Brief Description of the Drawings
The invention will be described by way of example with reference to the accompanying drawings, wherein:
FIG. 1 is an axial section through a first embodiment of the depthometer according to the invention; and to the deformable element, and the outlet of which is connected to an
FIG. 2 is an axial section through a second embodiment of the depthometer according to the invention.
Detailed Description of the Invention
FIG. 1 shows a depthometer, indicated overall by 1, comprising an outer substantially cylindrical waterproof casing 2. The casing 2 comprises a front transparent cup member 3, consisting preferably of relatively rigid synthetic material and comprising a substantially circular end wall 4, which in the illustrated embodiment is slightly convex outwards and comprises a central internal cylindrical cavity 5. The cavity 5 is closed by a graduated plate 6 forming the dial of a compass 7 which rotatably supports a magnetised needle 9 by a pivot 8. In one unillustrated modification, the cavity 5 houses, either in addition to or instead of the compass 7, a thermometer for measuring the external temperature. In a further unillustrated modification, the end wall 4 is thinner than that shown in FIG. 1 and is without the cavity 5.
The periphery of the end wall 4 is integral with the front end of a cylindrical wall 10, the inner surface of which is threaded and engages an outer thread of a rigid annular member 11. This latter has an annular flat front surface 12, disposed in contact with a flat annular surface 13 on the periphery of the inner surface of the end wall 4. The surface 13 has an annular groove 14, in which is housed a seal ring 15 compressed between the bottom of the groove 14 and the surface 12.
The annular member 11 is limited rearwards by a second flat annular surface 16 parallel to the surface 12, and from which an annular appendix 17 extends. This latter is limited externally by a cylindrical surface 18 provided with an annular groove 19, which houses a seal gasket 20.
The appendix 17 is forcibly mounted in a metal cup member 21 with its cylindrical surface 18 disposed in contact with the inner surface of a lateral cylindrical wall 22 of the cup member 21, and with the gasket 20 compressed between the bottom of the groove 19 and the wall 22. The cup member 21 preferably consists of drawn sheet metal, with its concavity facing the concavity of the front cup member 3 to form the rear part of the outer casing 2. The cup member 21 comprises a substantially flat end wall 23 of substantially circular shape in plan. The wall 23 is integral at its periphery with the rear end of the lateral wall 22, and forms a flexible, axially deformable foil.
The cup members 3 and 21, connected together by way of the annular member 11, define an internal chamber 24 therebetween, in which is mounted a mechanical transducer 25 supported by the annular member 11. The transducer 25 comprises a mechanical inlet, consisting of an axially mobile rod 26 maintained in contact with a central disc 27 on the end wall 23 by elastic means, not shown, and a mechanical outlet consisting of a rotatable shaft 28, the angular movements of which are proportional in extent and sign, to the axial movements of the rod 26. Preferably the transducer 25 comprises means (not shown) for amplifying at their outlet the inlet signals consisting of the axial movements of the rod 26. The shaft 28 extends through a central hole 29 in a disc 30 connected by screws 31 to the flat front annular surface 12 of the annular member 11, and supports a radial pointer 23 at the front of the disc 30. This pointer is moved by the shaft 28 along a scale (not shown) graduated generally in meters or fractions of a meter drawn on the outer periphery of the front surface of the disc 30, which forms the dial of the depthometer 1.
A rigid ring 33 preferably made of metal is forcibly mounted on the outer surface of the lateral wall 22 of the cup member 21, and its thickness, which is greater than the thickness of the lateral wall 22, makes this later substantially insensitive to the radial forces transmitted to it by the wall 22 following the axial deformations of the end wall 23. The ring 33 is disposed with its front in contact with the annular surface 16, and comprises at its rear end an outer radial flange 34, engaged in an annular groove 35 in an annular member 36 consisting preferably of resilient synthetic material. The member 36 is disposed with its front in contact with the free of the lateral wall 10 of the cup member 3, and comprises at its rear two diametrically opposing axial flexible appendices 37, which form a strap for fixing the depthometer to a limb of an underwater swimmer. The annular member 36 is secured to the ring 33 by an outer rigid ring 38 mounted in a groove 39 formed in the outer surface of the annular member 36 between its front end and the groove 35. Preferably, as in the example illustrated, any possibility of accidental separation of the flange 34 from the groove 35 is eliminated by connecting together diametrically opposite points on the inner surface of the annular member 36 with strips 40 integral with the annular member 36, and extending parallel to the outer surface of the end wall 23 of the member 21.
In an unillustrated modification, a perforated metal disc is mounted in the annular member 36 parallel to the outer surface of the wall 23, to mechanically isolate this latter and prevent any forces being applied to it other than the outer hydrostatic pressure.
FIG. 2 shows a depthometer 41, substantially identical to the depthometer 1 except for the fact that the rear cup member 21 comprises an undulated end wall 42, and is therefore able to make relatively large axial deformations, greater than those of the depthometer 1 for equal external pressures 23.
As shown in FIG. 2, the end wall 4 of the cup member 3 of the depthometer 41 is thinner than that of the depthometer 1, and is without the cavity 5 or compass 7.
When the depthometer 1 is immersed to a certain depth, the pressure of the external water on the end wall 23 causes this latter to deform and the disc 27 to move towards the cup member 3. As the lateral wall 22 of the cup member 21 is forcibly embedded between the outer rigid ring 33 and annular rigid appendix 17 of the annular member 11, the outer periphery of the end wall 23 is substantially prevented from rotating about the rear end of the wall 22, or from moving radially inwards, as would occur if the wall 22 was left free to deform. Consequently, the wall 23 behaves as a circular plate constrained at its periphery and loaded with a normal uniformly distributed load. Under these conditions, the axial movements of the disc 27 are related to the load by a law greater than cubic. This fact is very advantageous, as the angular movements of the pointer 32 for a determined change in external pressure are considerable for relatively low pressures, whereas they are relatively small for relatively high pressures. Consequently, the depth readings are extremely precise and easily readable at low depths, i.e. precisely where the underwater swimmer needs to exactly know his own depth to correctly undergo the necessary decompression periods.
The aforesaid however is not valid in the case of the depthometer 41, in which the end wall 42, being undulated, behaves substantially as a spring with its deformation related to the load by a substantially linear law. Because of this characteristic, the end-of-scale reading of the depthometer 41 is generally lower than that of the depthometer 1, and it is limited to depths for which the importance of the non-linearity of the movements of the pointer 32 with the external pressure is negligible.
It is important to note that in both depthometers 1 and 41, the annular member 36 is merely a fixing support for the means for connecting the relative depthometer to a limb of the user, and the rear part of the outer casing 2 consists of the cup member 21 which, being of metal, gives strength to the depthometer.