METHOD AND APPARATUS TO CONTROL AN IGNITION SYSTEM
20190301421 ยท 2019-10-03
Inventors
Cpc classification
F02P9/007
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02P15/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02P9/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
A multi-charge ignition system including a spark plug control unit adapted to control at least two coil stages so as to successively energise and de-energise the coil stages to provide a current to a spark plug, the two stages including a first transformer including a first primary winding inductively coupled to a first secondary winding a second transformer including a second primary winding inductively coupled to a second secondary winding. A first switch is located between the high end side of the first primary winding and the high end side of the second primary winding, and a second switch is located between the low side of the first primary winding and high side of the second primary winding.
Claims
1-7. (canceled)
8. A multi-charge ignition system comprising: at least two coil stages comprising a first transformer including a first primary winding inductively coupled to a first secondary winding and a second transformer including a second primary winding inductively coupled to a second secondary winding; a first switch means electrically connected between a high end side of the first primary winding and a high end side of the second primary winding; a second switch means electrically connected between a low side of the first primary winding and the high end side of the second primary winding; and a spark plug control unit adapted to control the at least two coil stages so as to successively energise and de-energise the at least two coil stages to provide a current to a spark plug.
9. A multi-charge ignition system as claimed in claim 8 further comprising a step-down converter stage electrically connected between the spark plug control unit and the at least two coil stages, the step-down converter stage including a third switch and a diode, the spark plug control unit being enabled to control the third switch to selectively provide power to the at least two coil stages.
10. A multi-charge ignition system as claimed in claim 8 further comprising: a fourth switch controlled by the spark plug control unit and electrically connected between the low side of the first primary winding and ground; and a fifth switch controlled by the spark plug control unit and electrically connected between a low side of the second primary winding and ground.
11. A multi-charge ignition system as claimed in claim 8, wherein the spark plug control unit is enabled to simultaneously energize and de-energize the first primary winding and the second primary winding by simultaneously switching on and off the fourth and fifth switches to sequentially energize and de-energize the first primary winding and the second primary winding by sequentially switching on and off both the fourth and fifth switches to maintain a continuous ignition fire.
12. A multi-charge ignition system as claimed in claim 8, wherein for a multi-charge ignition cycle, during an initial energisation/ramp up phase of the first primary winding, the control unit is adapted to close the second switch means and open the first switch means so as to connect the first primary winding and the second primary winding in series.
13. A multi-charge ignition system as claimed in claim 8, wherein the first switch means and the second switch means are provided with control lines from the spark plug control unit.
14. A method of controlling a multi-charge ignition system having at least two coil stages having a first transformer including a first primary winding inductively coupled to a first secondary winding and a second transformer including a second primary winding inductively coupled to a second secondary winding; a first switch means electrically connected between a high end side of the first primary winding and a high end side of the second primary winding; a second switch means electrically connected between a low side of the first primary winding and the high end side of the second primary winding; and a spark plug control unit adapted to control the at least two coil stages so as to successively energise and de-energise the at least two coil stages to provide a current to a spark plug, the method comprising: during an initial energisation/ramp-up phase of the first primary winding in a multi-charge ignition cycle, closing the second switch means and opening the first switch means so as to connect the first primary winding and the second primary winding in series.
Description
BRIEF DESCRIPTION OF DRAWINGS
[0014] The invention will now be described by way of example and with reference of the following drawings of which:
[0015]
[0016]
[0017]
[0018]
PRIOR ART
[0019]
[0020] The low-voltage ends of the secondary windings L2, L4 may be coupled to a common ground or chassis ground of an automobile through high-voltages diodes D1, D2. The high-voltage ends of the secondary ignition windings L2, L4 are coupled to one electrode of a gapped pair of electrodes in a spark plug 11 through conventional means. The other electrode of the spark plug 11 is also coupled to a common ground, conventionally by way of threaded engagement of the spark plug to the engine block. The primary windings L1, L3 are connected to a common energizing potential which may correspond to conventional automotive system voltage in a nominal 12V automotive electrical system and is in the figure the positive voltage of battery. The charge current can be supervised by an electronic control circuit 13 that controls the state of the switches Q1, Q2. The control circuit 13 is for example responsive to engine spark timing (EST) signals, supplied by the ECU, to selectively couple the primary windings L1 and L2 to system ground through switches Q1 and Q2 respectively controlled by signals Igbt1 and Igbt2, respectively. Measured primary current Ip and secondary current Is may be sent to control unit 13. Advantageously, the common energizing potential of the battery 15 is coupled by way of an ignition switch M1 to the primary windings L1, L3 at the opposite end that the grounded one. Switch M1 is preferably a MOSFET transistor. A diode D3 or any other semiconductor switch (e.g. MOSFET) is coupled to transistor M1 so as to form a step-down converter. Control unit 13 is enabled to switch off switch M1 by means of a signal FET. The diode D3 or any other semiconductor switch will be switched on when M1 is off and vice versa.
[0021] In prior art operation, the control circuit 13 is operative to provide an extended continuous high-energy arc across the gapped electrodes. During a first step, switches M1, Q1 and Q2 are all switched on, so that the delivered energy of the power supply 15 is stored in the magnetic circuit of both transformers (T1, T2). During a second step, both primary windings are switched off at the same time by means of switches Q1 and Q2. On the secondary side of the transformers a high voltage is induced and an ignition spark is created through the gapped electrodes of the spark plug 11. During a third step, after a minimum burn time wherein both transformers (T1, T2) are delivering energy, switch Q1 is switched on and switch Q2 is switched off (or vice versa). That means that the first transformer (L1, L2) stores energy into its magnetic circuit while the second transformer (L3, L4) delivers energy to spark plug (or vice versa). During a fourth step, when the primary current Ip increases over a limit (Ipmax), the control unit detects it and switches transistor M1 off. The stored energy in the transformer (L1, L2 or L3, L4) that is switched on (Q1, or Q2) impels a current over diode D3 (step-down topology), so that the transformer cannot go into the magnetic saturation, its energy being limited. Preferably, transistor M1 will be permanently switched on and off to hold the energy in the transformer on a constant level. During a fifth step, just after the secondary current Is falls short of a secondary current threshold level (Ismin) the switch Q1 is switched off and the switch Q2 is switched on (or vice versa). Then steps 3 to 5 will be iterated by sequentially switching on and off switches Q1 and Q2 as long as the control unit switches both switches Q1 and Q2 off.
[0022]
DETAILED DESCRIPTION OF THE INVENTION
Example 1
[0023]
[0024] In this example there are two further switches are provided: switch M2 located between the connection to the high side of the primary winding of coil stage 1 and the high side of primary winding of stage 2; and switch M3, located between the low side of primary winding of stage 1 and high side of primary winding of coil stage 2. These may be controlled by the ECU and/or spark control unit. When switch M3 is closed and M2 opened, the coils L1 and L3 (i.e. the primary coils) are effectively connected in series rather than in parallel.
[0025]
[0026] In the initial phase of a multi-charge (spark) ignition cycle, (e.g. when the EST pulse goes high to activate the ignition), and where the primary current is ramped up, switch M3 is closed and switch M2 is opened. M1 is switched on to provided current to both the windings L1 and L2. As a consequence the primary current will ramp up at a shallower gradient compared to
[0027] The switches M2 and M3 may controlled by the ignition coil controller which may include respective control lines to control the switches, partially shown in the figure.
[0028] In order to achieve the requisite charging, the EST pulse with regard to the initial ramp up charge period may be extended as shown in