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Attenuators An attenuator is a device for introducing a specified loss between a signal source and a matched load without upsetting the impedance relationship necessary for matching. The loss introduced is constant irrespective of frequency; since reactive elements (L or C) vary with frequency, it follows that ideal attenuators are networks containing pure resistances. A fixed attenuator section is usually known as a “pad”. Attenuation is a reduction in the magnitude of a voltage or current due to its transmission over a line or through an attenuator. Any degree of attenuation may be achieved with an attenuator by suitable choice of resistance values but the input and output impedances of the pad must be such that the impedance conditions existing in the circuit into which it is connected are not disturbed. Thus an attenuator must provide the correct input and output impedances as well as providing the required attenuation. Attenuator sections are made up of resistances connected as T or arrangements Two-port networks ZA ZD ZB (a) ZF ZE ZC Figure 1 (b) Networks in which electrical energy is fed in at one pair of terminals and taken out at a second pair of terminals are called two-port networks. Thus an attenuator is a two-port network, as are transmission lines, transformers and electronic amplifiers. The network between the input port and the output port is a transmission network for which a known relationship exists between the input and output currents and voltages. If a network contains only passive circuit elements, such as in an attenuator, the network is said to be passive; if a network contains a source of emf, such as in an electronic amplifier, the network is said to be active. Figure 1(a) shows a T-network, which is termed symmetrical if ZA = ZB and Fig. 1(b) shows a -network which is symmetrical if ZE = ZF. If ZA ZB in Fig. 1(a) and ZE ZF in Fig. 1(b), the sections are termed asymmetrical. Both networks shown have one common terminal, which may be earthed, and are therefore said to be unbalanced. The balanced form of the Tnetwork is shown in Fig. 2(a) and the balanced form of the -network is shown in Fig. 2(b). Symmetrical T and -attenuators are discussed in section 4 and asymmetrical attenuators are discussed in sections 6 & 7. It is important to understand the concept of characteristic impedance, which is explained generally in section 2 and logarithmic units, discussed in section 3. Another important aspect of attenuators, that of insertion loss, is discussed in section 5. To obtain greater attenuation, sections may be connected in cascade, and this is discussed in section 8. 1 2. Characteristic Impedance The input impedance of a network is the ratio of voltage to current (in complex form) at the input terminals. With a two-port network the input impedance often varies according to the load impedance across the output terminals. For any passive two-port network it is found that a particular value of load impedance can always be found which will produce an input impedance having the same value as the load impedance. This is called the iterative impedance for an asymmetrical network and its value depends on which pair of terminals is taken to be the input and which the output (there are thus two values of iterative impedance, one for each direction). ZA/2 ZD/2 ZB/2 ZE ZC ZA/2 ZD/2 ZB/2 Figure 2 (a) ZF (b) For a symmetrical network there is only one value for the iterative impedance and this is called the characteristic impedance of the symmetrical two-port network. Let the characteristic impedance be denoted by Z0. Figure 3 shows a symmetrical T-network terminated in an impedance Zo. Let the impedance “looking-in” at the input port also be Zo. Then V1/I1 = Zo= V2/I2 in Fig. 3. From circuit theory, Z (Z V1 ZA B A since (Z A o is in parallel I1 ZB ZA ZO Z A ZA ZB Z0 2 i.e Z Zo A ZA ZB Z0 2 hus Z B Z 0 ) Z A 2 Z B Z 2 0 Z A 2 2 i.e Z 2 0 Z A 2 2 characteri stic impedance, Z o (Z 2 A 2 If the output terminals of figure 3 are open circuited, then the open circuit impedance Zoc = ZA + ZB. If the output terminals of figure 3 are short-circuited, then the short-circuited, then the short circuit impedance Z sc Z A Z AZB Z 2 A 2Z A Z B ZA ZB ZA ZB Z 2 A 2Z A Z B Thus Z oc Z sc ( Z A Z B ) Z 2 A 2Z A Z B ZA ZB Comparing with (1) gives Z o (Z 2 A I1 I1 I2 ZA Z1 ZA ZB V1 I2 V2 Zo Zo Z1 Z2 V1 V2 Zo Zo Output Port Input Port Output Port Input Port Figure 3 Figure 4 Figure 4 shows a symmetrical it-network terminated in an impedance Z0. If the impedance “looking in” at the input port is also Z0, then V1 Z o (Z 2 ) in parallel with [Z 1 in series with (Z 0 and Z 2 ) in parallel] I Zo Z2 (Z 2 ) in parallel with Z1 Zo Z2 Z1 Z 0 Z1 Z 2 Z 0 Z 2 / ( Z 0 Z 2 ) (Z 2 ) in parallel with Z2 ((Z 1 Z 0 Z1 Z 2 Z 0 Z 2 )/(Z 0 Z 2 )) 3 i..e., Zo Z 2 Z1 Z 0 Z1 Z 2 2 Z 0 Z 2 2 /(Z 0 Z 2 ) Z 2 Z O Z 2 2 Z1 Z 0 Z 0 Z 2 )/(Z 0 Z 2 ) Z 2 Z1 Z 0 Z1 Z 2 2 Z 0 Z 2 2 Zo Z 2 Z O Z 2 2 Z1 Z 0 Z 0 Z 2 ) Z o ( Z 2 2 Z1 Z 0 2Z 0 Z 2 ) Z 2 Z1 Z 0 Z1 Z 2 2 Z 0 Z 2 2 2 Z 2 Z 02 Z1 Z 02 Z1 Z 22 from which characteri stic impedance, Z 0 Z1 Z 22 - - - - - - - - - - - -(3) Z1 2 Z 2 If the output terminals of Fig. 4 are open-circuited, then the open-circuit impedance, Z oc Z 2 (Z1 Z 2 ) Z 2 (Z1 Z 2 ) Z1 Z 2 Z 2 Z 2 2Z 2 If the output terminals of Fig. 4 are short-circuited, then the short-circuit impedance, ZSC Z1 Z 2 Z2 Z2 Thus Comparing this expression with equation (3) gives Zo (ZocZsc) which is the same as equation (2). Thus the characteristic impedance Z0 is given by Zo (ZocZsc) whether the network is a symmetrical T or a symmetrical it. Equations (1) to (3) are used later on. 4 3. Logarithmic ratios The ratio of two powers P1 and P2 may be expressed in logarithmic form. Let P1 be the input power to a system and P2 the output power. If logarithms to base 10 are used, then the ratio is said to be in bels, i.e., power ratio in bels = lg(P2/P1). The bel is a large unit and the decibel (dB) is more often used, where 10 decibels = 1 bel, i.e., P power ratio in decibels 10 Lg 1 - - - - - - - - - -(4) P2 For example: P2/P1 1 100 1 10 Power ratio (dB) l0lg l = 0 10lg 100 = + 20 (power gain) 1 l0lg 10 (power loss or attenuatio n) 10 If logarithms to base e (i.e., natural or Naperian logarithms) are used, then the ratio of two powers is said to be in nepers (Np), i.e., power ratio in nepers 1 P2 ln - - - - - - - - - - - - - - - - - - - - - - - (5) 2 P1 Thus when the power ratio P2/P1 = 5, the power ratio in nepers = ln 5 = 0.805 Np, and when the power ratio P2/P1 = 0.1, the power ratio in nepers = ln 0.1 = - 1.15 Np. The attenuation along a transmission line is of an exponential form and it is in such applications that the unit of the neper is used. If the powers P1 and P2 refer to power developed in two equal resistors, R, then P1 = V2/R and P2 = V2/R. Thus the ratio (from equation (4)) can be expressed, by the laws of logarithms, as P2 (V22 /R) V22 power ratio in decibels 10 lg 10 lg 2 10 lg 2 P1 (V1 /R) V1 V 10lg 2 V1 2 V 20lg 2 V1 Although this is really a power ratio, it is called the logarithmic voltage ratio. 1 P 1 (V 2 /R) 1 (V22 ) 1 V2 ratio in nepers ln 2 ln 22 ln ln 2 P1 2 (V1 /R) 2 (V12 ) 2 V1 ratio in nepers ln 2 V2 (7 ) V1 5 Similarly, if currents I1 and I2 in two equal resistors R give powers P1 and P2 then (from equation (4)) P I2R ratio in decibels 10 lg 2 l0lg 22 l0lg P1 I1 R I2 I1 2 i.e., I ratio in decibels 20 lg 2 (8) I1 Alternatively (from equation (5)), 1 P2 1 P2 ratio in nepers 2 P1 2 P1 ratio in nepers ln I12 R 1 I 2 2 lg I1 R 2 I1 2 I2 (9) I1 In equations (4) to (9) the output-to-input ratio has been used. However, the input-to-output ratio may also be used. For example, in equation (6), the output-to-input voltage ratio is expressed as 20 lg (V2/V1) dB. Alternatively, the input-to-output voltage ratio may be expressed as 201g (V1/V2) dB, the only difference in the values obtained being a difference in sign. If 201g(V2/V1)= 10dB, say, then 201g(V1/V9= -10dB. Thus if an attenuator has a voltage input V1 of 50 mV and a voltage output V2 of 5 mV, the voltage ratio V2/V1 is 505 or 1 10 . Alternatively, this may be expressed as “an attenuation of 10”, i.e., V1/V2 = 10. Worked problems on logarithmic ratios Problem 1. The ratio of output power to input power in a system is (a) 2 (b) 25 (c) 1000 and (d) 1001 Determine the power ratio in each case (i) in decibels and (ii) in nepers. (i) From equation (4), power ratio in decibels l0lg(P2/P1). (a) When P2/P1 = 2, power ratio = 10 lg 2 = 3dB. (b) When P2/P1 =25, power ratio = 101g25 = l4dB. (c) When P2/P1 = 1000, power ratio l0lg 1000 = 30dB. (d) When P2/P1 = 1001 power ratio l0lg 1001 = - 20dB. (ii)From equation (5), power ratio in nepers = ln(P2/P1). (a) When P2/P1 = 2, power ratio = ln 2 = 0.347 Np. (b) When P2/P1 25, power ratio = ln 25 = 1.609 Np. (c) When P2/Pa = 1000, power ratio = ln 1000 = 3.454 Np. (d) When P2/P1 = 1001 , power ratio = ln 1001 = - 2.303 Np. The power ratios in (a), (b) and (c) represent power gains, since the ratios are positive values; the power ratio in (d) represents a power loss or attenuation, since the ratio is a negative value. 6 Problem 2. 5% of the power supplied to a cable appears at the output terminals. Determine the attenuation in decibels. If P1 = input power and P2 = output power, then P2 5 0.05 P1 100 From equation (4), power ratio in decibels = l0lg(P2/P1) = l0lg0.05 = - 13dB. Hence the attenuation (i.e., power loss) is 13 dB. Problem 3. An amplifier has a gain of 15 dB. If the input power is 12mW, determine the output power. From equation (4), decibel power ratio = l0lg(P2/P1). Hence 15 = l0lg(P2/P1), where P2 is the output power in milliwatts. P 1.5 lg 2 12 P2 101.5 12 from the definition of a logarithm. Thus the output power, P2 = 12(10)1.5 = 379.5mW Problem 4. The current output of an attenuator is 50 mA. If the current ratio of the attenuator is - 1.32 Np, determine (a) the current input and (b) the current ratio expressed in decibels. Assume that the input and load resistances of the attenuator are equal. (a) From equation(9),current ratio in nepers = ln(I2/I1). Hence -1.32 = In(50/I1), where I1 is the input current in mA. 50 e 1.32 I1 from which current input, I1 (b) 50 1 .32 50 e - 187.2 mA -1 .32 e From equation (8), current ratio in decibels 20 lg I2 50 201g 11.47dB Iq 187.2 Further problems on logarithmic ratios may be found in section 9, problems 1 to 6. 7 4 Symmetrical T-attenuator and - attenuators As mentioned in section 1, the ideal attenuator is made up of pure resistances. A symmetrical T-pad attenuator is shown in Fig. 5 with a termination R0 connected as shown. From equation (1), R 0 (R 12 2R 1 R 2 ) (10) and from equation (2), R 0 (R oc R sc ) - - - - - - - - - - - - - - - - - - - - - - - -(11) With resistance R0 as the termination, the input resistance of the pad will also be equal to R0. If the terminating resistance R0 is transferred to port A then the input resistance looking into port B will again be R0. I1 I2 R1 R3 R2 V1 V2 Ro Ro Output Port Input Port Figure 5 The pad is therefore symmetrical in impedance in both directions of connection and may thus be inserted into a network whose impedance is also R0. The value of R0 is the characteristic impedance of the section. As stated in section 3, attenuation may be expressed as a voltage ratio V1/V2 (see Fig. 5) or quoted in decibels as 201g(V1/V2) or, alternatively, as a power ratio as 10 lg (P1/P2). If a Tsection is symmetrical, i.e., the terminals of the section are matched to equal impedances, then l0lg P2 V I 201g 2 201g 1 P1 V1 I2 since R IN R LOAD R o , i.e., P 10lg 2 P1 V 101g 2 V1 2 I 101g 1 I2 2 from which 8 P2 P1 2 2 V2 I1 V1 I 2 V2 V1 I1 I2 or P2 P1 Let N = V1/V2 or I1/I2 or P1 / P2 where N is the attenuation. In section 5 it is shown that, for a matched network, i.e., one terminated in its characteristic impedance, N is in fact the insertion loss ratio. (Note that in an asymmetrical network, only the expression N P1 / P2 may be used—see section 7.) From Fig. 5, current I1 V1 R0 Voltage V V1 - I1 R 1 V1 R i.e. V V1 1 1 R0 V1 R1 R0 R0 by voltage division Voltage V2 V R 0 R1 R 0 R1 V1 1 i.e. e. V2 R R 1 0 R0 Hence R 1 R 0 R 1 V1 R R R 1 1 0 R R1 V2 R 0 R 1 V or 2 N 0 (12) V1 R 0 R 1 V1 R 0 R1 From equation (12) and also equation (10), it is possible to derive expressions for R1 and R2 in terms of N and R0, thus enabling an attenuator to be designed to give a specified attenuation and to be matched symmetrically into the network. From equation (12), 9 N(R 0 - R 1 ) R 0 R 1 NR 0 - NR 1 R 0 R 1 R 0 (N - l) R 1 (1 N) from which R1 R o (N - 1) (13) (N l) From equation (10), R 0 (R 12 2R 1 R 2 ) i.e., R 02 R 12 2R 1 R 2 , from which IA Ro(N - 1) (N + 1) Ro(2N ) (N2 - 1) R0 IC Ro(N - 1) (N + 1) ID IB IE R1 R2 V1 R0 IF R2 R0 V2 R0 FigureFigure 6 7 Symmetrical it-attenuator Figure 7 Symmetrical -attenuator Substituti ng for R 1 from equation (13) gives R2 R 02 - [R o (N - l)/(N 1)] 2 R 2 (N 1) 2 - R 02 (N - 1) 2 ]/(N 1) 2 0 2R 0 (N - 1)/(N 1) 2R 0 (N - 1)/(N 1) R2 R 02 [(N l) 2 - (N 1)] 2 R 02 [(N 2 2 N l) - ((N 2 2 N l))] 2 2R 0 (N - 1)/(N 1) 2(N 2 1) R o (4N) 2(N 2 1) Hence R 2 R o (4N) (14) 2(N 2 1) Thus if the characteristic impedance R0 and the attenuation N(= V1/V2) known for a symmetrical T-network then values of R1 and R2 may calculated. Figure 6 shows a T-pad 10 attenuator having input and output impedances of R0 with resistances R1 and R2 expressed in terms of R0 and N. Symmetrical -attenuator Symmetrical -attenuator is shown in Fig. 7 terminated in R0. From equation (3), characteri stic impedance R 0 ( R 1 R 22 ) (15) R 1 2R 2 from equation (2), R 0 (R oc R sc ) - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - -(16) Given the attenuatio n factor N V1 V2 I1 I2 and the characteristic impedance R0, it is possible to derive expressions for R1 and R2, in a similar way to the T-pad attenuator, to enable a it-attenuator to be effectively designed. Since N = V1/V2 then V2 = V1/N. From Fig. 7, current I1 = IA + IB and current IB = IC + ID. Thus 11 current I1 V1 IA IC ID Ro V1 V2 V V V1 V 1 1 R 2 R 2 R 0 R 2 NR 2 NR o since V2 V1/N, i.e., 1 V1 1 1 V1 Ro NR o R 2 NR 2 Hence 1 1 1 1 R o R 2 NR 2 NR o 1 1 1 1 R o NR o R 2 NR 2 1 1 1 1 1 1 Ro N R2 N 1 N -1 1 N 1 Ro N R2 N Thus R2 Ro ( N 1) (17) ( N 1) From Fig. 7, current I1= IA + IB and since the p.d. across R1 is (V1-V2), 12 V1 V V V2 1 1 Ro R2 R1 V1 V V V 1 1 2 R o R 2 R1 R 2 R0(N2-1) 2N Ro N 1 R 0 N -1 N 1 R 0 N -1 Ro V1 V V V 1 1 1 since V2 V1 /N R o R 2 R 1 NR 1 1 1 1 1 R o R 2 R 1 NR 1 Hence 1 1 1 1 1 Ro R2 R1 N N - 1 1 N - 1 from equation (17) 1 R o R 0 N 1 R 1 N 1 Ro N - 1 1 N - 1 1 N 1 R 1 N 1 Ro N 1 N - 1 1 N - 1 N 1 R 1 N 1 Ro 2 1 N -1 N 1 R 1 N N 2 -1 R 1 R o (18) 2N Figure 8 shows a it-attenuator having input and output impedances of R0 with resistance R1 and R2 expressed in terms of R0 and N. There is no difference in the functions of the T- and it-attenuator pads and either may be used in a particular situation. 13 Worked problems on symmetric T- and it-attenuators Problem 1. Determine the characteristic impedance of each of the attenuator sections shown in Fig. 9. S?2 8~2 10~2 10g2 200S2 200S2 21~2 15~~2 56.25~2 3 3 (a) (h) (c) From equation (10), for a T-section attenuator the characteristic impedance, ~/(R~ + 2R1R2). (a) R0 = 1(82 + (2)(8)(21)) = 1400 = 2O~i1. (b) R0 = 1(102 + (2)(10)(15)) = 1400 = 2O~. (c) R0 = 1(2002 + (2)(200)(56.25)) = 162500 = 25O~. It is seen that the characteristic impedance of parts (a) and (b) is the same. In fact, there are numerous combinations of resistances R1 and R2 which would give the same value for the characteristic impedance. Problem 2. A symmetrical it-attenuator pad has a series arm of 500 ~ resistance and each shunt arm of 1 kf~ resistance. Determine (a) the characteristic impedance, and (b) the attenuation (dB) produced by the pad. The it-attenuator section is shown in Fig. 10 terminated in its characteristic impedance, R0. (a) From equation (15), for a symmetrical it-attenuator section, 14