Measurement system comprising an optical fiber equipped with at least one Bragg grating for measuring dynamic deformation, aircraft and process.

The measurement system with a non-Newtonian fluid and movable optical fiber sector distinguishes between static and dynamic deformations, enabling accurate lifespan assessment of dynamically deformable components.

FR3154800B1Active Publication Date: 2025-11-21EUROCOPTER FRANCE SA
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Patent Information

Application Number
FR2023011559
Authority / Receiving Office
FR · FR
Patent Type
Patents
Current Assignee / Owner
Filing Date
2023-10-25
Publication Date
2025-11-21
Estimated Expiration
2043-10-25

AI Technical Summary

Technical Problem

Existing measurement systems using optical fibers with Bragg gratings cannot distinguish between static and dynamic deformations of an object, limiting their effectiveness in assessing the lifespan of dynamically deformable components like helicopter rotor blades.

Method used

A measurement system utilizing an optical fiber with a movable measurement sector inside a tube filled with a non-Newtonian fluid, where dynamic deformations cause changes in the viscosity of the fluid, leading to measurable shifts in the reflected light wavelength by Bragg gratings.

Benefits of technology

Enables precise measurement of dynamic deformations by differentiating between static and dynamic deformations, allowing for accurate assessment of the lifespan of components like helicopter rotor blades.

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Abstract

The present invention relates to a measurement system (1) for measuring the dynamic deformation of an object (96), the measurement system (1) comprising an optical fiber (10), the optical fiber (10) extending at least partially into a tube (30) configured to be fixed to said object (96), the optical fiber (10) having a movable measurement sector (14) inside the tube (30), the measurement sector (14) comprising at least one Bragg grating (15). The measurement system (1) comprises a non-Newtonian fluid (40) filling at least one chamber (50) delimited by the tube (30), the measurement sector (14) extending into said at least one chamber (50), the non-Newtonian fluid (40) being in contact with the tube (30) and the measurement sector (14). (Shorthand figure: Figure 1)
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Description

Title of the invention: Measurement system comprising an optical fiber equipped with at least one Bragg grating for measuring dynamic deformation, aircraft and process.

[0001] The present invention relates to a measurement system comprising an optical fiber equipped with at least one Bragg grating for measuring a dynamic deformation of an object, an aircraft equipped with such a measurement system, and a method.

[0002] Various measurement systems are known for evaluating the deformations of an object.

[0003] A known measurement system comprises an optical fiber having at least one network Bragg's law. This system comprises an optical fiber with a core that guides an optical signal, a cladding that covers the core and whose function is, among other things, to contain the light waves within the core, and a coating that covers the cladding. This cladding is sometimes called "cladding" in English. The coating is sometimes called "coating" in English.

[0004] Furthermore, this known measurement system includes at least one Bragg grating formed in the core. Each Bragg grating reflects only a portion of the light having a particular wavelength. The light rays from the unreflected spectrum continue along the core of the optical fiber.

[0005] The wavelength of this reflected light depends on the product of the Bragg grating pitch and the refractive index of the optical fiber core. The refractive index and the pitch are themselves functions of the ambient temperature and the deformation of the optical fiber.

[0006] Thus, a change in the wavelength of the reflected light can lead to a change in temperature and / or a deformation of the optical fiber.

[0007] A measuring instrument called an "interrogator" then makes it possible to evaluate a temperature or a deformation from the reflected light.

[0008] To evaluate the deformation of an object with such a measurement system, the optical fiber is attached to the object. A deformation of the object then induces a deformation of the optical fiber and thus a change in the wavelength of the reflected light. To optimize the measurements, taking temperature into account, the measurements can be carried out at a constant temperature and / or a temperature measurement can be performed in parallel using another Bragg grating or a thermocouple, for example.

[0009] This technology allows an interrogator to evaluate a total deformation, but not to distinguish between a static deformation and a dynamic deformation of the object. However, it can be useful to evaluate the dynamic deformation of an object, for example to assess the lifespan of a dynamically deformable component such as a helicopter rotor blade.

[0010] Document EP 0892250 B1 does not provide a solution to this problem by describing an optical fiber comprising at its end a Bragg grating, this end being surrounded by a low Young's modulus plug to obtain reflected light having a wavelength that is essentially a function of temperature.

[0011] Document FR 2946140 B1 is also far removed from this issue by concerning a fiber optic hydrophone with a Bragg grating.

[0012] Document EP 2507605 B1 describes a bearing comprising a ring with a groove, and a Bragg grating optical fiber placed inside the groove.

[0013] Document FR 2909446 B1 describes a device for measuring the mechanical deformations of a profile, this device comprising at least one optical fiber sensor with two cross Bragg gratings.

[0014] The present invention then aims to propose an innovative measurement system for measuring dynamic deformations, for example dynamic deformations of an aircraft rotor blade.

[0015] The invention thus relates to a measurement system for measuring a dynamic deformation of an object, the measurement system comprising an optical fiber, the optical fiber extending at least partially in a tube which is configured to be attached to said object, the optical fiber having a movable measurement sector inside the tube, the measurement sector comprising at least one Bragg grating.

[0016] This measuring system includes a non-Newtonian fluid filling at least one chamber delimited by the tube, the measuring sector extending into said at least one chamber, the non-Newtonian fluid being in contact with the tube and the measuring sector.

[0017] The measuring sector can move relative to the tube by means of a mechanical connection. Such an arrangement is sometimes referred to as a "loose" mode in English.

[0018] A non-Newtonian fluid has a viscosity that varies according to the force exerted upon it. According to the invention, the greater the mechanical stress on the non-Newtonian fluid, the more it tends to behave like a solid and thus tends to bond the measuring sector and the tube together.

[0019] For example, the non-Newtonian fluid may be a shear-thickening fluid or a viscoelastic fluid, or even a molten polymer.

[0020] For example, the non-Newtonian fluid may be a shear-thickening fluid comprising a liquid containing solid particles different from those in the liquid. Thus, when a force is applied to the shear-thickening fluid, the particles present in the liquid group together and bond with each other, resulting in an ordered organization of the particles, similar to that of water in its solid state. When the force is removed, the molecules The liquids return to their places between the particles. For example, the non-Newtonian fluid consists of a mixture of cornstarch and water.

[0021] Consequently, a deformation of the object generates a deformation of the tube since the tube is fixed to this object. On the other hand, the measuring sector is encapsulated within the tube while still being able to move within the tube.

[0022] In the presence of static deformation, the viscosity of the non-Newtonian fluid is low. The tube moves relative to the measurement sector of the optical fiber. The optical fiber is therefore not deformed. The wavelength of the light reflected by each Bragg grating then does not vary or varies very little.

[0023] Conversely, in the presence of dynamic deformation, the viscosity of the non-Newtonian fluid increases. The deformation of the tube generates a deformation of the measurement sector, via the non-Newtonian fluid. The wavelength of the light reflected by at least one Bragg grating is then modified. The variation of the deformation measured with an interrogator is then a reflection of the dynamic deformation experienced.

[0024] The non-Newtonian fluid thus makes it possible to estimate a dynamic deformation, and not a simple deformation without being able to determine whether this deformation results from static and / or dynamic deformation. Such a measurement system is particularly useful for a rotor blade, and for example, a main rotor blade of a helicopter. Indeed, the lifespan of a blade can be estimated based on the dynamic deformation it undergoes during its use.

[0025] This measurement system may include one or more of the following features, taken alone or in combination with each other.

[0026] According to one possibility, said at least one chamber can be closed by at least one stopper disposed in the tube and sealed against non-Newtonian fluid.

[0027] One or more chambers may be delimited longitudinally by at least one plug and radially by the tube. For example, a chamber may extend between two plugs disposed in the tube and sealed against non-Newtonian fluid, or between a plug and a bottom or partition of the tube.

[0028] Furthermore, the non-Newtonian fluid may contain particles suspended in a liquid. The volume of each chamber can be optimized so that the particles are distributed homogeneously in the liquid during use, particularly for use on a blade subjected to centrifugal forces. The term "each" is used in the expression "the volume of each chamber" whether there are several chambers or a single chamber. The same applies throughout the rest of the text when the term "each" is used in conjunction with another noun.

[0029] According to a possibility compatible with the preceding ones, the measuring system may include at least one ring attached to the measuring sector and arranged in said non-Newtonian fluid.

[0030] Each ring contributes to the deformation of the measuring sector in the presence of a dynamic deformation generating an increase in the viscosity of the non-Newtonian fluid. Indeed, each ring constitutes a shoulder in contact with the non-Newtonian fluid and is capable of acting as an obstacle set in motion by this non-Newtonian fluid.

[0031] According to a possibility compatible with the preceding ones, said at least one chamber may comprise two chambers filled with the non-Newtonian fluid and arranged on either side of said Bragg grating, the measurement sector extending into these two chambers.

[0032] A Bragg grating can thus be found between two sections of the measurement sector which can be attached to the tube via the non-Newtonian fluid in the presence of dynamic deformations.

[0033] Alternatively, the measurement system may comprise a single chamber, a Bragg grating being located between an anchor point of the optical fiber and said chamber.

[0034] A single chamber may be sufficient to distort the Bragg lattice.

[0035] According to a possibility compatible with the preceding ones, the Bragg grating can be arranged in said at least one chamber.

[0036] One or more Bragg lattices can be embedded in the non-Newtonian fluid.

[0037] According to a possibility compatible with the preceding ones, the measurement system may include an interrogator optically coupled to the optical fiber, the interrogator being configured to illuminate the optical fiber as well as to capture light reflected by said Bragg grating and deduce a dynamic deformation of the object.

[0038] A common interrogator, known to those skilled in the art, can be used to emit a light beam into the optical fiber and capture the light reflected by the Bragg grating. An interrogator controller can be configured to calculate a dynamic deformation experienced as a function of this reflected light.

[0039] According to a possibility compatible with the preceding ones, the measuring sector can comprise several Bragg gratings having different pitches.

[0040] Several Bragg gratings can be incorporated into the optical fiber, and in the measurement sector in particular, to monitor dynamic deformations in various areas of the monitored object. For example, the measurement sector may include approximately twenty Bragg gratings. Each Bragg grating is configured to reflect light within a range of values ​​distinct from the other Bragg gratings in use, to allow an interrogator to determine the deformations in the various areas of the object.

[0041] According to a possibility consistent with the preceding ones, said optical fiber may comprise a core provided with said at least one Bragg grating, the optical fiber comprising a sheath surrounding the core, the optical fiber comprising a coating surrounding the sheath, the coating having an iron-nickel based alloy.

[0042] Such a coating thermally insulates the core so that the measurements are minimally, or not at all, influenced by the external temperature and / or the object's temperature. Furthermore, the temperature evolution can be a slow phenomenon due to slow diffusion constants. This evolution and its impact on the measured deformation can thus be identified to precisely determine the dynamic deformation undergone.

[0043] Alternatively, the measurement system can be used in the presence of a temperature that changes little.

[0044] According to another aspect, an aircraft equipped with an object may include a measuring system according to the invention, said tube being attached to the object or embedded in the object.

[0045] The invention also relates to a method implemented by such a measurement system. The invention then relates to a method for measuring the dynamic deformation of an object with a measurement system comprising an optical fiber extending in a tube configured to be fixed to said object, the optical fiber having a movable measurement sector inside the tube, the measurement sector comprising at least one Bragg grating. This measurement method comprises the following steps:

[0046] a) in the presence of static deformation, automatically make the measuring sector mobile relative to the tube within a non-Newtonian fluid in contact with the tube and the measuring sector,

[0047] b) in the presence of a dynamic deformation, secure the measuring sector to the tube with the non-Newtonian fluid, emission of light in the optical fiber, and reception of light reflected by the Bragg grating, and determination of the dynamic deformation as a function of a measurement law and of said reflected light.

[0048] The invention and its advantages will become apparent in more detail in the following description, with illustrative examples given by reference to the accompanying figures, which represent:

[0049] [Fig. 1], a view of a measuring system for measuring the deformation of an object,

[0050] [Fig. 2], a view of a measuring system for measuring the deformation of an object,

[0051] [Fig. 3], a view of a measuring system for measuring the deformation of an object, And

[0052] the [Fig.4], a diagram explaining the invention.

[0053] Elements present in several separate figures are assigned one and the same reference.

[0054] Figures 1 to 3 illustrate various measurement systems 1 according to the invention for measuring a dynamic deformation of an object 96.

[0055] With reference to [Fig.1] and regardless of the embodiment of the measuring system 1, this object 96 and the measuring system 1 can be arranged within an aircraft 95. For example, the object 96 can be a blade 97 of a rotor participating at least in the lift of the aircraft 95.

[0056] The measurement system 1 comprises an optical fiber 10. The optical fiber 10 is provided with a measurement sector 14 which includes one or more Bragg gratings 15. Figures 1 and 2 illustrate an optical fiber 10 having a measurement sector 14 equipped with a single Bragg grating 16, 19, while Figure 3 illustrates an optical fiber 10 having a measurement sector 14 equipped with two Bragg gratings 17, 18. In the presence of several Bragg gratings 15, these Bragg gratings 15 preferably have different pitches to reflect light at different and distinguishable wavelengths. Reference numeral 15 designates any Bragg grating, while reference numerals 16 to 19 are used to designate a particular Bragg grating if necessary.

[0057] Therefore, the optical fiber 10 comprises a core 11 equipped with the Bragg grating(s) 15. Each Bragg grating 15 can be formed in the usual way on the core 11. In addition, the optical fiber 10 comprises a cladding 12 surrounding the core 11. The cladding 12 can be a conventional cladding designed to contain the light waves within the core 11. Finally, the optical fiber 10 can include a coating 13 surrounding the cladding 12. This coating 13 can comprise an iron-nickel alloy to thermally insulate the core from the outside of the optical fiber 10, or even comprise 64% iron and 36% nickel.

[0058] The optical fiber 10 extends fully, or only partially, into a tube 30. Optionally, the tube 30 may contain tetrafluoroethylene. This tube 30 is attached to the object 96 by conventional means. According to the example in [Fig. 1], the tube 30 may be glued to a wall of the object 96. According to the example in [Fig. 2], the tube 30 may be embedded within a thickness of the object 96.

[0059] Regardless of the embodiment and with reference to [Fig.1], the measuring sector 14 is made mobile inside the tube 30. The measuring sector 14 is not physically fixed to the tube 30 over its entire length and is therefore free to move within the tube 30, and therefore relative to the tube 30, in the absence of dynamic deformations of the tube 30.

[0060] The optical fiber 10 is further optically connected to an interrogator 80. For example, the optical fiber 10 is physically connected to the interrogator 80 at an anchor point 75.

[0061] The tube 30 can also be connected to the interrogator 80, or can be traversed by the optical fiber 10, as illustrated in [Fig. 2]. In this case, a partition 32 can seal the end of the tube 30 through which the optical fiber 10 passes to prevent the ingress of contaminants. The other end of the tube 30 can have a bottom 31.

[0062] The interrogator 80 may include a light emitter 801 of a common type configured to illuminate the optical fiber 10. For example, the light emitter 801 includes a laser diode. The interrogator 80 may include a receiver 802 of a common type for receiving light reflected by one or more Bragg gratings and emitting a signal that varies according to the wavelength of this reflected light. Such a receiver may include a photodiode.

[0063] This interrogator 80 may include a controller 803 communicating with the receiver 802. The controller 803 may include, for example, at least one processor and at least one memory, at least one integrated circuit, at least one programmable system, at least one logic circuit; these examples do not limit the scope given to the term "controller." The term "processor" may refer, for example, to a central processing unit known by the acronym CPU, a graphics processing unit (GPU), a digital signal processing unit (DSP), a microcontroller, etc.

[0064] The controller 81 can be configured in the usual way to evaluate a deformation of the object 96 using the signal transmitted by the receiver, a sudden variation in deformation resulting from a dynamic deformation as explained below. For example, the controller 81 stores a measurement law providing said deformation as a function of the received signal.

[0065] The interrogator modules, namely the transmitter 801, the receiver 802, and the controller 803, may be arranged within the same housing or may be located in separate locations. At least one of the modules may be located on the object 96 or remotely.

[0066] By way of example, in the case of an object 96 located in a rotating frame, the transmitter 801 and the receiver 802 can be located in the rotating frame. The controller 803 can then be arranged in the rotating frame, or in a fixed frame by being connected to the receiver 802 by a conventional transmission device such as, for example, a brushed or wireless system.

[0067] The interrogator 80, and for example its controller 803, can be connected to a display 82 configured to display information carrying the dynamic deformation determined by this controller 803, and / or to a memory 83 capable of storing this dynamic deformation.

[0068] According to another aspect, the measuring system 1 comprises a non-Newtonian fluid 40 filling at least one chamber 50 of the tube 30. For example, the non-Newtonian fluid 40 is chosen from a shear-thickening fluid and a viscoelastic fluid, such as a molten polymer and a mixture of cornstarch and water, which is a shear-thickening fluid. Figures 1 and 2 illustrate a tube 30 having a single chamber 51, 54, while Figure 3 illustrates two chambers 52, 53. examples. Reference 50 designates any room, references 51 to 54 are used for specific rooms if needed.

[0069] In the presence of a single chamber 50, the Bragg grating(s) 15 may be located between the chamber 50 and an anchor point 75. This anchor point 75 may be the connection point of the optical fiber 10 to the interrogator 80 or may consist of another connector 750 immobilizing the optical fiber 10 relative to the tube 30, for example. Alternatively, at least one Bragg grating 15 may be located within the chamber 50. In the presence of several chambers 50, at least one Bragg grating 15 may be located between two chambers 50.

[0070] Regardless of the embodiment and with reference again to [Fig.1], the measuring sector 14 extends into each chamber 50. Within a chamber 50, the non-Newtonian fluid 40 is in contact with the tube 30 and the measuring sector 14.

[0071] Furthermore, at least one chamber 50 can be closed by at least one plug 60 which is disposed in the tube 30 and which is sealed against the non-Newtonian fluid 40, or even by a bottom 31 or a partition 32 of the tube 30. Reference 60 designates any plug, references 61 to 66 being used to designate particular plugs if necessary.

[0072] Furthermore, the measuring system 1 may include at least one ring 70 attached to the measuring sector 14 and arranged in said non-Newtonian fluid 40. For example, such a ring 70 is bonded to the measuring sector 14. For example, the measuring sector 14 includes a ring 70 in each chamber 50. The reference numeral 70 designates any ring, the reference numerals 71 to 74 being used to designate particular plugs if necessary.

[0073] Under these conditions, figures 1 to 3 illustrate various realizations.

[0074] According to [Fig. 1], the tube 30 can be glued to an object 96. This tube 30 houses a single chamber 51 filled with non-Newtonian fluid 40, this single chamber 51 being longitudinally closed by a single plug 61 and a bottom 31 of the tube 30. The measuring sector 14 extends entirely within the tube 30, from the interrogator 80 to the chamber 51 through the plug 61. The measuring sector 14 further comprises a Bragg grating 16 between the chamber 51 and the interrogator 80, and a ring 71.

[0075] According to [Fig.2], the tube 30 can be embedded in the object 96. This tube 30 houses a single chamber 54 filled with non-Newtonian fluid 40, this single chamber 54 being longitudinally closed by two plugs 62, 63. The measuring sector 14 extends partially into the tube 30 and enters this tube 30 by passing through a partition 32. The measuring sector 14 further comprises a Bragg grating 19 arranged in the chamber 54, and a ring 74.

[0076] According to [Fig. 3], the tube 30 can be glued to an object 96. This tube 30 houses two chambers 52, 53 filled with non-Newtonian fluid 40. A first chamber 52 is The measuring sector 14 is longitudinally closed by two plugs 64, 65, and a second chamber 53 is longitudinally closed by a plug 66 and a bottom 31 of the tube 30. The measuring sector 14 extends entirely within the tube 30 and into both chambers 52, 53. The measuring sector 14 comprises two Bragg gratings 17, 18, namely a first Bragg grating 17 between the interrogator 80 and the first chamber 52, and a second Bragg grating 18 between the first chamber 52 and the second chamber 53. In addition, the measuring sector comprises two rings 72, 73, respectively in the first chamber 52 and the second chamber 53.

[0077] These three realizations are given as examples to illustrate various configurations.

[0078] Regardless of how a measurement system 1 according to the invention is implemented, [Fig.4] illustrates the operation of the method implemented.

[0079] This [Fig.4] presents a diagram illustrating on the abscissa time, and on the ordinate the wavelength of the light reflected by a Bragg grating 15 towards the interrogator 80. The curve Cl illustrates a variation of this wavelength.

[0080] To monitor the object 96, the interrogator 80 emits light into the optical fiber 10. This light is reflected at a certain wavelength by a Bragg grating 15. The receiver 802 of the interrogator captures this reflected light and transmits a standard signal to the controller 803 of the interrogator 80. This controller 803 deduces a deformation undergone.

[0081] In the presence of static deformation of the object 96, the tube 30 tends to deform. In this case, the non-Newtonian fluid 40 deforms the optical fiber 10 only slightly, or not at all. The measuring sector 14 is automatically made mobile relative to the tube 30 due to the viscosity of the non-Newtonian fluid 40. The value of the wavelength of the reflected light varies little during this period PL. The deformation determined by the controller varies little or not at all. The controller 803 can deduce from this that the object 96 is not undergoing dynamic deformation, for example, as long as the variation in the determined deformation is less than a deformation threshold, and can transmit this information to a memory 83 or to the display 82.

[0082] During another period P2, the object 96 undergoes dynamic deformation. In this case, the method involves securing the measuring sector 14 to the tube 30 due to the increasing viscosity of the non-Newtonian fluid 40. The optical fiber 10 deforms at at least one Bragg grating 15. The wavelength of the reflected light increases sharply. The deformation determined by the controller varies significantly from an average value Vm to a peak Vp. The controller 803 can be configured to determine the dynamic deformation undergone. For example, if the variation in the determined deformation is greater than or equal to the deformation threshold, the Dynamic deformation is equal to the variation of the calculated deformation relative to an average value over a predetermined time.

[0083] Naturally, the present invention is subject to numerous variations in its implementation. Although several embodiments have been described, it is understood that it is not conceivable to exhaustively identify all possible embodiments. It is, of course, conceivable to replace a described means with an equivalent means without departing from the scope of the present invention.

Claims

Demands

1. A measuring system (1) for measuring the dynamic deformation of an object (96), the measuring system (1) comprising an optical fiber (10), the optical fiber (10) extending at least partially into a tube (30) configured to be integral with said object (96), the optical fiber (10) having a movable measuring sector (14) inside the tube (30), the measuring sector (14) comprising at least one Bragg grating (15), characterized in that the measuring system (1) comprises a non-Newtonian fluid (40) filling at least one chamber (50) delimited by the tube (30), the measuring sector (14) extending into said at least one chamber (50), the non-Newtonian fluid (40) being in contact with the tube (30) and the measuring sector (14), the measuring system (1) comprising at least one ring (70) integral with the measuring sector (14) and arranged in said non-Newtonian fluid (40).

2. Measurement system according to claim 1, characterized in that said at least one chamber (50) is closed by at least one stopper (60) disposed in the tube (30) and sealed against non-Newtonian fluid (40).

3. A measuring system according to any one of claims 1 to 2, characterized in that at least one ring (70) is arranged in at least one chamber (50).

4. A measuring system according to any one of claims 1 to 3, characterized in that said at least one chamber (50) comprises two chambers (50, 52, 53) filled with the non-Newtonian fluid (40) and arranged on either side of said Bragg grating (15), the measuring sector (14) extending into these two chambers (50, 52, 53).

5. Measurement system according to any one of claims 1 to 3, characterized in that the measurement system (1) comprises a single chamber (50), said Bragg grating (15) being located between an anchor point (75) of the optical fiber (10) and said single chamber (50).

6. Measurement system according to any one of claims 1 to 3, characterized in that said Bragg grating (15) is arranged in said at least one chamber (50).

7. A measurement system according to any one of claims 1 to 6, characterized in that the measurement system (1) comprises an interrogator (80) optically coupled to the optical fiber (10), the interrogator (80) being configured to illuminate the optical fiber (10) as well as to capture light reflected by said Bragg grating (15) and to deduce a dynamic deformation of the object.

8. A measuring system according to any one of claims 1 to 7, characterized in that the measuring sector (14) comprises several Bragg gratings (15) having different pitches.

9. A measurement system according to any one of claims 1 to 8, characterized in that said optical fiber (10) comprises a core (11) provided with said at least one Bragg grating (15), the optical fiber (10) comprising a cladding (12) surrounding the core (11), the optical fiber (10) comprising a coating (13) surrounding the cladding (12), the coating having an iron-nickel based alloy.

10. A measuring system according to any one of claims 1 to 9, characterized in that said non-Newtonian fluid (40) is a shear-thickening fluid or a viscoelastic fluid.

11. Aircraft (95) equipped with an object (96), characterized in that said aircraft (95) comprises a measuring system (1) according to any one of claims 1 to 10, said tube (30) being attached to the object (96) or embedded in the object (96).

12. A method for measuring the dynamic deformation of an object (96) with a measuring system (1) according to any one of claims 1 to 10 comprising an optical fiber (10) extending in a tube (30) which is configured to be fixed to said object (96), the optical fiber (10) having a movable measuring sector (14) inside the tube (30), the measuring sector (14) comprising at least one Bragg grating (15), the non-Newtonian fluid (40) rendering the measuring sector (14) automatically movable relative to the tube (30) in the presence of a static deformation, the non-Newtonian fluid (40) fixing the measuring sector (14) to the tube (30) in the presence of a dynamic deformation, the measuring method comprising, in the presence of a dynamic deformation, the emission of light in the optical fiber (10), and the reception of light reflected by the Bragg grating (15),as well as a determination of the dynamic deformation as a function of a measurement law and of said reflected light.