FORD WSS-M21P44-A2-2012 CORROSION PROTECTIVE COATING ZINC NICKEL ALLOY TRIVALENT PASSIVATE WITH ORGANIC SEAL SILVER TO BE USED WITH FORD WSS-M99P1111-A (Shown on FORD WSS-M21P44-.pdf
《FORD WSS-M21P44-A2-2012 CORROSION PROTECTIVE COATING ZINC NICKEL ALLOY TRIVALENT PASSIVATE WITH ORGANIC SEAL SILVER TO BE USED WITH FORD WSS-M99P1111-A (Shown on FORD WSS-M21P44-.pdf》由会员分享,可在线阅读,更多相关《FORD WSS-M21P44-A2-2012 CORROSION PROTECTIVE COATING ZINC NICKEL ALLOY TRIVALENT PASSIVATE WITH ORGANIC SEAL SILVER TO BE USED WITH FORD WSS-M99P1111-A (Shown on FORD WSS-M21P44-.pdf(6页珍藏版)》请在麦多课文档分享上搜索。
1、 ENGINEERING MATERIAL SPECIFICATION Date Action Revisions Rev 03 2012 12 06 N Status / Revised Removed A4, A2 to N Status replaced by WSS-M21P51-A2 G. Weber, NA 2004 09 14 Revised Para 3.5.1 revised D. Drobnich 2004 09 08 Revised Para 1, 3.3.1, 3.3.2, 3.3.4, 3.4.1, 3.4.3, 3.5.1, 3.5.2, 3.5.3, 3.5.4,
2、 3.5.5, 3.7.1, 3.12, Table 1 and Table 1 (C) revised D. Drobnich 2004 09 02 Activated D. Drobnich Controlled document at www.MATS Copyright 2012, Ford Global Technologies, LLC Page 1 of 6 CORROSION PROTECTIVE COATING, ZINC NICKEL ALLOY, WSS-M21P44-A1 TRIVALENT PASSIVATE, SILVER CORROSION PROTECTIVE
3、COATING, ZINC NICKEL ALLOY, WSS-M21P44-A2 TRIVALENT PASSIVATE WITH ORGANIC SEAL, SILVER NOT TO BE USED FOR NEW DESIGN CORROSION PROTECTIVE COATING, ZINC NICKEL ALLOY, WSS-M21P44-A3 TRIVALENT PASSIVATE WITH CATHODIC ELECTROCOAT, BLACK 1. SCOPE The materials defined by these specifications are corrosi
4、on protective coatings applied sequentially per supplier specifications over steel. They consist of an alkaline zinc nickel alloy electrodeposit and a trivalent chromium passivate/adhesion promoter. A2 and A3 are followed respectively by an organic seal, a cathodic electrocoat, or a waterborne top c
5、oat. When used with an integrally cured torque modified post dip, these processes provide consistent torque-tension control. All processes are free of hexavalent chromium, lead and cadmium. 2. APPLICATION These specifications were released for materials used as corrosion protective coatings over ste
6、el fasteners and small parts. The processes may induce hydrogen embrittlement and therefore these coatings must be hydrogen embrittlement relieved when applied to high hardness parts in accordance with WSS-M99A3-A. The cure temperature of the organic seal used for A2 is 80 to 120 C. The cure tempera
7、ture of the cathodic system for A3 is 175 to 200 C. These coatings shall not be specified if this temperature adversely affects the component being coated. 2.1 SERVICE TEMPERATURE The maximum continuous service temperature for A and A2 is 310 C. The maximum continuous service temperature for A3 is 2
8、60 C. ENGINEERING MATERIAL SPECIFICATION WSS-M21P44-A1/A4 Copyright 2012, Ford Global Technologies, LLC Page 2 of 6 3. REQUIREMENTS 3.1 STANDARD REQUIREMENTS FOR PRODUCTION MATERIALS Material suppliers and part producers must conform to the Companys Quality System Requirements for Production Materia
9、ls (WSS-M99P1111-A). Part producers must use approved materials specified on the Companys Approved Source List. 3.2 APPROVED APPLICATOR QUALITY REQUIREMENTS Applicators must follow coating manufacturer procedures and recommendations for chemical usage, equipment, analysis and processing. 3.3 APPEARA
10、NCE 3.3.1 The ZnNi coating will have a metallic silver appearance prior to passivate/adhesion promoter application. 3.3.2 The passivate/adhesion promoter will have an appearance of slight iridescence and color variation consistent with interference films (e.g. yellow, orange, green, blue, purple var
11、iegation). 3.3.3 The organic seal used for A2 will be a translucent film free from discontinuities. 3.3.4 The cathodic coating used for A3 will be a semi-gloss black finish free from discontinuities. The gloss level for A3 shall be 25 to 55 of gloss when measured using a 60 meter. 3.4 COATING COMPOS
12、ITION 3.4.1 The alkaline ZnNi electrodeposit shall have a nickel content of 12 to 15% as measured by calibrated X-ray fluorescence spectrometers in accordance with the suppliers requirements. In some instances a strike layer may be applied to the substrate prior to ZnNi electrodeposition. In such ca
13、ses the presence of a strike layer must be noted so that appropriate methods for measuring composition and thickness of the ZnNi may be employed. 3.4.2 The alkaline ZnNi electrodeposit shall have a phase composition which includes substantial metallurgical gamma phase ZnNi as defined by standard ref
14、erence phase diagrams such as ASM Handbook, Volume 3, 10thedition. Presence of substantial gamma phase ZnNi may be demonstrated by comparing x-ray diffraction patterns to reference materials such as ICDD PDF 06-0653. Crystallographic preferred orientations, such as 330 and/or 600 Miller index hkl fo
15、r gamma phase ZnNi, should be present in accordance with the chemical suppliers requirements; and subject to periodic verification using x-ray diffraction or an alternative, preapproved, standard crystallographic determination method. 3.4.3 The passivate/adhesion promoter shall have a composition in
16、 accordance with the chemical suppliers requirements. For A3, the passivate/adhesion promoter must be cobalt and carboxylic acid free. 3.4.4 The organic seal of A2 and the cathodic coating of A3 shall have a composition in accordance with the chemical suppliers requirements. ENGINEERING MATERIAL SPE
17、CIFICATION WSS-M21P44-A1/A4 Copyright 2012, Ford Global Technologies, LLC Page 3 of 6 3.5 COATING THICKNESS 3.5.1 The ZnNi electrodeposit will have an optimum thickness of 8 + 4/- 2 microns measured on flat surfaces. Documentation demonstrating throwing power, measured in accordance with suppliers i
18、nstructions, in excess of 70% will assure adequate thickness in recessed areas including threads. 3.5.2 The passivate/adhesion promoter thickness is not subject to measurement but will be less than one micron and greater than 50 nm based upon SEM examinations using cryofractured samples and/or calib
19、rated depth profiling using scanning Auger or x-ray photoelectron spectroscopies. 3.5.3 The organic seal thickness for A2 is typically between 0.5 and 5 microns. The minimum thickness shall be sufficient to meet the corrosion requirements of the substrate material. A typical film that exhibits the a
20、ppropriate corrosion resistance for A2 is 1 to 2 microns in thickness. 3.5.4 A specific cathodic coating thickness for A3 is not specified. The minimum thickness shall be sufficient to meet the corrosion requirements of the substrate material. A typical film that exhibits the appropriate corrosion r
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