Reference Guide: TIRIS RF-Module IC For Automotive
Reference Guide: TIRIS RF-Module IC For Automotive
RI-RFM-006A
Reference Guide
December 1996
                               SCBU036
TIRIS RF-Module IC for Automotive
RI-RFM-006A
Reference Guide
       1      Overview ....................................................................................................................     4
       2      Features .....................................................................................................................    4
       3      TIRIS™ System Configuration (Schematic Diagram)........................................................                           4
       4      Internal Block Diagram and Pin Assignment ..................................................................                      5
       5      Description of Pins ......................................................................................................        6
       6      Function and Operation ...............................................................................................            6
                6.1      General ............................................................................................................ 6
                6.2      Sending Mode .................................................................................................... 7
                6.3      Receiving Mode .................................................................................................. 7
       7      Electrical Specifications............................................................................................... 9
                7.1      Absolute Maximum Rating ...................................................................................... 9
                7.2      Recommended Operating Conditions........................................................................ 10
       8      Input-Output Specifications ........................................................................................ 10
                8.1      Transmitter Signal I/O Timing ................................................................................. 10
                8.2      Receiver Signal I/O Timing .................................................................................... 11
       9      Dimensional Outline Drawing – 16-pin SOP ..................................................................                       12
       10     Applied Circuit Configuration – Example ......................................................................                    12
       11     Typical Transmitter Circuit Configuration .....................................................................                   13
       12     Typical Receiver Circuit Configuration .........................................................................                  14
       13     Typical Antenna Circuit Configuration .........................................................................                   15
       14     Precautions for Mounting and Actual Use ....................................................................                      16
                14.1     Power Supply Line      .............................................................................................   16
                14.2     Wiring for Antenna Circuit ..................................................................................... 17
       15     Package ................................................................................................................... 18
1        Overview
         RI-RFM-006A is a CMOS-technology based RF-module IC which integrates all transmitter-receiver
         functions required for constructing a TIRIS Read-Write System into one single chip.
         RI-RFM-006A consists of a transmitter signal control logic which generates signals for transmission and
         for sending the data you wrote to a remote TIRIS transponder, and a receiver amplifies and demodulates
         frequency shift keyed (FSK) signals received from this transponder.
         Therefore, RI-RFM-006A is beneficially usable for constructing, in particular, a compact TIRIS Read- Write
         System at a reduced cost. Furthermore, demodulation of the FSK signals received in its receiver from a
         remote transponder is entirely digitized; this completely eliminates the need of regulations and lessens the
         number of required external parts, thus enhancing the operational reliability of the system.
2        Features
         The TIRIS RF-Module IC for Automotive Application, RI-RFM-006A, provides the following features
         amongst others:
         • It incorporates a transmitter circuit with power selector and an open drain transmission power
            predriver.
         • Also incorporated are a receiver signal amplifier and a digitized FSK signal demodulator.
         • I/O specifications: Conform to TIRIS standard RF-module specifications, with available signals of
            TXCT–, RXDT– (1) and RXCK only.
         • Operating supply voltage: 4.5 V to 5.5 V
         • Operating temperature range: –40°C to 85°C
         • Package: 16-pin SO package
         • Structure: CMOS process
(1)   For RXDT– signals, this RF-module has a reverse polarity in relation to TIRIS standard RF-modules. See the section “Description of
      Pins” for more information.
                                    MOS INVERTER
                        A3OP 1                                                    16 RXCK
                                                      DIGITAL
                        A3IN    2                                                 15 RXDT-
                                                   DEMODULATOR
                                    MOS INVERTER
                        A2OP 3                                                    14 TXCT-
                                                      CONTROL
                        A2IN    4                                                 13 TPC
                                                       LOGIC
                                    MOS INVERTER
                        A1OP 5                                                    12 VCC
                                                     TRANSMITTER
                        A1IN    6                                                 11 GND
Description of Pins
5      Description of Pins
          Pin #       Signal           I/O                                              Description
            1         A3OP              O         Signal output from CMOS inverter-3 amplifier; this pin is connected to the internal FSK
                                                  signal digital demodulator.
            2          A3IN             I         Signal input to CMOS inverter-3 amplifier; if an external circuit is used to amplify FSK
                                                  signals, the amplified signals are input through this pin.
            3         A2OP              O         Signal output from CMOS inverter-2 amplifier.
            4          A2IN             I         Signal input to CMOS inverter-2 amplifier.
            5         A1OP              O         Signal output from CMOS inverter-1 amplifier.
            6          A1IN             I         I 16. Signal input to CMOS inverter-1 amplifier.
            7         TXLO          Negative      Negative level output of transmission signals; this output drives the n-channel MOSFET
                                   open drain     used as antenna driver.
                                     output
            8          TXHI      Positive open Positive level output of transmission signals; this output drives the p-channel MOSFET
                                  drain output used as antenna driver.
            9         OSCI              I         Signal input to 17.1776 MHz master clock oscillator.
           10         OSCO              O         Signal output from 17.1776 MHz master clock oscillator.
           11          GND              –         Negative power supply.
           12          VCC              –         Positive power supply.
           13          TPC         I, w/pull-up   Input of transmission power selection signals (High-Low). A Low level signal input
                                      resistor    through this pin substantially lowers the power during transmission
           14         TXCT–        I, w/pull-up   Input of transmission output control signals (Transmit-Receive Mode Selector). A Low
                                      resistor    level signal input through this pin outputs a transmission signal to either “TXLO/TXHI”
                                                  pin while a High level signal input turns the mode to Receive and activates the internal
                                                  FSK signal digital demodulator.
           15         RXDT–             O         Serial output of demodulated FSK signal bit data. Negative level output when the bit
                                                  data received from the remote transponder is “1”, and positive level output when it is
                                                  “0”.
                                                  Note: The RI-RFM-006A has a reverse polarity in relation to TIRIS standard
                                                  RF-modules.
           16         RXCK              O         Synchronous clock output of demodulated FSK signal data; a clock signal synchronized
                                                  with the “RXDT-“ signal is output.
6.1    General
       This RF-module IC counts on two operating modes:
          Sending Mode – This mode is active when the “TXCT–“ pin is set to L-level. A remote TIRIS
          transponder can be charged up and ID code can be sent to that transponder in this mode.
          Receiving Mode – This mode is active when the “TXCT–“ pin is set to H-level. FSK signals sent from a
          remote TIRIS transponder are received and demodulated in this mode.
       Therefore, by switching over these modes using an external controller, data communications with a TIRIS
       transponder can be made.
       Note that this RF-module IC is exclusively designed to provide the user with a simple signal
       modulator-demodulator (modem) function for data communications with a remote TIRIS transponder,
       based on the appropriate data modulation-demodulation specifications. And therefore, it does not
       incorporate error detection, data allotment nor other similar data processing functions in terms of protocol
       and data formats.
TXLO TXHI
7 8 "A"
MOSFET(NCH)
        When the IC is in the Receiving Mode, its “TXHI” terminal is fixed at positive level and the “TXLO” at high
        impedance. As a result, the output terminal “A” of the MOSFET used as an antenna resonance circuit
        driver is fixed at negative level.
        Note that when the IC is in the Sending Mode, its “RXDT–“ terminal is always fixed at positive level and as
        a consequence, the IC’s FSK signal demodulator remains deactivated although data clock signals, which
        are transmitted at a frequency resulting from division of the “A3IN” terminal signal frequency by 16, are
        output to the “RXCK”.
                   Signals discriminated
                       at A3OP terminal
                         Clock counts       1    2   3   4   5   6                     X-1 X      1     2    3      4   5   6    7
Signal discriminated
at A3OP terminal
Internal frequency
discriminating signals
                      RXDT- terminal
                                                                       DATA VALID                                               DATA VALID
                         output signals
      Note: For the timing between “A3OP” and “RXDT–“ signals, refer to the section describing “Input-Output
      Specifications”.
      The signals demodulated through the above-mentioned process are sequentially output from the “RXDT–“
      terminal in bit strings (“1” or “0”). To delimit these continuous bit strings, clock signals are output from the
      “RXCK” terminal in synchronization with each bit data.
      In normal operating conditions (when data communication can be properly performed between the
      RI-RFM-006A and a TIRIS transponder), each bit data group sent from the remote transponder is
      composed of sixteen consecutive signal waves belonging to the same frequency band (consisting of two
      wave groups, 134.2-kHz high and 123.2-kHz low in terms of normal values). Therefore, clock signals at a
      frequency resulting from a simple division of the “A3OP” terminal signal frequency by 16, are output from
      the “RXCK” terminal. Then, each “RXCK” clock signal is controlled for output so that its first transition falls
      after four consecutive “A3OP” signal waves from the “RXDT–“ signal change point. This enables an
      external controller to obtain the relevant bit data without fail provided that each “RXDT–“ signal is fetched
      well timed with the first transition of each “RXCK” signal. (See the diagram below.)
                                           15   16   1   2   3     4    5     6    7   8    9     10   11   12   13   14   15    16   1   2   3
                                                                                                                                            Electrical Specifications
        Sometimes at starting or during data receiving, some bit data group (composed of sixteen consecutive
        signal waves belonging to the same frequency band) may be affected by interference noise, this causing
        the number of its waves to vary and the consequent synchronous discrepancy between “RXDT–“ and
        “RXCK” signals. To correct this discrepancy, the sixteenth dividing counter of frequency incorporated in
        this RF-module IC for “RXCK” clock signal generation are always reset at the moment at which any
        internal demodulated bit data changes from “0” to “1” so that “RXCK” terminal signals are forcibly output at
        L-level with the timing shown below. This correction is made automatically regardless of whether or not
        receiving signals are properly input. (The frequency dividing counter is not reset at bit data change from
        “1” to “0”.)
                                            13   14   15   16   1   2   3    4     5    6    7    8     9   10   11    12   13   14    15   16   1
        Note: For details about timing among these signals, refer to the section describing “Input- Output
        Specifications”.
7 Electrical Specifications
Input-Output Specifications
7.2     Recommended Operating Conditions
        Note: Unless otherwise specified, all the voltage values indicated above are those measured versus the
        “GND” pin of this RF-module IC.
8 Input-Output Specifications
TXCT-
tc(TX)
                                                     twh(TX)
                                           tdl(TX)             twl(TX)                                    tdh(TX)
              TX=
               TXHI+TXLO
Input-Output Specifications
        Note: “Tc(osc)" denotes the master clock cycle of this RF-module IC and its normal value is specified at
        56.3 ns (1/0.0171776). The same applies hereinafter. “TX” is defined as a composite signal of “TXLO” and
        “TXHI” signals.
A3OP
tdh(RXCK) tdl(RXCK)
                                                      twh(RXCK)                              th(RXDT)
                            ts(RXDT)
            RXCK
tc(RXCK)
tw(RXDT)
            RXDT-
                                                                    DATA VALID
16 9
                                                                                                                       (Dimensions in mm)
                       S57780  MA
                        RI45538NS                              5.00~5.60 7.40~8.20
YMLLLLJ
1 8
     0.81(MAX)                                     0.35~0.51
                                                                   0.25
1.27(TYP)
0.15(TYP)
2.00(MAX)
                                                                                         0 - 10                  0.55~1.05
                                     0.10                      0.05(MIN)
             VCC
             GND                                                                      (*)              (*)
                                                                0.1uF                                                 100uF
TXCT 17.1776MHz
             RXDT                                                                                                                              ANTENNA
             RXCK                                      NC
                                                                                                                                               (L=48uH)
                                       16   15   14        13    12         11       10        9
2SJ182
                                            TMS57780NS
                                            RI45538NS
                                                                                                                        120
                                       1    2    3      4        5      6        7         8
2SK974
1S1588
                     RI45538NS
                               GND         VCC
                                                                        LC resonance circuit
                                                                                    L1
                                                                                               134.2KHz
                                                                  T1
                                7          8
                                    TXLO       TXHI     R1
                                                                                                Antenna
                                                                  T2
                                                                                    C1
               To receiving circuit
       In this circuit configuration, by selecting a value for R1 within a range of several hundred ohms and in
       accordance with the characteristics of MOSFETs (T1 and T2) and introducing the selected value, the
       through current which is consumed by the MOSFETs themselves during transmission can be reduced. If
       the value for R1 is too high, the on-state resistances of T1 and T2 become very high and they will have
       difficulty in driving the LC resonance circuit, leading to a possible reduction of available data
       communication distance. Therefore, it is recommended that the value for R1 be defined after careful
       evaluation of the characteristics of T1 and T2.
       L1 and C1 in the LC resonance circuit may be mutually exchanged in position without giving significant
       adverse effects to the operating performance of the circuit. However, the connection as is as illustrated
       above is most preferable since it reduces potential influence of high-voltage transmission signals produced
       at C1 on T1 and T2, thus a higher efficiency is gained.
                        1            2           3           4           5          6
                            A3OP         A3IN        A2OP        A2IN        A1OP       A1IN
                                                                                                     D2
                                R1          C2          R2          C4         R3          R4
C6
C1 C3 C5 D1
       In general, the FSK signals sent from a remote TIRIS transponder are found within a band of 120 kHz to
       140 kHz, mainly due to dispersion of workmanship during manufacture and ambient temperature
       fluctuation during transmitting operation. Therefore, by damping signals that fall out of the above band
       range as much as possible, noise suppression performance can be improved. In the illustrated circuit
       configuration, amplifier input coupling capacitors C2, C4 and C6 are used to reduce extremely
       low-frequency noise signals, and amplifier output load capacitors C1, C3 and C5 to reduce high-frequency
       noises. If you desire to enhance the noise resistance of the circuit still more, it is necessary to install a
       required number of external wide band amplifiers with high amplification factor and add an active band
       pass filter, LC resonance circuit, etc.
       D1, D2 and R4 for input into the first amplifier (A1) form a circuit to prevent high-voltage signals for power
       transmission and similar signals from entering the IC, thereby keeping from occurrence of latch-up or
       other adverse situations. This circuit or otherwise, an equivalent protector, must be inserted without fail.
                                                                            1
                                                     f (134. 2 KHz ) =
                                                                         2 π LC
       The higher the Q value (quality factor) is, the higher transmission power the antenna L obtains and also
       the higher the receiving gain becomes, thus allowing the system to have a greater available data
       communication distance. If, however, at switch-over from power transmission mode to the receiving mode,
       damping of the power transmission signal would not be completed before the remote TIRIS transponder
       sends its ID code back to the IC, the signals sent from the transponder could not be received properly.
       And the higher the Q value is, the longer the decay time of this power transmission signal will be. It has
       been revealed by experimental testing that an antenna with its maximum Q value of around 30 is usable in
       the circuit as is as illustrated in the “Applied Circuit Configuration – Example” section. If it is desired to use
       an antenna having a higher Q value, some measures must be devised and added to this circuit.
16 15 14 13 12 11
Feedback loop
                                              1             2           3             4    5             6
                                                                                                                         From Antenna
                      RI45538NS
                                                                                                             Antenna
                          TXLO           TXHI
                            7              8
                                                                                 Shielded wire
To receiver amplifier
Shielded wire
To receiver amplifier
Package
15 Package
50 pcs./tube
Silica gel
Heat-sealed
                                                                       Destination label
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