This application claims priority to International Application Ser. No. PCT/CH2007/000589 filed Nov. 26, 2007, which claims priority to Swiss Application No. CH/01914/06 filed Nov. 27, 2006.
The invention relates to an optical pressure sensor based on light intensity measurements comprising at least one membrane as well as at least a first optical fiber and a light emission surface and at least a second optical fiber arranged in parallel to the first optical fiber and a light admission surface wherein a light beam is guided from the first fiber via the light emission surface to the membrane where it can be reflected and wherein the reflected light beam can enter via the light admission surface into the second fiber in which it can be further transmitted.
Optical sensors of this type are, for example, employed for engine pressure measurements and are e.g. built into standard spark plugs for this purpose. Other types are used in miniaturized nozzle pressure sensors, for example. In such sensors, light is emitted from a first fiber to a membrane. This membrane is located at a variable position, i.e. closer to or farther away from the emitting fiber, depending on the amount of pressure that acts thereonto from the other side. Then, the light is reflected at the membrane. A portion of the reflected light impinges onto the second fiber that guides the light to a measuring device in which this light intensity of the light is measured. Eventually, the position of the membrane with respect to the optical fibers and, thus, the pressure prevailing at the membrane at that time of measurement can be deduced from the light intensity measured.
It is a disadvantage of such systems that a small signal is superposed on a huge offset. Therefore, the smallest disturbances of this offset result in dramatic errors in the pressure signal measured.
It is an object of the present invention to suggest an optical pressure sensor of the type described in the beginning which is insensitive to load change drift, thermal shock and drift.
To be able to incorporate sensors for example in standard spark plugs requires a small diameter. Thus, the required miniaturization of the total sensor diameter of <2 mm and before long of <1.5 mm or even <1 mm, poses a permanent challenge.
The object has been achieved by the characterizing parts of the independent claim.
The idea underlying the present invention is that the light emission surface and the light admission surface are disposed facing away from each other. The optical path of the light is altered so that in use the portion of light that is received by the receiving fiber 4 greatly depends on the membrane position.
Furthermore, due to the favorable optical path the membrane can be disposed close to the fiber ends so that a major proportion of the light intensity can be utilized. In this way, the dynamics with respect to disturbances is enhanced. In addition, the variance in light intensity is proportional to the pressure applied.
The easiest way to accomplish the invention is by means of a roof-like edge of a ferrule that incorporates these two fibers wherein the light emission surface and the light admission surface each are arranged on one side of the roof-like edge.
In the following the invention will be explained in more detail with respect of the drawings which show
a a schematic representation in cross-section of an optical sensor according to the prior art in the region of the sensor head;
b a schematic perspective representation of an optical sensor according to the prior art in the region of the fiber ends of the light guide;
a a schematic cut-open view of an optical sensor according to the invention in the region of the sensor head;
b a schematic perspective representation of an optical sensor according to the invention in the region of the fiber ends of the light guides;
a-d perspective views of alternative embodiments of light emission and light admission surfaces having different shapes;
The reference numerals were kept the same in all drawings.
a shows a schematic representation in cross-section of an optical sensor according to the prior art in the region of the sensor head. Within a ferrule 11 are represented a first light-conducting fiber 1 as well as a second light-conducting fiber 4 arranged in parallel to the first fiber 1 and having a fiber end 5. In operation, light 10 is emitted through the first fiber 1 at a light emitting surface 3 towards a membrane 8 where it is reflected. A portion of this light beam 10 eventually enters into a light admission surface 6 of the second fiber 4 and is transmitted for evaluation of the light intensity. The membrane 8 as well as the ferrule 11 enclosing the two light-conducting fibers 1, 4 are kept in a predetermined position by a housing 9. Depending on the amount of pressure acting from outside of the housing 9 onto the membrane 8, the membrane 8 will be displaced closer to the fiber ends 2, 5 of the fibers 1, 4. This changes the proportion of light 10 which was originally emitted through the first fiber 1 and which enters into the second fiber 4. The pressure prevailing at this time can be deduced from the light intensity transmitted through fiber 4 since the light intensity impinging onto the first fiber 1 is known.
b shows the end of the ferrule 11 with the two fiber ends 2, 5, the light emitting surface 3 of the first fiber 1 as well as the light admission surface 6 of the second fiber 4 according to the prior art in a perspective view. The end of the ferrule as a whole has a planar edge so that the light emission surface 3 and the light admission surface 6 both are disposed in one plane extending parallel to the membrane 8.
a shows the same arrangement as in
The two surfaces 3 and 6 are facing away from each other if their inner surfaces are facing each other. Specifically, parallel surfaces are neither facing each other nor facing away from each other.
Due to the arrangement of the light emission surface 3 and the light admission surface 6 of the fiber ends 2, 5 the wanted signal is amplified with respect to the offset and the quality of the measurement is enhanced. The distance of the membrane 8 to the fiber ends 2, 5 as well as the angle α are optimized under several aspects. On the one hand, the refractive indices on both sides of the light emission surface 3 as well as the light admission surface 6 define the angle of total reflection limiting the angle of incidence and the angle of emergence. On the other hand, the difference in the light impinging onto the light admission surface that is caused by the variable membrane position should be as dynamic as possible. That means, that the intensity of the light 10 entering into the second fiber 4 varies as much as possible due to a change in the position of membrane 8.
b shows the end of the ferrule 11 with the two fiber ends 2, 5, the light emission surface 3 of the first fiber 1 as well as the light admission surface 6 of the second fiber 4 in a perspective view in an embodiment of the invention. In this embodiment, the end of the ferrule 11 has a root-like edge where each of the fiber ends 2, 5 terminates in a different roof plane. The fiber ends 2, 5 are arranged symmetrically with respect to a central plane 14 of the sensor. In this embodiment, this central plane 14 is represented by the ridge of the roof-like edge. Preferably, the fiber ends 2, 5 are disposed close to each other, if possible touching each other.
In another preferred embodiment the light emission surface 3 and the light admission surface 6 are disposed in two planes 12, 13. These planes 12, 13 define the two roof planes of the roof-like edge in
The angle α between the two planes of the roof-like edge and a plane which extends parallel to the membrane 8 should be as steep as possible, however, without leading to total reflection at the light emission surface 3 or the light admission surface 6. Angles of between 20 and 40°, in particular between 25 and 35°, have been found to be particularly suitable.
It can be seen that in the arrangement according to the invention the ratio of wanted signal to offset signal was improved by multiple orders of magnitude compared to the arrangement according to the prior art. In this way, the sensor according to the invention has been strongly improved with respect to load change drift, thermal shock and drift.
For clarity, the other Figures aside from
The fibers 1, 4 are led in parallel whereby their handling and processing is simplified and miniaturization of the sensor is enabled. In a preferable embodiment as for example represented in
An alternative embodiment with regard to
Another alternative embodiment is shown in
In these representations,
All cuts described herein can be easily prepared if the fibers (1, 4) are held by the ferrule. Without an appropriate hold a sensor according to the invention would be difficult to fabricate, especially in the required miniaturized embodiment as described. Another advantage of the ferrule (11) is protection of the fiber ends in the case of strong vibrations as they occur in engines.
Number | Date | Country | Kind |
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1914/06 | Nov 2006 | CH | national |
Filing Document | Filing Date | Country | Kind | 371c Date |
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PCT/CH2007/000589 | 11/26/2007 | WO | 00 | 4/28/2009 |
Publishing Document | Publishing Date | Country | Kind |
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WO2008/064506 | 6/5/2008 | WO | A |
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20100064785 A1 | Mar 2010 | US |