Body Electronics
Model: All
Production: All
Purpose of the System
The purpose of the Power Distribution System is to provide a safe delivery of power (Electricity) within the vehicle. Electrical power as produced by the battery and generator is distributed though fuseboxes and the main wiring harness to vehicle systems.
The Power Distribution System consists of
- The Battery
- Fusebox(s)
- Ground System
- The Generator
- Vehicle Wiring Harness
The Battery
The Battery location is dependent on model variation.
Scheme 9
Scheme 10
- MINI COOPER - Battery is located in the engine compartment
- MINI COOPER S - Battery is located in the rear luggage compartment (with BST)
All batteries used in the MINI are sealed for life and are maintenance free. A battery condition indicator which shows three battery states is located on top of the battery. The battery condition states are
- Green - Battery is in good state of charge
- Dark (Turning to Black) - Battery requires charging
- Clear (Light Yellow) - Battery must be replaced
Generator
All generators are mounted to the block with 3 fasteners and are located on the right side of the engine (viewed from the front of the engine). The MINI COOPER S generator is situated in a lower position to accommodate the supercharger.
Scheme 11
MINI COOPER
There are two fuseboxes on the MINI COOPER. One is located in the engine compartment (adjacent to the battery) and the other one is located at the base of the left side A pillar.
Scheme 12
Scheme 13
The engine compartment fusebox contains two types of fuses
- Blade Type Fuse - Conventional pull out male type fuse used to protect circuits between 5 and 30 amps.
- J-case Fuse - A square pull-out fuse used to protect circuits from 30 to 50 amps.
The A Pillar fusebox contains conventional blade type fuses only and three PCB type relays which are integral to the fusebox and cannot be replaced. The PCB relays control the Rear wiper, heated rear window and the cigarette lighter.
MINI COOPER S Only
MINI COOPER S models utilize the two fuseboxes as on the MINI COOPER and add a third fusebox. The third fusebox contains a single 250 amp fuse and is located in the rear of the vehicle near the battery compartment.
Scheme 14
Scheme 15
Workshop Hint
When disconnecting a battery always disarm the alarm and ensure the ignition and all electrical equipment is switched 'off'.
Disconnect the negative terminal first, and reconnect the positive terminal first.
Workshop Hint
Each harness, main, door or dashboard is vehicle specific. If replacing a harness, check that the replacement harness has the proper connectors for the equipment installed in the vehicle.
Scheme 16
Scheme 17
Wire Color Codes
| Code | Color | Code | Color |
|---|---|---|---|
| SW | Black | GE | Yellow |
| WS | White | GN | Green |
| RT | Red | OR | Orange |
| VI | Violet | TR | Transparent |
| BL | Blue | BR | Brown |
| GR | Grey | RS | Pink |
WIRE COLOR CODES
Notes
Bus Systems
The vehicle electrical architecture of the MINI has been designed to exploit the full potential of its technological advances. Rather than having a control unit dedicated to its system and unaware of the operation of other systems, the systems around the MINI are all linked together.
The control units are linked to each other via bus-systems, allowing communication and exchange of information. Harness bulk and complexity is kept to a minimum using this method to relay information to and from the different systems. This method used by MINI is called multiplexing.
Multiplexing is a technique which uses the same wiring repeatedly for communication between all systems. The systems are all inter-connected, forming a network of communication lines. The information from sensors and switches are converted into digital signals by the system control unit and relayed serially throughout the system network, which is also referred to as a data bus-system.
Scheme 18
K-Bus System
The K-bus system utilized in the MINI is the proven K-bus serial communication network used by BMW in the E46. It uses a single wire colored white/red/yellow. The K-Bus used by Body related components to connect with other body electronic systems and the instrument cluster (IKE) is a slow bus system, transmitting at 9600 bits per second.
The K-Bus switches between 0-12 volts (High/Low) and has a low impedance, making it resistant to electromagnetic interference. Most users are active on the bus when the ignition is switched to KLR.
The K-Bus network enters sleep mode 60 seconds after the ignition is switched off. While in sleep mode the K-Bus is at 12 volts.
Scheme 19
Updated K Bus Information
- MINI K-Bus system is comprised of K-Bus I and K-Bus II
- If K-Bus I fails communication with the BC1 and K-Bus II is not possible, although components on K-Bus II MAY continue to function normally.
- The BC1 acts as a repeater between the two K-Busses.
- The BC1 is the Main Controller, supplying power and establishing message sequencing.
CAN-Bus
The CAN protocol was originally developed by Intel™ and Bosch in 1988 for use in the automotive industry to provide a standardized, reliable and cost-effective communications bus for a cars electronics to combat the increasing size of wiring harnesses.
The CAN-Bus system is a high speed serial data bus-system linked by an unshielded twisted pair of wires: yellow/black and yellow/brown. The wires are twisted to minimize electromagnetic interference. Both wires carry information and for the CAN-Bus to operate, both signals must be present.
The CAN-system is the fastest of the bus systems used in the MINI, transmitting at 500,000 bits per second. This speed is recognized as the fastest practical operating speed without shielded cable. It is used for systems where the speed of exchange of information is vital for their performance; engine management systems, automatic transmission and automatic stability control.
The CAN-system uses a linear topology which consists of the main bus length and shorter stubs. The main bus length terminates at the EMS 2000 and the IKE. The shorter stubs must be as short as possible and no longer than one meter. Any untwisted portion of the bus must not be longer than four centimeters.
Scheme 20
Bus Network
The MINI network system uses a number of interconnected bus-systems. The bus systems in use on the MINI COOPER are the CAN-bus, the K-bus and the Diagnostic buses (D-Bus and DS2 Bus). Most control units are connected to this system and can transmit and receive messages on the system.
The IKE acts as the communication gateway, enabling transfer of data from one bus system to another. The IKE contains a microprocessor, which converts and processes all signals into the format required for transmission on to another bus system.
Control units transmit and receive commands and information on the buses as digital messages. Units connected to the same bus use a common protocol (format) and baud rate (transmission speed (kbit/s)) for the messages they transmit. The protocol and baud rate varies from bus to bus.
All messages transmitted on the bus systems are made up of binary digits, referred to as bits (BInary digiTS). The bit can be either 0 or 1. A combination of bits that make up a signal is transmitted on the bus system. Each control unit converts the digital signal back to an analog value for its own use.
Each message contains coded information indicating the message beginning and ending, and an identifier or address to route the message to the correct destination. The signal also contains a check function which a receiving control unit uses to check the plausibility of the signal. The transmitting control unit monitors the return of the signal on the bus from the receiving control unit. This way the transmitting control unit confirms the signal received is the same as the one transmitted and any faults can be dealt with.
A priority system of control unit or message importance is established providing a smooth flow of information, ensuring that important messages are processed first.
Information from a single sensor is passed on to many control units reducing the number of sensors needed. (e.g. Raw vehicle speed is received at the DSC unit which uses this information for unit operation and a processed road speed is sent to the IKE over the CAN-Bus. The IKE converts this signal into a K-bus message and transmits this via the K-bus to the BC1 for the speed dependent wiper control and the radio for the speed dependent volume adjustment).
Advantages of multiplexing
- Harnesses are smaller and less complex
- Harnesses are cheaper and lighter
- Improved reliability, reduced wires and connections
- New systems can be added easily 'Plug and Play'
K-Bus
The K-bus system is primarily an event-driven system. Messages are sent after a request has been made for component operation or status change.
Each of the K-bus users are continually monitoring messages on the system. When a user needs to transmit, it waits until there is no activity and then transmits its message. The sender then listens to the system for its own message to be returned by the receiver. If it doesn't receive its own message, a user with higher priority has also transmitted and its message was ignored. The lower priority user then has to wait until the Bus becomes inactive and re-transmit. When it receives its own message back (correctly) successful transmission is confirmed.
Arbitration on the K-bus is controlled by the sender of the message. Each sender has an allocation priority. The body control module (BC1) has the highest priority on the K-bus system and messages from the BC1 override any other K-bus message which has been transmitted simultaneously.
All control units on the K-Bus receive all messages, but only the module addressed in the message will accept and react to the data.
The K bus remains operational in the event of a disconnected or failed control unit. This is referred to as a "Tree" structure with each control unit occupying a branch.
The K-bus provides the diagnostic connection to the control units located on the bus (except for the IKE).
Bus Line Communication Rules
Scheme 21
- Only one module speaks at a time.
- Everybody speaks at the same speed.
- Messages are acknowledged by the recipient.
- The message is repeated if the addressed module fails to respond.
- The BC1 has priority.
- Quit sending message after 5 failed attempts.
The CAN-Bus consists of a twisted pair of wires. One line is CAN High (CAN-H, yellow and black) the other is CAN Low (CAN-L, yellow and brown). Both Can-H and CAN-L have a standing voltage of 2.5 volts. CAN-L is pulled low to 1.5 volts. CAN-H is pulled high to 3.5 volts.
With CAN-H and CAN-L both at 2.5 volts there is no potential difference (voltage) between them. This is known as the recessive state and is equivalent to logic 1. With CAN-H pulled to 3.5 volts and CAN-L pulled to 1.5 volts there is a potential difference of 2 volts between them. This is known as the dominant state and is equivalent to logic 0. CAN-H and CAN-L always switch together. These two states (0 or 1) are the only two possible.
When a control unit transmits a signal, it is made up of a series of dominant and recessive states. The signal is a combination of the two possible states, in effect 0 and 1, hence a digital signal.
For correct operation CAN-Bus must be terminated at both ends (EMS 2000 and IKE) with a control unit resistance of 120 ohms, connected between CAN-H and CAN-L. These terminations ensure that bit errors due to signal reflections are avoided.
Scheme 22
Data transmitted from any subscriber on a CAN bus does not contain addresses. Instead the content of the message (RPM, TD, Temp, etc) is labeled with an identifier code unique throughout the CAN. All of the subscribers receive the message and each one checks the message to see if it is relevant to its own operation.
If the message is relevant then it will be processed, if not, it will be ignored. The identifier code also determines the priority of the message. In a case where two control units attempt to send a message over a free bus line, the message with the higher priority will be transmitted first. The protocol of the CAN ensures that no message is lost, but stored by the Master Controller and then re-transmitted later when it is possible.
CAN Bus Terminal Resistors
Terminal resistors used in the CAN-Bus circuit establish the correct impedance to ensure fault free communication. A 120 Ohm resistor is installed in two control units of the CAN between CAN-H and CAN-L. Because the CAN is a parallel circuit, the effective resistance of the complete circuit is 60 Ohms. (Ohms' Law of a Parallel Circuit)
The resistance is measured by connecting the appropriate adapter to any of the modules on the CAN and measuring the resistance between CAN-L and CAN-H. The resistance should be 60 Ohms. The CAN bus is very stable and can continue to communicate if the resistance on the CAN bus is not completely correct; however, sporadic communication faults will occur.
Modules which do not have the terminal resistor can be checked by disconnecting the module and checking the resistance directly between the pins for CAN-H and CAN-L. The value at these control units should be between 10k Ohms and 50k Ohms.
D-Bus System
The D-Bus is a serial communications bus that transmits data between the DISplus and the connected control units. The control unit subject to diagnosis is selected by sending a diagnosis telegram to the control unit address. By request from the DISplus, the control unit transmits information and the contents of the fault memory or activates a control unit output. The D-bus is only active when the DIS or MoDIC is connected to the diagnostic socket and communicating.
- D-Bus is connected to power train (emission) related control units.
- DS2 Protocol Bus is connected to control units that do not affect emissions and the IKE. Through the IKE communication with the K-Bus is possible.
The operating voltage of the D-bus is 12 volts. The voltage measurement is taken from each data line connection to ground. Each module on the D-bus provides its own voltage.
D-Bus operation and signals are similar to K-Bus.
K and D Bus Faults
The failure of communication on the K or D bus can be caused by several sources
- Failure of the bus cable.
- Failure of one of the control units attached to the bus.
- Failure of the voltage supply or ground to individual modules.
- Interference in the bus cables.
- Bus interrupted
- Bus shorted to battery voltage
- Bus shorted to ground
- Bus line open
- Defective plug connections (damaged, corroded, or improperly crimped)
If problems are encountered trying to establish communication with a control module consider first
- Battery charge level of the vehicle. Maintain a battery charger on the vehicle at all times during diagnosis.
- Always check that the diagnosis head and connection are OK before working through a test module for lack of communication.
Since MINI COOPER uses the IKE as a gateway
If identification of the vehicle is carried out by the diagnostics without any problems then the D-bus is OK.
If several control units are not recognized this indicates that a bus link is defective. Continue troubleshooting using the test modules for those particular bus systems.
Short Circuit to B+: Modules that send a message see that the message was not received and that the bus remains high. However, subscribers are unable to decide whether the fault is due to a shorted line or a defect in the communication interface. The module will repeat its message 5 times before discontinuing and faulting. The module will continue to operate as normal minus any commands that could not be delivered by the bus.
Short Circuit to B-: The subscribers do not interpret a low bus line as a fault but just as a bus line deactivation. The Master and Standby controllers do detect the short and enter it as a bus fault. (No communication).
Bus Line Down: The bus line may be open at any of several locations. As long as the Master or Stand-by is still connected, communication can occur with any modules still remaining. The fault situation will be the same as if the disconnected modules were defective themselves.
Checking the bus line is carried out just like any other wiring. Perform continuity tests between the connections of different modules (all modules disconnected) without forgetting to make sure that the bus has not shorted to ground or another wire. It is recommended to use the "Wire Test" in "Preset Measurements" which is more sensitive than just a resistance check.
If Voltage level and the wire test are O.K then looking at the communication signal may be useful. In order to get a signal, operate different devices on the I/K bus (e.g. MID/MFL) to stimulate conversations.
Failure of one of the control units attached to the K bus.
Each control unit connected to the bus has an integrated communication module that makes it possible for that control unit to exchange information. Failure of a control unit normally triggers a fault code in the other control units connected to the bus.
As a quick check for the K-bus, activate the four way flashers. The flash indicators must light up in the instrument cluster. Switch on the Radio, and adjust volume using the MFL the volume must change accordingly.
If the tests prove O.K, this means that communication on the bus is O.K. Any faults still existing can only be related to faults specific to a control unit or a local K-bus wiring defect to a module.
There are instances where failures may be software related. A faulted module may paralyze or take down the entire bus. This scenario would be evident by functions not being carried out and possible faults stored.
In order to isolate the defective control unit, the control units can be disconnected one at a time. Repeat the bus test after each disconnected control unit. If the disconnected control module is the defective one the faults will only point to communication with that interrupted module and no one else.
Once the module has been replaced (observing current S.I.B's) and coded, perform the K bus Test Module in the Diagnosis Program to ensure that communication is O.K.
Failure of the voltage supply to individual modules.
Slowly dropping battery voltage on a vehicle with a discharged battery can lead to sporadic communication faults in various control units on the bus. The reason is that not all control units will switch off communication at the same voltage level leaving some modules still trying to communicate. Always verify a properly charged battery and charging system and fuses before beginning troubleshooting on the bus. Also, do not forget to check for a proper ground to a control unit, this may not allow the bus to see a signal low (0-2V)
Interference in the bus cables.
Interference will have a similar effect to shorting or disturbing the bus wiring. Excessive interference created by a defective alternator or aftermarket devices such as cell phones or amplifiers may induce a voltage into the bus line and disrupt communication. This type of interruption may be intermittent and faults may only be stored in some modules and not in others. These faults are often difficult to reproduce. Isolate any aftermarket wiring in the vehicle and see if the fault returns.
Scheme 23
Scheme 24
The failure of communication on the CAN bus can be caused by several sources
- Failure of the CAN bus cables.
- Failure of one of the control units attached to the CAN.
- Failure of the voltage supply or ground to individual modules.
- Interference in the CAN bus cables.
Failure of the CAN bus cables
The following faults can occur to the CAN bus wiring
- CAN-H/L interrupted
- CAN-H/L shorted to battery voltage
- CAN-H/L shorted to ground
- CAN-H shorted to CAN-L
- Defective plug connections (damaged, corroded, or improperly crimped)
In each instance, the connected control units will store a fault due to the lack of information received over the CAN bus.
If there are CAN communication faults that use the term "Timeout" this refers to a module not being able to communicate with another on the bus. Each module on the CAN bus will attempt communication several times. If unsuccessful, the module will store a "Timeout" or "CAN bus" fault and determine that there is a problem with either the bus line or the module that it is trying to communicate with.
These types of faults may indicate a problem with the bus wiring, interference, missing data or failure of the communication module of an individual control unit.
Checking the CAN lines is carried out just like any other wiring. Perform continuity tests between the connections of different modules (all modules disconnected) without forgetting to make sure that the two CAN lines have not shorted to ground or to each other. It is recommended to use the "Wire Test" in "Preset Measurements" which is more sensitive than just a resistance check.
If Voltage level and the wire test are O.K, then looking at the communication signal may be useful.
The following are some examples of scope patterns that may be observed when checking the CAN bus.
Scheme 25
Rapid Constant fixed duty cycle for 10 seconds.
This example represents the output signal produced by an AGS module that is isolated from the bus. This pattern times out after 10 seconds and remains a flat line at 2.5 volts until the key is cycled and the event is repeated.
Scheme 26
Constant fixed duty no time limit
All of the other control units with the exception of most current AGS modules will continue to try and send information even though the control unit has already stored a "Timeout" or CAN fault. This type of signal may only be seen if a section or all of the CAN bus is disconnected.
Scheme 27
Flat line at 2.5 volts
If a continuous flat line is present at one or both CAN lines of a particular control unit, this may indicate that the CAN is open to that particular module. The module may have timed out and is waiting for a signal from another control unit. Check the CAN bus at other points to see if communication is occurring else where on the bus.
Scheme 28
CAN High shorted to CAN Low
If the CAN bus lines were to become shorted to one another then the signals would cancel each other out and effectively be a flat line.
Failure of one of the control units attached to the CAN.
Each control unit connected to the CAN has an integrated communication module that makes it possible for that control unit to exchange information on the CAN. Failure of a control unit normally triggers a fault code in the other control units connected to the bus.
There are instances where failure of a module may paralyze or take down the entire CAN bus. This scenario would be evident by CAN faults stored in every control unit on the bus.
In order to isolate the defective control unit, the control units can be disconnected one at a time while monitoring the status of the CAN using a Voltmeter or oscilloscope. This can be further reinforced by clearing the faults of the remaining control units and then reading them again. If the disconnected control module is the defective one, the faults will only point to communication with that interrupted module and no one else.
If for example the tachometer and temperature display are plausible then communication is occurring between the EMS and IKE/KOMBI. Other indicators such as transmission range or the DSC light may give clues to the communication status with those control units.
Once the module has been replaced and coded or programmed, perform the CAN bus Test Module in each control unit to ensure that communication is OK.
Scheme 29
Failure of the voltage supply to individual modules.
A slowly dropping battery voltage or a vehicle with discharged battery can lead to sporadic communication faults in various control units on the bus. The reason is that not all control units will switch off communication at the same voltage level leaving some modules still trying to communicate. Always verify a properly charged battery and charging system before beginning troubleshooting on the CAN.
Interference in the CAN bus cables.
Interference will have a similar effect to shorting or disturbing the CAN bus wiring.
Excessive interference created by a defective alternator or aftermarket devices such as cell phones or amplifiers may induce a voltage into the CAN bus line and disrupt communication. This type of interruption may be intermittent and faults may only be stored in some modules and not in others. These faults are often difficult to reproduce. Begin by eliminating any problems with the CAN bus wiring itself and verify that the generator is operating fault free. Isolate any aftermarket wiring in the vehicle and see if the fault returns.
Programming
During programming it should be noted that the module being programmed will not be communicating and therefore the other control units on the bus will store faults. These faults stored during programming should be deleted and then the fault memory should be read again to verify that they do not return. An incorrectly programmed module results in CAN faults that are not able to be cleared. Remember to always verify the correct Programmed Part Number after programming.
The Instrument Cluster Electronics (IKE) performs a number of different functions within the car. It presents information visually and acoustically, receives and forwards signals to other controllers and enables diagnosis of the many systems connected to the K-bus.
For the reception and forwarding of signals to other controllers, the IKE is connected with several interfaces and assumes a gateway function. The interfaces are
- K-Bus
- CAN-Bus
- DS2-Bus
- D-Bus
The IKE system consists of
Scheme 30
Scheme 31
Scheme 32
- IKE Electronics
- Center Display
- Remote Display
IKE Electronics
The central display unit, regardless of instrument type (Navigation or Speedometer) acts as the IKE gateway. As a gateway the IKE receives information in different formats from the Bus Network (CAN, K, D, DS2), processes the data and passes it on to the appropriate control module. For instance, the IKE receives a compressor "On" request from the IHKA over the K-Bus, converts this request into a CAN Bus message and sends it to the EMS2000 for compressor activation.
Center Display
The Center Display is integral with the IKE Electronics assembly. The display will be either the Speedometer and warning lights or the Navigation System.
Scheme 33
Scheme 34
Remote Display
Depending on equipment the Remote Display will contain a single instrument (Tachometer or Speedometer) or dual instruments (Tachometer and Speedometer). Regardless of configuration, the remote display functions only as a display, the IKE Electronic functions being retained in the Center Display.
Scheme 35
Scheme 36
Scheme 37
Bus System Gateway
The IKE provides a gateway for communication between the DS2-bus and K-bus, and between the CAN-bus and K-bus, translating the protocol used between the different systems. The K-bus uses a baud rate of 9600 bits per second and the CAN-bus uses a baud rate of 500 k/bits per second. This speed difference in communication rate makes it impossible for a component on the K-Bus to speak directly to a component on the CAN-Bus. The two components are talking different languages. The IKE is the translator, receiving messages, translating them into the proper language and relaying them.
| Information | Transmitted By | Received By | Bus System |
|---|---|---|---|
| EWS signal | EWS3 | IKE | K |
| Door open | BC1 | IKE | K |
| Gear Status | IKE | BC1, PDC | K |
| Ambient Temp | IKE | IHKA | K |
| Engine Speed | EMS2000 | IKE | CAN |
| Fuel Use | EMS2000 | IKE | CAN |
| Gear Position | GIU | IKE | CAN |
| Odometer | IKE | BC1 | CAN |
EXAMPLES OF BUS INFORMATION TRANSMITTED AND RECEIVED BY IKE
Note. These are but a few examples of bus information handled by the IKE..
Vehicle Information Storage
Vehicle information stored in the IKE is sent to the BC1 as a back-up. Information redundantly stored in the BC1 and the IKE is: VIN, Total Miles, Trip Odometer, SIA Information.
Total Miles
The IKE sends mileage information when it has changed from the previous value. This information will be stored if it is a greater value than the value already stored. During IKE coding the information is stored in two places to prevent corruption.
The updating of the mileage will be as follows
- If the BC1 has zero km stored in memory (New BC1), it will accept the mileage sent to it by the IKE (irrespective of value up to a limit of 999,900 km).
- Once the BC1 has received a valid mileage (i.e. 5,000 km), it will accept an updated mileage that exceeds the previous mileage by a value no more than 1,000 km. For example, if a new value of 6,500 km was sent and it already had a value in memory of 5,000 km it will ignore the new value.
- The BC1 will update its mileage value every 100 km during a journey. The IKE must therefore send a K-bus telegram message every 100 km so that the BC1 can maintain a running total.
- Once 999,900 miles has been reached there will be no further updates.
During installation of a new IKE the stored reading in the BC1 will be fed back to the IKE.
Odometer
The odometer displays the total distance driven by the vehicle. The odometer and trip counter are also used for displaying the Service Interval Announcement (SIA) information and IKE test functions. The odometer display is capable of displaying the distance travelled as a 6 digit decimal number with a maximum display distance resolution of 1 mile or 1 km depending the unit selected.
The maximum value that can be displayed on the odometer display is 999999 km (or equivalent miles), any distance in excess of this shall cause the odometer display to indicate --. The display will not 'roll over' to 000000.
The odometer distance information is calculated based on vehicle speed information received by the IKE from the ASC/DSC control module via the CAN-Bus.
Trip Counter
The trip counter displays the distance driven by the vehicle since the user last reset the trip counter. The trip counter display will be capable of displaying a 3.1 digit decimal number with a maximum display distance resolution of 0.1 miles or 0.1 km, again dependent on the selected display units. The value of the trip counter distance shall be obtained from the vehicle speed signal.
The maximum value that can be displayed on the trip counter display is 999.9. Any display distance in excess of this will cause the trip counter distance to 'roll over' and recommence counting from zero.
Scheme 38
Remaining Distance
Remaining distance shows the distance remaining until the next service is required. This is displayed in the selected units of the Odometer and Trip counter. If the service is overdue then the display will show how many miles past the service the vehicle is. This is indicated by displaying a '-' (minus symbol) next to the remaining distance. The remaining distance will not show any leading zeros and the minus sign will remain next to the most significant digit, for example
- 50 km
- 250 km
- 1250 km
The displayed distance will always be quantified to the nearest 50 km or 25 miles depending on the selected display units. The remaining distance is calculated from 3 inputs; fuel used, recommended distance between services and the quantity of fuel to be used between service intervals.
The formula is
Remaining Distance = Recommended distance * (SI fuel quantity - fuel consumed) / SI fuel quantity
The advantages are that the formula is easily adapted for different engines by supplying different values for the recommended distance and SI fuel quantity, and that the remaining distance will reduce more quickly if the engine is subjected to more arduous usage. Equally the service distance may be extended by moderate usage. The values of recommended distance and SI fuel quantity will be stored in the IKE memory. To prevent the remaining distance counter from being reset in the case of loss of power or software reset, the accumulated fuel used is stored in IKE memory at least once every 2 km synchronized with the Odometer distance storage.
Speedometer
Speedometer operating range is 0-150 Mph.
Vehicle speed information arrives at the IKE via the CAN Bus from the DSC.
Other components requiring vehicle speed receive that information from the IKE.
Scheme 39
Scheme 40
Tachometer
Tachometer operating range is 0-8000 RPM.
Engine speed data is received via the CAN Bus from the EMS2000.
From 5500 rpm to 8000 rpm there are a series of LED's, which are lit.
A small analogue display incorporating a warning lamp, which illuminates at an engine temperature equal to or greater than 120 degrees Celsius. The warning for high engine temperature is incorporated into the last (highest) marker on the gauge. Engine Temperature data is provided to the IKE by the EMS2000 via the CAN Bus.
Scheme 41
Scheme 42
On navigation derivatives, Engine Coolant Temperature is provided via a warning lamp when the engine temperature is high. The engine temp data is still provided by the EMS2000 via the CAN Bus.
On non-navigation vehicles fuel level is indicated by an analog display incorporating a warning lamp, which illuminates at low fuel level. When the low fuel level warning lamp illuminates there is approximately 6 liters of (usable) fuel remaining in the fuel tank.
Scheme 43
The navigation cluster on MINI features an 8 position LED bar graph display for displaying fuel quantity. This series of LED's when lit indicate to the driver the remaining quantity of fuel in the fuel tank. If all the LED's are lit, this indicates that the fuel tank is FULL. If all the LED's are extinguished the fuel tank is nearly EMPTY. However in the latter event, the first LED (left hand side) in the series will flash 5 times and an audible warning sound will be provided to the driver upon low fuel being detected. At this point there is approximately 6 liters of (usable) fuel in the tank.
Scheme 44
Audible Warnings
The IKE incorporates an audible warning sounder and is used to provide information to the driver for the following systems.
Seat belt - Warns the driver the Seat Belts are not buckled.
Lights on - Warns the driver that the lights are switched on when the door is opened and the ignition is off. The audible warning will be continual until the door is closed, the ignition is turned ON or the lights are switched OFF.
Key in - Warns the driver that the key is still in the ignition at position 0 and the driver's door is open. The sound will be per-formed indefinitely while the key in warning condition exists.
This function is required for the vehicle to satisfy North American legislation.
Hood open - Used when the hood is not correctly closed, with headlight low beam on and at a vehicle speed greater than 5 km/h. Audible warning will continue until either the road speed is reduced below 5 km/h, or the hood is closed.
Engine coolant over-temperature - Used when the engine is overheating. This audible warning is active when the engine coolant temperature warning light becomes illuminated
Park Distance Control (PDC) - Used to assist the driver in judging distances while parking. The closer the vehicle gets to an object, the faster the audible sound. When the vehicle is too close the audible tone will be continuous.
Direction indicator (tick/tock) - Used to indicate to the driver that either the direction indicator or hazard warning lights are operational.
Instrument Illumination
The instrument clusters and all the other additional interior switches are illuminated whenever the exterior lights are switched on. The illumination dimmer switch is located to the left hand side of the central instrument cluster (integral with the IKE).
Continual depressing of the dimmer switch increases the illumination of the instrumentation, and successive presses of the dimmer switch dims the illumination.
Scheme 45
The instrument cluster illumination has a feature, whereby when the external lights are switched on, the illumination fades into the current level setting. The illumination fade function also works in the opposite manner, whereby when the lights are switched off the illumination fades off.
Scheme 46
Scheme 47
Warning Lamps
The warning lamps illuminate in one of four colors. The color indicates the level of importance of the warning as follows
- Red - Warning
- Amber - Caution
- Green - System operative
- Blue - Headlight main beam on
Certain LED's perform a pre-drive check, while some do not go out until the engine is started or do no illuminate until a system is operational, de-activated or faulty.
The LED's do not have dual color capability, but may flash or be accompanied by an acoustic warning.
On Board Computer (OBC)
The OBC information is displayed in the display field of the remote cluster, regardless of whether it is the Tachometer or speedometer.
The following information is displayed
- Outside temperature
- Range
- Average fuel consumption
- Average road speed
The values are scrolled through using the OBC switch on the main beam/indicator stalk.
Pressing the switch for longer than one second performs a reset of the average consumption or average speed when displayed.
Scheme 48
Scheme 49
Scheme 50
Scheme 51
Automatic Transmission Display
Cars fitted with automatic transmission have the selector lever position displayed in the center cluster odometer display field. This display is capable of displaying the numeric and alphanumeric characters required to indicate the selector lever position (P/R/N/D) and gearshift mode (S [sport] / M [manual]).
Scheme 52
Scheme 53
EWS
System functionality of the MINI EWS is identical to BMW vehicles equipped with EWS 3.3.
The purpose of the EWS system is to provide theft protection of the MINI. The EWS 3.3 control module communicates with the EMS2000 and the transponder in the key and activates the starter motor.
Scheme 54
System Components
Primary components of the EWS 3.3 system are
- EWS 3.3 Control Module
- Antenna Ring
- Key with Transponder
Additionally EWS 3.3 receives input from the Park/neutral or clutch switch, the BC1, the ignition switch and the EMS 2000.
EWS Control Module
The EWS Control Module is located on the left A Pillar under the dashboard. The EWS Control Module has a "Rolling Code" ISN assigned to it during manufacture. The "Rolling Code" is burned in the permanent memory of the module and can not be overwritten or changed.
The "Rolling Code" is transferred to the EMS2000 on a uni-directional signal line during start-up.
The EWS 3.3 module can accept up to 10 keys.
Antenna Ring
The Antenna Ring is used to power the key for communication with the EWS Control Module. The 125kHZ AM signal sent to the antenna ring, induces a voltage build up in the key coil and powers up the transponder. Data to and from the key is passed through the antenna ring. Range of the antenna ring is approx 2cm.
Key with Transponder
The Key with Transponder contains a single 3 volt battery for remote functions. Battery operation is not required for key recognition. The Key Transponder communicates with the EWS control module, exchanging Password, Key Identification Information and Changing Codes through the antenna ring.
The key transponder is good for 50000 write/erase cycles, or 50000 start cycles.
Keys
Up to 6 additional keys may be ordered as replacement keys. The EWS II control module is codeable for only 10 keys (4 delivered with vehicle and 6 replacement).
EWS III (3.3) Control Module
Replacement EWS III (3.3) Control Modules are ordered VIN specific. The module is received with the same "Rolling Code Table" as the original module. Once ZCS coded, the DISplus software "resets" the current rolling code in the EMS 2000 back to "Rolling Code" #1, providing synchronization of both modules.
EMS2000 Control Modules
Replacement EMS Control Modules are "off the shelf" and must be programmed for the specific vehicle. After programming the DISplus software informs the EWS III (3.3) control module that a new EMS has been installed. The next time the ignition is switched on, the EWS III (3.3) module will send the entire "Rolling Code Table" to the EMS and reset it to "Rolling Code" #1.
The EMS will automatically burn the "Rolling Code Table" into its memory. Once the table has been burned into the EMS memory it can NOT be changed. For this reason once a EMS is "Married" to the vehicle it will not work in any other vehicle.
Under certain conditions "Alignment" of the EMS and EWS III (3.3) modules may still be necessary. The alignment procedure only resets the code table to code #1 it does not change the "Rolling Code Table".
Key Activation
Keys that are lost or stolen may be deactivated or made to not operate the starter functions. The SERVICE FUNCTIONS of the DISplus for EWS III (3.3) contains a "bar/release code" function that activates and deactivates keys of the EWS III (3.3). Any key may be "Barred" except the key in the ignition at the time of deactivation. The lost or stolen key can be identified by the identification of the remaining keys.
There is no limit to the number of times a key can be activated/deactivated
Scheme 55
The purpose of the Sunroof system is to provide opening and closing of the sunroof panel.
The Slide/Tilt sunroof system consists of the following components
Scheme 56
Scheme 57
- Sunroof Switch
- Sunroof Motor with integrated Control Unit
Sunroof Switch
The sunroof switch is mounted in the roof headliner at the front of the car. The switch has double contacts: the first contact operates the roof all the time the switch is pressed; the second contact is for the one-touch functions of the roof.
Sunroof Motor With Control Unit
The drive for the sunroof is provided by a motor which is controlled by the integrated control unit. This assembly is mounted in front of the roof area between the roof liner and the lower section of the sunroof frame.
The control unit has a 13-pin connector that provides the connection between the wiring harness, the switch and the K-bus.
Two sensors (Hall sensors) are integrated in the motor/control unit for position recognition.
When the motor is running, the control unit continuously monitors the sensors.
Tilt
Pushing in the center of the sunroof switch causes the rear of the sunroof to tilt open. To close the sunroof press the switch in the close direction.
Convenience Open/Close
Turning the key in the drivers to lock to the lock/unlock position and holding will cause the sunroof to open/close. The operation will continue as long as the key is held in position. Convenience opening is also available through the Interior Central Lock Switch. Pressing and holding the switch in the unlock position will cause the sunroof to open. Opening will occur as long as the switch is pressed.
The switch sends a ground signal to the sunroof control unit. The circuit is closed when the control unit is connected to the ground/earth.
A current of approx. 12 mA then flows to enable the switch to function.
Sunroof Motor With Control Module
The motor with integrated control module has diagnostic capabilities and connects to the K-bus. Two Hall sensors are used to detect the position of the roof and provide the anti-trap function. The protected area is from 200 mm open to 4 mm, if an obstruction is detected within this range the roof will reverse direction for approximately one second.
Initialization
After carrying out any repairs to the sunroof the module must be initialized, this is achieved by pressing and holding the switch in the tilt position for approximately 15 seconds. The roof moving from the raised position to the close position confirms the initialization procedure.
RDW (Tire Pressure Warning System)
RDW is a system which alerts the driver to changes in tire air pressure by monitoring the rotational speed of the tires. RDW interfaces with the ABS/DSC system to receive wheel speed information. Only rotational speed is monitored, not tire pressure.
The purpose of the RDW system is to warn drivers of potentially hazardous conditions caused by tire loss of air. Underinflation is a tire's #1 Enemy. It results in unnecessary tire stress, irregular wear, loss of control and accidents. A tire can lose up to half of its air pressure and not appear to be flat
Under inflated tires are major causes for blowouts. An under inflated tire runs hot due to the action of the tire as it rolls under the car. The sidewalls become squashed outward, and it is this movement that causes the tire to generate heat and fail.
The RDW system is not a substitute for regular checks of tire air pressure but rather a warning system for loss of air conditions that arise while driving.
The driver is responsible for ensuring that the tire pressure is set correctly. The system cannot perform a plausibility check on whether the tire pressure set is correct. It can only monitor the pressure set at the moment of initialization compared to the warning values stored in the control unit.
The correct cold pressure (= the normal pressure when the tire is cold) must be obtained from the owners handbook.
The RDW system components are
Scheme 58
- RDW Control Unit
- RDW Push Button
- Display in IKE
- Wheel Speed Sensors (From ABS/DSC)
RDW Control Unit
The control unit is located in the right hand rear quarter panel.
The control units printed circuit board has an integrated processor. All system functions and interface functions (communication and diagnostics on bus network) are implemented in this processor.
Scheme 59
Scheme 60
The switch is installed in the center console. It is marked with its own symbol (a flat tire).
The switch is required for the initialization procedure after adjusting the tire pressures. A switched ground signal advises the RDW control unit of a request for initialization.
RDW Display in IKE
On switching the ignition to position 2 the control unit performs a self test and the amber RDW warning LED illuminates. The LED will remain lit unless a 'system OK' message is received via the K-bus from the control unit.
In the event of low tire pressure being detected, the instrument cluster will provide an audible warning to the driver and the RDW LED will flash.
Scheme 61
Wheel Speed Sensors
The RDW system makes use of the wheel speed sensors of the ABS/DSC system. Wheel speed information is sent from the wheel speed sensors to the ABS/DSC control module and conditioned. This conditioned signal is sent to the RDW control module. The RDW receives conditioned wheel speed signals for all four wheels.
Scheme 62
The system must be initialized for the particular set of tires used and the cold pressure specified. This process is initiated manually using the RDW button.
Procedure: switch on ignition and then press and hold the RDW switch for longer than 4 seconds. The control unit will then go into learn mode (initialization). The system then enters a learning phase. Due to the preset threshold values, this phase can last anywhere from 45 minutes to several hours depending on the driving style and number of data rejections. The system is ready to provide warnings after a minimum of approximately 10 minutes. It will then be able to detect pressure losses of 50% of the cold pressure. As the initialization progresses, the warning thresholds increase incrementally to 30% ±10% of the cold pressure.
The initialization routine can be interrupted as often as desired; interim results are stored in the control unit.
The system must be initialized if
- The tire pressures are adjusted (must be set cold)
- The tire positions are altered (interchanged on the same axle or between axles)
- Tires are changed (new tires for old tires, summer tires for winter tires etc.)
False warnings may be given if initialization is not performed after pressures have been changed or a wheel/wheel position has been changed. False warnings may also be given if tires with large differences in the degree of ageing/wear are fitted on the same axle. When using a space saver spare tire the RDW cannot compensate for the difference in diameters of the wheels, in this case, initialization cannot be completed.
Detection
RDW compares the wheel speeds of diagonally-opposing wheels to calculate the average speed and thus detect if there has been a loss of pressure. Extreme driving situations such as heavy acceleration or rapid cornering are detected by the software and corrected.
The system is functional from a minimum road speed of approximately 10 mph (15 km/h) up to the maximum speed of the vehicle.
Warnings
The following driving situations can cause a delayed warning of deflation
- Hard Braking
- Hard Acceleration
- High Lateral Acceleration
- Tight Turning
- Driving Below a Minimum Speed
- High Slip Difference (on the same axle and/or on one side of the car)
- Incomplete Initialization
RDW can only detect differences in pressure between tires. Detection is not possible where two or more tires lose air at the same rate. Pressure losses resulting from natural diffusion affecting all four tires equally cannot be detected.
Blow-outs cannot be detected.
RDW can detect a pressure loss on an individual wheel of 30% ±10% of the pressure defined as the set point value at the time of initialization. This is generally the cold pressure recommended in the owners handbook.
PDC (Park Distance Control)
An active PDC system is used in the MINI. It features four sensors in the rear bumper with the control unit and acoustic transmitter located in the right side of the luggage compartment.
The PDC system assists the driver during parking maneuvers and helps to avoid damage to the MINI when parking in tight or awkward spaces.
Despite the PDC assessing obstructions it is still the responsibility of the driver to make proper decisions especially when detection of objects approaches the physical limits of the system.
System problems my occur even under optimum preconditions. It is possible that a nonexistent obstruction is signaled or an existing obstruction is not signalled.
The PDC system consists of
Scheme 63
Scheme 64
- PDC Control Unit
- Active Ultrasonic Sensors (4)
- Audio Generator
PDC Control Unit
The control module is located in the rear right hand quarter panel. The control module is the microprocessor that controls and monitors all of the functions of the system.
Scheme 65
The PDC control module is linked via the K-bus with the other control modules connected to this bus.
Active Ultrasonic Sensors
By means of a digital signal, the ultrasonic converters are set by the control module to either a combined sending and reception operation or to a pure reception operation
- In the combined operation, the converter first sends out a packet of ultrasonic pulses and then receives the echoes which are reflected by an obstruction within its reception range. These echo signals are amplified and compared with a threshold that is programmed specifically to the vehicle.
- In the area of pure reception, the converter receives the pulses that have been emitted by the adjacent converters of the same system.
By the evaluation of these signals in the control module, the location resolution and the physical shape of the obstruction are better recorded.
Audio Generator
The audio generator acoustically reports the distance to the obstruction to the driver and warns him/her of a potential problem.