Satellite communications chapter 3:Satellite Link Design

April 4, 2018 | Author: fadzlihashim87 | Category: Antenna (Radio), Decibel, Amplifier, Telecommunications Engineering, Broadcast Engineering


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SATELLITE LINK DESIGNCHAPTER 3 Basic Transmission Theory   The fundamental to the understanding of sat comm syst. These will include all the parameters such as:       Flux density EIRP Power received Power transmit System noise temperature Carrier to noise power ratio Flux Density Isotropic Source Area A (m2) EIRP = Pt Gt Distance R (m) Flux density F (W/ m2)   Transmitting source radiate power Pt uniformly in free space. At distance R from the source, the flux density crossing the surface of a sphere with radius R is given by (ideal antenna):  F = Pt/ (4πR2) W/m2 Flux Density For Real Antenna   Real antenna are directional It has gain G(θ) = the ratio of power per unit solid angle radiated in a direction θ to the average power radiated per unit solid angle.  G(θ) = P(θ)/ (P0/4π) .  G= 4 π Ae/ λ2 Where:     G = η (πD/ λ)2  P(θ) = power radiated per unit solid angle by the antenna P0 = total power radiated by the antenna G(θ) = the gain of the antenna at an angle θ θ = boresight direction . Continued  Flux density for real antenna in the direction of boresight at distance R meter where G(θ) at angle θ = 0º F = PtGt/ (4πR2) Where:      W/m2 PtGt = Effective isotropic radiated Power The combination of tx power and antenna gain in terms of equivalent isotropic source with power radiating uniformly in all directions. . Continued     Antenna with physical aperture area of Ar m2 The energy incident on aperture is reflected away from the antenna and some is absorbed by lossy components This reduction in efficiency is describe as an effective aperture Ae Where: Ae = η Ar m2 η = aperture efficiency . blockage) . (diffraction effect.all losses between the incident wavefronts and the antenna output port. feeder loss. the power received: Pr = F x Ae watts Pr = Pt Ae / (4πR2) watts For real antenna. the power received: Pr = Pt Gt Ae / (4πR2) Where : Ae = η Ar m2     .Power Received   For ideal antenna. .Continued    Rearrange the equation: Pr = (Pt Gt Ae )/ (4πR2)…………. (i) G= (4 π Ae)/ λ2……………………………………(ii)  Subs (ii) in (i)   Pr = (Pt Gt Gr )/ (4πR/ λ)2 = power received in any radio link Lp = (4πR/ λ)2 =path loss / free space loss =the way energy spread out as an emwave travels away from any transmitting source in 3 dimensional space. miss pointing. feeder loss  Rewrite the equation:  Pr = EIRP + Gr – Lp – Lo dBW .Continued  There are other losses need to be considered:   Losses in atmosphere. water vapor Losses in the antenna. rain. .Example 1  A sat at a distance of 40000 km from a point on the earth’s surface radiates a power of 10 w from an antenna with a gain of 17 dB in the direction of the observer. Find the flux density at the receiving point and the power received by an antenna at this point with an effective area of 10 m2. Example 2  A geostationary satellite at a distance of 37000 km operates at a frequency of 14 GHz. It radiates power from an antenna with a gain of 16 dB. The flux density at receiving point is 2. The receiving antenna has a physical aperture of 40 m2 with efficiency of 55%. ii) the EIRP of the sat in dB iii) the received gain by e/s in dB iv) the path loss during transmission in dB v) the received power at e/s in dB . Calculate: i) the power transmit by the transmitter from the sat to the e/s in dB.86 x 10-14 W/m2 in the direction of boresight. The available noise power from a thermal noise source is given by:   Pn = kTB Where:    T = noise temp B = noise bandwidth K = 1. Thermal noise also generated in the lossy components of antenna.System Noise    Arises from the random thermal motion of electrons in various resistive and active devices in the receiver.38 x 10-23 J/K = Boltzmann constant .   .Continued  The noise power per unit bandwidth is termed as the noise power spectral density. N0. N0 = Pn/ B = kT The noise temp is directly related to the physical temp of the noise source but is not always equal to it. calculate: i) ii) the noise power density the noise power for a bandwidth of 36 MHz .Example 3  An antenna has a noise temp of 35 k and is matched into receiver which has a noise temp of 100 k. Add to the noise received as radiation The total antenna noise temp is in the sum of equivalent noise temp of all these sources. Rainfall introduce attenuation.Antenna Noise    Antenna operating in the receiving mode introduce noise into sat circuit. Originate from matter in any form at finite temp. The antenna noise can be classified into 2 groups: Sky noise    The microwave radiation which is present throughout the universe.  Antenna loss   . therefore it degrades transmission. out / G   The total noise referred to the i/p is simply: .in = kTant N0.out = G k (Tant + T1) N0. T1 Figure 1  N0.in = k (Tant + T1) = N0.Amplifier Noise Temperature Tant N0. out The input noise energy coming from the antenna is: The output noise energy: N0. in Amplifier G. in2 = G1 k (Tant + T1) + kT2 . 2 N0.Continued Tant N0.in2 = G1 k (Tant + T1)  Thus the total noise energy referred to amp2 i/p: N0. T2 G1.2 = kT2  The noise i/p to amp 2 from the preceding stages: N0. 1 Amp 1 Amp 2 G2. T1 N0. out Figure 2  The noise energy of amp 2 referred to its own i/p: N0. 2/ G1  System noise temp may defined as Ts by: N0.1 = k [Tant + T1 + (T2/G1)] = N0.1 = kTs Ts = [Tant + T1 + (T2/G1)] Ts = [Tant + T1 + (T2/G1) + (T3/G1 G2) ] .Continued  The total noise referred to the i/p is : N0. Example 4  Suppose we have 4 GHz receiver with the following gains and noise temp: Tant = 25 k TRF = 50 k Tm = 500 k TIF = 1000k GRF = 23 dB GIF = 30 dB i) ii) iii) Calculate the syst noise temp assuming that the mixer has a gain Gm = 0 dB Recalculate the syst noise temp when the mixer has a 10 dB loss How can the noise of temp of the receiver be minimized when the mixer has a loss of 10 dB? . The o/p from the amp is: N0. out = FGkT0 . the source is taken to be room temp.Noise Factor    In defining the noise factor of an amp. The i/p noise from such a source is kT0. denoted by T0 (290 k). f = 10 log F F2  1 F3  1 FN  1 F  F1    ...  G1 G1G2 G1G2.Continued  Relationship between noise temp and noise factor:   Te = noise temp of the amp Tant = T0 = the source at room temp  Thus: GK (T0 + Te) = FGKT0 Te = (F -1)T0  The noise figure (f) is simply noise factor (F) expressed in dB.GN  1 .. .Example 5  An LNA is connected to a receiver which has a noise figure. f= 12 dB. The gain of the LNA is 40 dB and its noise temp is 120 k. calculate the overall noise temp referred to the LNA input. For equivalent noise bandwidth of 15 MHz and total noise power of 0.Example 6 i) ii) Calculate the equivalent noise temperature for a noise figure of 5 dB and 5. determine the noise density and equivalent noise temp. Assume the environmental temperature is 300 K.6 dB. OCT 2004 .0357 pW. Overall System Noise Temperature Tant LNA Cable Receiver G1. T1 Loss L:1 F Figure 3 shows the cable is after the LNA   Figure above shows a typical rx antenna syst. Applying the previous sections yields for the syst noise temp referred to the i/p: (L  1)T 0 L(F  1)T 0 Ts  Tant  T1   G1 G1 . Continued Tant Cable LNA Receiver Loss L:1 G1. T1 F Figure 4 shows the cable is before the LNA  Thus the equation: L(F  1)T 0 Ts  Tant  (L  1)T 0  LT1  G1 . Calculate the noise temp referred to the input. the receiver noise figure is 12 dB. the cable loss is 5 dB. the LNA gain is 50 dB and its noise temp is 150k. . The antenna noise temp is 35 k. Repeat the calculation when the system of fig 3 is arranged as shown in fig 4.Example 7 i) ii) For the syst shown in fig 3. Calculate the syst noise temp referred to input. The amplifier has a noise temperature of 120K and gain of 45 dB. feeding directly into LNA.Example 8  A receiving syst consists of an antenna having a noise temperature of 60 K. The coaxial feeder between the LNA and the main receiver has a loss of 2 dB and the main receiver has a noise figure of 9 dB. .  Carrier power to noise power  Link budget calculation Denoted by C/N or C/N0 which equivalent to PR/PT. C  EIRP  Gr  Losses  k  Ts  Bw N C Gr  EIRP   Losses  k N0 Ts C Gr  A0  m  BO   k  RFL N0 Ts .Carrier To Noise Ratio   A measure of the performance of a sat link. Calculate the carrier to noise spectral density ratio. the antenna pointing loss is 1 dB and the atmosphere absorption is 2 dB. the free space loss is 206 dB. The receiver G/T ratio is 19.Example 8  In a link calculation of 2 GHz. . The EIRP is 48 dBW.5 dB/K and the receiver feeder losses are 1 dB. losses . (C/N0)u = EIRPe/s + (G/T)s – FSL .losses + RFL .k (C/N0)u = Ae +Ψ m+ (G/T)s – RFL .Uplink  The uplink of sat cct is the one in which the e/s is transmitting the signal and the sat is receiving it.k  Where: Ae + Ψ m= EIRPe/s – FSL . Assume RFL is negligible.Example 9  An uplink operates at 14 GHz and the flux density required to saturate the transponder is -120 dB (W/M2). Calculate the e/s EIRP required for saturation assuming clear sky conditions. The free space loss is 207 dB and the other propagation losses amount to 2 dB. . the operating point must be backoff to a linear region of the transfer characteristic to reduce the effects of IM distortion. Suppose the saturation flux density for a single carrier operation is known. The e/s EIRP will have to be reduced by the specified backoff (BO). . Input backoff will be specified for multiple carrier operation referred to the single carrier saturation level.Input Backoff    When a number of carriers increased in TWTA. .4 dBW/M2 and an input backoff of 11 dB.Example 10  An uplink at 14GHz requires a saturation flux density of -91.7 dB/K and receiver feeder loss amount to 0. Calculate the carrier to noise density ratio. The sat G/T is -6.6 dB. Downlink  The sat transmitting the signal and the e/s is receiving it.k (C/N)d = EIRPs + (G/T)e/s – FSL .losses – k Bw .losses . (C/N0)d = EIRPs + (G/T)e/s – FSL . The relationship between IBO and OBO in decibels is: OBO = IBO – 5 dB . a corresponding o/p BO must be allowed in the downlink transmission.Output Backoff   When i/p BO is employed. calculate the satellite EIRP required. .Example 11  A satellite tv signal occupies the full transponder bandwidth of 36 MHz and it must provide a C/N ratio at the destination e/s of 22 dB. Given that the total transmission losses are 200 db and te destination e/s (G/T) ratio is 31 dB/K. FSL is 196 dB.5 dB and e/s (G/T) 41 dB/K. OBO is 6 dB.Example 12  The specified parameter for a downlink are sat saturation value of EIRP 25 dBW. Calculate the C/N0 at the e/s. . other losses 1. 7  G/T 40.6  OBO 6  FSL 196.6 Downlink  Satellite EIRP 26. .6 Calculate C/N0 for both links and the total C/N0 for the transmission.7  k -228.5  Ae -37  IBO 11  G/T -11.Example 13     A multiple carrier circuit operates in the 6/4 GHz band with the following characteristic. Uplink  Saturation flux density -67.
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