beautypg.com

Rainbow Electronics MAX16043 User Manual

Page 11

background image

Adjustable Reset Timeout Period

(CRESET)

All of these parts offer an internally fixed reset timeout
(140ms min) by connecting CRESET to V

CC

. The reset

timeout can also be adjusted by connecting a capaci-
tor from CRESET to GND. When the voltage at CRESET
reaches 0.5V,

RESET goes high. When RESET goes

high, CRESET is immediately held low.

Calculate the reset timeout period as follows:

where V

TH-RESET

is 0.5V, I

CH-RESET

is 0.5µA, t

RP

is in

seconds, and C

CRESET

is in Farads. To ensure timing

accuracy and proper operation, minimize leakage at
C

CRESET

.

Adjustable Delay (CDLY_)

When V

IN

rises above V

TH

with EN_ high, the internal

250nA current source begins charging an external
capacitor connected from CDLY_ to GND. When the
voltage at CDLY_ reaches 1V, OUT_ goes high. When
OUT_ goes high, CDLY_ is immediately held low.
Adjust the delay (t

DELAY

) from when V

IN

rises above

V

TH

(with EN_ high) to OUT_ going high according to

the equation:

where V

TH-CDLY

is 1V, I

CH-CDLY

is 0.25µA, C

CDLY

is in

Farads, and t

DELAY

is in seconds. To ensure timing

accuracy and proper operation, minimize leakage
at CDLY.

Manual-Reset Input (

MR)

Many µP-based products require manual-reset capabil-
ity, allowing the operator, a test technician, or external
logic circuitry to initiate a reset. A logic-low on

MR

asserts

RESET low. RESET remains asserted while MR

is low and during the reset timeout period (140ms fixed
or capacitor adjustable) after

MR returns high. The MR

input has a 500nA internal pullup, so it can be left
unconnected, if not used.

MR can be driven with TTL or

CMOS logic levels, or with open-drain/collector outputs.

Connect a normally open momentary switch from

MR to

GND to create a manual-reset function. External
debounce circuitry is not required. If

MR is driven from

long cables or if the device is used in a noisy environ-
ment, connect a 0.1µF capacitor from

MR to GND to

provide additional noise immunity.

Pullup Resistor Values

The exact value of the pullup resistors for the open-
drain outputs is not critical, but some consideration
should be made to ensure the proper logic levels
when the device is sinking current. For example, if
V

CC

= 2.25V and the pullup voltage is 28V, keep the

sink current less than 0.5mA as shown in the

Electrical

Characteristics

. As a result, the pullup resistor should

be greater than 56kΩ. For a 12V pullup, the resistor
should be larger than 24kΩ. Note that the ability to sink
current is dependent on the V

CC

supply voltage.

Power-Supply Bypassing

The device operates with a V

CC

supply voltage from

2.2V to 28V. When V

CC

falls below the UVLO threshold,

all the outputs go low and stay low until V

CC

falls below

1.2V. For noisy systems or fast rising transients on V

CC

,

connect a 0.1µF ceramic capacitor from V

CC

to GND

as close to the device as possible to provide better
noise and transient immunity.

Ensuring Valid Reset Output

with V

CC

Down to 0V

When V

CC

falls below 1.2V, the ability for the output to

sink current decreases. To ensure a valid output as
V

CC

falls to 0V, connect a 100kΩ resistor from RESET

to GND.

Typical Application Circuits

Figures 4 and 5 show typical applications for the
MAX16041/MAX16042/MAX16043. In high-power appli-
cations, using an n-channel device reduces the loss
across the MOSFETs as it offers a lower drain-to-source
on-resistance. However, an n-channel MOSFET
requires a sufficient V

GS

voltage to fully enhance it for a

low R

DS_ON

. The application in Figure 4 shows the

MAX16042 configured in a multiple-output sequencing
application. Figure 5 shows the MAX16043 in a power-
supply sequencing application using n-channel
MOSFETs.

t

V

I

C

DELAY

TH CDLY

CH CDLY

CDLY

=

Ч

+

Ч

35 10

6

t

V

I

C

RP

TH RESET

CH RESET

CRESET

=

Ч

+

Ч

30 10

6

MAX16041/MAX16042/MAX16043

Dual-/Triple-/Quad-Voltage, Capacitor-

Adjustable, Sequencing/Supervisory Circuits

______________________________________________________________________________________

11