LASER ABLATION PROCESS AND CORRESPONDING GOLF CLUB HEAD MADE BY THE SAME
Disclosed here is a method of making a golf club head. The method comprises steps of laser ablating a second-part surface of a second part of the golf club head such that a second-part ablated surface is formed in the second part, and bonding together a first-part surface, of a first part of the golf club head, and the second-part ablated surface of the second part of the golf club head.
1 . A method of making a golf club head, the method comprising steps of:
laser ablating a second-part surface of a second part of the golf club head such that a second-part ablated surface is formed in the second part; and
bonding together a first-part surface, of a first part of the golf club head, and the second-part ablated surface of the second part of the golf club head, wherein, prior to bonding together the first-part surface and the second-part ablated surface, the second-part ablated surface has a water contact angle greater than zero degrees and less than 30°.
2 . The method according to claim 1 , wherein:
the first part is a strike plate;
the second part is a body;
the second-part ablated surface defines a plate-opening recessed ledge of the body; and
the first-part surface and the second-part ablated surface are non-planar.
3 . The method according to claim 2 , wherein the second-part ablated surface further defines a sidewall extending along, contiguous with, and angled relative to the plate-opening recessed ledge.
4 . The method according to claim 3 , wherein the sidewall defines an angle, between 70° and 120°, relative to the plate-opening recessed ledge.
5 . The method according to claim 1 , wherein:
the first part is one of a crown insert or a sole insert;
the second part is a body;
the second-part ablated surface defines one of a top plate-opening recess ledge of the body or a sole-opening recessed ledge of the body; and
the first-part surface and the second-part ablated surface are non-planar.
6 . The method according to claim 1 , wherein:
the second-part ablated surface comprises a second-part ablation pattern of peaks and valleys;
each one of the valleys of the second-part ablation pattern has a second-part-valley major dimension and a second-part-valley minor dimension; and
at least one of the second-part-valley major dimension or the second-part-valley minor dimension of any one of the valleys of the second-part ablation pattern is within 20% of a corresponding at least one of the second-part-valley major dimension or the second-part-valley minor dimension of all other ones of the valleys of the second-part ablation pattern.
7 . (canceled)
8 . The method according to claim 1 , wherein, prior to bonding together the first-part surface and the second-part ablated surface, the second-part ablated surface has a water contact angle between 2° and 25°.
9 .- 11 . (canceled)
12 . The method according to claim 1 , wherein the step of bonding together the first-part surface and the second-part ablated surface comprises adhesively bonding together the first-part surface and the second-part ablated surface with an adhesive.
13 . The method according to claim 1 , wherein:
the step of laser ablating the second-part surface of the second part of the golf club head comprises impacting the second-part surface with a second-part laser beam; and
an intensity of the second-part laser beam is between 40 watts and 60 watts; and
a pulse frequency of the second-part laser beam is between 40 kHz and 60 kHz.
14 . The method according to claim 1 , wherein the first-part surface and the second-part ablated surface are non-planar.
15 . The method according to claim 1 , further comprising a step of laser ablating the first-part surface of the first part of the golf club head such that a first-part ablated surface is formed in the first part, wherein the step of bonding together the first-part surface and the second-part ablated surface comprises bonding together the first-part ablated surface and the second-part ablated surface.
16 . The method according to claim 15 , wherein:
the first part comprises a plurality of plies;
each one of the plurality of plies is made of a fiber-reinforced polymeric material; and
the second part is made of a metallic material.
17 . The method according to claim 16 , wherein metallic material comprises a cast titanium alloy.
18 . The method according to claim 16 , wherein:
the fiber-reinforced polymeric material comprises continuous carbon fibers; and
the metallic material comprises a cast titanium material.
19 . The method according to claim 16 , wherein:
the fiber-reinforced polymeric material comprises short carbon fibers; and
the metallic material comprises a cast titanium material.
20 . The method according to claim 15 , wherein:
the first-part ablated surface comprises a first-part ablation pattern of peaks and valleys;
each one of the valleys of the first-part ablation pattern has a first-part-valley major dimension and a first-part-valley minor dimension; and
at least one of the first-part-valley major dimension or the first-part-valley minor dimension of any one of the valleys of the first-part ablation pattern is within 20% of a corresponding at least one of the first-part-valley major dimension or the first-part-valley minor dimension of all other ones of the valleys of the first-part ablation pattern;
the second-part ablated surface comprises a second-part ablation pattern of peaks and valleys;
each one of the valleys of the second-part ablation pattern has a second-part-valley major dimension and a second-part-valley minor dimension; and
at least one of the second-part-valley major dimension or the second-part-valley minor dimension of any one of the valleys of the second-part ablation pattern is within 20% of a corresponding at least one of the second-part-valley major dimension or the second-part-valley minor dimension of all other ones of the valleys of the second-part ablation pattern.
21 . (canceled)
22 . The method according to claim 20 , wherein the first-part ablation pattern is different than the second-part ablation pattern.
23 . The method according to claim 15 , wherein, prior to bonding together the first-part ablated surface and the second-part ablated surface:
the first-part ablated surface has a water contact angle between 2° and 25°; and
the second-part ablated surface has a water contact angle between 2° and 25°.
24 . The method according to claim 23 , wherein, prior to bonding together the first-part ablated surface and the second-part ablated surface, the water contact angle of the first-part ablated surface is different than the water contact angle of the second-part ablated surface.
25 . (canceled)
26 . The method according to claim 15 , wherein:
the step of laser ablating the first-part surface of the first part of the golf club head comprises impacting the first-part surface with a first-part laser beam;
the step of laser ablating the second-part surface of the second part of the golf club head comprises impacting the second-part surface with a second-part laser beam; and
at least one of:
an intensity of the first-part laser beam is different than an intensity of the second-part laser beam; or
a pulse frequency of the first-part laser beam is different than a pulse frequency of the second-part laser beam.
27 . The method according to claim 15 , wherein:
the step of laser ablating the first-part surface of the first part of the golf club head comprises impacting the first-part surface with a first-part laser beam generated by a first-part laser;
the step of laser ablating the second-part surface of the second part of the golf club head comprises impacting the second-part surface with a second-part laser beam generated by a second-part laser; and
the first-part laser is different than the second-part laser.
28 . The method according to claim 27 , wherein:
the first material is a fiber-reinforced polymeric material;
the second material is a metallic material;
the first-part laser is a carbon dioxide laser; and
the second-part laser is a fiber laser.
29 .- 67 . (canceled)