FORD WSS-M97B57-A1-2018 COOLANT PHOSPHATED ORGANIC ADDITIVE TECHNOLOGY (POAT) CONCENTRATE FOR PASSENGER CAR AND LIGHT TRUCK TO BE USED WITH FORD WSS-M99P1111-A .pdf
《FORD WSS-M97B57-A1-2018 COOLANT PHOSPHATED ORGANIC ADDITIVE TECHNOLOGY (POAT) CONCENTRATE FOR PASSENGER CAR AND LIGHT TRUCK TO BE USED WITH FORD WSS-M99P1111-A .pdf》由会员分享,可在线阅读,更多相关《FORD WSS-M97B57-A1-2018 COOLANT PHOSPHATED ORGANIC ADDITIVE TECHNOLOGY (POAT) CONCENTRATE FOR PASSENGER CAR AND LIGHT TRUCK TO BE USED WITH FORD WSS-M99P1111-A .pdf(23页珍藏版)》请在麦多课文档分享上搜索。
1、 ENGINEERING MATERIAL SPECIFICATION Date Action Revisions Rev. 0 2018 05 01 Released A. Reaume, NA Controlled document at www.MATS Copyright 2018, Ford Global Technologies, LLC Page 1 of 23 COOLANT, PHOSPHATED, ORGANIC ADDITIVE TECHNOLOGY (POAT), WSS-M97B57-A1 CONCENTRATE, FOR PASSENGER CAR AND LIGH
2、T TRUCK 1. SCOPE The material defined by this specification is a coolant concentrate composed essentially of virgin monoethylene glycol and OAT corrosion inhibitors and phosphate. When mixed 50%/50% with water it shall be a satisfactory fluid for vehicle cooling systems that contain aluminum engine
3、components, radiators and heater cores, ferrous metals and copper brass. This material is for initial fill and service fill. 2. APPLICATION This specification was released originally for passenger car and light truck and commercial truck applications without the use of nitrites. 2.1 LIMITATIONS This
4、 material is not suitable for use with magnesium based alloys or zinc coatings (e.g. galvanized product). 3. REQUIREMENTS 3.1 APPROVED SOURCES This specification requires the use of approved sources. Only the sources identified on the Ford Approved Source List (ASL) can be used when this specificati
5、on is listed on the drawing, CAD file, or other documents. The list of approved sources is located within Ford at or available externally through a Ford Materials Engineer. 3.2 DOCUMENTATION 3.2.1 Approval of a new formulation Supplier must provide a completed and certified copy of the attached Sup
6、plement A and test reports demonstrating full compliance with all the requirements of this specification. Suppliers must provide full disclosure of their material formulation to, and be approved by, Materials Engineering. This disclosure is to a list of each additive by name, target wt%, min and max
7、 wt% with sub-supplier names for all components, in particular organic acid technology additives, azoles and other corrosion additives, and ethylene glycol. Disclosure to also include production range levels for pH, specific gravity, reserve alkalinity and water content. All tests must be certified
8、by a qualified and authorized representative of the test facility. Supplier must furnish DFMEA, PFMEA, Process Flow Diagram, and Control Plan. Final approval must be obtained from the Coolant Subject Matter Expert within Global Core Powertrain Cooling Engineering. A formulation/supplier/blending sit
9、e cannot be added to the approved source list without this Coolant SME approval. 3.2.2 Approval of a new supplier to an approved formulation Same as 3.2.1 with surrogate test data where approved by Ford and testing and documentation, at minimum, in a PVP compare current coolant with proposed coolant
10、 Table 2 Coupon metal weight change Current Coolant Current Coolant/ Cleaner Proposed Coolant Proposed Coolant/ Cleaner Cleaner Control ASTM Corrosive Water Al Not required Not required Not required Iron Steel Brass Solder Copper - A negative result indicates a weight gain ENGINEERING MATERIAL SPECI
11、FICATION WSS-M97B57-A1 Copyright 2018, Ford Global Technologies, LLC Page 5 of 23 3.4.17 Storage Stability Hard water and temperature and post-braze flux Supplier must report water quality conditions that may adversely affect the quality of the coolant (inhibitor depletion, lowered life, etc). The c
12、oolant concentrate form, quality and chemical composition shall not be adversely affected, changed or impacted by storage up to 5 years under environmental conditions of normal distribution and storage. In-vehicle, the coolant mixed with water shall be stable so as not to change in form, quality or
13、composition to adversely affects heat transfer or corrosion inhibition. 3.4.17.1 Hard Water Solution Prepare hard water by adding 275mg of calcium chloride (CaCl2) to 1 liter synthetic corrosive water described in the test solution section of ASTM D1384. Prepare six 100 ml coolant samples using the
14、test coolant and the hard water solution. Samples are to have coolant concentrations of 100% (samples 1 and 2), 75% (samples 3 and 4) and 50% (samples 5 and 6). Put all samples in clean, labeled polymethylpentene (PMP) bottles for testing. (French square-type bottle may aid visual check.) All sample
15、s must pass hot and cold storage stability testing for the coolant to pass. All samples are to be photographed post-test. Hot Storage Stability - Samples 1, 3 and 5 are heat storage tested in a circulating air oven at 65 +/- 2 C for 14 days. Remove a 20 ml sample on days 2, 4, 7, 10 and 14. Allow to
16、 cool to room temperature. Check for precipitates, deposits, gelation and phase separation. “Fish eyes” on the top (from defoamer) are acceptable. If anything other than “fish eyes” is present, such as gel or material in solution or precipitate, terminate test and write as failure. Analyze coolant a
17、nd material to determine effect. Cold Storage Stability - Samples 2, 4 and 6 are cold storage tested at -40C for 14 days. Remove a 20 ml sample on days 2, 4, 7, 10 and 14. Allow to go to room temperature. Check for precipitates, deposits, gelation and phase separation. “Fish eyes” on the top (from d
18、efoamer) are acceptable. If anything other than “fish eyes” is present, such as gel or material in solution or precipitate, terminate test and consider as a failure. Analyze coolant and material to determine effect. 3.4.17.2 Flux Solution Prepare flux solution by adding 0.50 wt% post-braze Nocolok f
19、lux to 500 ml synthetic corrosive water described in the test solution section of ASTM D1384. Stir solution for 5 days at 90 C. Prepare four 250 ml coolant samples using the test coolant and the flux solution. Filter the samples with 0.45 micron filter to capture any solids. Samples are to have cool
20、ant concentrations of 50% (samples 1 and 2) and 40% (samples 3 and 4). Put all samples in clean, labeled polymethylpentene (PMP) bottles for testing. (French square-type bottle may aid visual check.) Hot Storage Stability - Samples 1 and 3 are heat storage tested in a circulating air oven at 80 +/-
21、2 C for 14 days. Remove samples after 14 days. Allow to cool to room temperature. Check for precipitates, deposits, gelation and phase separation. “Fish eyes” on the top (from defoamer) are acceptable. Filter the samples with 0.45 micron filter to capture any solids. Analyze coolant and material (FT
22、IR and EDS/XRF) and report. Loss of phosphate or other anti-corrosion additive may be considered a failure. ENGINEERING MATERIAL SPECIFICATION WSS-M97B57-A1 Copyright 2018, Ford Global Technologies, LLC Page 6 of 23 Cold Storage Stability . Put samples 2 and 4 in cold storage at -40 C for 14 days. A
23、llow to go to room temperature. Check for precipitates, deposits, gelation and phase separation. “Fish eyes” on the top (from defoamer) are acceptable. Filter the samples with 0.45 micron filter to capture any solids. All solids are to be photographed post-test, wet and dry. Analyze coolant analysis
24、 (pH, % glycol, corrosion inhibitors, etc.) and solids (FTIR and EDS/XRF) and report. Loss of phosphate or other anti-corrosion additive may be considered a failure. 3.4.18 Compatibility with Engine Hot Test Fluids - Havoline XLI (Europe) or Delo XLI (NA) (See compatibility method in WSS-M97B56-A1)
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