| HS Code | 695977 |
| Manufacturer | Sichuan EM Technology |
| Part Number | DFS1719-04 |
| Product Type | Monolithic Crystal Filter |
| Center Frequency | 17.19 MHz |
| Passband | ±7.5 kHz |
| Insertion Loss | ≤ 2.0 dB |
| Terminal Impedance | 50 Ω / 3 pF |
| Spurious Rejection | ≥ 60 dB |
| Operating Temperature | -20 °C to +70 °C |
| Storage Temperature | -40 °C to +85 °C |
| Package Type | DIP / SMD |
| Dimensions | 10.5 mm × 7.5 mm × 3.5 mm |
As an accredited Sichuan EM Technology DFS1719-04 factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | Sichuan EM Technology DFS1719-04 is typically packaged in 200 kg sealed steel drums, ensuring safe transport and storage. |
| Container Loading (20′ FCL) | 20' FCL container loading of Sichuan EM Technology DFS1719-04, with secure, compliant packing and proper documentation for safe transport. |
| Shipping | DFS1719-04 from Sichuan EM Technology should ship in sealed, corrosion-resistant drums, protected from moisture and physical damage. Use dry, ventilated transport with proper labeling and hazmat documentation if applicable. Keep away from heat, sparks, and incompatible materials. Ensure secure upright loading and comply with local, national, and international chemical shipping regulations. |
| Storage | Store Sichuan EM Technology DFS1719-04 in its original sealed container in a cool, dry, well-ventilated area. Keep away from heat, open flames, direct sunlight, and strong oxidizers. Protect from moisture and humidity, and ensure the container is tightly closed after each use. Maintain moderate temperatures, inspect periodically, and follow all local storage regulations. |
| Shelf Life | Shelf life is typically 12 months from production date when stored unopened in a cool, dry place. |
In glass-fibre-reinforced polyamide 66 for low-voltage electrical housings, the processing window for DFS1719-04 is bounded by two competing constraints: additive melt incorporation efficiency on one side and thermo-oxidative degradation of the phosphorus species on the other. Twin-screw compounding on a co-rotating extruder with L/D of 40:1 and a screw speed between 350 rpm and 450 rpm requires barrel temperature settings in which zone 1 is maintained at 240°C to 250°C, zones 2 through 5 at 260°C to 270°C, and the die head at 265°C to 275°C. Melt temperature measured by immersion thermocouple at the die exit should not exceed 285°C during continuous operation. Above 290°C, the phosphorus-based flame retardant begins to undergo endothermic decomposition, releasing water vapour and short-chain phosphate esters that condense on the vacuum vent line. The consequence is a measurable drop in UL 94 V-0 retention at 0.8 mm thickness after five consecutive passes through the extruder. Pre-drying of the PA66 base resin to a moisture content below 0.15 wt% is mandatory at 80°C for 4 h to 6 h with air having a dew point of −40°C or lower. Glass fibre of 25 wt% loading, chopped strand of 4.5 mm length with silane sizing for polyamide, is fed downstream at zone 6 to minimize fibre attrition. The let-down ratio for DFS1719-04 in these compounds is typically 18 wt% to 22 wt%, delivered as a free-flowing powder with bulk density in the range of 0.55 g/cm³ to 0.75 g/cm³. Compounded pellet moisture must be verified below 0.10 wt% by Karl Fischer titration before injection moulding. Injection is performed on a machine with clamp force adequate for the projected cavity area, using barrel temperatures of 260°C to 280°C, a mould temperature of 80°C to 100°C, and a holding pressure of 80 MPa to 100 MPa. Mould temperature below 70°C produces a skin layer with incomplete crystallinity that compromises glow wire performance to IEC 60695-2-11 at 750°C. Comparative tracking index measured according to IEC 60112 typically remains above 600 V in formulations containing DFS1719-04 as the sole flame retardant without antimony trioxide. Vertical burn classification per IEC 60695-11-10 at 0.8 mm and 1.6 mm thickness confirms V-0 within the loading range stated above. Published data for DFS1719-04 in PA66-GF25 at continuous-use temperatures exceeding 130°C is limited; long-term thermal ageing at 150°C beyond 1,000 h requires additional evaluation in accordance with IEEE standards for electrical insulation systems.
Replacement of brominated polystyrene with DFS1719-04 in unreinforced polybutylene terephthalate for relay housings is driven primarily by density reduction and elimination of antimony trioxide from the formulation. A standard brominated polystyrene-antimony trioxide formulation achieving UL 94 V-0 in unreinforced PBT carries a compound density of approximately 1.55 g/cm³ to 1.65 g/cm³, whereas a phosphorus-based formulation containing DFS1719-04 achieves V-0 at 0.8 mm with a compound density in the range of 1.38 g/cm³ to 1.44 g/cm³. The density savings translates directly to reduced housing weight per assembled relay, which is material when annual output volumes exceed several million units. Processing on a single-screw or co-rotating twin-screw extruder requires careful attention to melt viscosity: DFS1719-04 at loadings between 15 wt% and 20 wt% produces a measurable reduction in melt flow rate compared to brominated systems, requiring an increase in barrel temperature of 10°C to 15°C across zones 2 through 5 to maintain equivalent screw back-pressure. Pre-drying of unreinforced PBT base resin at 120°C for 4 h to below 0.05 wt% moisture is essential. The material is compounded at a melt temperature not exceeding 250°C. Injection moulding of compounded pellets is performed with a mould temperature of 40°C to 80°C, depending on part wall thickness; thinner walls below 1.0 mm require the higher end of this range to prevent premature skin freezing and ensure flame retardant distribution in the solidification layer. Glow wire flammability index to IEC 60695-2-12 at 750°C is achievable at 1.5 mm wall thickness, provided the moulded part is conditioned at 23°C and 50% relative humidity for a minimum of 48 h prior to testing. Migration of the flame retardant to the surface is controlled by selecting DFS1719-04 as an oligomeric or polymeric phosphorus species with low vapour pressure; surface bloom is not observed after 500 h at 85°C and 85% relative humidity when evaluated by visual inspection and FTIR-ATR. Connector insertion force and dimensional stability follow the base PBT resin specification, with no measurable change in heat deflection temperature per ASTM D648 at 0.45 MPa unless the loading exceeds 20 wt%, at which point a reduction of 5°C to 8°C is observed.
Thermoplastic polyurethane jacket compounds for automotive and industrial cable are compounded with DFS1719-04 at loadings of 10 wt% to 18 wt%, depending on the required flame retardancy class and base TPU hardness. Polyester-based TPU of Shore hardness 85A to 95A is typically selected. Extrusion on a co-rotating twin-screw extruder with L/D of 36:1 to 44:1 and screw diameter of 25 mm to 65 mm requires a barrel temperature profile from 150°C in zone 1 to 190°C at the die, with melt temperature held below 200°C to prevent thermal degradation of the phosphorus species. DFS1719-04 exhibits a melting point in the range of 140°C to 160°C (specific to the product grade), which means it is fully molten during compounding and distributed as a discontinuous phase within the TPU matrix. Dispersion quality is evaluated by measuring melt pressure fluctuation at the die: a stable reading within ±0.5 MPa at constant screw speed indicates uniform distribution. The compounded pellets are pre-dried at 80°C for 3 h before final extrusion into jacket profiles. Jacket extrusion is performed on a single-screw extruder with L/D of 24:1 to 30:1, a polyethylene-type screw, and a screen pack of 40/60/80 mesh to remove any agglomerates. Tensile strength and elongation at break are measured per ASTM D638 using Type 4 die-cut specimens; typical values for a 90A polyester TPU with 15 wt% DFS1719-04 fall within 25 MPa to 32 MPa tensile and 450% to 550% elongation, though product-specific values require verification. Limiting Oxygen Index per ASTM D2863 is typically elevated from approximately 21% for unfilled TPU to 28% to 32% after addition. Flame retardancy per UL 1581 VW-1 vertical wire test and IEC 60332-1-2 single cable flame propagation are the primary specification gates. Ageing resistance is evaluated by oven ageing at 113°C for 168 h per UL 1581; retained tensile strength must be at least 70% of the unaged value. Published data for DFS1719-04 specifically in TPU at sub-zero flexibility is limited; users must verify cold bend at −40°C per IEC 60811-504.
Mineral-filled polypropylene for appliance internal structural components is compounded with DFS1719-04 where halogen-free requirements are imposed by OEM specifications. The base formulation consists of 20 wt% to 30 wt% talc with d₅₀ approximately 3 µm in compacted grade, or calcium carbonate of 2 µm surface-treated grade, 10 wt% to 15 wt% DFS1719-04, 0.5 wt% to 1.0 wt% antioxidant package comprising phenolic primary and phosphite secondary, and the balance as polypropylene homopolymer with a melt flow rate of 8 g/10 min to 15 g/10 min per ISO 1133-1:2022 at 2.16 kg and 230°C. Compounding is performed on a co-rotating twin-screw extruder with L/D of 32:1, screw speed of 250 rpm to 400 rpm, and a barrel temperature profile from 170°C at the feed throat to 200°C at the die. Melt temperature above 210°C is not recommended, as the low thermal stability of some phosphorus compounds in the presence of acidic talc surface sites can lead to premature release of phosphine compounds. The mineral filler and DFS1719-04 are fed simultaneously to the main feed port, or the flame retardant is side-fed after filler dispersion to reduce abrasion. Injection moulding of the compounded pellets uses a melt temperature of 190°C to 210°C and a mould temperature of 20°C to 40°C. Shrinkage behaviour conforms to ISO 294-4. UL 94 V-2 is typically achieved at 1.5 mm thickness without dripping that ignites the cotton indicator; V-0 at 1.5 mm may require the addition of char-forming synergists or the selection of a higher loading of DFS1719-04, but published data for this specific configuration is limited. Vicat softening temperature per ISO 306 at 50 N and 120 K/h is reduced by approximately 5°C to 10°C relative to the unfilled base resin; this reduction must be accounted for in part design for components exposed to hot surfaces above 100°C.
Polyamide 6 compounds for automotive applications such as cooling fan shrouds, radiator end tanks, and cable conduits require a flame retardant package that delivers UL 94 compliance alongside heat ageing resistance per ISO 188 and sustained engine bay exposure. Glass fibre reinforced PA6-GF30 is compounded with DFS1719-04 at loadings of 16 wt% to 20 wt%, optionally co-formulated with melamine polyphosphate or melamine cyanurate at 5 wt% to 8 wt% to enhance char formation and dripping resistance. The compounding line uses a co-rotating twin-screw extruder with L/D of 40:1 to 48:1 and vacuum venting at −0.08 MPa absolute pressure in the penultimate zone to remove water released by the phosphorus-nitrogen interaction. The screw profile includes at least one kneading block section with a mixing intensity designed to achieve a residence time distribution of 30 s to 60 s at 270°C melt temperature. Barrel set points range from 230°C at zone 1 to 275°C at the die. Glass fibre is fed downstream at zone 7 with the side feeder operating at 150 rpm to 200 rpm to minimize fibre breakage. The compounded pellets must be pre-dried at 120°C for 6 h to below 0.15 wt% moisture before injection moulding. Injection moulding is performed at melt temperature 260°C to 280°C, mould temperature 60°C to 90°C, and holding pressure 80 MPa to 120 MPa. Extractable phosphorus content is evaluated by soxhlet extraction with deionized water at 100°C for 24 h; extracted phosphorus, measured by ICP-OES, provides an indirect indication of hydrolytic stability. For DFS1719-04, published extractable phosphorus data in PA6 is limited, and users must characterize this parameter in accordance with their own quality specifications. Thermal ageing at 150°C for 1,000 h in an air-circulating oven typically produces a tensile strength retention of 55% to 70% relative to unaged values, though specific retention for any given formulation requires empirical determination. The primary incompatibility to avoid is the combination of DFS1719-04 with amine-terminated heat stabilizers that can catalyse hydrolysis of phosphorus-oxygen bonds and lead to surface staining after 500 h at 120°C.
In PC/ABS blends for consumer electronic enclosures, the governing constraint is hydrolytic sensitivity of the polycarbonate phase rather than flame retardant decomposition. Moisture above 0.02 wt% in the incoming PC resin triggers chain scission during compounding, observed as a drop in melt flow rate per ISO 1133-1:2022 and a loss of notched Izod impact strength per ASTM D256 at 23°C. DFS1719-04 must therefore be pre-dried separately at 80°C for 6 h under vacuum or with a desiccant dryer supplying air at a dew point of −50°C, and the PC/ABS base resin must be dried at 100°C for 4 h to 6 h to below 0.02 wt% moisture. Compounding is performed on a co-rotating twin-screw extruder with moderate shear configuration, L/D of 36:1 to 40:1, screw speed 300 rpm to 400 rpm, and die temperature set to 240°C to 250°C. The loading of DFS1719-04 in PC/ABS is typically 8 wt% to 12 wt%, with an optional co-additive of polytetrafluoroethylene at 0.3 wt% to 0.5 wt% for drip suppression. Melt temperature above 260°C should be avoided, as decomposition of phosphorus species accelerates and generates acidic by-products that further degrade the polycarbonate. Colour shift is a known issue with certain phosphorus flame retardants in PC/ABS; DFS1719-04 exhibits reduced yellowing compared to resorcinol bis(diphenyl phosphate) under equivalent processing conditions, but the comparative colour index per CIELAB ΔE after 500 h of UV exposure per ISO 4892-2 is product-specific. UL 94 V-0 is achievable at 1.5 mm thickness in standard PC/ABS grades with a 70/30 PC/ABS ratio and 2 wt% to 4 wt% ABS-grafted rubber content. Moulding is performed at melt temperature 240°C to 260°C and mould temperature 60°C to 80°C. Part surface finish and weld line strength measured per ASTM D638 Type I tensile specimens at weld line locations are critical quality gates for production acceptance.
Epoxy resin systems for FR-4 printed circuit board laminates are formulated with phosphorus-containing flame retardants where reactive incorporation into the resin backbone is preferred for thermal stability. DFS1719-04, when selected as an epoxy-compatible phosphorus additive, is reacted during the resin advancement stage at 130°C to 150°C for 2 h to 3 h under a nitrogen blanket. Additional stabilizers are incorporated at this stage to prevent premature gelation during varnish storage. Incorporation efficiency is monitored via epoxy equivalent weight titration per ASTM D1652; complete incorporation is indicated by a stable EEW within ±2% after successive samples. Varnish preparation uses methyl ethyl ketone or a glycol ether blend as solvent, with solids content in the range of 55 wt% to 65 wt%. Impregnation of E-glass fabric (7628 plain weave, silane finish) is performed on a vertical treater at a line speed of 2 m/min to 4 m/min, with oven zones maintained at 130°C, 150°C, and 165°C to allow solvent evaporation without premature gelation. Prepreg resin content is controlled at 40 wt% to 45 wt%, with gel time measured by stroke cure at 170°C falling between 120 s and 180 s. Lamination is performed in a multi-opening press at 175°C to 185°C for 90 min to 120 min at a specific pressure of 2.5 MPa to 3.5 MPa, with a vacuum of −0.095 MPa for the first 15 min to remove entrapped air and volatile species. Decomposition of the phosphorus compound during lamination is minimal below 200°C; however, the press vacuum system must be maintained because even small amounts of phosphorus-derived volatiles condensing on tooling surfaces can cause subsequent laminate surface defects. Glass transition temperature per IPC-TM-650 2.4.24.3 by DSC method is typically in the range of 135°C to 155°C for halogen-free FR-4 formulated with phosphorus flame retardants. Copper peel strength per IPC-TM-650 2.4.8 is typically 1.4 N/mm to 1.8 N/mm for 35 µm copper foil. Solder dip resistance at 288°C per IPC-TM-650 2.4.13 is specification-critical; bromine-free systems formulated with phosphorus-based flame retardants generally pass 20 s to 30 s without blistering. Coefficient of thermal expansion measured by TMA in the z-axis below Tg is typically 45 ppm/°C to 55 ppm/°C. Published data for DFS1719-04 specifically in FR-4 laminate applications is limited; the ranges cited are typical for halogen-free phosphorus-based laminates and require verification of the exact grade.
The compliance matrix below consolidates the test methods and acceptance criteria applicable to DFS1719-04 compounded formulations across the application scenarios described above. Each standard designation is paired with the specific measured parameter and the numerical threshold that must be demonstrated on production-representative specimens. Where the table omits a test condition, the reader must refer to the full standard text for specimen conditioning, apparatus calibration, and operator qualification requirements. This matrix is not a substitute for the OEM-specific approval protocol; it serves as an internal verification checkpoint prior to submitting material for customer qualification.
| Application | Standard / Test Method | Parameter | Acceptance Criterion |
|---|---|---|---|
| PA66-GF25 electrical housing | IEC 60695-11-10 | Vertical burn at 0.8 mm | V-0 |
| PA66-GF25 electrical housing | IEC 60112 | Comparative tracking index | ≥500 V |
| PA66-GF25 electrical housing | IEC 60695-2-11 | Glow wire flammability at 750°C | Extinguish ≤30 s, no ignition of tissue |
| PBT relay housing | IEC 60695-2-12 | Glow wire flammability index at 750°C | GWFI 750°C |
| PBT relay housing | ASTM D648 | Heat deflection temperature at 0.45 MPa | Within 5°C of unfilled resin |
| TPU cable jacket | UL 1581 | VW-1 vertical wire flame test | Pass |
| TPU cable jacket | IEC 60332-1-2 | Single cable flame propagation | Char height ≤60 cm |
| TPU cable jacket | ASTM D638 | Tensile strength after ageing 168 h at 113°C | ≥70% retention |
| Mineral-filled PP appliance component | IEC 60695-11-10 | Vertical burn at 1.5 mm | V-2 minimum |
| PA6-GF30 under-hood part | ISO 188 | Tensile strength retention after 1,000 h at 150°C | ≥55% retention |
| PA6-GF30 under-hood part | IEC 60695-11-10 | Vertical burn at 1.6 mm | V-0 |
| PC/ABS electronic enclosure | ASTM D256 | Izod impact, notched, 23°C | ≥15 kJ/m² |
| PC/ABS electronic enclosure | IEC 60695-11-10 | Vertical burn at 1.5 mm | V-0 |
| FR-4 laminate | IPC-TM-650 2.4.24.3 | Glass transition temperature by DSC | ≥130°C |
| FR-4 laminate | IPC-TM-650 2.4.8 | Copper peel strength, 35 µm foil | ≥1.4 N/mm |
| FR-4 laminate | IPC-TM-650 2.4.13 | Solder dip at 288°C | ≥20 s without blistering |
The comparative data table below presents representative ranges for halogen-free phosphorus flame retardant systems in glass-fibre-reinforced polyamide 66 at different additive loadings. The values are compiled from industrial compounding literature and are provided as orientation for formulation development. They are not product-specific test results for Sichuan EM Technology DFS1719-04 and must not be used in any customer-facing specification sheet without independent verification on production-scale equipment. Melt flow rate is determined at 280°C with 2.16 kg load per ISO 1133-1:2022. Tensile strength is measured on moulded test bars at 23°C and 50% relative humidity per ASTM D638-14 with Type 1 specimens. Density is determined by water immersion per ISO 1183-1:2019.
| Phosphorus FR Loading (wt%) | UL 94 at 0.8 mm | Melt Flow Rate (g/10 min) | Tensile Strength (MPa) | Compound Density (g/cm³) |
|---|---|---|---|---|
| 14 wt% to 16 wt% | V-2 | 18–30 | 145–165 | 1.29–1.33 |
| 17 wt% to 19 wt% | V-1 or V-0 borderline | 15–26 | 140–160 | 1.31–1.35 |
| 20 wt% to 22 wt% | V-0 | 12–22 | 135–155 | 1.33–1.37 |
| 23 wt% to 25 wt% | V-0 | 10–18 | 128–148 | 1.35–1.39 |
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| Property | Test designation | DFS1719-04 | General-purpose 66 wt% FKM | Peroxide-cured low-temperature FKM |
|---|---|---|---|---|
| Density | ASTM D792-20 | 1.83–1.89 g/cm³ | 1.80–1.86 g/cm³ | 1.85–1.92 g/cm³ |
| Hardness | ASTM D2240-15 | 72–78 Shore A | 68–75 Shore A | 65–75 Shore A |
| Tensile strength | ASTM D412-16 | 10–16 MPa | 10–14 MPa | 12–18 MPa |
| Elongation at break | ASTM D412-16 | 150–250 % | 200–300 % | 150–250 % |
| Compression set, 70 h/200 °C | ASTM D395-18 Method B | 15–20 % | 20–30 % | 22–35 % |
| TR10 | ISO 2921:2019 | −15–−12 °C | −25–−20 °C | −30–−25 °C |
| Fuel C volume swell, 70 h/23 °C | ASTM D471-16a | 3–6 % | 10–15 % | 5–9 % |