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 CML Semiconductor Products
PRODUCT INFORMATION
FX375
Features
Private Squelch Circuit
Publication D/375/4 July 1994
Tone Operated Private/Clear Switching CTCSS Tone Encode/Decode Separate Rx/Tx Speech Paths Fixed Frequency Speech Inversion P Compatible Interface with Serial or Parallel Control Loading
Tx Tx AUDIO INPUT
6dB/OCTAVE
On-Chip Pre- and De-Emphasis Filtering in the Tx Path 38 Programmable Tones + 'NoTone' Facility Audio Path Filtering (300Hz - 3033Hz) Low Power 5V CMOS
Tx AUDIO OUTPUT
Tx
FILTER OUTPUT
BALANCED MODULATOR INPUT
CLEAR
- 6dB/OCTAVE
Rx
BIAS
fEMPH
fCLK1
fCARRIER
f CLK2
PRIVATE
f EMPH
Tx
BIAS
Rx
Rx AUDIO INPUT
Rx AUDIO OUTPUT
REFERENCE
XTAL CLOCKS
3333Hz FILTERS
+ -
HYSTERESIS
Rx TONE DECODER OUTPUT DECODE COMPARATOR INPUT Rx TONE DETECT OUTPUT
3333Hz
XTAL Rx TONE INPUT LOAD/LATCH D5 or SERIAL ENABLE 1 D4 or SERIAL ENABLE 2 D 3 or SERIAL DATA INPUT D 2 or SERIAL CLOCK INPUT D 1 INPUT D0 I N P U T Rx/Tx CONTROL PRIVATE ENABLE PRESS TO LISTEN PTL 8-BIT SHIFT REGISTER AND LATCHES CONTROL
LD 5 LD 0
CTCSS TONE DETECT
FX375
TX TONE OUTPUT
NOTONE OUTPUT LOGIC
f CARRIER f CLK1 f CLK2 f EMPH
Rx PATH Tx PATH PRIVATE
V DD V BIAS V SS
Fig.1 Internal Block Diagram
Brief Description
The FX375 is a Low-Power CMOS LSI microcircuit designed for Tone Operated Voice Privacy in communication systems. This half-duplex device consists of a Fixed Frequency Voice Band Inverter interfaced with a Continuous Tone Controlled Squelch System (CTCSS) Encoder/ Decoder, whose allocated tone is used for voice privacy and audio squelch operation. Frequency Inversion is achieved by modulating the input audio with a fixed carrier frequency to exchange the high and low frequencies of the voice band, making the resulting audio output unintelligible to receivers not equipped with a compatible system. The on-chip CTCSS Dencoder is capable of encoding and decoding any one of 38 sub-audio tones in the range 67.0Hz to 250.3Hz, these Xtal derived tones are selected by a 6-bit binary word that can be loaded to the device in either a serial or parallel format. The Privacy function is exclusive only to units using the same tone set, other intercepted signals remain "as transmitted." A 'Press to Listen' facility allows monitoring of the channel prior to transmitting. This device has separate, switched Rx and Tx voice, and tone audio paths. Voice paths use switched capacitor bandpass filters for the attenuation of subaudio tones and unwanted modulation products. 6dB/octave pre- and de-emphasis filtering in the Tx path maintains natural sounding audio from this device when embodied in communication transceivers. The FX375, which is available in DIL and SMT packages, can be simply controlled by switches, or interfaced to a Processor. External requirements are a single 5-volt supply, an external 4.0MHz Xtal or clock input and signal coupling components.
Pin Number
FX375J FX375LG FX375LH FX375LS 1 2
Function
Xtal/Clock: The input to the clock oscillator inverter. An external 4MHz Xtal or clock input is to be applied at this pin. See Figure 2.
2
3
Xtal: The 4MHz output of the clock oscillator inverter. See Figure 2.
3
4
Load/Latch: This input regulates the operation of the eight input latches : D0, D1, D2, D3, D4, D5, Rx/Tx and Private Enable for both parallel and serial input load modes. Rx/Tx and Private Enable inputs can be used independently in either mode by the use of Load/Latch and Control inputs configured as shown in Table 3, the data format (D0 - D5), remains as set. This input has an internal 1M pullup resistor.
4 5 6 7 8 9
- 5 6 7 - -
D5 - (Serial Enable 1) : D4 - (Serial Enable 2) : D3 - (Serial Data Input) : D2 - (Serial Clock Input) : D1 D0
The Rx/Tx tone programming and function inputs. Programmed as shown in Table 2 these inputs will select the CTCSS tone frequency and parallel or serial loading function. Notone, when set in receive, enables the Rx Audio Output and forces the Rx Tone Decode Output to a logic '0,' in transmit the Tx Tone Output is held at VBIAS (Notone). These inputs each have an internal 1M pullup resistor. If FX375LG or LS package styles are used Pin 5 (Serial Enable 2) should be externally connected to VSS.
10
8
Rx Tone Decode Output : The output of the decode comparator. In Rx a logic '0' indicates 'CTCSS tone decoded' above the internal reference level, or Notone programmed. This action internally enables the Rx audio path and Frequency Inversion function (when applicable) as shown in Table 1. In Tx this output is a logic '1'.
11
9
Decode Comparator Input : A logic '1' at this pin, in Rx, is compared internally with a fixed reference level, a more positive input value will produce a logic '0' at the Rx Tone Decode Output. This input should be externally connected to the Rx Tone Detect Output via external integrator components C7, R2, R3, D1 (see Figure 2).
12
10
Rx Tone Detect Output : This output, in Rx, goes to a logic '1' when a valid, programmed CTCSS tone is received at the Rx Tone Input. This input should be externally connected to the Decode Comparator Input via external integrator components C7, R2, R3, D1 (see Figure 2).
13
-
Notone Output : Outputs a logic '0' when a " Notone" CTCSS code has been programmed . It can be used to operate squelch circuitry under receive "Notone" conditions.
14
11
VSS : Negative supply rail (GND). The FX375LG and LS package styles are configured as a serial-data loading device, Parallel Programing Inputs D0, D1 and D5, and the NOTONE Output pin functions are not available. 2
Pin Number
FX375J FX375LG FX375LH FX375L 15 12
Function
Tx Tone Output : This is the buffered, programmed CTCSS tone sinewave output in Tx. During Rx and Notone operation this output is held at VBIAS. See note "g," page 7 with reference to capacitive load limits of this output. VBIAS : This bias pin is set internally to VDD/2. It must be externally decoupled using a capacitor, C8, of 1.0F (minimum) to VSS, see Figure 2. Filter Output : The Input Audio Bandpass Filter output, this pin must be connected to the Balanced Modulator Input via a capacitor, C6, and decoupled to VSS by C10, see Figure 2. Balanced Modulator Input : The input to the Balanced Modulator, this pin must be connected to the Filter Output via a capacitor, C6, see Figure 2. Rx Audio Output : Outputs the received audio from a buffered output stage and is held at VBIAS when in Tx. Tx Audio Output : The output of the audio path in the Tx mode and is held at VBIAS when in Rx. Rx Audio Input : The Audio input pin for the Rx mode. Input signals should be a.c. coupled via an external capacitor, C4, see Figure 2. Tx Audio Input : This is the voice input pin for the Tx mode. Signals should be a.c. coupled via an external capacitor, C3, see Figure 2. PTL : The "Press To Listen" function input, in the receive mode a logic '0' enables the Rx Audio Output directly, overriding tone squelch but not intercepting a private conversation. In the transmit mode a logic '0' reverses the phase of the Tx Tone Output for "squelch tail" reduction (see Table 1), this function, in Tx, should be accurately applied by a timing circuit to ensure correct system operation. Control : This input, with Load/Latch, selects the operational mode of Rx/Tx and Private Enable functions, see Table 3. Rx/Tx : Selects the receive or transmit mode (Rx = '1', Tx = '0') and can be loaded by serial or parallel means, as described in Table 3. Private Enable : This input selects either Private or Clear modes (Clear = '1', Private ='0'), and can be loaded by serial or parallel means, as described in Table 3. In Rx this input could be taken from the Rx Tone Decode Output. This input has an internal 1M pullup resistor. Rx Tone Input : The received tone input to the on-chip CTCSS decoder and should be a.c. coupled via capacitor C5, see Figure 2. VDD : Positive supply rail. A single +5V power supply is required.
16
13
17
14
18
15
19
16
20
17
21
18
22
19
23
20
24
21
25
22
26
23
27
24
28
1
3
Operational Information
Recommended Xtal Components
VDD C9 V
XTAL/CLOCK XTAL LOAD/LATCH SERIAL ENABLE 1 -
DATA INPUTS
XTAL/CLOCK
1
1 2 3 D5 D4 D3 D2 D1 D0
Rx TONE DECODE OUTPUT DECODE COMPARATOR INPUT Rx TONE DETECT OUTPUT NOTONE OUTPUT SS
X1 R1
28 27 26 25 24 23 22 21 20 19 18 17 16 15
C5
Rx TONE INPUT PRIVATE ENABLE Rx/Tx CONTROL PTL
FX375J
4 5 6 7 8 9 10 11 12 13 14
SERIAL ENABLE 2 - SERIAL DATA INPUT - SERIAL CLOCK INPUT -
C2
C1
XTAL
2 VSS
C3 C4
Tx AUDIO INPUT Rx AUDIO INPUT Tx AUDIO OUTPUT
FX375J
Component
R1 R2 R3 C1 C2 C3 C4 C5 C6 C7 C8 C9 C10 D1 X1
Unit Value
1M 820k 330k 33p 33p 0.1 0.1 0.1 1.0 0.1 1.0 1.0 1.0n Small Signal 4MHz
Rx AUDIO OUTPUT BALANCED MODULATOR INPUT
R3 D1
C6
FILTER OUTPUT Tx TONE OUTPUT
R2 C7
V BIAS C8 C 10
V
SS
Fig.2 External Component Connections
Component Tolerances Resistors 10% Capacitors 20%
Operational Truth Table - Table 1 (below) illustrates the output paths and logic functions of the FX375 Private
Squelch Circuit in both Receive and Transmit modes. Receive Operation - (Rx/Tx = '1')
In the Rx mode Tx Tone and Tx Audio paths are held at bias.
D0 - D5
Tone Tone Tone Notone Tone Tone Tone Notone
Notone
1 1 1 0 1 1 1 0
Private Enable
0 0 0 0 1 1 1 1
PTL
1 0 X X 1 0 X X
Rx Tone Detect
0 0 1 X 0 0 1 X
Rx Tone Decode
1 1 0 0 1 1 0 0
Receive Signal Path State Condition
bias open open open bias open open open X Not Inverted Inverted Not Inverted X Not Inverted Not Inverted Not Inverted
Transmit Operation - (Rx/Tx ='0')
In the Tx mode the Rx audio path is held at bias and the Rx Tone Detect output at logic '0.'
D0 - D5
Tone Tone Notone Tone Tone Notone Notes 1. 2. 3. 4. 5. 6.
Notone
1 1 0 1 1 0
Private Enable
0 0 0 1 1 1
PTL
1 0 X 1 0 X
Transmitted Tone State Phase
active active bias active active bias 0 180 X 0 180 X
Transmit Signal Path State Condition
open open open open open open Inverted Inverted Not Inverted Not Inverted Not Inverted Not Inverted
The pre- and de-emphasis circuits remain in the Transmit path during Clear and Private operation. Power remains applied to the CTCSS tone decoder at all times. Carrier Frequency = 3333Hz during Private operation (Tx or Rx). During Clear operation the carrier frequency is turned off to reduce spurious emissions. Under Rx-Notone conditions the Notone output can be used to operate squelch circuitry. The functions in this table are applicable when the device is connected as recommended in Figure 2.
Table 1 Functions and Outputs
4
Operational Information
The logical inputs (D0 - D5) are used to programme the FX375 tone frequency (Rx/Tx) as shown in Table 2 (below). Loading of data is carried out in either serial or parallel formats. Nominal Frequency (Hz)
67.0 71.9 74.4 77.0 79.7 82.5 85.4 88.5 91.5 94.8 97.4 100.0 103.5 107.2 110.9 114.8 118.8 123.0 127.3 131.8 136.5 141.3 146.2 151.4 156.7 162.2 167.9 173.8 179.9 186.2 192.8 203.5 210.7 218.1 225.7 233.6 241.8 250.3 Serial Input Mode Notone
FX375 Frequency (Hz)
67.05 71.9 74.35 76.96 79.77 82.59 85.38 88.61 91.58 94.76 97.29 99.96 103.43 107.15 110.77 114.64 118.8 122.8 127.08 131.67 136.61 141.32 146.37 151.09 156.88 162.31 168.14 173.48 180.5 186.29 192.86 203.65 210.17 218.58 226.12 234.19 241.08 250.28
fo (%)
+ 0.07 0 - 0.07 - 0.5 + 0.09 + 0.1 - 0.2 + 0.13 + 0.09 - 0.04 - 0.11 - 0.04 - 0.07 - 0.05 - 0.12 - 0.14 0 - 0.17 - 0.17 - 0.10 + 0.08 + 0.02 + 0.12 - 0.2 + 0.11 + 0.07 + 0.14 - 0.19 + 0.14 + 0.05 + 0.03 + 0.07 - 0.25 + 0.22 + 0.18 + 0.25 - 0.30 - 0.01
Tone Data Programme Inputs
D0 1 1 0 1 1 0 0 0 1 1 0 1 0 0 1 1 0 0 1 1 0 0 1 1 0 0 1 1 0 0 1 1 0 0 1 1 0 0 X 0 D1 1 1 1 1 0 1 0 1 1 0 1 0 0 0 1 1 1 1 0 0 0 0 1 1 1 1 0 0 0 0 1 1 1 1 0 0 0 0 X 0 D2 1 1 1 1 1 1 1 1 0 1 0 1 1 1 0 0 0 0 0 0 0 0 1 1 1 1 1 1 1 1 0 0 0 0 0 0 0 0 Clk 0 D3 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 Data 0 D4 1 1 1 0 1 1 1 0 1 1 1 0 1 0 1 0 1 0 1 0 1 0 1 0 1 0 1 0 1 0 1 0 1 0 1 0 1 0 0 1 D5 1 0 1 0 1 0 1 0 1 0 1 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 1 1
Table 2 Tone Programming
Load/Latch and Control Functions - The Load/Latch function regulates the loading of the FX375 tone
frequency (D0 - D5, Table 2) in either the serial or parallel modes. The Control input enables the flexible use of the Rx/Tx and Private Enable functions, its use is illustrated in Table 3.
Load Configuration
Parallel Parallel Parallel Parallel Serial Serial Notes
Load/Latch Logic
1 0 1 0 0 0-1-0
and
Control Logic
0 0 1 1 1 0
Loading mode of :-
D0 - D5
Transparent Latched Transparent Latched Load data in Latch data in
Rx/Tx, Private Enable
Transparent Latched Transparent Transparent Transparent Latched
Glossary - Transparent Data at the device inputs acts directly. Latched In this position data and/or functions are latched in. '0 - 1 - 0' is a strobe pulse as shown in figures 3 and 4 (Timing).
Table 3 Load/Latch and Control Functions
5
Timing Information ...... Control instructions are input to the FX375 by serial (figure 3) or parallel
(figure 4) means, using Data Inputs and Load/Latch as shown in the diagrams below.
D4 SERIAL MODE ENABLE D5 t SMS SERIAL CLOCK t DH t DS tPWH t PWL
SERIAL DATA INPUT
t LL t LLW LOAD/LATCH
Fig.3 Serial Load Timing
Min. Serial
Serial Mode Enable Set Up Time - (tSMS) Clock 'High' Pulse Width - (tpWH) Clock 'Low' Pulse Width - (tpWL) Data Set Up Time - (tDS) Data Hold Time - (tDH) Load/Latch Set Up Time - (tLL) Load/Latch Pulse Width - (tLLW) Figure 3 250 250 250 150 50 250 150 Figure 4 200 150 - 50
Typ.
- - - - - - - - - - -
Max.
- - - - - - - - - 50 -
Unit
ns ns ns ns ns ns ns ns ns ns ns
Parallel
Data Valid Time - (tVP) Load Time - (tL) Fall Time - (tF) Data Hold Time - (tH)
Serial Loading Sequence : With Load/Latch at logic '0' serial data is loaded in the sequence :D5, D4, D3, D2, D1, D0, Rx/Tx, Private Enable. When these 8 bits have been clocked in on the rising clock edge, data is latched by strobing the Load/Latch input - " 0 - 1 - 0 " (Figure 3).
Table 4 Timing
- DATA INPUTS D0 - D5 Rx/Tx PRIVATE ENABLE
t VP
tL LOAD/LATCH
tF tH
LOAD DATA
DATA LATCHED
Fig.4 Parallel Load Timing
6
Specification Electrical Characteristics
Absolute Maximum Ratings
Exceeding the maximum rating can result in device damage. Operation of the device outside the operating limits is not implied. Supply voltage Input voltage at any pin (ref VSS = 0V) Sink/source current (supply pins) (other pins) Total device dissipation @ TAMB 25C Derating Operating temperature range: FX375J FX375LG/LS Storage temperature range: FX375J FX375LG/LS - 0.3 to 7.0V - 0.3 to (VDD + 0.3V) +/- 30mA +/- 20mA 800mW Max. 10mW/C - 30C to + 85C (ceramic) - 30C to + 70C (plastic) - 55C to + 125C (ceramic) - 40C to + 85C (plastic)
Operating Limits
All device characteristics are measured under the following conditions unless otherwise specified: VDD = 5.0V, TAMB = 25C, Xtal/Clock f0 = 4.0 MHz, Audio level 0dB ref: = 300mV rms. Composite input signal = 0dB, 1kHz tone in -12dB (6kHz band limited) gaussian white noise with a -20dB CTCSS tone.
Characteristics
Static Values Supply Voltage Supply Current : Rx /Tx (Operating) Rx standby (No Decode) Rx only (Decoding) Analogue Input Impedance Analogue Output Impedance Tone Input Impedance Digital Input Impedance Input Logic '1' Input Logic '0' Output Logic '1' (I = 0.1mA) Output Logic '0' (I = 0.1mA)
See Note
Min.
4.5 - - - - - - - 3.5 - 4.0 -
Typ.
5.0 8.0 2.8 5.0 0.5 0.5 1.0 1.0 - - - -
Max.
5.5 - - - - - - - - 1.5 - 1.0
Unit
V mA mA mA M k M M V V V V
Dynamic Values Maximum Input Level Decoder Tone Input Signal Level Response Time De-response Time Selectivity
-
+ 10.5
-
dB
1,4 1,4,6 1,4,6 4
- 20 - - 0.5
- - - -
- 250 250 3.0
dB ms ms %o
Encoder Tone Output Level (relative 775mVrms) Tone Frequency Accuracy Tone Harmonic Distortion Tone Output Load Current Output Level Variation between Tones Rise Time (to 90% nominal level) (o >100Hz) (o <100Hz)
2
- 3.0 - 0.3 - - - - -
0 - 2.0 - 0.1 15 45
+ 3.0 + 0.3 5.0 5.0 - - -
dB %o % mA dB ms ms
5 5
7
Specification Frequency Characteristics
Characteristics
Rx Clear Total Harmonic Distortion Output Noise Level Passband Gain (300Hz - 3033Hz) Passband Ripple (300Hz - 3033Hz) Audio Stopband Attenuation (in > 3333Hz) (in > 3633Hz) (in < 250Hz) Rx Invert Carrier Frequency Total Harmonic Distortion Baseband Breakthrough Carrier Breakthrough Output Noise Level Passband Ripple (300Hz - 3033Hz) Audio Stopband Attenuation (in > 3333Hz) (in > 3633Hz) (in < 250Hz)
See Note
3 7 3
Min.
- - - - - - -
Typ.
2 - 43 0 - 20 45 42
Max.
5 - - 3 - - -
Unit
% dB dB dB dB dB dB
3,8 7 8
- - - - - - - - -
3333 4 - 40 - 40 - 37 - 50 60 60
- 10 - - - 5 - - -
Hz % dB dB dB dB dB dB dB
Tx Clear Total Harmonic Distortion Output Noise Level Passband Gain (300Hz - 3033Hz) Passband Ripple (300Hz - 3033Hz) Audio Stopband Attenuation (in > 3333Hz) (in > 3633Hz) (in < 250Hz) Pre- and De-emphasis Tx Invert Carrier Frequency Total Harmonic Distortion Baseband Breakthrough Carrier Breakthrough Output Noise Level Passband Ripple (300Hz - 3033Hz) Audio Stopband Attenuation (in > 3333Hz) (in > 3633Hz) (in < 250Hz) Pre- and De-emphasis
3 7 3 3
- - - - - - - -
3 - 43 0 - 20 45 42 -
5 - - 4 - - - 6
% dB dB dB dB dB dB dB/octave
3,8 7 3,8 8 8 8
- - - - - - - - - -
3333 4 - 40 - 40 - 37 - 50 60 60 -
- 10 - - - 5 - - - 6
Hz % dB dB dB dB dB dB dB dB/octave
Notes 1. 2. 3. 4. 5. 6. 7. 8.
These values are obtained using the external integrator components as detailed in Figure 2. An Emitter Follower output. With an input signal of 1kHz @ 0dB. Under Composite Signal test conditions. Any programmed tone with RL = 600, CL = 15pF. Including any response to a phase reversal instruction. o > 100Hz, (for 100Hz > o > 67Hz : t = [100/o (Hz)] x 250ms). Input a.c. short circuit, audio path enabled, measured in a 30kHz bandwidth. Due to frequency inversion, this figures reflects the difference from the expected ideal response.
8
Private Squelch Circuit ...... Application Notes
The FX375 Private Squelch Circuit utilizes Audio Frequency Inversion and Continuous Tone Controlled Squelch System (CTCSS) techniques to provide secure voice communication on a common radio channel.
Clear/Private Switching is controlled by the logic state of the Private Enable input. Table 1 shows that, in the
receive condition the signal path will only be inverted when the programmed CTCSS tone is received. Although other logic actions will enable the receive path, privacy of the conversation is maintained at all times. Pre- and De-emphasis (6dB/octave) filters are included on-chip in the transmit path, so that the use of this device will produce natural sounding audio (clear or private modes) when installed in modern radio communication transceivers, with or without existing audio processing circuitry. The recommended layout is shown in block form below. Figure 5 shows the recommended positioning of the
CLEAR
To Transmitter Stages Amplifier Pre emphasis Band Pass Filter Band Pass Filter De-emphasis Pre-emphasis Modulator
CLEAR
From Receiver Stages Demodulator Band Pass Filter Band Pass Filter De-emphasis Amplifier
Fig.5 The Private Squelch Circuit Installed within a Typical Audio Stage
FX375 (shaded areas) when installed within the audio stages of a typical transceiver system. The accompanying waveform diagrams indicate the relative "voice band amplitudes" at each stage of the receive or transmit process.
Installation Recommendations - Care should be taken on the design and layout of the printed circuit
board taking into consideration the points noted below. (a) All external components (as recommended in Figure 2) should be kept close to the package. (b) Tracks should be kept short, particularly the Audio and VBIAS inputs. (c) Xtal/clock and digital tracks should be kept well away from analogue inputs and outputs. (d) Inputs and outputs should be screened wherever possible. (e) A "ground plane" connected to VSS will assist in eliminating external pick-up on input and output pins. (f) It is recommended that the power supply rails have less than 1mV rms of noise allowed. (g) Tx Tone Output loading - Large capacitive loads could cause this pin to oscillate. If capacitive loads in excess of 100pF are unavoidable, a resistor of 1k or greater put in series with the load should minimise this effect.
9
Package Outlines
The FX375 is available in the package styles outlined below. Mechanical package diagrams and specifications are detailed in Section 10 of this document. Pin 1 identification marking is shown on the relevant diagram and pins on all package styles number anti-clockwise when viewed from the top.
Handling Precautions
The FX375 is a CMOS LSI circuit which includes input protection. However precautions should be taken to prevent static discharges which may cause damage.
FX375J
28-pin cerdip DIL
(J5)
FX375LG 24-pin quad plastic encapsulated bent and cropped (1 L)
NOT TO SCALE
NOT TO SCALE
Max. Body Length Max. Body Width
37.05mm 13.36mm
Max. Body Length Max. Body Width
10.25mm 10.25mm
FX375LS
24-lead plastic leaded chip carrier (L2)
NOT TO SCALE
Ordering Information
FX375J FX375LG FX375LS 28-pin cerdip DIL (J5)
24-pin encapsulated bent and cropped (L1) 24-lead plastic leaded chip carrier (L2)
Max. Body Length Max. Body Width 10.40mm 10.40mm
CML does not assume any responsibility for the use of any circuitry described. No circuit patent licences are implied and CML reserves the right at any time without notice to change the said circuitry.
CML Microcircuits
COMMUNICATION SEMICONDUCTORS
CML Product Data
In the process of creating a more global image, the three standard product semiconductor companies of CML Microsystems Plc (Consumer Microcircuits Limited (UK), MX-COM, Inc (USA) and CML Microcircuits (Singapore) Pte Ltd) have undergone name changes and, whilst maintaining their separate new names (CML Microcircuits (UK) Ltd, CML Microcircuits (USA) Inc and CML Microcircuits (Singapore) Pte Ltd), now operate under the single title CML Microcircuits. These companies are all 100% owned operating companies of the CML Microsystems Plc Group and these changes are purely changes of name and do not change any underlying legal entities and hence will have no effect on any agreements or contacts currently in force. CML Microcircuits Product Prefix Codes Until the latter part of 1996, the differentiator between products manufactured and sold from MXCOM, Inc. and Consumer Microcircuits Limited were denoted by the prefixes MX and FX respectively. These products use the same silicon etc. and today still carry the same prefixes. In the latter part of 1996, both companies adopted the common prefix: CMX. This notification is relevant product information to which it is attached.
Company contact information is as below:
CML Microcircuits (UK)Ltd
COMMUNICATION SEMICONDUCTORS
CML Microcircuits (USA) Inc.
COMMUNICATION SEMICONDUCTORS
CML Microcircuits (Singapore)PteLtd
COMMUNICATION SEMICONDUCTORS
Oval Park, Langford, Maldon, Essex, CM9 6WG, England Tel: +44 (0)1621 875500 Fax: +44 (0)1621 875600 uk.sales@cmlmicro.com www.cmlmicro.com
4800 Bethania Station Road, Winston-Salem, NC 27105, USA Tel: +1 336 744 5050, 0800 638 5577 Fax: +1 336 744 5054 us.sales@cmlmicro.com www.cmlmicro.com
No 2 Kallang Pudding Road, 09-05/ 06 Mactech Industrial Building, Singapore 349307 Tel: +65 7450426 Fax: +65 7452917 sg.sales@cmlmicro.com www.cmlmicro.com
D/CML (D)/1 February 2002


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