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MCP960X 데이터시트(PDF) 43 Page - Microchip Technology

부품명 MCP960X
상세설명  Thermocouple EMF to Temperature Converter, ±1.5°C Maximum Accuracy
PDF  57 Pages
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제조업체  MICROCHIP [Microchip Technology]
홈페이지  http://www.microchip.com
Logo MICROCHIP - Microchip Technology

MCP960X 데이터시트(HTML) 43 Page - Microchip Technology

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 2015-2021 Microchip Technology Inc.
DS20005426G-page 43
MCP960X/L0X/RL0X
EQUATION 6-1:
EFFECT OF
SELF-HEATING
At room temperature (TA = +25°C) with IDD = 2.5 mA
(maximum) and VDD = 3.3V, the self-heating due to
power dissipation, T, is 0.32°C for the MQFN package.
6.2.2
CONVERSION TIME vs. SELF-HEAT
Once the ADC completes digitization, the processor
initiates the data computation routine for tCALC, which
also increases IDD. During the 18-bit ADC conversion
time (3 SPS, Samples per Second), the increased
current lasts for approximately 5% of the one-second
period. The effect of self-heat for the total power
consumed per second, including the 5% tCALC period, is
negligible. However, as the ADC resolution is reduced
from 18-bit to 16-bit, the power consuming tCALC period
increases to 20% per second. This change in resolution
adds approximately 0.04°C (typical) temperature error
due to self-heat. Table 6-1 provides an estimate for
self-heat for all resolutions using Equation 6-1.
In order to reduce the effects of self-heat for lower
resolution settings, the Burst mode feature is
recommended to manage the effects of self-heat.
6.2.3
USING BURST MODE TO MANAGE
SELF-HEAT
The Burst mode feature is useful to manage power
dissipation while maintaining the device sensitivity to
changes in temperature (see Section 5.2.3 “Device
Configuration Register”). While the device is in
Low-Power or Shutdown mode, the host controller exe-
cutes Burst mode to sample temperature. The number
of temperature samples and the measurement resolu-
tion settings are selected while executing the command.
While in Burst mode, if the temperature data exceeds
the alert limits, the device asserts the corresponding
alert output. The alert outputs are used so the host con-
troller does not need to continually poll the latest
temperature data and potentially increase the
temperature error.
In addition, with some applications monitoring several
hundred degrees of temperature changes, 18-bit
resolution may not be necessary. In this case, a fewer
number of burst samples reducing the resolution
enables the user to monitor fast transient temperatures
at the burst intervals. The 12-bit ADC resolution
provides approximately 3°C resolution (for Type K) and
a new sample of temperature data is computed at
approximately 20 ms intervals. Therefore, the number
of Burst mode Samples per Second can be selected to
manage the effects of self-heat using these estimates.
The temperature conversion status during Burst mode
can also be momentarily polled (using bit 7 of
Register 5-6) to detect whether the on-going sample
bursts are completed. The host controller may
terminate an on-going burst by executing a shutdown
command or resetting the Burst mode by sending
another burst command.
6.2.4
ALERT OUTPUTS
The alert outputs are intended to drive high-impedance
loads. Typically, the outputs are connected to a
microcontroller input pin. However, if the outputs are
used to drive indicators, such as LEDs or buzzers, then
a buffer circuit is recommended in order to minimize the
effects of self-heat due to the applied load (see
Figure 6-3).
FIGURE 6-3:
Alert Output Buffer for LED
Indicator.
TABLE 6-1:
ADC RESOLUTION vs.
SELF-HEAT
Resolution
SPS
(typ.)
tCALC Duration
per Second
T
18-bit
3
5%
0.0096°C
16-bit
15
20%
0.0384°C
14-bit
60
80%
0.1536°C
12-bit
240
100%
0.1920°C
Note:
VDD = 3.3V and IDD = 1.5 mA (typical).
T
JA VDD IDD

=
Where:
TJ = Junction Temperature
TA = Ambient Temperature
JA = Package Thermal Resistance:
- Junction to Ambient
JC = Package Thermal Resistance:
Junction to Case
T
JC VDD IDD

=
T
TJ TA
=
Alert Output
NPN
Active-High
VDD



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