Claims
- 1. A circuit arrangement for measuring an ion current in a combustion chamber of an internal combustion engine during an ion current flow phase between ignition phases, comprising at least one ignition transformer including a primary winding and a secondary winding, a spark plug connected between a high voltage end of said secondary winding and ground, an inverting amplifier (3) connected with an input to a low voltage end of said secondary winding for producing a constant measuring voltage applied to said secondary winding during at least one of said ion current flow phases for generating an ion current in said combustion chamber, and a first resistor (R.sub.1) connected so that said ion current causes a proportional voltage drop across said first resistor (R.sub.1) for measuring said ion current, said circuit arrangement further comprising a diverting circuit including a first diverting branch (A.sub.1) comprising a first semiconductor diode (D.sub.1) connected between ground and said low voltage end of said secondary winding for dissipating negative high voltage peaks, and a second diverting branch (A.sub.2) connected in parallel to said inverting amplifier (3), said second diverting branch (A.sub.2) comprising a series connection including an ignition current measuring second resistor (R.sub.2 or R.sub.2 '), a second semiconductor diode (D.sub.2) and a controllable semiconductor switch (T), said series connection being connected to ground, said semiconductor switch (T) having a control input connected to an output of said inverting amplifier (3) for switching said semiconductor switch (T) to the "ON" state and thereby shunting an ignition current flowing during said ignition phase to ground through said series connection.
- 2. The circuit arrangement of claim 1, wherein said semiconductor switch (T) is a transistor (T) having a base connected to said output of said inverting amplifier (3), and an emitter and a collector forming an emitter-collector path connected in said series connection.
- 3. The circuit arrangement of claim 2, wherein said ignition current measuring second resistor (R.sub.2) is connected to said emitter of said transistor (T).
- 4. The circuit arrangement of claim 2, wherein said ignition current measuring second resistor (R.sub.2 ') is connected to said collector of said transistor (T).
- 5. The circuit arrangement of claim 4, wherein said ignition current measuring second resistor (R.sub.2 ') is connected between said collector and ground, and wherein a voltage drop (U.sub.ign) across said ignition current measuring second resistor (R.sub.2 ') is representative or proportional to said ignition current.
- 6. The circuit arrangement of claim 2, further comprising a base current limiting fourth resistor (R.sub.4) connected between said base of said transistor (T) and said output of said differential amplifier (3) for minimizing any measuring errors.
- 7. The circuit arrangement of claim 1, wherein said inverting amplifier is a differential amplifier having a first input (-) and a second input (+).
- 8. The circuit arrangement of claim 7, wherein said first input (-) of said differential amplifier (3) is connected to said low voltage end (S) of said secondary winding of said at least one ignition transformer (TR), said circuit arrangement further comprising a constant voltage source (6) connected to said second input (+) of said differential amplifier (3) for supplying a constant reference voltage (U.sub.ref) to said second input, said constant reference voltage (U.sub.ref) corresponding to a measuring voltage (U.sub.test), and wherein said first resistor (R.sub.1) causing said proportional voltage drop for measuring said ion current is connected to said first input (-) of said differential amplifier (3) and to an output of said differential amplifier, whereby said first resistor (R.sub.1) functions as a feedback circuit during said ignition phases and as an ion current measuring resistor during said ion current flow phases.
- 9. The circuit arrangement of claim 8, further comprising an evaluating circuit (5) connected to an output of said differential amplifier, and a central processing unit (4) connected to an output of said evaluating circuit (5) for processing signals available at said output of said differential amplifier.
- 10. The circuit arrangement of claim 8, wherein said first input of said differential amplifier is an inverting input, and wherein said second input of said differential amplifier is a non-inverting input.
- 11. The circuit arrangement of claim 8, wherein said constant voltage source delivers a constant voltage that is within the range of 5 to 30 volts.
- 12. The circuit arrangement of claim 1, further comprising a parallel circuit including a dissipation third resistor (R.sub.3) and at least one Zener diode (Z.sub.1), said parallel circuit being connected in series with said secondary winding and said first semiconductor diode (D.sub.1).
- 13. The circuit arrangement of claim 12, comprising two Zener diodes connected in anti-serial fashion with each other and in parallel to said dissipation third resistor (R.sub.3).
- 14. The circuit arrangement of claim 1, wherein said ignition current measuring second resistor (R.sub.2) provides a voltage drop that is representative of an ignition current flowing during said ignition phases.
Priority Claims (1)
Number |
Date |
Country |
Kind |
196 05 803 |
Feb 1996 |
DEX |
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CROSS-REFERENCE TO RELATED APPLICATIONS
The present application is related to, commonly assigned applications U.S. Ser. No. 08/802,898, which issued as U.S. Pat. No. 5,914,604 on Jun. 22, 1999; and U.S. Ser. No. 08/892,889, which issued as U.S. Pat. No. 5,758,629 on Jun. 2, 1998.
US Referenced Citations (5)
Foreign Referenced Citations (8)
Number |
Date |
Country |
0260177 |
Mar 1988 |
EPX |
3006665 |
Sep 1981 |
DEX |
4116272 |
Nov 1991 |
DEX |
4233224 |
Apr 1993 |
DEX |
4239803 |
May 1993 |
DEX |
4303267 |
Aug 1993 |
DEX |
195 02 402 |
Aug 1995 |
DEX |
6-299941 |
Oct 1994 |
JPX |