Golf ball fabrication method

10315078 ยท 2019-06-11

Assignee

Inventors

Cpc classification

International classification

Abstract

A golf ball fabrication method comprises Step a: providing a core; Step b: spraying a thin resin film on the surface of the core to form a conductive layer; Step c: vacuum-electroplating the surface of the core to form a glossy thin metallic film functioning as a reflective layer; and Step d: encapsulating the glossy thin metallic film with a transparent resin layer in an injection-molding technology to form a transparent outer layer of the golf ball. The method can fabricate in a simple way a golf ball having a superior reflective effect and a long service life simultaneously.

Claims

1. A golf ball fabrication method comprising the steps of: Step a: providing a core, wherein the surface of the core is ground to form a roughened surface; Step b: spraying a thin resin film on a surface of the core to form a conductive layer; Step c: vacuum-electroplating the surface of the core to form a continuous thin metallic film functioning as a reflective layer, wherein the thin metallic film has a thickness of 1-30 m; and Step d: encapsulating the thin metallic film with a transparent resin layer in an injection-molding technology to form a transparent outer layer of a golf ball, wherein the transparent resin layer directly contacts the thin metallic film.

2. The golf ball fabrication method according to claim 1, wherein in Step a, the core is made of a mixture containing rubber or plastic.

3. The golf ball fabrication method according to claim 1, wherein in Step a, the core is fabricated in a mold; after being demolded, the core has a parting line on the surface thereof; the parting line is removed with a cutting tool; then the core is ground to have a roughened surface.

4. The golf ball fabrication method according to claim 3, wherein a release agent is attached to an inner surface of the mold to make the core easily demolded; while the core is ground to have the roughened surface, the release agent is also ground away from the surface of the core.

5. The golf ball fabrication method according to claim 1, wherein in Step b, the thin resin film is made of a PU (polyurethane) resin.

6. The golf ball fabrication method according to claim 1, wherein in Step c, the thin metallic film is made of an aluminum alloy.

7. The golf ball fabrication method according to claim 1, wherein in Step d, the transparent resin layer is made of an artificial resin.

8. The golf ball fabrication method according to claim 1, wherein in Step d, after the transparent resin layer is formed in an injection-molding technology and demolded, the surface of the golf ball has a parting line; the parting line is removed with a cutting tool or via grinding; a thin transparent paint is sprayed on the surface of the transparent resin layer to form an outermost protection layer of the golf ball.

9. The golf ball fabrication method according to claim 8, wherein after the parting line is removed, the transparent resin layer is sandblasted to form a roughened surface, and text or patterns are printed on the roughened surface, and then the thin transparent paint is sprayed on the surface of the transparent resin layer to form a protection layer; alternatively, after the transparent resin layer is sandblasted to form a roughened surface, a thin ground-coat is sprayed on the roughened surface, and then text or patterns are printed on the thin ground-coat, and finally the thin transparent paint is sprayed on the thin ground-coat to function as a protection layer.

10. The golf ball fabrication method according to claim 1, wherein in Step c, after vacuum-electroplating is completed, a colored thin transparent resin film is sprayed on the thin metallic film.

11. The golf ball fabrication method according to claim 1, wherein in Step d, the transparent resin layer is colored.

12. The golf ball fabrication method according to claim 1, wherein in Step d, the transparent resin layer contains fluorescent powder.

Description

BRIEF DESCRIPTION OF THE DRAWINGS

(1) FIG. 1 is a sectional view of a conventional golf ball;

(2) FIG. 2 is a sectional view of a golf ball disclosed in U.S. Pat. No. 6,949,595 B2;

(3) FIG. 3A is a sectional view of a golf ball disclosed in U.S. Pat. No. 5,427,378;

(4) FIG. 3B is a locally-enlarged sectional view of FIG. 3A showing reflective particles distributed randomly;

(5) FIG. 3C is a locally-enlarged sectional view according to FIG. 3A showing reflective particles distributed extensively;

(6) FIG. 3D is a schematic view according to FIG. 3A showing light reflection when the light is incident vertically and non-vertically;

(7) FIG. 4 is a flowchart of a golf ball fabrication method according to one embodiment of the present invention;

(8) FIG. 5 is a sectional view schematically showing a golf ball fabricated according to one embodiment of the present invention;

(9) FIG. 6 is a locally-enlarged sectional view of a golf ball fabricated according to one embodiment of the present invention;

(10) FIG. 7 is a perspective view schematically showing a parting line formed on a core of a golf ball fabricated according to one embodiment of the present invention;

(11) FIG. 8 is a diagram schematically showing a golf ball, which is fabricated according to one embodiment of the present invention and hit by a golf club;

(12) FIG. 9 is a diagram schematically showing that light is fully reflected by a golf ball fabricated according to one embodiment of the present invention;

(13) FIG. 10 is a diagram schematically showing that text or patterns are printed and then a thin transparent paint are sprayed on a finely-roughened surface of a golf ball fabricated according to one embodiment of the present invention;

(14) FIG. 11 is a sectional view schematically showing that a colored thin transparent resin film is sprayed on a glossy thin metallic film of a golf ball fabricated according to one embodiment of the present invention; and

(15) FIG. 12 is a sectional view schematically showing that fluorescent powder is distributed inside a transparent resin layer of a golf ball fabricated according to one embodiment of the present invention.

DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS

(16) Refer to FIGS. 4-6. The golf ball fabrication method of the present invention comprises

(17) Step a: providing a core 20;

(18) Step b: spraying a thin resin film 30 on the surface of the core 20 to form a conductive layer;

(19) Step c: vacuum-electroplating the surface of the core 20 to form a glossy thin metallic film 40 functioning as a reflective layer; and

(20) Step d: encapsulating the glossy thin metallic film 40 with a transparent resin layer 50 in an injection-molding technology to form a transparent outer layer of the golf ball 10.

(21) Refer to FIGS. 4-6 again. In Step a, the core 20 is made of a mixture containing rubber or plastic. The core 20 is acquired from different sources according to the characteristics of the golf ball 10. In one embodiment, the core 20 is obtained via purchasing an existing product. In one embodiment, the core 20 is ground to have a finely-roughened surface 21. In one embodiment, the core 20 is fabricated in a high-temperature high-pressure compression molding method; after being demolded, the core 20 has a parting line 201 (as shown in FIG. 7); the parting line 201 is removed with a cutting tool; then the core 20 is ground to have a finely-roughened surface 21. In one embodiment, a release agent is attached to the inner surface of the high-temperature high-pressure molds to make the core 20 easily demolded from the molds; while the core 20 is ground to have a finely-roughened surface 21, the release agent is also ground away from the surface of the core 20.

(22) In Step b, the thin resin film 30 is made of a PU (polyurethane) resin and coated on the finely-roughened surface 21 of the core 20. The smooth surface of the core 20 and the release agent attached to the high-temperature high-pressure molds beforehand are the factors impairing the bonding of the core 20 and the thin resin film 30. Since the two factors are removed in the present invention, the bonding of the core 20 and the thin resin film 30 is enhanced.

(23) In Step c, the glossy thin metallic film 40 is made of an aluminum alloy and vacuum-electroplated on the thin resin film 30. The glossy thin metallic film 40 cannot be directly vacuum-electroplated on the surface of the core 20. Therefore, the thin resin film 30 is sprayed on the surface of the core 20 to form a conductive layer. Thereby, the glossy thin metallic film 40 can be tightly bonded to the surface of the core 20. It is exactly the focus of the present invention: vacuum-electroplating the thin resin film 30 on the surface of the core 20 to make the glossy thin metallic film 40 tightly bonded to the surface of the core 20 and form a mirror-like reflective layer. While the golf ball 10 is hit, the tight bonding of the glossy thin metallic film 40 and the core 20 makes the glossy thin metallic film 40 less likely to peel off from the core 20. The glossy thin metallic film 40 should be very thin, limited to have a thickness of 1-30 m. The glossy thin metallic film 40 is made of a metallic material. The glossy thin metallic film 40 having too large a thickness will make the golf ball 10 less likely to restore its original spherical shape after the golf ball 10 is hit by a golf club 60. In other words, the resilient force of the core 20 is hard to restore the deformed glossy thin metallic film 40 to its original shape after the golf ball 10 is hit by the golf club 60. Therefore, the glossy thin metallic film 40 must be very thin lest the golf ball 10 cannot be restored to its original spherical shape (as shown in FIG. 8).

(24) In one embodiment, a sputtering technology replaces the vacuum-electroplating technology and is used to form the thin glossy thin metallic film 40 in Step c. In such a caser, spraying the thin resin film 30 on the surface of the core 20 (Step b) is unnecessary. The glossy thin metallic film 40 formed in the sputtering technology has a thickness of 0.3-5 m.

(25) In Step d, the transparent resin layer 50 is made of an artificial resin and encapsulates the glossy thin metallic film 40 in an injection-molding technology. The transparent resin layer 50 has an outermost surface 51 parallel to the continuous reflective surface of the glossy thin metallic film 40, whereby the transparent resin layer 50 can protect the continuous reflective surface of the glossy thin metallic film 40. Thus, no matter whether a light beam incident to the reflective layer vertically or non-vertically, the light beam can be fully reflected without obstruction (as shown in FIG. 9). Then, the reflective effect of the golf ball 10 can last longer. The transparent resin layer 50 can protect the glossy thin metallic film 40 from being damaged by hitting. While a light beam is incident to the glossy thin metallic film 40 through the transparent resin layer 50 and then reflected from the glossy thin metallic film 40 to the exterior through the transparent resin layer 50, the reflective effect is optimized. The glossy thin metallic film 40 is vacuum-electroplated on the thin resin film 30 and combined with the finely-roughened surface 21 of the core 20. The tight bonding of the glossy thin metallic film 40 and the core 20 makes the glossy thin metallic film 40 less likely to peel off from the hit golf ball 10. The transparent resin layer 50 also protects the glossy thin metallic film 40 from being fogged or damaged.

(26) After the transparent resin layer 50 is formed in an injection-molding technology and demolded, the surface of the golf ball 10 has a parting line. The parting line is removed with a cutting tool or via grinding, and a thin transparent paint 53 is sprayed on the surface of the transparent resin layer 50 to form an outermost protection layer of the golf ball 10. In one embodiment, after the parting line 201 is removed, the transparent resin layer 50 is sandblasted to form a finely-roughened surface; text or patterns 52 are printed on the finely-roughened surface; then the thin transparent paint 53 is sprayed on the surface of the transparent resin layer 50 to form a protection layer (as shown in FIG. 10). In one embodiment, after the transparent resin layer 50 is sandblasted to form a finely-roughened surface, a thin ground-coat, which favors printing, is sprayed on the finely-roughened surface 21; then text or patterns 52 are printed on the thin ground-coat; finally the thin transparent paint 53 is sprayed on the surface to function as a protection layer.

(27) In one embodiment, after vacuum-electroplating is completed in Step c, a colored thin transparent resin film 41 is sprayed on the glossy thin metallic film 40, as shown in FIG. 11. Thus, the golf balls 10 may have different colors but can still reflect light.

(28) In one embodiment, the glossy thin metallic film 40 is encapsulated with a colored transparent resin layer 50 in Step d. Thus, the golf balls 10 can reflect light beams of different colors. In one embodiment, the transparent resin layer 50 of the golf ball 10 contains fluorescent powder 54. While the golf ball 10 is flying, the glossy thin metallic film 40 and the fluorescent powder 54 of the outermost transparent resin layer 50 reflect light simultaneously and glisten together.

(29) In summary, the present invention proposes a simple method to fabricate a golf ball 10, providing an optimized reflective function for the golf ball 10, protecting the glossy thin metallic film 40, bonding the glossy thin metallic film 40 to the core 20 tightly, exempting the glossy thin metallic film 40 from peeling off from the hit golf ball 10, protecting the glossy thin metallic film 40 from fogging and damage, and prolonging the service life of the golf ball 10.