US5748091A - Fiber optic ice detector - Google Patents
Fiber optic ice detector Download PDFInfo
- Publication number
- US5748091A US5748091A US08/726,102 US72610296A US5748091A US 5748091 A US5748091 A US 5748091A US 72610296 A US72610296 A US 72610296A US 5748091 A US5748091 A US 5748091A
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Images
Classifications
-
- G—PHYSICS
- G08—SIGNALLING
- G08B—SIGNALLING OR CALLING SYSTEMS; ORDER TELEGRAPHS; ALARM SYSTEMS
- G08B19/00—Alarms responsive to two or more different undesired or abnormal conditions, e.g. burglary and fire, abnormal temperature and abnormal rate of flow
- G08B19/02—Alarm responsive to formation or anticipated formation of ice
Definitions
- This invention relates to a device for measuring and indicating the thickness profile of a semi-transparent layer, such as a thin film, and solid and liquid layers, and, more particularly, to an ice detector for monitoring any ice build up on an aircraft surface and alerting when such build up attains an excessive level.
- Detectors used in present practice employ a protrusion type probe that extends into the airflow over the wing.
- protrusion type probes produce some disturbance to the laminarity of the air flow across the wing's surface.
- Padawer For increased reliability in sensing the ice at a given location on an aircraft surface, Padawer forms a circle of separate fiber optic cords each of which is coupled to the light sensor and places the fiber optic cord from the light source in the center of that circle, thereby ensuring that ice formed at that location is properly detected even if the ice is unevenly distributed at that surface location.
- An object of the present invention is to detect the presence of ice and monitor any ice build up on an aircraft's wing without disturbing laminar airflow over the wing surface.
- Another object of the invention is to alert flight personnel that ice build up on an aircraft surface is excessive.
- a further object of the invention is to provide a new non-invasive apparatus for measuring the thickness of a layer of semi-transparent material.
- the present invention provides a compact optical measurement and alarm tool to provide a physically non-intrusive thickness probe of a light transmissive layer having particular advantage as a reliable ice detection apparatus for aircraft.
- the invention relies upon the principle of complete internal reflection of a light beam from the sample layer being measured and the inspection of the reflected light for determining thickness of that sample layer.
- the invention includes a flat transparent quartz or glass window, having an index of refraction, less than that of the air or other gaseous environment on which the window opens.
- the window supports any semi-transparent material, such as ice, which may be placed or deposited on that window's surface for thickness measurement. That material, ice, as example, is of another index of refraction, less than the refractive index of the air or other gas, and less than the refractive index of the window.
- Light is directed through a bundle of fiber optic strands that emits the light at a shallow angle to the window.
- the emitted light is incident upon the rear of the window and propagates there through into any sample layer that overlies the opposite surface of the window.
- the light is totally internally reflected due to the effect of the different indices of refraction. That reflection is at an equal and opposite angle to the angle of incidence.
- a second bundle of fiber optic strands is oriented to receive the reflected from that window, essentially positioned at the same shallow angle, but opposite in direction.
- Various strands in the bundle are displaced longitudinally of said window to define at least a spatial distribution of such light receptors.
- a photo-multiplier or like photosensitive array device receives light transmitted through the strands in the second bundle and provides a corresponding array of outputs, each of which represents at least one of the strands in the bundle. Detection of any reflected light at any output of the photo multiplier infers the deposit or placement of semi-transparent material over the window, a result akin to that of the prior "go"-"no go” alarm devices referred to earlier. However from inspection of the spatial distribution of the photo multiplier outputs, the thickness of the overlying layer of material is determined.
- the principal locale of the reflected light shifts longitudinally along the window's bottom surface and amongst the spatially distributed optical fibers associated with the receptor in dependence upon the thickness of the overlying layer.
- the thickness of the ice By correlating the observation of the illumination distribution pattern represented on the photo multiplier outputs, the thickness of the ice is derived. For an alarm device, when the particular degree of shift occurs that represents an excessive ice thickness, that is, attains a critical level, an alarm is given.
- FIG. 1 is a block diagram of an embodiment of the invention illustrated in an application for monitoring the build up of a layer of ice;
- FIG. 2 is a pictorial illustration that assists in describing the operation of the embodiment of FIG. 1, illustrating the relative positioning of the ends of the fiber optic emitters and receptors and the shift of positioning in reflected light occurring with the increase in thickness of the monitored ice layer;
- FIG. 3 is a not-to-scale partial section of a composite window for the embodiment of FIG. 1 that includes individual layers of transparent glass and fused quartz;
- FIG. 4 is a not-to-scale partial side view of a second embodiment of the invention which employs end-capped optical fibers, illustrated in the same ice monitoring application as the embodiment of FIG. 1;
- FIG. 5 is an enlarged not-to-scale pictorial view of the embodiment of FIG. 4 showing the light transmitting ends of the optical fibers in greater detail.
- FIG. 1 illustrates an embodiment of the invention in block form.
- This includes a light transmissive detector window 1, an array of light sources 3, a bundle of fiber optic strands 5, a photo-detector array 7, a second bundle of fiber optic strands 9, a multichannel signal processor 11, and an electrical DC power source 12, that supplies power to both the light sources 3 and photo-detector array 7.
- the light sources in array 3 may be formed of light emitting diodes, LEDS, laser diodes or the like.
- a display 13, analogue indicator 15 and/or alarm 17, coupled to processor 11, are also included in the monitoring system.
- the photo detector array preferably is a semiconductor photo detector array, which uses avalanche photo diodes or a photomultiplier array. All of the foregoing elements are known component devices.
- window 1 is mounted within an airfoil surface, such as an airplane wing, not illustrated, with the window's outer surface flush with the exterior of the airfoil surface.
- FIG. 1 also illustrates successive layers of ice 2A, 2B and 2C, which represent the accumulation or build up of ice over time on window 1 and, hence, on the airfoil surface, in which the window is mounted. It is appreciated that the ice does not form a part of the combination. That substance is illustrated in the figure as an aid in understanding the operation of the invention, later herein described.
- Window 1 is a flat panel of uniform thickness and is formed of transparent fused quartz material.
- the light transmissive window has an index of refraction that is greater than the index of refraction of the air or any other gaseous ambient atmosphere in which the detector is disposed for operation.
- a transparent window is preferred, it will be understood from the operation of the invention that follows in this specification that windows having a semi-transparent or even translucent characteristic, which attenuates the light intensity, may be substituted, if desired.
- the fiber optic strands provide a transmission medium for light energy, a light conductor, as well known.
- Each strand in each of the fiber optic bundles 5 and 9 contains two flat ends. One end of each strand serves as a light input and the opposite end as a light output in the foregoing combination.
- the input end of the strands or fibers in bundle 5 faces and is optically coupled to the light source array 3. Since light source array 7 is formed of multiple light sources, some of the strands receive light from one of the light sources in the array, and other strands receive light from other light sources in the array. The effect is that the light sources and the fiber optic strands in the bundle 5 are each spatially distributed.
- the axis of each fiber is oriented at a shallow angle, ⁇ , to the rear side or face of window 1.
- the flat face of the fiber is oriented thus at an angle of ⁇ +90 degrees to the window's flat rear surface.
- the fiber's end face is placed so that light which enters the fibers propagates to the distal end and travels from that end in a straight line to and is incident upon window 1, striking that window at a shallow angle relative to the window's flat rear surface.
- the distal ends of the optical fiber strands in fiber optic bundles 5 and 9 are optically coupled to the underside surface of the window by means of a standard optical connector, not illustrated.
- a standard optical connector not illustrated.
- the distal end of those fiber optic bundles is preferably embedded into the rear surface of window 1 using appropriate glass fusion techniques.
- a portion of the entire fiber optic bundle is embedded within a window formed of plastic material.
- Semiconductor photodetector array 7 contains a plurality of photosensitive spots or pixels on its light input or photosensitive surface. When exposed to light, the electrical conductivity or state of charge of the exposed spot changes, somewhat proportionally to the intensity of the incident light. Those photosensitive positions are spatially arranged and form an array, providing a series of photosensitive spots that extend normal to the plane of the paper and, more relevant to the present invention, extend laterally, longitudinal of the axis of window 1.
- the photodetector array contains one output circuit for each such photosensitive spot in the array, providing a corresponding array of electrical outputs. Each such electrical output is connected to the input of the multi-channel signal processor 11.
- Light sources 3 generate probe light beams which are transmitted through fiber optic bundle 5 and into the detector window 1. Those probe light beams are refracted into the ice layer 2A, 2B and 2C at an angle shallow enough to be internally reflected at the ice-air interface. The reflected light beams re-enter the detector layer by refraction. Each beam's entry into the detector fiber optic array 7 is determined by the thickness of the ice layer. The light beams transmitted into the detector fibers in bundle 9 are converted into electrical signals by photo detector 7 and are digitally processed by signal processor 11.
- the pattern of reflected light moves longitudinally to the right in the figure, shifting the light in position, whereby some additional fibers on the right are exposed, and exposure of some fibers on the left decreases.
- This shifting is pictorially represented in FIG. 2, by the successively positioned rectangles A, B, and C, illustrated in dash lines. This spatial distribution directly correlates to the thickness of the ice or other light transmissive layer being measured.
- Multi-channel signal processor 11 processes the individual signals or current from the photo detector outputs and translates that information into a detector ice thickness profile via fiber channel identification, calibration data and appropriate signal processing algorithms and displays that profile on a cathode ray tube display monitor 13.
- the output signal representative of the thickness level detected may be outputted to an appropriate analogue indicator, as represented by the meter symbol 15.
- an alarm 17 may be associated with the foregoing processor 11. The alarm may be triggered when the output signal from the processor 11 attains a predetermined level, providing a visual and/or audio indication warning that the total thickness of layers 2A-2C has attained the maximum allowable level.
- the signal processor can be calibrated and/or appropriate algorithms can be defined that change the form of the result to a simple thickness number, such as a digitally displayed number representing the thickness in hundredths of an inch.
- the quantity of strands or fibers contained in the fiber optic bundle 9, associated with the photo-multiplier 7, is determined by the maximum thickness of which the ice layer is reasonably expected to achieve.
- Photosensitive charge coupled device arrays may be substituted for the photo detector 7. These are the photosensitive sensors commonly found in modern video cameras. The output of such a photosensor may be displayed on a television tube, showing the pattern of light emitted from fiber optic bundle 9 and providing a visual representation of the ice thickness.
- FIGS. 4 and 5 Another embodiment of the invention that has the advantage of being more compact in physical size than the embodiment of FIG. 1, is partially illustrated in FIGS. 4 and 5, to which reference is made.
- FIGS. 4 and 5 Another embodiment of the invention that has the advantage of being more compact in physical size than the embodiment of FIG. 1, is partially illustrated in FIGS. 4 and 5, to which reference is made.
- many elements in this embodiment replace a number of the like elements presented in the embodiment of FIG. 1, differing slightly in structural detail.
- the elements are given the same designations used to identify the corresponding elements of the embodiment of FIG. 1 and are primed.
- window 1' is formed of transparent flexible plastic material, which, like the window in the prior embodiment, has a higher index of refraction than air or any other gas environment in which the detector is to be placed.
- a portion of the fiber optic bundle assemblies 5' and 9' are embedded or, as variously termed, encased within the plastic material of the window to form a unitary integral assembly. This is easily accomplished by depositing the uncured liquid plastic onto the pre-formed fiber optic bundles and then curing or polymerizing the plastic material, allowing the plastic material to harden into the solid form.
- the foregoing unitary structure offers an extremely thin ribbon like assembly that advantageously may be attached to the external surface of an aircraft, such as to the airfoil surface, without adversely affecting the operation of the aircraft.
- the receptor or input end of fiber optic bundle 9' is collected in a fiber optic connector 8 and the emitting or output end of fiber optic bundle 5' is collected in a fiber optic connector 6.
- the fiber optic connector 8 routes the same number of fibers as received from the receptor bundle to the photodetector array 7, illustrated in FIG. 1.
- Fiber optic connector 6 routes the same number of fibers as received from the laser diode light emitter array 3, illustrated in FIG. 1.
- the individual fibers in each bundle are end capped by a metal or light absorbing opaque layer at the circular end and is ensheathed or surface coated about its cylindrical side by a light absorbing opaque material to block entry or exit of light, except for a small optical window or opening 4 located near the fiber's end.
- the optical opening is positioned at the top of the fiber strand, exposed to the underside of the window's top surface, and acts as a pin hole through which light may exit, as in the emitter fibers in bundle 5', or enter, as in the receptor fibers in bundle 9'.
- the opening is shaped as a lens and the axis of that lens is oriented relative to the axis of the fiber strand, which, in this embodiment, lies horizontally, so as, in the case of the emitter fiber strand, to allow light to leave the fiber strand at the desired angle ⁇ , or, in the case of the receptor strand, enter the fiber strand only at the desired angle ⁇ .
- the staircase-like, graded stacking of the fibers achieves the required relative positioning of the emitters and receptors and the shift of positioning in reflected light occurring with the increase in thickness of the monitored layer.
- the embodiment containing the plastic window depicted in FIGS. 4 and 5 is suitable for application to the outer skin surfaces of an aircraft, and avoids the necessity of making special cut-outs in the skin and mounting hardware for the ice sensor.
- a large number of such detectors can be installed on the aircraft skin connected by plastic ribbon strips glued on and running along the wing span, allowing the detector assembly to conform to the shape of the surface.
- transparent or semi-transparent coatings may be applied to the window to provide a hard shield, protecting the window surface from erosion due to impact with abrasive particles during aircraft flight. Although such coating may cause some level of acceptable light transmission loss to the window, it should prolong the functional life of the window and, therefore, will likely be necessary to meet aerodynamic erosion protection requirements for the aircraft. Even so, the detector window should not be placed on the leading edges of the aircraft wings, because of the very high levels of erosion occuring at that location.
- Snell's law in physics describes the refraction occurring when light travels from one medium into another and prescribes that the mathematical sine of the angle of the light wave relative to the planar surface or interface is related to the sine of the light wave in the adjacent medium by the inverse ratio of the indices of refraction of the respective medium.
- glass possesses a higher index of refraction, 1.5, than ice, which is 1.309. This enables light entering one side of the glass window and therein refracted to be totally internally reflected at the outer surface of the ice layer where the adjacent medium is air, which has a smaller index of refraction, 1.00, than either the glass or the ice, provided that the light enters the glass at an angle less that the "critical angle" for the glass to ice interface; and in turn the light continues into the ice at an angle less than the critical angle for the ice to air interface.
- the material for window 1 can be selected to meet the transparency and erosion hardness requirements for aircraft application.
- Fused quartz 4 and sapphire such as represented in FIG. 3, are two possible choices of material that may be formed with the glass into a composite window.
- the quartz and sapphire have an index of refraction that is greater than that for ice, but is similar to the index of refraction of glass, making it suitable for operation in the detector combination.
- Fused quartz has an index of refraction, 1.46, which is greater than ice, but less than that of glass.
- index of refraction 1.46
- any transparent layer such as ice
- Snell's law of refraction it may be shown that the critical angle for total internal reflection of light between an ice to air interface is 49.8 degrees; that for the quartz to ice interface is 63.7 degrees; and that for the glass to quartz interface is 76.7 degrees.
- the bottom surface of the quartz detector can be coated with a thin layer of light absorbing material or one having a very high index of refraction, such as an anti-reflection coating.
- the detector may be installed on the wings leading edges, the wing upper and/or lower surfaces, engine cowl inner and outer lip surfaces, and/or nose cowl.
- One ground application for aircraft is the detection of any glycol film on the aircraft surfaces.
- the foregoing invention provides a two dimensional thickness profile of the ice build up on the portion of the wing surface at which the ice detector is installed.
- the ice build up is monitored and/or measured by the processor.
- the detector window may include electrical heater elements. By heating the window the outside surface is cleaned and the temperature can be maintained at an appropriate level suitable to allow formation of a clear glaze type ice formation instead of the cloudy, rime type ice.
- the novel ice detector is non-obtrusive and can be extremely compact in size.
- the invention's principal application is in the detection and thickness measurement of ice formation on an aircraft's airfoil surfaces, the invention is seen to have application in other fields in which a thickness measurement is to be made of other kinds of layers of light transmissive materials in situations where more conventional measurement devices are unavailable or impractical.
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Abstract
Description
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Priority Applications (1)
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US08/726,102 US5748091A (en) | 1996-10-04 | 1996-10-04 | Fiber optic ice detector |
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US08/726,102 US5748091A (en) | 1996-10-04 | 1996-10-04 | Fiber optic ice detector |
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US08/726,102 Expired - Fee Related US5748091A (en) | 1996-10-04 | 1996-10-04 | Fiber optic ice detector |
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