一种人造塑胶羽毛球
By setting inclined dynamic feathers and a ring-shaped kinetic energy harvesting ring on the artificial plastic badminton shuttlecock, the problem of insufficient flight stability in the existing technology has been solved, achieving higher rotation speed and more stable flight trajectory, and extending service life.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- 孙启畅
- Filing Date
- 2025-08-04
- Publication Date
- 2026-07-17
AI Technical Summary
Existing artificial shuttlecocks lag behind natural shuttlecocks in flight stability, mainly due to insufficient deformation recovery speed of the feather vanes.
Design a synthetic plastic badminton shuttlecock with inclined power feathers and a ring-shaped kinetic energy collection ring on the shaft. Utilize airflow to generate rotational force on the power feathers, thereby improving the shuttlecock's rotational speed and stability.
The design of the power feathers and kinetic energy harvesting ring significantly improves the flight spin speed and stability of the badminton shuttlecock, resulting in a straighter flight trajectory and extended service life.
Smart Images

Figure CN224506213U_ABST
Abstract
Claims
1. A synthetic plastic badminton shuttlecock, comprising a shuttlecock head and a feather assembly, wherein the feather assembly is composed of a plurality of feather units evenly distributed circumferentially and connected end-to-end along their sides, each feather unit comprising a feather shaft and feathers fixed to the upper part of the feather shaft, adjacent feathers being connected along their sides, and the lower end of the feather shaft being inserted and fixed to the shuttlecock head, characterized in that, Each of the feather shafts is provided with a power feather plate, which is sheet-shaped and extends toward the center of the feather assembly, and is inclined relative to the line connecting the center of the feather shaft and the center of the feather assembly.
2. The artificial shuttlecock according to claim 1, wherein The power hair sheet is rectangular in shape, with its long side fitting against the hair rod.
3. The artificial shuttlecock according to claim 1, wherein The power bristle is triangular in shape, with the pointed end facing the ball head and the long side fitting against the bristle rod.
4. The artificial shuttlecock according to claim 1, wherein At least one annular kinetic energy harvesting ring is provided around the outer side of each of the hairs. The kinetic energy harvesting ring is located between the hair and the ball head, and its shape is an open umbrella, with the concave surface facing the ball head.
5. The artificial shuttlecock according to claim 1, wherein The lower part of each of the aforementioned hair rods is fixed by at least one annular coil.
6. The artificial shuttlecock according to claim 1, wherein The power bristles are disposed on the inner or outer surface of the bristle rod.
7. The artificial shuttlecock according to claim 1, wherein The hair bar is columnar, and its cross-sectional area gradually increases from the top of the hair piece to the ball head.
8. The artificial shuttlecock according to claim 7, wherein The hair rod is in the shape of a quadrangular prism.
9. The artificial shuttlecock according to claim 4, wherein The cross-section of the kinetic energy harvesting coil is triangular.
10. The artificial shuttlecock according to claim 4, wherein At least one of the concave and convex surfaces of the kinetic energy harvesting ring is an arc surface.