HT 7000 | One part Hybrid Thermal Gel
Harmonization Code : 3824.99.96.99 | Prepared binders for foundry moulds or cores; chemical products and preparations of the chemical or allied industries (including those consisting of mixtures of natural products), not elsewhere specified or included : Other : Other: Other
Main features
- Dark Red
- 7 Thermal Conductivity
- Horizontal mounting
Product Description
HT7000 silicone based one-part Gap Filler provides a thermal conductivity of 7.0 W/m·K along with high conformability and high compressibility. It is formulated to deliver high dispense rates for improved productivity, long-term reliability performance and to be easily reworkable.
HT7000 is designed to minimize thermal resistance at interfaces, maintain excellent performance through reliability testing, and provide scalable applications at a competitive cost. Additionally it performs great in oil,crack and slump testing and it exhibits no pump out and cracking risk.
Technical Specifications
General Properties | |||||
Color Color The color | Dark Red | ||||
Dispense rate Dispense rate Dispense rate is the amount of material that can be dispense from a nozzle in a specified time period. Please consult the TDS for the exact measurement conditions. | 14 g/min | ||||
Specific Gravity Specific Gravity Specific gravity (SG) is the ratio of the density of a substance to the density of a reference substance; equivalently, it is the ratio of the mass of a substance to the mass of a reference substance for the same given volume. For liquids, the reference substance is almost always water (1), while for gases, it is air (1.18) at room temperature. Specific gravity is unitless. | 3.45 | ||||
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Thermal Properties | |||||
Thermal Conductivity Thermal Conductivity Thermal conductivity describes the ability of a material to conduct heat. It is required by power packages in order to dissipate heat and maintain stable electrical performance. Thermal conductivity units are [W/(m K)] in the SI system and [Btu/(hr ft °F)] in the Imperial system. | 7 W/m.K | ||||
Thermal Impedance | 1.41 °C·cm²/W |