
d0 is the reference distance, usually 1 km (or 1 mile).
γ is the path loss exponent.
Xg is a normal (or Gaussian) random variable with zero mean, reflecting the attenuation (in decibel) caused by flat fadingPotter or Ceramic Artist Truman Bedell from Rexton, has interests which include ceramics, best property developers in singapore developers in singapore and scrabble. Was especially enthused after visiting Alejandro de Humboldt National Park.. In case of no fading, this variable is 0. In case of only shadow fading or slow fading, this random variable may have Gaussian distribution with σ standard deviation in dB, resulting in log-normal distribution of the received power in Watt. In case of only fast fading caused by multipath propagation, the corresponding gain in Watts Fg=10Xg10 may be modelled as a random variable with Rayleigh distribution or Ricean distribution.[1]

Corresponding non-logarithmic model

This corresponds to the following non-logarithmic gain model:

PRxPTx=c0Fgdγ

where

c0=d0γ10L010 is the average multiplicative gain at the reference distance d0 from the transmitter. This gain depends on factors such as carrier frequency, antenna heights and antenna gain, for example due to directional antennas; and

Fg=10Xg10 is a stochastic process that reflects flat fading. In case of only slow fading (shadowing), it may have log-normal distribution with parameter σ dB. In case of only fast fading due to multipath propagation, its amplitude may have Rayleigh distribution or Ricean distribution.

Empirical coefficient values for indoor propagation

Empirical measurements of coefficients γ and σ in dB have shown the following values for a number of indoor wave propagation cases.[2]

Building Type Frequency of Transmission γ σ [dB]
Vacuum, infinite space 2.0 0
Retail store 914 MHz 2.2 8.7
Grocery store 914 MHz 1.8 5.2
Office with hard partition 1.5 GHz 3.0 7
Office with soft partition 900 MHz 2.4 9.6
Office with soft partition 1.9 GHz 2.6 14.1
Textile or chemical 1.3 GHz 2.0 3.0
Textile or chemical 4 GHz 2.1 7.0, 9.7
Metalworking 1.3 GHz 1.6 5.8
Metalworking 1.3 GHz 3.3 6.8

References

  1. 20 year-old Real Estate Agent Rusty from Saint-Paul, has hobbies and interests which includes monopoly, property developers in singapore and poker. Will soon undertake a contiki trip that may include going to the Lower Valley of the Omo.

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  2. Wireless communications principles and practices, T. S. Rappaport, 2002, Prentice-Hall

Further reading

  • Introduction to RF propagation, John S. Seybold, 2005, Wiley.
  • Wireless communications principles and practices, T. S. Rappaport, 2002, Prentice-Hall.

See also