DLO1414 [INFINEON]

145 4-character 5 x 7 Dot Matrix Alphanumeric Intelligent Display with Memory/Decoder/Driver; 145 4字5× 7内存/解码器/驱动器点阵字母数字智能显示
DLO1414
型号: DLO1414
厂家: Infineon    Infineon
描述:

145 4-character 5 x 7 Dot Matrix Alphanumeric Intelligent Display with Memory/Decoder/Driver
145 4字5× 7内存/解码器/驱动器点阵字母数字智能显示

解码器 驱动器 光电 功效
文件: 总5页 (文件大小:205K)
中文:  中文翻译
下载:  下载PDF数据表文档文件
RED DLR1414  
HIGH EFFICIENCY RED DLO1414  
GREEN DLG1414  
.145" 4-character 5 x 7 Dot Matrix  
Alphanumeric Intelligent Display  
with Memory/Decoder/Driver  
Dimensions in inches (mm)  
.240  
(6.10)  
ref.  
.0920  
(2.34)  
.1750  
(4.45)  
.012 (.30)  
± .002 (.05)  
12 pl.  
.0200 (.51)  
.800  
(20.32)  
max.  
.600±.020  
(15.24±.51)  
.0220  
(.56)  
.1440  
(3.66)  
.210  
(5.33)  
.700 max.  
(17.78)  
Luminous  
Intensity  
Code  
.010 (.25) 4 pl.  
.070 (1.78) ± .003 (.08) 4 pl.  
Part Number  
Pin Indicator  
FEATURES  
DLX 1414  
SIEMENS YYWW  
• Dot Matrix Replacement for DL1414T  
• 0.145" High, Dot Matrix Character  
• 128 Special ASCII Characters for English,  
German, Italian, Swedish, Danish, and Norwe-  
gian Languages  
• Wide Viewing Angle: X Axis ±50°,Y Axis ±75°  
• Close Vertical Row Spacing, 0.800" Centers  
• Fast Access Time, 110 ns at 25°C  
• Compact Size for Hand Held Equipment  
• Built- in Memory  
.050 (1.27) 4 pl.  
.240 (6.10)  
Z
.160±.020  
(4.06±.51)  
EIA Date Code  
.100 (2.54) 10 pl.  
at Seating Plane  
.018 (.46) 12 pl.  
.095 (2.41)  
ref.  
Tolerance: XXX±.01 (.254)  
DESCRIPTION  
The DLR/DLO/DLG1414 is a four digit 5x7 dot matrix display module with a  
built-in CMOS integrated circuit. This display is a drop-in dot matrix replace-  
ment for the DL1414T with segmented characters.  
• Built-in Character Generator  
• Built-in Multiplex and LED Drive Circuitry  
• Direct Access to Each Digit Independently  
and Asynchronously  
• TTL Compatible, 5 Volt Power  
• Low Power Consumption, 20 mA per Charac-  
ter Typical  
• Intensity Coded for Display Uniformity  
• Extended Operating Temperature Range:  
–40°C to +85°C  
The integrated circuit contains memory, ASCII ROM decoder, multiplex cir-  
cuitry and drivers. Data entry is asynchronous and random. A display system  
can be built using any number of DLX1414s since each character in any  
DLX1414 can be addressed independently and will continue to display the  
character last stored until replaced by another.  
System interconnection is very straightforward. The least signicant two  
address bits (A0, A1) are normally connected to the like named inputs of all  
displays in the system. Data lines are connected to all DLX1414s directly  
and in parallel as is the write line (WR). The display then will behave as a  
write only memory.  
• End Stackable, 4-Character Package  
The DLX1414 has several features superior to competitive devices. The  
character set consists of 128 special ASCII characters for English, German,  
Italian, Swedish, Danish, and Norwegian.  
See Appnotes 18, 19, 22, and 23 for additional information.  
2–1  
Maximum Ratings  
Figure 1.Top view  
12 11 10  
9
8
7
DC Supply Voltage ....................... –0.5 to +7.0 Vdc  
Input Voltage Levels Relative  
to GND (all inputs)............. –0.5 to V +0.5 Vdc  
CC  
Operating Temperature ..................–40°C to +85°C  
Storage Temperature ....................–40°C to +100°C  
Maximum Solder Temperature ........063" (1.59 mm)  
below Seating Plane, t<5 sec.................... 260°C  
Relative Humidity at 85°C ................................85%  
digit digit digit digit  
3
2
1
0
1
2
3
4
5
6
Optical Characteristics  
Spectral Peak Wavelength  
Pin  
1
Function  
Pin  
7
Function  
Red ................................................... 660 nm typ.  
High Efficiency Red (HER) ............... 630 nm typ.  
Green ................................................ 565 nm typ.  
Viewing Angle (off normal axis)  
Horizontal..................................................... ±50°  
Vertical......................................................... ±75°  
Character Height........................................... 0.145"  
Time Averaged Luminous Intensity1  
D5 Data Input  
D4 Data Input  
WR Write  
GND  
2
8
D0 Data Input (LSB)  
D1 Data Input  
D2 Data Input  
D3 Data Input  
D6 Data Input (MSB)  
3
9
4
A1 Digit Select  
A0 Digit Select  
10  
11  
12  
5
6
V
CC  
(100% brightness, V =5 V)  
CC  
Red ............................................ 50 µcd/LED typ.  
HER............................................ 60 µcd/LED typ.  
Green ......................................... 70 µcd/LED typ.  
LED to LED Intensity Matching ........... 1.8:1.0 max.  
Figure 2.Timing characteristics (V =4.5 V)  
CC  
2.0 V  
0.8 V  
A0, A1  
LED to LED Hue Matching at V =5 V  
CC  
TAH  
TAS  
(Green only) .....................................±2 nm max.  
2.0 V  
0.8 V  
Note 1: Peak luminous intensity values can be calculated  
by multiplying these values by 7.  
D0-D6  
WR  
TDS  
TDH  
2.0 V  
0.8 V  
TW  
TACC  
Note: These waveforms are not edge triggered.  
DC Characteristics  
–40°C  
+25°C  
+85°C  
Parameter  
Units  
mA  
Conditions  
Min.  
Typ.  
Max.  
Min.  
Typ.  
Max.  
Min.  
Typ.  
Max.  
I
4 Digits on  
90  
120  
80  
105  
70  
95  
V
=5 V  
CC  
CC  
20 dots/digit  
I
Blank  
2.8  
60  
4.0  
2.3  
50  
3.0  
2.0  
40  
2.5  
80  
mA  
V
=WR=5 V,  
CC  
CC  
V =0 V  
IN  
I
(all inputs)  
30  
120  
25  
100  
20  
mA  
V
V =0.8 V, V =5 V  
IN CC  
IL  
V
2.0  
2.0  
2.0  
V
=5 V ±0.5 V  
IH  
CC  
V
0.8  
5.5  
0.8  
5.5  
0.8  
5.5  
V
V
=5 V ±0.5 V  
IL  
CC  
V
4.5  
5.0  
4.5  
5.0  
4.5  
5.0  
V
CC  
AC Characteristics  
Guaranteed Minimum Timing Parameters at V =5.0 V ±0.5 V  
CC  
Parameter  
Symbol  
–40°C  
10  
+25°C  
10  
+85°C  
Units  
Address Set Up Time  
Address Hold Time  
Write Time  
T
10  
40  
90  
50  
40  
140  
ns  
ns  
ns  
ns  
ns  
ns  
AS  
T
20  
30  
AH  
T
60  
70  
W
Data Set Up Time  
Data Hold Time  
T
20  
30  
DS  
T
20  
30  
DH  
(1)  
Access Time  
T
90  
110  
ACC  
Note: 1. T  
=Set Up Time + Write Time + Hold Time.  
ACC  
DLR/DLO/DLG1414  
2–2  
Loading Data State Table  
Digit  
1
WR  
A1 A0 D6 D5 D4 D3 D2 D1 D0  
3
2
0
H
L
L
L
L
L
L
L
previously loaded display  
G
G
G
G
B
B
B
R
R
R
L
L
L
L
E
E
U
U
U
E
E
Y
E
E
E
E
E
W
L
L
H
H
L
L
X
L
H
H
H
H
H
H
L
L
L
L
L
L
L
H
L
L
L
H
L
L
H
L
L
L
H
H
H
L
L
L
L
H
L
H
H
H
L
H
L
H
H
L
L
H
H
H
H
X
see character code  
see character set  
X=dont care  
Figure 3.Typical interconnection for 32 characters  
V+  
V-  
D31 D28 D27 D24 D23 D20 D19 D16 D15 D12 D11  
D8 D7  
D4 D3  
D0  
D0-D6  
A0 A1  
7
2
DATA  
ADDRESS  
7
6
5
4
3
ADDRESS A2  
A
B
C
A3  
A4  
WRITE  
G 2  
1
0
74138  
DLR/DLO/DLG1414  
2–3  
Figure 4. Block diagram  
Display  
Rows 0 to 6  
3
2
1
0
Columns 0 to 19  
Row Control Logic  
&
Row Drivers  
Timing and Control Logic  
÷ 7  
128  
÷
OSC  
Counter  
Counter  
Row Decoder  
ROM  
128 X 35 Bit  
ASCII  
RAM Read Logic  
Column Enable  
Latches and  
Column Drivers  
D6  
D5  
D4  
D3  
D2  
D1  
D0  
7 Bit ASCII Code  
Column Data  
RAM  
Memory  
Character  
Decode  
4480 bits  
4 X 7 bit  
WR  
A0  
A1  
Write  
Address  
Decoder  
Character Set  
D0  
0
0
0
0
0
1
0
0
0
1
0
1
0
0
2
1
1
0
0
3
0
0
1
0
4
1
0
1
0
5
0
1
1
0
6
1
1
1
0
7
0
0
0
1
8
1
0
0
1
9
0
1
1
1
0
1
B
0
0
1
1
C
1
0
0
1
1
1
E
1
1
1
1
F
D1  
D2  
D3  
ASCII  
CODE  
0
1
1
1
D6 D5 D4 HEX  
A
D
0
0
0
0
1
1
1
1
0
0
1
1
0
0
1
1
0
1
0
1
0
1
0
1
0
1
2
3
4
5
6
7
1. High=1 level. 2. Low=0 level. 3. Upon power up, device will initialize in a random state.  
DLR/DLO/DLG1414  
2–4  
Design Considerations  
For further information refer to Appnotes 18 and 19 in the cur-  
rent Siemens Optoelectronic Data Book.  
For details on design and applications of the DLX1414 using  
standard bus congurations in multiple display systems, or  
parallel I/O devices, such as the 8255 with an 8080 or mem-  
ory mapped addressing on processors such as the 8080,  
Z80, 6502, 8748, or 6800, refer to Appnote 15 in the current  
Siemens Optoelectronic Data Book.  
An alternative to soldering and cleaning the display modules is  
to use sockets. Eighteen pin DIP sockets .600" wide with .100"  
centers work well for single displays. Multiple display assem-  
blies are best handled by longer SIP sockets or DIP sockets  
when available for uniform package alignment. Socket manu-  
facturers are Aries Electronics, Inc., Frenchtown, NJ; Garry  
Manufacturing, New Brunswick, NJ; Robinson-Nugent, New  
Albany, IN; and Samtec Electronic Hardware, New Albany, IN.  
Electrical & Mechanical Considerations  
Voltage Transient Suppression  
We strongly recommend that the same power supply be used  
for the display and the components that interface with the dis-  
play to avoid logic inputs higher than V . Additionally, the  
For further information refer to Appnote 22 in the current Sie-  
mens Optoelectronic Data Book.  
CC  
LEDs may cause transients in the power supply line while  
they change display states. The common practice is to place  
Optical Considerations  
The .145" high characters of the DLX1414 gives readability up  
to eight feet. The user can build a display that enhances read-  
ability over this distance by proper lter selection .  
.01 mF capacitors close to the displays across V and GND,  
CC  
one for each display, and one 10 mF capacitor for every sec-  
ond display.  
Using lters emphasizes the contrast ratio between a lit LED  
and the character background. This will increase the discrimi-  
nation of different characters. The only limitation is cost.  
Remember to take into consideration the ambient lighting envi-  
ronment for the best cost/benet ratio for lters.  
ESD Protection  
The metal gate CMOS IC of the DLX1414 is extremely  
immune to ESD damage. However, users of these devices are  
encouraged to take all the standard precautions, normal for  
CMOS components. These include properly grounding per-  
sonnel, tools, tables, and transport carriers that come in con-  
tact with unshielded parts. Where these conditions are not, or  
cannot be met, keep the leads of the device shorted together  
or the parts in anti-static packaging.  
Incandescent (with almost no green) or uorescent (with almost  
no red) lights do not have the at spectral response of sunlight.  
Plastic band-pass lters are an inexpensive and effective way  
to strengthen contrast ratios. The DLR1414 is a standard red  
display and should be matched with long wavelength pass l-  
ter in the 600 nm to 620 nm range. For displays of multiple col-  
ors, neutral density grey lters offer the best compromise.  
Soldering Considerations  
The DLX1414 can be hand soldered with SN63 solder using a  
grounded iron set to 260°C.  
The DLO1414 is a high efciency red display and should be  
matched with a long wavelength pass lter in the 570 nm to 590  
range. The DLG1414 should be matched with a yellow-green  
band-pass lter that peaks at 565 nm. For displays of multiple  
colors, neutral density gray lters offer the best compromise.  
Wave soldering is also possible following these conditions:  
Preheat that does not exceed 93°C on the solder side of the  
PC board or a package surface temperature of 85°C. Water  
soluble organic acid flux (except carboxylic acid) or resin-  
based RMA ux without alcohol can be used.  
Additional contrast enhancement can be gained by shading  
the displays. Plastic band-pass lters with built-in louvers offer  
the next step up in contrast improvement. Plastic filters can be  
improved further with anti-reective coatings to reduce glare.  
The trade-off is fuzzy characters. Mounting the lters close to  
the display reduces this effect. Take care not to overheat the  
plastic filter by allowing for proper air flow.  
Wave temperature of 245°C ±5°C with a dwell between 1.5  
sec. to 3.0 sec. Exposure to the wave should not exceed tem-  
peratures above 260°C for ve seconds at 0.063" below the  
seating plane. The packages should not be immersed in the  
wave.  
Post Solder Cleaning Procedures  
Optimal lter enhancements are gained by using circular polar-  
ized, anti-reective, band-pass lters. The circular polarizing  
further enhances contrast by reducing the light that travels  
through the lter and reects back off the display to less  
than 1%.  
The least offensive cleaning solution is hot D.I. water (60°C)  
for less than 15 minutes. Addition of mild saponiers is  
acceptable. Do not use commercial dishwasher detergents.  
For faster cleaning, solvents may be used. Carefully select  
solvents as some may chemically attack the nylon package.  
Maximum exposure should not exceed two minutes at ele-  
vated temperatures. Acceptable solvents are TF (trichlorotrif-  
luorethane), TA, 111 Trichloroethane, and unheated acetone.  
Several lter manufacturers supply quality filter materials.  
Some of them are: Panelgraphic Corporation, W. Caldwell, NJ;  
SGL Homalite, Wilmington, DE; 3M Company, Visual Products  
Division, St. Paul, MN; Polaroid Corporation, Polarizer Division,  
Cambridge, MA; Marks Polarized Corporation, Deer Park, NY,  
Hoya Optics, Inc., Fremont, CA.  
Note: Acceptable commercial solvents are: Basic TF, Arklone P,  
Genesolve D, Blaco-tron TF, Freon TA, Genesolve DA, and  
Blaco-tron TA.  
One last note on mounting lters: recessing displays and bezel  
assemblies is an inexpensive way to provide a shading effect in  
overhead lighting situations. Several bezel manufacturers are:  
R.M.F. Products, Batavia, IL; Nobex Components, Griffith Plas-  
tic Corp., Burlingame, CA; Photo Chemical Products of Califor-  
nia, Santa Monica, CA; I.E.E.-Atlas, Van Nuys, CA.  
Unacceptable solvents contain alcohol, methanol, methylene  
chloride, ethanol, TP35, TCM, TMC, TMS+, TE, or TES. Since  
many commercial mixtures exist, contact a solvent vendor for  
chemical composition information. Some major solvent man-  
ufacturers are: Allied Chemical Corporation, Specialty Chem-  
ical Division, Morristown, NJ; Baron-Blakeslee, Chicago, IL;  
Dow Chemical, Midland, MI; E.I. DuPont de Nemours & Co.,  
Wilmington, DE.  
Refer to Siemens Appnote 23 for further information.  
DLR/DLO/DLG1414  
2–5  

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