. HIGH SPEED .LOW POWER DISSIPATION .HIGH NOISE IMMUNITY M54/M74HC190 M54/M74HC191 4 BIT SYNCHRONOUS UP/DOWN COUNTERS. fmax = 48 MHz (TYP.

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1 M54/M74HC190 M54/M74HC191 4 BIT SYNCHRONOUS UP/DOWN COUNTERS. HIGH SPEED fmax = 48 MHz (TYP.) AT VCC =5V.LOW POWER DISSIPATION I CC =4µA (MAX.) AT T A =25 C.HIGH NOISE IMMUNITY VNIH =VNIL =28%VCC (MIN.) OUTPUT DRIVE CAPABILITY 10 LSTTL LOADS SYMMETRICAL OUTPUT IMPEDANCE IOH =IOL = 4 ma (MIN.) BALANCED PROPAGATION DELAYS t PLH =t. PHL WIDE OPERATING VOLTAGE RANGE VCC (OPR) = 2 V TO 6 V PIN AND FUNCTION COMPATIBLE WITH 54/74LS190/191 B1R (Plastic Package) M1R (Micro Package) F1R (Ceramic Package) C1R (Chip Carrier) ORDER CODES : M54HCXXXF1R M74HCXXXM1R M74HCXXXB1R M74HCXXXC1R PIN CONNECTIONS (top view) DESCRIPTION The M54/74HC190/191 are high speed CMOS 4-BIT SYNCHRONOUS UP/DOWN COUNTERS fabricated in silicon gate C 2 MOS technology. They have the same high speed performance of LSTTL combined with true CMOS low power coumption. State changes of the counter are synchronous with the LOW-to-HIGH traition of the Clock Pulse input. An asynchronous parallel load input overrides counting and loads the data present on the DATA inputs into the flip-flops, which makes it possible to use the circuits as programmable counters. A countenable input serves as the carry/borrow input in multi-stage counters. Control input, Down/Up, determines whether a circuit counts up or down. A MAX/MIN output and a Ripple Clock output provide overflow/underflow indication and make possible a variety of methods for generating carry/borrow signals in multistage counter applicatio. All inputs are equipped with protection circuits agait static discharge and traient excess voltage. NC = No Internal Connection October /14

2 INPUT AND OUTPUT EQUIVALENT CIRCUIT PIN DESCRIPTION PIN No SYMBOL NAME AND FUNCTION 3, 2, 6, 7 QA to QD Flip-Flop Outputs 4 ENABLE Count Enable Input (Active LOW) 5 U/D Parallel Data Input 11 LOAD Load Input (Active LOW) 12 MA/MI OUT Terminal Count Output 13 RC Ripple Clock Output (Active LOW) 14 CLOCK Cloack Input (LOW to HIGH, Edge-triggered) 15, 1, 10, 9 DA to DD Data Inputs 8 GND Ground (0V) 16 VCC Positive Supply Voltage IEC LOGIC SYMBOL (HC190) IEC LOGIC SYMBOL (HC191) TRUTH TABLE INPUTS OUTPUS LOAD ENABLE D/U CLOCK QA QB QC QD FUNCTION L X X X a b c d PRESET DATA H L L UP COUNT UP COUNT H L H DOWN COUNT DOWN COUNT H H X NO CHANGE NO COUNT H X X NO CHANGE NO COUNT X: Don t Care a - d: The level of steady state inputs at inputs a through D respectively 2/14

3 LOGIC DIAGRAM (HC190) 3/14

4 LOGIC DIAGRAM (HC191) 4/14

5 TIMING CHART (HC190) TIMING CHART (HC191) 5/14

6 ABSOLUTE MAXIMUM RATINGS Symbol Parameter Value Unit VCC Supply Voltage -0.5 to +7 V V I DC Input Voltage -0.5 to V CC V VO DC Output Voltage -0.5 to VCC V IIK DC Input Diode Current ± 20 ma I OK DC Output Diode Current ± 20 ma IO DC Output Source Sink Current Per Output Pin ± 25 ma ICC or IGND DC VCC or Ground Current ± 50 ma P D Power Dissipation 500 (*) mw Tstg Storage Temperature -65 to +150 o C T L Lead Temperature (10 sec) 300 o C Absolute MaximumRatings are those values beyond whichdamage tothe device may occur. Functional operation under these condition isnotimplied. (*) 500 mw: 65 o C derate to 300 mw by 10mW/ o C: 65 o Cto85 o C RECOMMENDED OPERATING CONDITIONS Symbol Parameter Value Unit V CC Supply Voltage 2 to 6 V V I Input Voltage 0 to V CC V VO Output Voltage 0 to VCC V T op Operating Temperature: M54HC Series M74HC Series -55 to to +85 o C C t r,t f Input Rise and Fall Time V CC = 2 V 0 to 1000 VCC = 4.5 V 0 to 500 VCC = 6 V 0 to 400 6/14

7 DC SPECIFICATIONS Symbol V IH V IL VOH V OL II I CC Parameter High Level Input Voltage Low Level Input Voltage High Level Output Voltage Low Level Output Voltage Input Leakage Current Quiescent Supply Current VCC (V) Test Conditio TA =25 o C 54HC and 74HC Value -40 to 85 o C 74HC -55 to 125 o C 54HC Min. Typ. Max. Min. Max. Min. Max VI = 4.5 I V O =-20 µa IH or V IL IO=-4.0 ma IO=-5.2 ma V I = 4.5 I O =20µA V IH or VIL I O = 4.0 ma IO= 5.2 ma VI =VCC or GND ±0.1 ±1 ±1 µa 6.0 V I =V CC or GND µa Unit V V V V AC ELECTRICAL CHARACTERISTICS (C L =50pF,Inputt r =t f =6) Symbol t TLH tthl tplh tphl t PLH t PHL t PLH tphl tplh tphl Parameter Output Traition Time Propagation Delay Time (CLOCK - Q) Propagation Delay Time (CLOCK - RCO) Propagation Delay Time (CLOCK - MAX/MIN) Propagation Delay Time (LOAD - Q) VCC (V) Test Conditio TA =25 o C 54HC and 74HC Value -40 to 85 o C 74HC -55 to 125 o C 54HC Min. Typ. Max. Min. Max. Min. Max Unit 7/14

8 AC ELECTRICAL CHARACTERISTICS (CL =50pF,Inputtr=tf=6) Symbol t PLH tphl tplh tphl tplh t PHL t PLH t PHL fmax tw(h) tw(l) t W(L) t s ts th Parameter Propagation Delay Time (DATA - Q) Propagation Delay Time (ENABLE - RCO) Propagation Delay Time (D/U - RCO) Propagation Delay Time (D/U - MAX/MIN) Maximum Clock Frequency Minimum Pulse Width (CLOCK) Minimum Pulse Width (LOAD) Minimum Set-up Time (SI, PI - CK) Minimum Set-up Time (S0, S1 - CK) Minimum Hold Time VCC (V) Test Conditio TA =25 o C 54HC and 74HC Value -40 to 85 o C 74HC -55 to 125 o C 54HC Min. Typ. Max. Min. Max. Min. Max t REM Minimum Removal Time CIN Input Capacitance pf C PD (*) Power Dissipation for HC Capacitance for HC pf (*) C PD is defined as the value of the IC s internal equivalent capacitance which is calculated from the operating current coumption without load. (Refer to Test Circuit). Average operting current can be obtained by the following equation. I CC(opr) = C PD V CC f IN +I CC Unit MHz 8/14

9 SWITCHING CHARACTERISTICS TEST WAVEFORM TEST CIRCUIT ICC (Opr.) INPUT TRANSITION TIME IS THE SAME AS THAT IN CASE OF SWITCHINGCHARACTERISTICS TEST. 9/14

10 Plastic DIP16 (0.25) MECHANICAL DATA DIM. mm inch MIN. TYP. MAX. MIN. TYP. MAX. a B b b D E e e F I L Z P001C 10/14

11 Ceramic DIP16/1 MECHANICAL DATA DIM. mm inch MIN. TYP. MAX. MIN. TYP. MAX. A B D E e F G H L M N P Q P053D 11/14

12 SO16 (Narrow) MECHANICAL DATA DIM. mm inch MIN. TYP. MAX. MIN. TYP. MAX. A a a b b C c1 45 (typ.) D E e e F G L M S 8 (max.) P013H 12/14

13 PLCC20 MECHANICAL DATA DIM. mm inch MIN. TYP. MAX. MIN. TYP. MAX. A B D d d E e e F G M M P027A 13/14

14 Information furnished is believed to be accurate and reliable. However, SGS-THOMSON Microelectronics assumes no respoability for the coequences of use of such information nor for any infringement of patents or other rights of third parties which may results from its use. No licee is granted by implication or otherwise under any patent or patent rights of SGS-THOMSON Microelectronics. Specificatiomentioned in this publication are subject to change without notice. This publication supersedes and replaces all information previously supplied. SGS-THOMSON Microelectronicsproducts are not authorized foruse ascritical componentsin life support devices or systems without express written approval of SGS-THOMSON Microelectonics SGS-THOMSON Microelectronics - All Rights Reserved SGS-THOMSON Microelectronics GROUP OF COMPANIES Australia - Brazil - France - Germany - Hong Kong - Italy - Japan - Korea - Malaysia - Malta - Morocco - The Netherlands - Singapore - Spain - Sweden - Switzerland - Taiwan - Thailand - United Kingdom - U.S.A 14/14

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