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LED5000 数据表(PDF) 44 Page - STMicroelectronics |
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LED5000 数据表(HTML) 44 Page - STMicroelectronics |
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44 / 52 page ![]() Application notes - alternative topologies LED5000 44/51 Doc ID 023951 Rev 1 6.4 Compensation network design for alternative topologies The small signal analysis for the alternative topologies can be written as: Equation 74 that shares similar terms with Equation 1 which is valid for the buck (see Equation 1). In addition KDX depends on the topology (different for boost and buck-boost) and ωZ_RHP ( Equation 75) is a zero in the right half plane: Equation 75 The RHP (right half plane) zero has the same 20 dB/dec rising gain magnitude as a conventional zero, but with 90 degree phase drop instead of lead. This characteristic cannot be compensated with the error amplifier network so the loop gain is designed to roll off at lower frequency in order to keep its contribution outside the small signal analysis. ω Z_RHP (see Equation 75) depends on the equivalent output resistance, inductor value and the duty cycle. As a consequence the minimum ω Z_RHP over the input voltage range determines the maximum system bandwidth: Equation 76 the system phase margin depends on K. This paragraph provides the equations to calculate the components of the compensation network once selected the power components and given the BW specification. Table 10: BB and boost parameters summarizes the KD, Km, K parameters useful for the next calculations of the compensation network. The DC gain of the total small loop is: Equation 77 where Gm is the error amplifier transconductance, REA the equivalent output resistance of the error amplifier, RCS the internal current sense gain (for these parameters refer to Table 5: Electrical characteristics), RS the sensing resistor value, and KD can be calculated from Table 10 The calculation of the components composing the compensation network depends on the relative position of the pole fp (see Equation 3) and the designed bandwidth BW. G CO s () R LOAD R CS ------------------ 1D – () K Dx ------------------ 1 s ω Z_RHP ------------------ – ⎝⎠ ⎛⎞ 1 s ω z ----- + ⎝⎠ ⎛⎞ ⋅ 1 s ω p ----- + ⎝⎠ ⎛⎞ ------------------------------------------------------------- F H s () ⋅⋅ ⋅ = ω Z_RHP R OUT 1D – () 2 ⋅ L ------------------------------------------- = BW BW MAX ≤ 1 K ---- ω Z_RHP_MIN 2 π ⋅ ----------------------------- ⋅ f SW 6 --------- « = A 0 G m R EA 1D – () R S R CS ----------- 1 K D ------- ⋅⋅ ⋅ ⋅ = |
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