Variable diameter conical nose
12173997 ยท 2024-12-24
Assignee
Inventors
- Nathan B Speirs (Provo, UT, US)
- David E Yamartino (Riverside, RI, US)
- Aren M Hellum (Wakefield, RI, US)
- Jesse L Belden (Dighton, MA, US)
Cpc classification
F42B19/125
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F16H1/12
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F42B19/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A variable diameter conical nose is provided. The conical nose includes a cone formed from a circular sheet of ductile material having a sector removed. The formed cone has a first overlapping portion and a second overlapping portion overlying the first overlapping portion. The first overlapping portion is fixed and the second overlapping portion is free to move. The conical nose includes an actuator capable of varying the diameter of the cone by moving the second overlapping portion relative to the first overlapping portion.
Claims
1. A variable diameter conical nose comprising: a cone having a first overlapping portion and a second overlapping portion overlying said first overlapping portion; an actuator capable of varying the diameter of said cone by moving at least one of said first overlapping portion and said second overlapping portion relative to the other; and a rack and pinion assembly of a motorized pinion gear anchored to said first overlapping portion and a rack gear mounted to said second overlapping portion; wherein said motorized pinion gear drives said rack gear to cause relative motion between said first overlapping portion and said second overlapping portion.
2. The conical nose in accordance with claim 1 wherein said actuator further comprises: a capstan; a first pin affixed to said first overlapping portion; a second pin affixed to said second overlapping portion; and a cable wound around said capstan and connected to each of said first pin and said second pin; wherein rotating said capstan winds said cable to cause relative motion between said first overlapping portion and said second overlapping portion by movement of said first pin and said second pin relative to each other.
3. The conical nose in accordance with claim 2 further comprising a support pole capable of providing axial strength to said cone.
4. The conical nose in accordance with claim 3, said support pole further comprising a conical tip forming a peak of said cone.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) Other objects, features and advantages of the present invention will become apparent upon reference to the following description of the preferred embodiments and to the drawings, wherein corresponding reference characters indicate corresponding parts throughout the several views of the drawings and wherein:
(2)
(3)
(4)
(5)
(6)
(7)
(8)
DETAILED DESCRIPTION OF THE INVENTION
(9)
(10) The invention is a conical nose design with variable geometric properties to enable control of drag, lift and cavity-producing properties. Referring to
(11) As shown in
(12) The circumference of the base of the cone 228 is S.sub.2=2R.sub.c=R(2). The circumference can be solved to provide the base radius of the cone 228 by Equation (5)
(13)
The half angle of the cone 228 is then provided by Equation (6)
(14)
and the cone height is provided by Equation (7)
(15)
(16) Thus, the geometry of the cone 228 is defined by the initial geometry of the sheet 300 (defined by R, ) and the overlap . Changing the overlap allows for control over the geometry of the cone 228. That is, the cone 228 can be formed with maximum overlap to make a tall cone with a small base diameter. Alternatively, the cone 228 can be formed with minimum overlap to make a short cone with a large base diameter.
(17) Equations (5), (6) and (7) are non-dimensional and can define attainable cone geometries for chosen combinations of and and for arbitrary values of R. These parameters can be mapped into existing models for drag, lift, and cavity-forming properties to generate control logic that couples the cone geometry to the physics. In order to control the cone geometry (and thus alter the physical state cone-body system) requires actuation of the overlap .
(18)
(19) The second overlapping portion 240 overlays the first overlapping portion 230 and is free to move. In order to vary the cone geometry, the first overlapping portion 230 and the second overlapping portion 240 are moved relative to each other. The second overlapping portion 240 is permitted to rotate in order to change the diameter of the cone 228.
(20) A motor 250 is affixed to the first overlapping portion 230 with the motor causing a pinion gear 252 to rotate. A rack gear 254 is mounted to the second overlapping portion 240 with the pinion gear 252 is engaging the rack gear. Rotating the pinion gear 252 drives the rack gear 24 in either direction A or direction B. As such, the motor 250 drives the rack and pinion assembly to cause relative motion between the first overlapping portion 230 and the second overlapping portion 240 with the result of varying the diameter of the cone 228.
(21) The cone 228 may have a support pole 260 that provides axial strength to the cone. As shown in
(22) In
(23) Alternatively, if the cable direction is re-routed from the capstan 272 to the fixed pins 274, 276; tensioning the cable will decrease the base diameter. By example,
(24) Typically, a conical nose has a fixed geometry, which is adequate for some operating conditions but not for others. The disclosed variable diameter cone 228 allows the geometry of the conical nose to be actively varied in situ, which allows for more optimal performance with respect to drag, lift, and cavity formation over a wide range of operating conditions.
(25) It will be understood that many additional changes in the details, materials, steps and arrangement of parts, which have been herein described and illustrated in order to explain the nature of the invention, may be made by those skilled in the art within the principle and scope of the invention as expressed in the appended claims.