IP Library Granted Patent US 11,919,211
Granted Patent B2
US 11,919,211 · App. 16/621,086 · Granted Mar 5, 2024

Process for plastic overmolding on a metal surface and plastic-metal hybride part

Inventors: Frank Peter Theodorus Johannes Van Der Burgt (Echt, NL); Ruogu Liao (Echt, NL)
Assignee: DSM IP ASSETS B.V.
B29C45/14311B29C45/0005B32B15/088B32B15/09C08L67/02C08L77/06B29C2045/14803B29C2045/14868B29K2067/00B29K2077/00B29K2081/04B29K2309/08B29L2031/3493C08L2205/025C08L2205/03
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Quick Facts
Patent No.
US 11,919,211
App. No.
16/621,086
Granted
Mar 5, 2024
Kind
B2
Abstract

The invention relates to a process for manufacturing a plastic-metal hybrid part by plastic overmolding on a metal surface via nano-molding technology (NMT), wherein the moldable plastic material is a polymer composition comprising thermoplastic polyamide, or a thermoplastic polyester, or a blend thereof, and boron silicon glass fibers. The invention also relates to a plastic-metal hybrid part, obtainable by said process, wherein a metal part is overmolded by a polymer composition comprising thermoplastic polyamide, or a thermoplastic polyester, or a blend thereof, and boron silicon glass fibers.

Claims (29)

1. A process for manufacturing a plastic-metal hybrid part by plastic overmolding on a metal surface via nano-molding technology (NMT), wherein the process comprises the steps of:

(i) providing a metal substrate having a surface area with surface irregularities of nano-size dimensions;

(ii) providing a polymer composition; and

(iii) forming a plastic structure on the metal substrate by molding said polymer composition directly on at least a part of the surface area with the surface irregularities of the metal substrate;

wherein the polymer composition consists of:

(A) 30-80 wt. % of a thermoplastic polyamide component;

(B) 20-70 wt. % of silicon-boron glass fibers comprising predominantly silicon dioxide (SiO 2 ) and boron trioxide (B 2 O 3 ); and

(C) 0.5-10 wt. % of other components, wherein the other components are selected from the group consisting of glass fibers, carbon fibers, glass beads, glass flakes, kaolin, clay, talc, mica, wollastonite, calcium carbonate, silica, potassium titanate, flame retardants, flame retardant, synergists, acid scavengers, plasticizers, stabilizers, processing aids, pigments and colorants, and antistatic agents,

wherein

components (A) and (B) are present in a combined amount of 90-99.5 wt. %, and wherein

all weight percentages (wt. %) are relative to the total weight of the polymer composition.

2. The process according to claim 1 , wherein the metal substrate is formed from a material selected from the group consisting of aluminum, aluminum alloy, titanium, titanium alloy, iron, steel, magnesium, and magnesium alloy.

3. The process according to claim 1 , wherein the process comprises, prior to step i), a step of anodizing the metal substrate using an anodizing agent selected from the group consisting of chromic acid, phosphoric acid, sulfuric acid, oxalic acid, and boric acid.

4. The process according to claim 1 , wherein the silicon-boron glass fibers comprise silicon dioxide and boron trioxide in a combined amount of at least 90 wt. %, relative to the weight of the silicon-boron glass fibers.

5. The process according to claim 4 , wherein the silicon-boron glass fibers consist of:

(a) 65-85 wt. % of SiO 2 ;

(b) 15-30 wt. % of B 2 O 3 ;

(c) 0-4 wt. % of sodium oxide (Na 2 O) or potassium oxide (K 2 O), or a combination thereof; and

(d) 0-4 wt. % of other components; wherein

the weight percentages (wt. %) are relative to the weight of the silicon-boron glass fibers.

6. The process according to claim 1 , wherein the polymer composition comprises E-glass fibers in an amount of at most 30 wt. %, relative to the weight of the silicon-boron glass fibers.

7. The process according to claim 1 , wherein the thermoplastic polyamide component is selected from the group consisting of aliphatic polyamides, semi-crystalline semi-aromatic polyamides, amorphous semi-aromatic polyamides and blends thereof.

8. The process according to claim 7 , wherein the polymer composition comprises:

(A.1) 30-70 wt. % of the semi-crystalline semi-aromatic polyamide and (A.2) 10-40 wt. % of the amorphous semi-aromatic polyamide; and

(B) 20-70 wt. % of the silicon-boron glass fibers;

wherein the weight percentages (wt. %) are relative to the total weight of the polymer composition.

9. The process according to claim 8 , wherein the thermoplastic polyamide component comprises a blend of a semi-crystalline semi-aromatic polyamide and an amorphous semi-aromatic polyamide.

10. The process according to claim 1 , wherein the polymer composition comprises E-glass fibers in an amount of at most 15 wt. %, relative to the weight of the silicon-boron glass fibers.

11. The process according to claim 1 , wherein the polymer composition comprises a laser direct structuring (LDS) additive.

Assignments (2)
NUNC PRO TUNC ASSIGNMENT Recorded May 27, 2025
From: DSM IP ASSETS B.V.
To: ENVALIOR B.V.
Reel/Frame 071393/0045 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Dec 10, 2019
From: VAN DER BURGT, FRANK PETER THEODORUS JOHANNES; LIAO, RUOGU
To: DSM IP ASSETS B.V.
Reel/Frame 051234/0004 →
Priority Claims (2)
EP 17176096 · Jun 14, 2017 · regional
WO PCT/CN2017/088639 · Jun 16, 2017 · international
Continuity (1)
Related Publication 20210138704A1 · May 13, 2021