1. Field of the Invention
The invention relates to a spin-stabilized artillery projectile having a projectile detonator located in the projectile ogive, and a radially deployed brake device in the ogive for a reduction in the longitudinal deviation of the projectile in a target area.
2. Discussion of the Prior Art
A spin-stabilized artillery projectile of this kind is known from DE 101 43 312 C1 and DE 102 42 588 B4. This artillery projectile has a radially deployed brake device in its ogive that serves to reduce the longitudinal deviation of the artillery projectile in its target area. A 1D-correction is thus possible.
The deviation area of an artillery projectile in a target area is ellipsoidal, i.e. it has a longitudinal axis and a lateral axis orthogonal to it. The longitudinal axis, i.e. the longitudinal deviation is greater than the lateral axis, i.e. the lateral deviation. The brake device of the known spin-stabilized artillery projectile serves to reduce the large longitudinal deviation of the artillery projectile in the target area compared to the lateral deviation and thus correspondingly improves the accuracy of aim.
The object of the invention is to provide a spin-stabilized artillery projectile of the type named in the introduction, by means of which the lateral deviation of the artillery projectile in the target area can also be reduced by simple means and the accuracy of aim thus correspondingly improved.
The object is achieved according to the invention by the features, as described herein, also setting forth preferred embodiments or developments of the trajectory-corrected, spin-stabilized artillery projectile.
Because with the spin-stabilized artillery projectile according to the invention a number of impulse elements are provided distributed around the circumference, it is possible to effect a reduction in the lateral deviation of the artillery projectile in the target area by a suitable activation of at least one corresponding impulse element. By means of the artillery projectile according to the invention, a reduction in the lateral deviation of the artillery projectile in the target area is also realized in addition to a reduction in the longitudinal deviation and the accuracy of aim in the target area is substantially improved in a relatively simple manner. In this case, it is advantageous if the impulse elements are evenly distributed around the circumference of the artillery projectile because it is then comparatively simple to control the respective appropriate impulse element.
With the spin-stabilized artillery projectile according to the invention, the impulse elements can be provided in the ogive of the artillery projectile. With an embodiment of this kind, the impulse elements can be formed by the pyrotechnical force elements assigned to a front ring area of a shroud covering the brake device, and by means of which the shroud can be blown off from the ogive of the artillery projectile. Impulse elements of this kind in the form of pyrotechnical force elements are described in DE 101 43 312 C1, cited in the discussion of the prior art.
A further possibility exists in that the impulse elements are provided on a ring element arranged between the projectile detonator and the projectile casing. An embodiment of this latter kind also has the advantage that the artillery projectile can be combined, unmodified so to speak, with a known projectile detonator.
Especially with artillery projectiles with a large range, it can be advantageous if the impulse elements are provided in the tail section, i.e. in the base bleed, of the artillery projectile.
To determine the angle of rotation position of the artillery projectile at a particular time and therefore of the impulse elements distributed around its circumference, a device is used that interacts with the impulse elements for their appropriate activation. This device can be provided in the artillery projectile so that an autonomous device and an autonomous artillery projectile results. A different possibility is that this device can be controlled with the aid of a satellite. A satellite-aided control of a trajectory-corrected, spin-stabilized artillery projectile of the type named in the introduction, i.e. for reducing the longitudinal deviation of the artillery projectile in the target area is described in EP 1 103 779 B1, the disclosure content of which relates to the appropriate activation of the impulse elements provided around the circumference of the artillery projectile to reduce the lateral deviation in the target area, is part of this invention.
The trajectory-corrected, spin-stabilized artillery projectile has the advantage that by structurally simple means a reduction in the lateral deviation of the artillery projectile in a target area is realized in addition to a reduction in the longitudinal deviation. Furthermore, the reduction in the lateral deviation, i.e. the controlled lateral correction of the artillery projectile, is carried out an interval before the activation of the brake device to reduce the longitudinal deviation of the artillery projectile in the target area, because the lateral correction takes place faster than it takes for the brake device to effect a reduction in the longitudinal deviation.
Whereas with the known spin-stabilized artillery projectile a reduction in the longitudinal deviation, i.e. a 1D-correction results, the artillery projectile according to the invention provides a 1.5D-correction.
Further details, features and advantages are given in the following description of two exemplary embodiments of the spin-stabilized artillery projectile and its operation, and are explained in the drawings; wherein:
The pyrotechnical force elements 18 form the impulse elements 24 of the artillery projectile 10 evenly distributed around the circumference of the artillery projectile 10.
The brake device 16 serves to reduce the longitudinal deviation of the artillery projectile 10 in the target area (see
With the aid of the impulse elements 24 distributed around the circumference of the artillery projectile 10, a reduction in the lateral deviation of the artillery projectile 10 results due to suitable activation of the corresponding impulse elements 24 on an artillery projectile 10 with a brake device 16, i.e. a further reduction in the deviation area 32 to a deviation area 36 bounded by the boundary line 38. The deviation area 36 in the x-direction is determined by the longitudinal dimension Ar and in the y-direction by the lateral dimension Br, with it being preferred that Ar and Br be equal, so that a circular deviation area 36 results.
For further details of the artillery projectile 10 according to
Especially with artillery projectiles 10 with a long range 44 (see
With regard to the reduction of the longitudinal deviation of the artillery projectile and the corresponding method for target-related correction of the ballistic trajectory refer to EP 1 103 779 B1 cited in the introduction, the disclosure of which is incorporated herein by reference in its entirety.
Number | Date | Country | Kind |
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10 2005 052 474 | Nov 2005 | DE | national |
Number | Name | Date | Kind |
---|---|---|---|
5054712 | Bar et al. | Oct 1991 | A |
5456429 | Mayersak | Oct 1995 | A |
5647558 | Linick | Jul 1997 | A |
6467721 | Kautzsch et al. | Oct 2002 | B1 |
6672536 | Bar et al. | Jan 2004 | B2 |
7121210 | Steele | Oct 2006 | B2 |
20030042356 | Bar et al. | Mar 2003 | A1 |
20050258308 | Bar et al. | Nov 2005 | A1 |
Number | Date | Country |
---|---|---|
28 09 281 | Mar 1978 | DE |
38 12 588 | Apr 1988 | DE |
40 36 166 | Nov 1990 | DE |
101 43 312 | Sep 2001 | DE |
102 42 588 | Mar 2004 | DE |
1 103 779 | Nov 2000 | EP |
Number | Date | Country | |
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20070095238 A1 | May 2007 | US |