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430 датащи(PDF) 70 Page - Intel Corporation

номер детали 430
подробное описание детали  Celeron M Processor on 65 nm Process
PDF  71 Pages
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производитель  INTEL [Intel Corporation]
домашняя страница  http://www.intel.com
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430 датащи(HTML) 70 Page - Intel Corporation

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Thermal Specifications and Design Considerations
70
Datasheet
5.1.4
Digital Thermal Sensor
The Celeron M processor also contains an on die digital thermal sensor that can be read
via a MSR (no I/O interface). The digital thermal sensor is the preferred method of
reading the processor die temperature since it can be located much closer to the
hottest portions of the die and can thus more accurately track the die temperature and
potential activation of processor core clock modulation via the Intel Thermal Monitor.
The digital thermal sensor is only valid while the processor is in the normal operating
state (C0 state).
Unlike traditional thermal devices, the Digital Thermal sensor will output a temperature
relative to the maximum supported operating temperature of the processor (TJ,max). It
is the responsibility of software to convert the relative temperature to an absolute
temperature. The temperature returned by the digital thermal sensor will always be at
or below TJ,max. Over temperature conditions are detectable via an Out Of Spec status
bit. This bit is also part of the Digital Thermal sensor MSR. When this bit is set, the
processor is operating out of specification and immediate shutdown of the system
should occur. The processor operation and code execution is not guaranteed once the
activation of the Out of Spec status bit is set.
The Digital Thermal Sensor (DTS) relative temperature readout corresponds to the
Intel Thermal Monitor (TM1) trigger point. When the DTS indicates maximum processor
core temperature has been reached TM1 hardware thermal control mechanism will
activate. The DTS and Intel Thermal Monitor (TM1) temperature may not correspond to
the thermal diode reading since the thermal diode is located in a separate portion of
the die and thermal gradient between the individual core DTS. Additionally, the thermal
gradient from DTS to thermal diode can vary substantially due to changes in processor
power, mechanical and thermal attach and software application. The system designer is
required to use the DTS to guarantee proper operation of the processor within its
temperature operating specifications.
Changes to the temperature can be detected via two programmable thresholds located
in the processor MSRs. These thresholds have the capability of generating interrupts
via the core's local APIC. Refer to the IA-32 Intel® Architecture Software Developer's
Manual and your Intel representative for specific register and programming details.
5.1.5
Out of Specification Detection
Overheat detection is performed by monitoring the processor temperature and
temperature gradient. This feature is intended for graceful shut down before the
THERMTRIP# is activated. If the processor’s TM1 is triggered and the temperature
remains high, an “Out Of Spec” status and sticky bit are latched in the status MSR
register and generates thermal interrupt. For more details on the interrupt mechanism,
contact your Intel representative.
5.1.6
PROCHOT# Signal Pin
An external signal, PROCHOT# (processor hot), is asserted when the processor die
temperature has reached its maximum operating temperature. If the Intel Thermal
Monitor 1 is enabled (note that the Intel Thermal Monitor 1 must be enabled for the
processor to be operating within specification), the TCC will be active when PROCHOT#
is asserted. The processor can be configured to generate an interrupt upon the
assertion or deassertion of PROCHOT#. Refer to the IA-32 Intel® Architecture Software
Developer's Manuals and your Intel representative for specific register and
programming details.
The Celeron M processor implements a bi-directional PROCHOT# capability to allow
system designs to protect various components from over-temperature situations. The
PROCHOT# signal is bi-directional in that it can either signal when the processor has



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