GB2125173A - Multicylinder engine analysis apparatus - Google Patents

Multicylinder engine analysis apparatus Download PDF

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Publication number
GB2125173A
GB2125173A GB08320919A GB8320919A GB2125173A GB 2125173 A GB2125173 A GB 2125173A GB 08320919 A GB08320919 A GB 08320919A GB 8320919 A GB8320919 A GB 8320919A GB 2125173 A GB2125173 A GB 2125173A
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GB
United Kingdom
Prior art keywords
shift register
engine
circuit
switch
ignition system
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Granted
Application number
GB08320919A
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GB8320919D0 (en
GB2125173B (en
Inventor
Peter Wherritt
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T I CRYPTON Ltd
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T I CRYPTON Ltd
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Publication date
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Priority to GB08320919A priority Critical patent/GB2125173B/en
Publication of GB8320919D0 publication Critical patent/GB8320919D0/en
Publication of GB2125173A publication Critical patent/GB2125173A/en
Application granted granted Critical
Publication of GB2125173B publication Critical patent/GB2125173B/en
Expired legal-status Critical Current

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    • GPHYSICS
    • G01MEASURING; TESTING
    • G01RMEASURING ELECTRIC VARIABLES; MEASURING MAGNETIC VARIABLES
    • G01R31/00Arrangements for testing electric properties; Arrangements for locating electric faults; Arrangements for electrical testing characterised by what is being tested not provided for elsewhere
    • G01R31/005Testing of electric installations on transport means
    • G01R31/006Testing of electric installations on transport means on road vehicles, e.g. automobiles or trucks
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F02COMBUSTION ENGINES; HOT-GAS OR COMBUSTION-PRODUCT ENGINE PLANTS
    • F02PIGNITION, OTHER THAN COMPRESSION IGNITION, FOR INTERNAL-COMBUSTION ENGINES; TESTING OF IGNITION TIMING IN COMPRESSION-IGNITION ENGINES
    • F02P17/00Testing of ignition installations, e.g. in combination with adjusting; Testing of ignition timing in compression-ignition engines

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  • Engineering & Computer Science (AREA)
  • Chemical & Material Sciences (AREA)
  • Combustion & Propulsion (AREA)
  • Mechanical Engineering (AREA)
  • General Engineering & Computer Science (AREA)
  • Physics & Mathematics (AREA)
  • General Physics & Mathematics (AREA)
  • Ignition Installations For Internal Combustion Engines (AREA)

Abstract

A multi-cylinder engine analysis apparatus includes a shift register (28, 29), synchronising means for supplying a synchronising signal to the shift register in each cycle of operation of an engine under test (21, 27), said shift register being loaded with parallel data representing the required firing pattern of the engine cylinders in the following engine cycle on receipt of each synchronising signal, circuit means (IF1, R1, C1) for connecting a clock input of the shift register to a switch means (11) of the ignition system to an engine under test, so as to clock the shift register each time such switch means becomes conductive, and a switch circuit (34) controlled by a serial output of the shift register for suppressing operation of the ignition system. <IMAGE>

Description

SPECIFICATION Multicylinder engine analysis apparatus This invention relates to a multi-cylinder engine analysis apparatus for testing of an engine function.
It is known in engine testing to utilise the engine contact breaker (or transistor switch where one is used) to clock a ring counter which keeps track of which cylinder of the engine is being fired at any given time. A probe attached to one of the spark plug leads to indicate when that spark plug is energised, is connected to the ring counter to reset it periodically. One of the tests which is carried out conventionally in engine analysis is a so-called power test, in which energisation of one of the spark plugs is inhibited in each engine cycle and the effect on engine performance is measured. This test is carried out on each cylinder in turn and clearly this gives rise to the problem of ensuring resetting of the ring counter when the cylinder, to the spark plug lead of which the aforementioned probe is attached is under test.
In prior U.S. Specification No. Re 29810 the ring counter has a number of stage outputs and switches connected to these are actuated to determine which cylinder has its spark suppressed. Further switches are used to route a resetting pulse from a selected one of the counter stages to the reset input. Thus signals from the stage outputs have to pass through a relatively complex switch network.
According to the present invention there is provided a multi-cylinder engine analysis apparatus which includes a parallel in-serial out shift register, synchronising means for supplying a synchronising signal to the shift register in each cycle of operation of an engine under test, said shift register being loaded with parallel data representing the required firing pattern of the engine cylinders in the following engine cycle on receipt of each synchronising signal, circuit means for connecting a clock input of the shift register to a switch means of the ignition system to an engine under test, so as to clock the shift register each time such switch means becomes conductive, and a switch circuit controlled by a serial output of the shift register for suppressing operation of the ignition system.
An example of the invention is shown in the accompanying drawings in which: Figure 1 is a diagram showing the example of the invention; and Figure 2 is a waveform diagram showing waveforms at various points in Figure 1 during operation of the apparatus.
The apparatus is shown in Figure 1 connected to the spark ignition system of an engine which is under test. As shown the ignition system includes an ignition transformer 10 with its primary winding connected in series with the contact breaker 11 between a supply rail 12, connected by the vehicle ignition switch 1 3 to the vehicle battery 14, and earth. The secondary winding of the transformer 10 is connected by a distributor 1 5 to the engine spark plugs.
The apparatus includes a first interface circuit IF 1 with its input connected to the non-earthed side of the contact breaker 11. The circuit IF 1 is of generaily known form including resistor-capacitor noise suppression circuits and a Schmitt trigger or similar circuit so as to provide a "clean" voltage signal indicating whether the contact breaker is closed or open. This voltage signal is shown in Figure 2(a), the signal being high when the contract breaker is closed, and low when the contact breaker is open.
There is also a second interface circuit IF 2 which has a probe 20 connected to its input, such probe being inductively coupled to one of the distributor output leads. The circuit IF 2 is again of known form to provide a "clean" pulse indicative of energisation of the appropriate spark plug. This pulse is shown in Figure 2(h).
The output of circuit IF 1 is connected by an R-C delay circuit R1, Cl to the CLOCK input of a CMOS integrated circuit presettable up/down counter 21 (Type 4616) so that this counter is clocked each time the circuit breaker 11 closes.
The counter has its U/D terminal grounded so that it operates as a down counter. The preset data inputs P1 to P4 of the counter are connected to a source of a 4-bit signal (not shown) which may be a switch array, a micro-computer or any other suitable input circuit, to provide a four bit binary input selected in accordance with the number of cylinders of the engine under test. In fact the binary input is one less than the number of cylinders, i.e. O011 for a four cylinder engine, 0101 for a six cylinder engine, 0111 for an eight cylinder engine and so on.
The P.E. (preset enable) input terminal of the counter 21 is connected to the output of a NOR gate 22 which has its inputs connected to the respective outputs of four inverters 23 to 26 which have their inputs connected to the Q1 to Q4 outputs of the counter. With this arrangement, whenever the count state of counter 21 changes from 0000 to 1111 the gate 22 provides an output signal which causes the count state of counter 21 to be set to the preset data. At other times the signal at the PE terminal is low so that the counter 21 counts the signals from circuit IF 1.
The output of the circuit IF 2 is connected to the RESET input of the counter 21. The effect of this is that, whenever the count state of counter 21 is other than 0000 when the pulse from circuit IF 2 arrives, the count state is changed to 0000.
This can occur when the apparatus is first connected, but may also occur during testing if the counter 21 gets out of step with the engine for any reason.
A further NOR gate 27 has its inputs connected directly to the Qt to Q4 outputs of counter 21 and provides a high output for as long as the count state of counter 21 is 0000 in each cycle of operation.
As shown in Figure 1 the output of gate 27 is used (inter alia) to control the ioading of a 12-bit shift register made up of two Type 4021 CMOS integrated circuits 28, 29. To this end the load (P/S) terminal of each circuit 28, 29 is connected to the output of a NOR gate 30 which has one input connected to the output of an inverter 31, the input of which is connected to the output of the gate 27. The other input of gate 30 is connected to the output of a NAND gate 32.One input of NAND gate 32 is connected via an R-C delay circuit R2, C2 to the output of circuit IF 1 and the other input of gate 32 is connected to the output of a NAND gate 33 which has one input connected to a supply and the other connected via another R-C delay circuit R3, C3 which has a longer time constant than delay circuit R2,C2 which, in turn, has a significantly longer time constant than delay circuit R1, C1. The gates 32, 33 and the associated delay circuits form a monostable circuit the output of which goes low briefly following each closing of the contact breaker, as shown in Figure 3(e).The output 6f inverter 31 is low when the count state of counter 21 is 0000 (Figure 2(d)), so that gate 30 produces a positive going pulse (Figure 2(f)) following the downward transition of the output of inverter 31.
The parallel data inputs of circuits 28, 29 are presented with a 12-bit word, from a microcomputer, a switch array on some other suitable circuit, so as to load a '0' into the register for each cylinder to be fired and a 1' for each cylinder in respect of which the spark is to be suppressed during the power test. This 12-bit word is shifted out of the serial output Q8 by successive closings of the contract breaker. Thus a serial signal is produced at the Q8 output of circuit 28 which is high when spark suppression is required.
This Q8 terminal is connected to a switch circuit 34 of known form which, when conductive provides a sufficiently low impedance in parallel with the contact breaker 11 to permit current flow in the primary winding to continue after opening of the contact breaker so as to prevent sparking.
Such impedance is, however, high enough to ensure that when this continuing current is flowing, opening and closing of the contact breaker can still be detected by circuit 34.
It will be appreciated that when, during the power test, the switch 34 is operated to suppress the spark on the lead to which probe 20 is attached, the counter 21 and the shift register 28, 29 remain in synchronism with the engine. The shift register is loaded in each cycle at an instant following the contact breaker closing prior to opening to fire the plug to which the reference probe is attached and, where the immediately following spark is to be suppressed no problem is created.
No logic signals, the timing of which may be critical, are routed through muitiple switch contacts as in the prior art, the setting of the number of cylinders and the selection of the cylinder in which sparking is to be inhibited, being effected by setting the 4-bit word and the 12-bit word applied to the counter 21 and the shift register 28, 29.

Claims (3)

1. A multi-cylinder engine analysis apparatus which includes a shift register, synchronising means for supplying a synchronising signal to the shift register in each cycle of operation of an engine under test, said shift register being loaded with parallel data representing the required firing pattern of the engine cylinders in the following engine cycle on receipt of each synchronising signal, circuit means for connecting a clock input of the shift register to a switch means of the ignition system to an engine under test, so as to clock the shift register each time such switch means becomes conductive, and a switch circuit controlled by a serial output of the shift register for suppressing operation of the ignition system.
2. A multi-cylinder engine analysis apparatus as claimed in claim 1 in which the switch circuit is connected, in use, in parallel with a switch means which is connected in series with an ignition coil of the ignition system, said switch circuit adopting a low impedance when suppressing operation of the ignition system.
3. A multi-cylinder engine analysis apparatus as claimed in Ciaim 2, in which the switch means connected to the clock input of the shift register is the same as the switch means connected in series with the ignition coil.
GB08320919A 1982-08-04 1983-08-03 Multicylinder engine analysis apparatus Expired GB2125173B (en)

Priority Applications (1)

Application Number Priority Date Filing Date Title
GB08320919A GB2125173B (en) 1982-08-04 1983-08-03 Multicylinder engine analysis apparatus

Applications Claiming Priority (2)

Application Number Priority Date Filing Date Title
GB8222466 1982-08-04
GB08320919A GB2125173B (en) 1982-08-04 1983-08-03 Multicylinder engine analysis apparatus

Publications (3)

Publication Number Publication Date
GB8320919D0 GB8320919D0 (en) 1983-09-07
GB2125173A true GB2125173A (en) 1984-02-29
GB2125173B GB2125173B (en) 1985-11-27

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Family Applications (1)

Application Number Title Priority Date Filing Date
GB08320919A Expired GB2125173B (en) 1982-08-04 1983-08-03 Multicylinder engine analysis apparatus

Country Status (1)

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Also Published As

Publication number Publication date
GB8320919D0 (en) 1983-09-07
GB2125173B (en) 1985-11-27

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Legal Events

Date Code Title Description
732 Registration of transactions, instruments or events in the register (sect. 32/1977)
732E Amendments to the register in respect of changes of name or changes affecting rights (sect. 32/1977)
PCNP Patent ceased through non-payment of renewal fee

Effective date: 20010803