Cost effective battery monitor and
fast charge IC for NiCd and NiMH
chargers
Objective specification
File under Integrated Circuits, IC03
1996 Feb 26
Page 2
Philips SemiconductorsObjective specification
Cost effective battery monitor and fast
charge IC for NiCd and NiMH chargers
FEATURES
• Accurate detection of fully charged batteries by
currentless peak voltage sensing
• Switch-over from fast to safe trickle charge current at
battery full detection
• Fast charge termination back-up by maximum time and
maximum temperature detection
• Several trickle charge drive possibilities for mains
isolated and non-mains isolated systems
• Battery checking to protect against short-circuited and
open batteries
• Battery monitor allows recharging of different battery
packs in the same charger
• Dual LED indicator provision
• External regulator not required because of large input
voltage range
• Few low cost external components required.
TEA1104; TEA1104T
APPLICATIONS
• Portable telephone
• Portable computer
• Portable audio
• Portable video.
GENERAL DESCRIPTION
The TEA1104 is manufactured in a BiCMOS process
intended to be used as a battery monitor circuit in charge
systems for NiCd and NiMH batteries. It is especially
designed for cost effective compact consumer
applications.
The circuit is able to detect fully charged batteries by
currentless battery voltage sensing. Several output drive
functions are available to control the (reduced) trickle
charge current to keep the batteries full with maximum life
expectations.
The battery full detection is backed up by two independent
mechanisms to make the system fail safe; maximum time
and maximum temperature.
QUICK REFERENCE DATA
SYMBOLPARAMETERCONDITIONSMIN.TYP.MAX.UNIT
V
P
I
P
V
bat
∆V
bat/Vbat
supply voltage5.45−11.5V
supply currentoutputs off−−3mA
voltage range of battery full detection0.81−3.6V
voltage peak detection level with
−0.25−%
respect to top value
I
bat
V
bat(l)
V
bat(h)
f
osc
battery monitor input current−−1nA
battery voltage protection low−0.810.91V
battery voltage protection high3.53.6−V
oscillator frequency10−100kHz
TEA1104TSO8plastic small outline package; 8 leads; body width 3.9 mmSOT96-1
1996 Feb 262
Page 3
Philips SemiconductorsObjective specification
Cost effective battery monitor and fast
charge IC for NiCd and NiMH chargers
BLOCK DIAGRAM
handbook, full pagewidth
6
V
P
4
V
bat
battery high
protection
battery low
protection
R
ref
SUPPLY
FILTER
SAMPLE-
AND-HOLD
5
POR
V
S
3
BATTERY
DETECTOR
OR
FULL
MODE
LATCH
TO
TEA1104; TEA1104T
fast
trickle
CONTROL
8
LED
1
GND
trickle
TIMER
T
T
max
min
OR
TEA1104
TEA1104T
T
cut-off
2
NTCOSC
OSCILLATOR
7
MGE354
Fig.1 Block diagram.
1996 Feb 263
Page 4
Philips SemiconductorsObjective specification
Cost effective battery monitor and fast
charge IC for NiCd and NiMH chargers
PINNING
SYMBOLPINDESCRIPTION
GND1ground
NTC2negative temperature coefficient
resistor input
V
S
V
bat
R
ref
V
P
OSC7oscillator input
LED8LED output
INTRODUCTION
The operation of the TEA1104; TEA1104T is explained
with the aid of the application diagram illustrated in Fig.7.
An application note (AN95085) is available describing the
versatility of the TEA1104; TEA1104T.
3stabilized supply voltage
4battery voltage sensing
5reference resistor
6positive supply voltage
TEA1104; TEA1104T
handbook, halfpage
• Trickle charge is active if:
– battery full is detected
– maximum time is exceeded
– maximum cut-off temperature is exceeded after the
initial phase.
GND
1
2
TEA1104
3
V
s
4
V
bat
MGE353
Fig.2 Pin configuration.
LED
8
OSCNTC
7
V
6
P
R
5
ref
An external power current source charges the batteries via
an electronic switch which is controlled by the TEA1104.
The TEA1104 monitors the battery voltage. Fully charged
batteries are detected when the battery voltage peaks. In
fact, a voltage drop of 0.25% with respect to the top value
is detected. Fast charging is initiated at ‘power on’ or at
‘replaced batteries’. The switch is continuously on,
providing that all protection levels are met. At battery full
detection, the charge current is duty cycled to reduce the
average charge current to a lower level, keeping the
batteries fully charged but at he same time assuring long
battery life. In Fig.3 the battery voltage during fast charge
is plotted.
FUNCTIONAL DESCRIPTION
A block diagram of the TEA1104; TEA1104T is illustrated
in Fig.1
Mode latch
The Mode latch determines if the system is in the fast or in
the slow charge mode.
• Fast charge is active at:
– power switch-on and battery connected
– temperature between minimum and maximum value
– battery insert
Supply block
For correct start-up, the IC supply current is limited to
35 µA (typ.) until the start-up voltage of 6.4 V is reached
(standby mode). Thereafter, the operating supply voltage
V
has to be within the window of 5.45 to 11.5 V, meaning
P
that there is no need for an external voltage regulator to
supply the IC.
The supply block delivers the following outputs:
• With the help of an external resistor (pin R
ref
), a
reference current is obtained which defines the
accuracy of all IC timing characteristics
• Externally available 4.25 V stabilized voltage source
(V
). This source is used internally to supply a large
source
part of the circuit and can be used to set the NTC biasing
and to supply other external circuitry with a maximum
current of 1 mA. Protection information is provided via
VS, to design a dual LED indicator
• Power-on reset pulse resets all digital circuitry after a
start or restart, due to an interrupted VS.
1996 Feb 264
Page 5
Philips SemiconductorsObjective specification
Cost effective battery monitor and fast
charge IC for NiCd and NiMH chargers
Open battery protection
When the rechargeable battery is removed, the output
voltage V
protection’ block will detect this voltage and the charge
current will be switched off. A digital filter prevents false
open battery protection. The open battery signal
(V
bat
4 clock pulses.
Battery monitor
One or two cell packs can be connected directly to V
(battery connection) without an external resistor divider. At
larger cell packs the battery voltage must be scaled down
to a voltage range of 0.81 to 3.6 V. It is also possible to
take a tap on the chain of batteries. Battery full is
recognized by voltage peak detection (V
decrease of 0.25% (typ.) with respect to the top value.
Keeping in mind a battery voltage range of 0.81 to 3.6 V
and an accuracy of 10% at V
detection, means that the internal ADC has to be 13 bits.
Several filters are included to prevent false full detection.
The series resistance of the battery and battery connection
can cause battery voltage fluctuations and therefore it is
necessary to stop the charging before sensing; this is
called the ‘inhibit time’. This will be performed
automatically via the regulation output pin LED. The
charging is stopped for ten oscillator periods at the end of
which sampling is performed. The battery voltage will now
be sensed in a currentless way.
Timer/oscillator
The oscillator has a sawtooth shape.
The period time is defined by: t
The oscillator frequency is used in the timer block. In this
block several important signals are created.
• Time-out for protecting the fast charge process in time.
Time-out is normally chosen to be 25% longer than the
associated fast charge time. So for a one hour charge
time, time-out = 1.25 hours. The relationship with the
oscillator period time is:
– Time-out = 2 exp28 × t
• The duty factor in the trickle charge mode: The duty
factor is fixed to1⁄40, meaning that the average:
–I
–ton=3⁄4× 2 exp9 × t
–t
will rise to a high level. The ‘open battery
bat
> 3.6 V) must be present for a duration of at least
), meaning a
peak
= 2.4 V for battery full
bat
=1⁄40× I
trickle
= 2 exp14 × t
off
fast
osc
=K×R
osc
osc
osc
.
ref
× C
osc
bat
TEA1104; TEA1104T
• The battery voltage is sensed each ‘cycle time’. The
cycle time is defined as:
–T
• The ‘inhibit time’ is the time that the charger current is
disabled, after which the battery voltage is sensed in a
currentless way.
–t
Battery sampling takes one oscillator period for each
cycle interval.
–t
• The ‘disable time’ is present to correct start-up with flat
or polarized batteries. During the disable time, the
battery full detection is not active.
–t
The timer is reset by battery full detection, but is on hold
during the temperature and battery-low protection modes.
Temperature protection block
Temperature sensing is achieved by using a cheap
thermistor. Two temperature windows are built in:
• If the temperature at power-on reset is above the
maximum temperature protection level, the trickle
charge current is active. The same applies for
temperatures below the minimum temperature. Fast
charging starts when the temperature is in between the
minimum and the maximum temperature levels.
• If the temperature is between the maximum and
minimum temperature at power-on reset, the fast charge
current level is active. If the temperature sinks below the
minimum temperature level, again the trickle charge
level is active. At rising temperature, the fast charge
current is latched off at the ‘cut off’ temperature level.
To avoid switching on and off with temperature, a
hysteresis is built in for low temperature level. If the
temperature protection is not necessary, pin ‘Negative
Temperature Coefficient resistor’ (NTC) must be
connected to pin R
Battery low protections
When the battery voltage is less than 0.81 V, the circuit
assumes that there are short circuited batteries and the
charge current is reduced to the trickle charge level. If the
batteries are flat, the trickle charge current is able to raise
the battery voltage within an acceptable period of time,
after which fast charging starts.
= 2 exp16 × t
cycle
=10×t
inhibit
sample=tosc
disable
osc
= 2 exp −5 × time-out
ref
osc
.
1996 Feb 265
Page 6
Philips SemiconductorsObjective specification
Cost effective battery monitor and fast
charge IC for NiCd and NiMH chargers
Output drivers
Several output drive possibilities are supported by the
TEA1104, to limit the fast charge current and to indicate
the mode that the charge is in.
In mains isolated systems, output drive current is available
for a bipolar or MOS switching device. Moreover, current
regulators can be driven (see Fig.4).
handbook, full pagewidth
V
bat
TEA1104; TEA1104T
In non mains isolated systems, the current source can be
switched via the auxiliary winding (see Fig.6) using the
TEA140X power plugs.
In the application section, an example is shown driving two
LEDs that are indicating fast charging, protection during
fast charging, full status and removed batteries. It is also
possible to output the same information via one LED only.
MGE355
full
detection
handbook, full pagewidth
TEA1104
I
charge
fast charge (I
)trickle charge (I
fast
Fig.3 NiCd battery characteristics during a 1.25C charge cycle.
outputoutput
LED
TEA1104
LED
LED
TEA1104
fast
LM317
t
/40)
output
Fig.4 Output drivers.
1996 Feb 266
MGE356
Page 7
Philips SemiconductorsObjective specification
Cost effective battery monitor and fast
charge IC for NiCd and NiMH chargers
handbook, full pagewidth
Vs > 11.5 V
yes
clamp at 11.5 V
I
= 25 mA
DDmax
circuit active
nono
START
6.2 V < Vs < 11.5 V
yes
total reset logic
set TIME OUT (e.g. 111 min)
set T
T
min
V
or T
or T
trickle charge
OFF
(e.g. 48
max
(e.g. 20
circuit active
< 0.81 V
bat
< T
bat
> T
bat
(note 1)
yes
I
/ 40
fast
yes
dual LED
indication
(note 2)
yes
FASTFULL
blinks
min
max
o
C)
o
C)
TEA1104; TEA1104T
Vs < 5.25 V
yes
circuit non-active
IDD ≤ 45 µA
no
FAST
no
blinks
(1) V
< 0.81V due to empty or flat battery.
bat
(2) For single LED application see Fig.7, for dual LED
application see Fig.6.
> 3.6 V due to system occurrence or an external
(3) V
bat
inhibit via pin V
.
bat
(4) Release via reset.
(5) T
min=VNTC
T
cut-off=VNTC
≥ 2 V; Tmax = V
≤ 0.81 V.
NTC
≤ 1V;
0.81 V < V
T
min
FAST charge
set T
cut-off
OFF
-∆V
t
dis
bat
and
< T
bat
(note 5)
(e.g. 55
dual LED
indication
≥ 0.25%
bat
and
> 3% TO
< 3.6 V
< T
yes
yes
yes
FASTFULL
ON
max
no
(note 3)
stop charge
o
C)
FAST
no
ON
no
total reset
open battery
dual LED
indication
yes
FASTFULL
OFF
OFF
TIME OUT > 111 min
(TO)
battery is FULL
trickle charge
I
/ 40
fast
(note 4)
yes
dual LED
indication
yes
FASTFULL
OFF
ON
FAST
no
OFF
no
FAST
no
blinks
o
T
≥ 55
bat
(TCO)
no
C
MGE359
Fig.5 Flow chart of the TEA1104.
1996 Feb 267
Page 8
Philips SemiconductorsObjective specification
Cost effective battery monitor and fast
TEA1104; TEA1104T
charge IC for NiCd and NiMH chargers
LIMITING VALUES
In accordance with the Absolute Maximum Rating System (IEC 134); note 1.
SYMBOLPARAMETERCONDITIONSMIN.MAX.UNIT
V
P
V
oLED
V
iNTC
V
i(OSC)
V
i(bat)
V
Rref
I
source
I
oLED
I
Rref
I
bat
V
P
P
tot
T
amb
T
j(max)
T
stg
supply voltage−0.5+13.2V
LED output voltage (pin 8)−0.5V
negative temperature coefficient resistor
−0.5+5V
P
V
input voltage (pin 2)
oscillator input voltage (pin 7)−0.5+5V
battery input voltage (pin 4)−0.5+5V
reference resistor voltage (pin 5)−0.5+5V
output source current−3+0.01mA
LED output current−25mA
reference resistor current−1+0.01mA
battery current−1+1mA
supply current−25mA
total power dissipationT
amb
=70°C
TEA1104−0.5W
TEA1104T−0.35W
operating ambient temperature−20+70°C
maximum operating junction temperature−+150°C
storage temperature−55+150°C
Note
1. All voltages are measured with respect to ground; positive currents flow into the IC. The voltage ratings are valid
provided that other ratings are not violated; current ratings are valid provided that the power rating is not violated.
QUALITY SPECIFICATION
In accordance with
Reference Handbook”
“SNW-FQ-611 part E”
. The numbers of the quality specification can be found in the
. The handbook can be ordered using the code 9397 750 00192.
“Quality
1996 Feb 268
Page 9
Philips SemiconductorsObjective specification
Cost effective battery monitor and fast
TEA1104; TEA1104T
charge IC for NiCd and NiMH chargers
CHARACTERISTICS
= 10 V; T
V
P
SYMBOLPARAMETERCONDITIONSMIN.TYP.MAX.UNIT
Supply
V
P
/∆tsupply voltage start rate−− 0.5V/µs
∆V
P
V
clamp
V
start
V
pd
I
P
I
start
V
S
V
Rref
TC
Vref
I
Rref
=25°C; R
amb
=33kΩ;C
ref
= 1 nF; unless otherwise specified.
OSC
supply voltage5.45−11.5V
clamping voltageI
=25mA11.5−12.8V
clamp
start-up voltage6.16.46.7V
power-down voltage level4.655.055.45V
supply currentoutputs off−− 3mA
start-up currentVP=4V−4550µA
stabilized voltageIS= 1 mA4.034.254.46V
voltage range at reference resistorI
temperature coefficient of the
=20µA1.181.251.31V
Rref
T
= 0 to 45 °C−±60±120ppm/K
amb
reference voltage
current range of the reference
10−100µA
resistor
Temperature related input; NTC
V
i(co)
input voltage level for detecting
0.750.810.87V
temperature cut-off
V
i(co; max)
maximum input voltage level for
0.921.01.08V
detecting temperature cut-off
V
i(co; min)
minimum input voltage level for
1.852.02.15V
detecting temperature cut-off
I
NTC
input currentV
= 1.5 V−5−+5µA
NTC
Output drivers
δ
LED
V
LED(sat)
I
LI(LED)
LED pulse duty factor2.42.52.6%
LED saturation voltageI
LED input leakage currentV
=15mA−− 600mV
LED(sat)
=15V−− 5 µA
LED
Battery monitor
I
i(bat)
V
∆V
bat
bat/Vbat
input battery currentV
= 2.4 V−1−nA
bat
voltage range for peak detection0.81−3.6V
peak detection level with respect to
V
=2V−0.25−%
bat
top level
T
j
temperature range of peak
0−50°C
detection
Protections; BAT
V
V
bat(l)
bat(h)
low level battery protection voltage−0.810.91V
high level battery protection voltage3.53.64.5V
Oscillator
kcorrection factor0.840.931.02
f
osc
frequency range10−100kHz
1996 Feb 269
Page 10
Philips SemiconductorsObjective specification
Cost effective battery monitor and fast
charge IC for NiCd and NiMH chargers
APPLICATION INFORMATION
A guideline for the settings of TEA1104 and its external
components selection is given based on an example of a
1 hour charger for a 4 cell NiCd or NiMH battery pack. The
basic application diagram as illustrated in Fig.6 which is
based on the application diagram illustrated in Fig.7 with
some additional components; a 2 LED charge status
indication has been provided.
For charging a battery within one hour the charge current
rating should be as follows:
Required minimum charge current = battery
capacity × 1.2/charge time.
Therefore, for a 1 Ah battery the external charge current
supply has to deliver at least 1.2 A.
TEA1104 settings
The fast charge back-up timer period, time-out, has to be
set in relation to the expected maximum charge time.
Normally, a safety back-up time is chosen approximately
25% longer than the maximum expected fast charge time.
For a one hour charger the time-out period can be set to
1.25 h.
Time-out relationship with the oscillator repetition time is
as follows;
t
= time-out (h) × 3600/2 exp28
osc
t
=17µs for time-out = 1.25 h
osc
t
is set with the combination of C
osc
where t
R
can be chosen between 13 and 120 kΩ, but a 27 kΩ
ref
= 0.93 × R
osc
ref
× C
osc
.
resistor is recommended. The oscillator capacitor can be
calculated which is 668 pF; the nearest higher practical
value is 680 pF.
osc
and R
ref
;
TEA1104; TEA1104T
In the trickle charge mode the LED output will pulsate with
a repetition time; t
The duty factor of the pulse is 2.5% of t
factor also applies to the charge current as the charge
current switch is driven by the LED output. Therefore, the
average trickle charge current is I
can be adapted to the battery voltage via the resistor
dividers R1 and R2. When an NTC thermistor has been
incorporated into the battery, the minimum, maximum and
cut-off temperature levels can be set with the resistors R3
and R4. For an NTC with a common sensitivity of 3965
and adjustment resistor values R3 = 13 kΩ, R4 = 20 kΩ
the minimum, maximum and cut-off temperatures will be 5,
42 and 50 °C respectively.
The flow chart of the TEA1104; TEA1104A is given in
Fig.5. The load state of the batteries can be displayed by
one or two LEDs. The flow chart is not to be regarded as
sequential. Each mode of operation is a purely separate
continuous process.
Table 1 Dual LED indication
CHARGER
MODE
Fast charginglowhighonoff
Fast charging
protection
Full
(trickle charging)
Battery openhighhighoffoff
= 2 exp14 × t
trickle
V
LED
osc
/40. The V
fast
V
S
= 0.28 s.
. This duty
trickle
bat
LED 1LED 2
low/highhighon/offoff
low/highlowoffon
input
1996 Feb 2610
Page 11
Philips SemiconductorsObjective specification
Cost effective battery monitor and fast
charge IC for NiCd and NiMH chargers
handbook, full pagewidth
VP = 6.5 to 12 V
current
supply
+
+
1.2
kΩ
100
kΩ
LED 2
FULL
47
kΩ
BC548
BC548
LED1
FAST
BAW62
−
BD434
5.1
kΩ
270
Ω
LEDV
GND OSCVrefNTC
P
TEA1104
C
osc
VsV
TEA1104; TEA1104T
+
R1
4
bat
R3
R2
R
ref
R4
−θ
−
MGE357
cells
handbook, full pagewidth
Fig.6 Basic application diagram.
684 3
TEA1104
1752
−θ
MGE358
Fig.7 Application diagram.
1996 Feb 2611
Page 12
Philips SemiconductorsObjective specification
Cost effective battery monitor and fast
charge IC for NiCd and NiMH chargers
PACKAGE OUTLINES
SO8: plastic small outline package; 8 leads; body width 3.9 mm
D
c
y
Z
8
5
TEA1104; TEA1104T
SOT96-1
E
H
E
A
X
v M
A
A
pin 1 index
1
e
DIMENSIONS (inch dimensions are derived from the original mm dimensions)
mm
A
max.
1.75
0.069
A
1
0.25
0.10
0.010
0.004
A2A
1.45
1.25
0.057
0.049
0.25
0.01
b
3
p
0.49
0.25
0.36
0.19
0.019
0.0100
0.014
0.0075
UNIT
inches
Notes
1. Plastic or metal protrusions of 0.15 mm maximum per side are not included.
2. Plastic or metal protrusions of 0.25 mm maximum per side are not included.
4
w M
b
p
02.55 mm
scale
(1)E(2)
cD
5.0
4.8
0.20
0.19
eHELLpQZywv θ
4.0
1.27
3.8
0.16
0.050
0.15
2
A
6.2
5.8
0.244
0.228
Q
3
A
θ
0.250.10.25
0.010.010.0410.004
(1)
0.7
0.3
0.028
0.012
o
8
o
0
L
p
L
0.7
0.6
0.028
0.024
(A )
1
detail X
1.0
1.05
0.4
0.039
0.016
OUTLINE
VERSION
SOT96-1
IEC JEDEC EIAJ
076E03S MS-012AA
REFERENCES
1996 Feb 2612
EUROPEAN
PROJECTION
ISSUE DATE
95-02-04
97-05-22
Page 13
Philips SemiconductorsObjective specification
Cost effective battery monitor and fast
charge IC for NiCd and NiMH chargers
DIMENSIONS (inch dimensions are derived from the original mm dimensions)
A
A
A
UNIT
max.
mm
inches
Note
1. Plastic or metal protrusions of 0.25 mm maximum per side are not included.
OUTLINE
VERSION
SOT97-1
12
min.
max.
050G01MO-001AN
b
1.73
1.14
0.068
0.045
IEC JEDEC EIAJ
0.021
0.015
b
1
0.53
0.38
4
0510 mm
scale
b
2
0.36
1.07
0.23
0.89
0.014
0.042
0.009
0.035
REFERENCES
(1)(1)
cD E eM
9.8
9.2
0.39
0.36
6.48
6.20
0.26
0.24
L
e
1
3.60
3.05
0.14
0.12
M
E
8.25
7.80
0.32
0.31
EUROPEAN
PROJECTION
10.0
0.39
0.33
H
8.3
w
max.
0.2542.547.62
1.154.20.513.2
0.010.100.30
0.0450.170.0200.13
ISSUE DATE
92-11-17
95-02-04
(1)
Z
1996 Feb 2613
Page 14
Philips SemiconductorsObjective specification
Cost effective battery monitor and fast
charge IC for NiCd and NiMH chargers
SOLDERING
Introduction
There is no soldering method that is ideal for all IC
packages. Wave soldering is often preferred when
through-hole and surface mounted components are mixed
on one printed-circuit board. However, wave soldering is
not always suitable for surface mounted ICs, or for
printed-circuits with high population densities. In these
situations reflow soldering is often used.
This text gives a very brief insight to a complex technology.
A more in-depth account of soldering ICs can be found in
“IC Package Databook”
our
DIP
SOLDERING BY DIPPING OR BY WA VE
The maximum permissible temperature of the solder is
260 °C; solder at this temperature must not be in contact
with the joint for more than 5 seconds. The total contact
time of successive solder waves must not exceed
5 seconds.
The device may be mounted up to the seating plane, but
the temperature of the plastic body must not exceed the
specified maximum storage temperature (T
printed-circuit board has been pre-heated, forced cooling
may be necessary immediately after soldering to keep the
temperature within the permissible limit.
R
EPAIRING SOLDERED JOINTS
Apply a low voltage soldering iron (less than 24 V) to the
lead(s) of the package, below the seating plane or not
more than 2 mm above it. If the temperature of the
soldering iron bit is less than 300 °C it may remain in
contact for up to 10 seconds. If the bit temperature is
between 300 and 400 °C, contact may be up to 5 seconds.
SO
REFLOW SOLDERING
Reflow soldering techniques are suitable for all SO
packages.
(order code 9398 652 90011).
). If the
stg max
TEA1104; TEA1104T
Several techniques exist for reflowing; for example,
thermal conduction by heated belt. Dwell times vary
between 50 and 300 seconds depending on heating
method. Typical reflow temperatures range from
215 to 250 °C.
Preheating is necessary to dry the paste and evaporate
the binding agent. Preheating duration: 45 minutes at
45 °C.
AVE SOLDERING
W
Wave soldering techniques can be used for all SO
packages if the following conditions are observed:
• A double-wave (a turbulent wave with high upward
pressure followed by a smooth laminar wave) soldering
technique should be used.
• The longitudinal axis of the package footprint must be
parallel to the solder flow.
• The package footprint must incorporate solder thieves at
the downstream end.
During placement and before soldering, the package must
be fixed with a droplet of adhesive. The adhesive can be
applied by screen printing, pin transfer or syringe
dispensing. The package can be soldered after the
adhesive is cured.
Maximum permissible solder temperature is 260 °C, and
maximum duration of package immersion in solder is
10 seconds, if cooled to less than 150 °C within
6 seconds. Typical dwell time is 4 seconds at 250 °C.
A mildly-activated flux will eliminate the need for removal
of corrosive residues in most applications.
EPAIRING SOLDERED JOINTS
R
Fix the component by first soldering two diagonally-
opposite end leads. Use only a low voltage soldering iron
(less than 24 V) applied to the flat part of the lead. Contact
time must be limited to 10 seconds at up to 300 °C. When
using a dedicated tool, all other leads can be soldered in
one operation within 2 to 5 seconds between
270 and 320 °C.
Reflow soldering requires solder paste (a suspension of
fine solder particles, flux and binding agent) to be applied
to the printed-circuit board by screen printing, stencilling or
pressure-syringe dispensing before package placement.
1996 Feb 2614
Page 15
Philips SemiconductorsObjective specification
Cost effective battery monitor and fast
TEA1104; TEA1104T
charge IC for NiCd and NiMH chargers
DEFINITIONS
Data sheet status
Objective specificationThis data sheet contains target or goal specifications for product development.
Preliminary specificationThis data sheet contains preliminary data; supplementary data may be published later.
Product specificationThis data sheet contains final product specifications.
Limiting values
Limiting values given are in accordance with the Absolute Maximum Rating System (IEC 134). Stress above one or
more of the limiting values may cause permanent damage to the device. These are stress ratings only and operation
of the device at these or at any other conditions above those given in the Characteristics sections of the specification
is not implied. Exposure to limiting values for extended periods may affect device reliability.
Application information
Where application information is given, it is advisory and does not form part of the specification.
LIFE SUPPORT APPLICATIONS
These products are not designed for use in life support appliances, devices, or systems where malfunction of these
products can reasonably be expected to result in personal injury. Philips customers using or selling these products for
use in such applications do so at their own risk and agree to fully indemnify Philips for any damages resulting from such
improper use or sale.
1996 Feb 2615
Page 16
Philips Semiconductors – a worldwide company
Argentina: IEROD, Av. Juramento 1992 - 14.b, (1428)
BUENOS AIRES, Tel. (541)786 7633, Fax. (541)786 9367
Australia: 34 Waterloo Road, NORTH RYDE, NSW 2113,
Tel. (02)805 4455, Fax. (02)805 4466
Austria: Triester Str. 64, A-1101 WIEN, P.O. Box 213,
Tel. (01)60 101-1236, Fax. (01)60 101-1211
Belgium: Postbus 90050, 5600 PB EINDHOVEN, The Netherlands,
All rights are reserved. Reproduction in whole or in part is prohibited without the
prior written consent of the copyright owner.
The information presented in this document does not form part of any quotation
or contract, is believed to be accurate and reliable and may be changed without
notice. No liability will be accepted by the publisher for any consequence of its
use. Publication thereof does not convey nor imply any license under patent- or
other industrial or intellectual property rights.
Printed in The Netherlands
417021/1100/02/pp16Date of release: 1996 Feb 26
Document order number:9397 750 00692
Loading...
+ hidden pages
You need points to download manuals.
1 point = 1 manual.
You can buy points or you can get point for every manual you upload.