Radiant energy – Calibration or standardization methods
Reexamination Certificate
1999-04-07
2001-10-09
Hannaher, Constantine (Department: 2878)
Radiant energy
Calibration or standardization methods
Reexamination Certificate
active
06300623
ABSTRACT:
BACKGROUND OF THE INVENTION
The present invention relates in general to infrared (IR) sensing devices, and more particularly to a self-calibrating IR sensing device.
IR sensors are used to measure temperatures of remote objects by detecting the infrared radiation emitted from the target object. In a typical configuration, IR radiation enters the housing in which the sensor element is located through an IR transparent window and impinges upon the sensor. The temperature is typically measured by detecting the IR radiation and determining its effect on a thermally isolated radiation absorbing area of the sensor. In many typical applications the radiation from the remote object is gathered and focussed onto the sensing element by an external mirror arrangement for increased effectiveness. When the surface of the window or the mirror arrangement becomes contaminated by particles or residues that absorb IR radiation, incoming IR radiation is absorbed such that the amount of IR radiation passing through the window becomes attenuated. The IR transmission capability of the window and the IR reflectance capability of the mirror arrangement is therefore degraded by the presence of IR-absorbing contaminants. Such degradation results in erroneous temperature readings by the sensor. Accordingly, what is needed in the art is the ability to easily counter the attenuation effects of IR-absorbing contaminants deposited on the transmission window and mirror arrangement so as to accurately detect and measure the IR radiation received from a target object.
SUMMARY OF THE INVENTION
The present invention provides a self-calibrating infrared (IR) sensing device having the capability to measure the attenuation effects of surface contamination on the transmission window and mirror arrangement. The sensing device of the present invention also includes the capability to adjust the gain of the sensor to counter the attenuation caused by any IR-absorbing contaminants on the transmission window and mirror arrangement.
According to the invention, an IR sensing device includes an IR sensor mounted in a housing having an IR transparent window that allows IR radiation originating from outside the housing, for example from a target source, to be directed toward the sensor. The radiation detected by the sensor is made up of a combination of the external IR radiation entering the housing through the IR transparent window and the inherent background radiation from the inner surface of the housing. The IR sensor includes a thermally isolated area of material selected for its ability to absorb IR radiation at a specific frequency or at a range of radiation frequencies. The incoming radiation is absorbed, thereby raising the temperature of the IR absorbing material. A temperature measuring unit coupled to the absorbing material measures the increase in temperature and generates a proportional electronic signal indicative of the temperature. The electronic signal is received and processed by a processor.
An IR radiator is also included within the sensing device housing. The IR radiator is preferably shielded from the IR absorbing material by an internal screen. When activated, the radiator emits IR radiation that passes through the window and is reflected back into the sensing device housing by an external mirror arrangement. If the surface of the window is contaminated, the reflected radiation will be attenuated (e.g., the magnitude will be reduced). In the case where the IR radiator is pulsed, for example, the magnitude of the reflected signal indicates the clarity of the signal path, or inversely, the amount of contaminant on the surface of the window. The attenuated reflected signal is detected and measured by the IR sensor, and is used to signal a warning and/or determine the amount of gain necessary to compensate for the loss of true signal caused by the presence of the contamination. IR radiation that falls on the inside of the housing is preferably shielded from the sensor by the internal shield.
According to an aspect of the invention, an IR sensing device is provided. The IR sensing device includes an IR sensor for detecting IR radiation, wherein the IR sensor generates electrical signals in response to and indicative of any IR radiation detected by the IR sensor. The sensing device also typically includes an IR opaque enclosure surrounding the IR sensor, the enclosure having an IR transparent window positioned to allow IR radiation from outside the enclosure to fall on the IR sensor, and an IR radiator positioned within the enclosure, wherein the IR radiator emits IR radiation. A mirror element, external to the enclosure, is included for reflecting IR radiation. In operation, at least a portion of a first IR radiation signal emitted by the IR radiator is reflected by the mirror element onto the IR sensor, wherein the reflected IR radiation signal is detected by the IR sensor, and wherein the IR sensor generates a first electric signal proportional to the detected IR radiation signal. The sensing device also typically includes a processor coupled to the IR sensor for analyzing the electrical signals generated by the IR sensor, wherein the processor receives and analyzes the first electric signals to determine characteristics of the reflected signal.
According to another aspect of the invention a method is provided for measuring the temperature of a remote target object with an IR sensing device, wherein the IR sensing device includes an IR sensor mounted in a housing, the housing having a window through which IR radiation from a remote target object enters the device and impinges on the IR sensor. The method typically includes the step of generating a first IR radiation signal with an IR radiator located within the housing. An external mirror arrangement reflects the generated first IR signal back to the IR sensing device, such that if there is any IR-absorbing contamination on the window, the contamination absorbs at least a portion of the reflected IR radiation signal. The method also typically includes the steps of detecting the reflected IR radiation signal with the IR sensor, and generating a first electric signal proportional to the detected signal. The method further typically includes the steps of analyzing the first electric signal with a processor to determine the magnitude of the detected signal, wherein the magnitude of the detected signal is indicative of the amount of IR absorbing contamination on the window. Thereafter a remote IR radiation signal generated by the remote object is detected, wherein the remote IR radiation signal is indicative of the temperature of the remote object, wherein the remote signal is attenuated by a first amount by the IR absorbing contamination before being detected by the IR sensor. The method also typically includes the step of compensating for the first amount of attenuation in the detected remote IR radiation signal so as to accurately determine the temperature of the remote object.
According to yet another aspect of the invention, an Infra Red (IR) sensing device is provided which typically comprises an IR sensing means for detecting IR radiation, wherein the IR sensing means generates an electrical signal responsive to and indicative of the level of IR radiation falling on it; electronic interface means for processing the electrical signal, wherein the interface means generates a signal representative of the IR radiation detected by the sensing means; and an IR opaque enclosure surrounding the IR sensing means and the electronic interface means, the enclosure including an IR transparent window arranged to allow IR radiation from a remote target object to fall on the IR sensing means. The device also typically comprises an IR radiating means for emitting IR radiation within the enclosure; a first control means for controlling the IR radiation means to radiate IR energy; a mirror element, located external the housing, for reflecting IR radiation emitted by the IR radiating means onto the IR sensing means through the window, wherein the reflected IR radiation is
Betts William R.
Charlier Olivier
Diels Roger
Gabor Otilia
Hannaher Constantine
Melexis NV
Townsend and Townsend / and Crew LLP
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