introduction to controlling the output power of a transistor stage a load network will be designed...

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Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi MGF0909A power transistor. The gain associated with maximum power is high enough not to be a concern in this case. Two solutions to the matching problem will be considered. The network selected will be expanded to allow for feeding the required dc to the drain of the transistor. Care will be taken to model the effects of the high Q capacitors added accurately. Changes will also be made to the matching network to reduce the expected discontinuity effects and the network will be optimized to restore the power performance.

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Page 1: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

Introduction to Controlling the Output Power of a Transistor Stage

A load network will be designed to maximize the output power obtainable from the Mitsubishi MGF0909A power transistor. The gain associated with maximum power is high enough not to be a concern in this case.

Two solutions to the matching problem will be considered. The network selected will be expanded to allow for feeding the required dc to the drain of the transistor. Care will be taken to model the effects of the high Q capacitors added accurately.

Changes will also be made to the matching network to reduce the expected discontinuity effects and the network will be optimized to restore the power performance.

Page 2: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

The circuit as set up in the previous example.

Page 3: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

The CIL Command is selected on the left (Synthesis Toolbar) to control the output power of the transistor.

Page 4: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

The matching network required will be inserted at the position shown.

Page 5: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

The CIL Wizard has been launched.

Page 6: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

The passband can be modified on this page.

Page 7: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

The option to control the output power has been selected.

Page 8: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

The S-parameter normalization resistance can be changed here.

Page 9: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

The actual output power and the operating power gain are of interest. Power contours will be generated.

Page 10: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

The power targeted must be specified on this page

Page 11: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

The Display Contours Command has been selected.

Page 12: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

The zoom slider was used to expand the view around the optimum power load.

Page 13: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

The maximum power is targeted. Additional contours can be displayed at 1dB and 2dB down from the optimum.

Page 14: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

The performance around the power contour targeted is tabulated at 2.075GHz. The optimum point on the contour is high-lighted and can be changed at this point.

Page 15: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

The terminations to be presented by the matching network in order to realize the power targeted are tabulated here.

Page 16: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

The Display Impedance Radio Button was selected to list the impedance required for maximum output power (the power targeted).

Page 17: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

The default name assigned to the data file of the matching problem to be solved.

Page 18: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

The final page of the Power Contour Wizard.

Page 19: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

The Impedance-Matching Module has been activated. The problem will be solved with a non-commensurate microstrip network.

Page 20: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

The Distributed Network Wizard will be launched to set the constraints on the microstrip networks to be synthesized.

Page 21: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

The general form of the non-commensurate networks allowed is displayed.

Page 22: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

The specifications of the substrate to be used.

Page 23: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

The specifications of the via holes to be used.

Page 24: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

The parasitic inductance for any capacitors to be used (0603).

Page 25: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

Double stubs and stepped main-line sections will be allowed.

Page 26: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

The line widths and the stub separation to be used.

Page 27: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

A rendering of the specifications made.

Page 28: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

The parasitics associated with the T-junctions associated with the specifications made.

Page 29: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

The default gaps to be used for any capacitors or inductors.

Page 30: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

The pad size to be used for any series capacitors.

Page 31: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

The electrical line length of the pads should be kept short.

Page 32: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

The steps of the wizard have been completed.

Page 33: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

The changes made must be saved before the synthesis cycle is started.

Page 34: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

The Synthesis Command is selected.

Page 35: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

The synthesized solutions can be optimized for the best active performance.

Page 36: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

The optimization target selected for the output power is the same as before.

Page 37: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

The gain targeted is also the same as before.

Page 38: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

Different weights can be assigned to the output power and the gain targeted.

Page 39: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

The best solution (smallest error) obtained with the specifications made.

Page 40: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

The impedance presented to the circuit by the selected matching network.

Page 41: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

An exploded view of the power termination.

Page 42: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

The command to display the active performance associated with the selected solution.

Page 43: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

The output power and gain associated with the selected solution.

Page 44: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

The artwork of the solution.

Page 45: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

The solution will be closed and alternatives will be investigated.

Page 46: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

The Specifications | Topology Command will be selected.

Page 47: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

The option not to use any series capacitors will be explored.

Page 48: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

Solutions without any series capacitors will be synthesized.

Page 49: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

The option to optimize the active performance will be selected again.

Page 50: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

The same power target is used again.

Page 51: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

The same gain target is used.

Page 52: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

All of the weight is again assigned to the output power.

Page 53: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

The best solution without any series capacitors.

Page 54: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

The artwork of the solution.

Page 55: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

The output power and the gain associated with the solution.

Page 56: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

The next solution synthesized is similar to the first.

Page 57: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

The third solution is again similar to the others.

Page 58: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

The first solution will be accepted and will be exported to the circuit file.

Page 59: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

The solution was exported to the circuit file.

Page 60: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

The circuit with the power matching network synthesized.

Page 61: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

The solution was scrolled to its end.

Page 62: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

The artwork will be displayed.

Page 63: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

The artwork of the amplifier with the power network in place.

Page 64: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

The performance with the power network in place.

Page 65: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

The Summary Table will be removed by using the command shown.

Page 66: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

The Output Power Command will be selected from the Tables Menu.

Page 67: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

The output power of the amplifier is listed.

Page 68: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

The output power in the passband of interest.

Page 69: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

The schematic will be edited to allow for biasing the drain.

Page 70: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

An extra line will be added to the end of the circuit.

Page 71: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

The line length can be edited by double-clicking the relevant label.

Page 72: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

A series capacitor (with pads) will be inserted between the two lines.

Page 73: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

An 0603 capacitor is selected.

Page 74: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

The capacitor and its pads were inserted.

Page 75: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

The capacitor value was changed to 22pF.

Page 76: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

Parasitics are specified for the capacitor.

Page 77: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

The artwork of the modified schematic will be displayed.

Page 78: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

The capacitor and its pads.

Page 79: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

Extra lines will be added around the capacitor to model the phase shift associated with it.

Page 80: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

The first line was added.

Page 81: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

The second line was added.

Page 82: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

The dimensions of the new lines will be edited on the artwork.

Page 83: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

The new lines are shown.

Page 84: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

The Edit Dimensions Command will be used to change the lengths of the new pads.

Page 85: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

The length of each pad will be set to 0.35mm (half of the gap size).

Page 86: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

The second pad will be modified too.

Page 87: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

Both pads are now 0.35mm long.

Page 88: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

The lines are used to model the phase shift through the capacitor and should not be present physically. The line commands will be modified as required in the Text View.

Page 89: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

The two “sline” commands associated with the capacitor (“sc”) will be edited.

Page 90: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

The “cut : 0.35mm” commands was appended to the relevant commands.

Page 91: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

The modifications made to the circuit file will be saved.

Page 92: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

The Text View will be closed and a Schematic View will be opened.

Page 93: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

The phase shift lines are still in place in the schematic.

Page 94: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

The lengths of the two lines were reduced to zero on the artwork.

Page 95: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

The effect of the added components on the performance is evaluated. The output power has not changed much.

Page 96: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

The shorted stub will be replaced with a line shorted to ground at RF frequencies with a capacitor (drain biasing).

Page 97: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

Topology changes must be made in a Schematic View.

Page 98: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

The relevant shorted stub is selected on the schematic too. A shunt block will be inserted in parallel with this stub.

Page 99: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

A line will be inserted to the right of the inductor.

Page 100: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

Because the first element of the shunt block is selected the new element can be inserted to its right or to the right of the block.

Page 101: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

The newly inserted line was edited to be the same as the original shorted stub (to be removed).

Page 102: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

A series capacitor will be inserted to the right of the selected inductor.

Page 103: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

An 0603 capacitor will be inserted.

Page 104: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

The inductor will be deleted from the shunt block.

Page 105: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

The inductor or the whole shunt block can be deleted.

Page 106: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

A shorted stub will be inserted in parallel with the selected capacitor.

Page 107: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

Extra position options are provided when the last element in a shunt block is selected.

Page 108: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

The 0.1pF capacitor will be deleted.

Page 109: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

The option to delete the block or the selected element is provided again.

Page 110: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

DC can now be fed to the drain via the inserted shunt block. The original inductor will now be deleted.

Page 111: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

The modified schematic will be saved.

Page 112: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

The artwork after the modifications made.

Page 113: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

Extra lines will again be inserted on both sides of the capacitor to model the phase shift effect.

Page 114: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

The first line was inserted.

Page 115: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

The second line was inserted.

Page 116: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

The circuit should be saved often.

Page 117: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

The pad lengths will be edited in the Artwork View.

Page 118: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

Scrolling of the view will be turned off. This will allow centering of the view around the selected component.

Page 119: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

The zoom features will be used to center the view the stub termination.

Page 120: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

The lengths of the two pads will be edited.

Page 121: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

The second pad will be edited too.

Page 122: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

The length specified for each of the two pads.

Page 123: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

The changes made will be saved.

Page 124: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

The line commands will be edited in the Text View to remove the lines from the artwork.

Page 125: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

The component which was selected on the artwork is also selected in the Text View.

Page 126: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

Cut commands were added to the lines on each side of the capacitor.

Page 127: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

The changed made will be saved.

Page 128: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

The Schematic View will be opened.

Page 129: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

The lines are still in place in the schematic.

Page 130: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

The two lines are not shown on the artwork anymore.

Page 131: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

Another shunt block will be inserted in the schematic to allow for feeding in the dc to the right of the selected line.

Page 132: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

The default shunt block was inserted into the schematic. A series line will be inserted next.

Page 133: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

Two position options are provided when the insert command is activated on the first element of a shunt block.

Page 134: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

The series inductor will be deleted.

Page 135: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

The option to delete the element or the block is provided.

Page 136: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

The value of the 0.1pF capacitor will be changed to 22pF.

Page 137: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

The value of the capacitor previously added must be changed too.

Page 138: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

The capacitance value is changed by double-clicking the label.

Page 139: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

Parasitics will be specified for the capacitors.

Page 140: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

The parasitic specified for the 22pF capacitor.

Page 141: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

The same parasitics are specified for the other capacitor too.

Page 142: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

The performance is analyzed with the changes made. The components added did not change the output power significantly.

Page 143: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

The Summary Table will be removed.

Page 144: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

The length of the dc line is changed slightly to verify that the circuit performance is not sensitive to the length used.

Page 145: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

The performance is checked with the modification.

Page 146: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

The changes made will be saved.

Page 147: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

The artwork of the circuit.

Page 148: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

The gap size of the capacitor will be edited.

Page 149: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

The gap size of the capacitor has been adjusted.

Page 150: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

The shorted stub is selected and will be flipped to the left.

Page 151: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

A bend will be introduced in the selected line.

Page 152: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

A line is bent from its output side towards its input side (marked with the triangle). The line will be bent anti-clockwise.

Page 153: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

The position of the bend will be changed by selecting the Bend Command again.

Page 154: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

If relative position of the bend is specified as 0.65 (further away from the output side of the line).

Page 155: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

The length of the output line will be increased.

Page 156: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

The performance of the amplifier is analyzed again.

Page 157: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

The discontinuity effect associated with the large steps in width will be reduced next.

Page 158: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

The artwork options set for the circuit will be checked.

Page 159: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

The option to compensate Tees/crosses is not selected. This option will be checked now.

Page 160: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

All the discontinuity effects will be compensated.

Page 161: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

The Analysis Options for the circuit are stored in the circuit file. The Save Command is used to save the change in these settings.

Page 162: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

The dimensions of the capacitive line are viewed.

Page 163: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

Lines will be inserted on both sides of the selected line in order to reduce the step transitions.

Page 164: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

The line of interest is also selected on the schematic.

Page 165: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

The line to the left is selected in order to insert the first new line.

Page 166: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

The next line will be inserted.

Page 167: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

The two lines required were inserted. The changes made will be saved.

Page 168: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

The two lines will be edited on the artwork.

Page 169: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

The line width will be increased to 5mm. The length should be kept short.

Page 170: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

The same changes will be made to the other line too.

Page 171: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

The new dimensions were specified.

Page 172: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

The modified artwork is shown.

Page 173: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

The performance of the modified circuit is displayed.

Page 174: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

The circuit will now be optimized to restore the performance.

Page 175: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

The variables to be optimized will be marked by using the command selected.

Page 176: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

The variables marked for optimization are shown in blue.

Page 177: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

All the lines around the capacitive line were marked for optimization.

Page 178: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

The length of the shorted stub will also be optimized.

Page 179: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

Optimization bounds will be set of the marked variables.

Page 180: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

The bounds set for the shorted line.

Page 181: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

The bounds set for the characteristic impedance of the selected line.

Page 182: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

The bounds set for the characteristic impedance of the selected line

Page 183: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

The bounds set for the characteristic impedance of the capacitive line

Page 184: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

The bounds set for the next line.

Page 185: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

The bounds set for the second 45.5 Ohm line.

Page 186: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

The bounds set on the length of the selected line.

Page 187: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

The bounds set on the electrical length of the next line.

Page 188: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

The bounds set on the length of the capacitive line.

Page 189: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

The bounds set on the length of the next line.

Page 190: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

The bounds set on the length of the last line.

Page 191: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

The changes made will be saved.

Page 192: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

The error function for the optimization will be set up next.

Page 193: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

The parameters of interest must be selected on the first page of the Error Function Wizard.

Page 194: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

Only the output power and the gain will be optimized at this point.

Page 195: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

The passband can be modified on this page.

Page 196: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

The gain to be optimized in this case is the operating power gain.

Page 197: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

The default values are derived from the performance of the network before optimization.

Page 198: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

The gain values will be kept but the average gain weight factor has been set to 1.

Page 199: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

The power targets must be set on this page.

Page 200: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

The power weight factor was set to 1, and the minimum required power to 37.8 dBm.

Page 201: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

The steps provided by the wizard have been completed.

Page 202: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

The Optimization Command will be selected next.

Page 203: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

The option to update the circuit with the optimized element values is provided after optimization.

Page 204: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

The changes will be saved.

Page 205: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

The performance after the optimization is displayed. Note that the output power has been restored.

Page 206: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

The artwork of the optimized output network is displayed.

Page 207: Introduction to Controlling the Output Power of a Transistor Stage A load network will be designed to maximize the output power obtainable from the Mitsubishi

Last Phase of this Example

The load network of the power amplifier was designed in this example. The synthesized network was extended to allow for the drain biasing of the transistor and the expected step discontinuity effects were reduced.

The input network will be designed in the final phase of this power amplifier example .