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CIRCUITS and SYSTEMS – part II Prof. dr hab. Stanisław Osowski Electrical Engineering (B.Sc.) Projekt współfinansowany przez Unię Europejską w ramach Europejskiego Funduszu Społecznego. Publikacja dystrybuowana jest bezpłatnie
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Lecture 14 Operational amplifier circuits
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3 Ideal operational amplifier Infinite gain A Zero output impedance Infinite input impedance These features valid for frequency from 0 to infinity.
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2-port model of ideal op-amp Hybrid description
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Voltage adding circuit
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Voltage adding circuit - equations Kirchhoff’s equations After simplification we get
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Voltage adding circuit - gains
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Integrator Transfer function
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Differentiator Transfer function
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Phase shifter Kirchhoff’s equations
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Phase shifter (cont.) The currents Output voltage Transfer function
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Negative impedance converter (NIC) Kirchhoff’s equations Chain matrix description
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Gyrator Kirchhoff’s equations Admittance matrix description
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Mason signal flow graph (SFG) Basic notions: Node – the point of graph associated with variable x Branch – the directed arch joining 2 nodes Gain – the transfer function describing branch Loop – the sequence of identically directed branches forming closed loop Gain of the loop – the product of gains of branches of the loop Source node – the node from which the branches can only start Cascade – the sequence of identically directed branches from the source node to the output node.
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Example of SFG Set of linear equations Transformation to Mason form Mason SFG
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Mason gain formula Transfer function Δ - main determinant of SFG T k – gain of kth cascade from source to output node Δ k - determinant of graph after eliminating kth cascade from SFG Gains of non-touching loopsGains of all loops
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Example Graph Transfer function
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Direct construction of SFG for passive elements connection CircuitIts SFG
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Direct construction of SFG for op-amp Op-amp Its SFG
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Example
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SFG of the circuit After simplification at we finally get
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