{"id":1917,"date":"2025-08-25T02:14:54","date_gmt":"2025-08-25T02:14:54","guid":{"rendered":"https:\/\/flj-pcb.com\/?page_id=1917"},"modified":"2025-08-27T02:27:30","modified_gmt":"2025-08-27T02:27:30","slug":"high-tg-pcb","status":"publish","type":"page","link":"https:\/\/flj-pcb.com\/es\/pcb-manufacturer\/high-tg-pcb\/","title":{"rendered":"PCB de alta Tg"},"content":{"rendered":"<div data-elementor-type=\"wp-page\" data-elementor-id=\"1917\" class=\"elementor elementor-1917\" data-elementor-post-type=\"page\">\n\t\t\t\t<div class=\"elementor-element elementor-element-4479652 e-flex e-con-boxed e-con e-parent\" data-id=\"4479652\" data-element_type=\"container\">\n\t\t\t\t\t<div class=\"e-con-inner\">\n\t\t\t\t<div class=\"elementor-element elementor-element-95539f6 elementor-widget elementor-widget-text-editor\" data-id=\"95539f6\" data-element_type=\"widget\" data-widget_type=\"text-editor.default\">\n\t\t\t\t<div class=\"elementor-widget-container\">\n\t\t\t\t\t\t\t\t\t<h1 class=\"header-vfC6AV auto-hide-last-sibling-br\">\u00bfQu\u00e9 es un PCB de alta Tg?<\/h1><h2 class=\"header-vfC6AV auto-hide-last-sibling-br\">\u00bfQu\u00e9 es la temperatura de transici\u00f3n v\u00edtrea (Tg)?<\/h2><div class=\"auto-hide-last-sibling-br paragraph-JOTKXA paragraph-element br-paragraph-space\">Temperatura de transici\u00f3n v\u00edtrea, denominada\u00a0<strong>Tg<\/strong>, es una de las propiedades m\u00e1s importantes de los pl\u00e1sticos y los materiales epox\u00eddicos. La Tg tambi\u00e9n muestra la calidad del tejido de fibra de vidrio utilizado en las placas de circuito impreso. En comparaci\u00f3n con la HDT (temperatura de deflexi\u00f3n t\u00e9rmica), la Tg no siempre es m\u00e1s importante, pero sigue siendo importante. Tg es la temperatura a la que las cadenas largas de un pl\u00e1stico adquieren mayor movimiento segmentario.<\/div><div class=\"auto-hide-last-sibling-br paragraph-JOTKXA paragraph-element br-paragraph-space\">Cuando la temperatura de uso es inferior a Tg, el movimiento de los segmentos de cadena del pol\u00edmero se congela en su mayor parte. El material muestra una estructura m\u00e1s ordenada y reticular. El pl\u00e1stico es duro, r\u00edgido y quebradizo. A esto lo llamamos\u00a0<strong>estado v\u00edtreo<\/strong>.<\/div><div class=\"auto-hide-last-sibling-br paragraph-JOTKXA paragraph-element br-paragraph-space\">Cuando la temperatura de uso es superior a Tg, los segmentos de la cadena polim\u00e9rica tienen m\u00e1s libertad de movimiento. El pl\u00e1stico se vuelve m\u00e1s blando y flexible. A esto lo llamamos\u00a0<strong>estado gomoso<\/strong>.<\/div><div class=\"auto-hide-last-sibling-br paragraph-JOTKXA paragraph-element br-paragraph-space\">Por tanto, Tg es la temperatura a la que el material pasa de vidrioso a gomoso. Tg es la temperatura m\u00e1xima a la que un sustrato mantiene su rigidez. En otras palabras, los materiales de sustrato de PCB ordinarios se ablandar\u00e1n, deformar\u00e1n o incluso fundir\u00e1n a alta temperatura. Al mismo tiempo, sus propiedades mec\u00e1nicas y el\u00e9ctricas disminuyen r\u00e1pidamente.<\/div><h2 class=\"header-vfC6AV auto-hide-last-sibling-br\">Tg y comportamiento de la placa<\/h2><div class=\"auto-hide-last-sibling-br paragraph-JOTKXA paragraph-element br-paragraph-space\">Tg marca un claro cambio en el comportamiento del material. Por debajo de Tg, la placa mantiene su forma y su resistencia mec\u00e1nica. Por encima de Tg, la placa puede doblarse y perder rigidez. Este cambio tambi\u00e9n afecta a las propiedades el\u00e9ctricas. La p\u00e9rdida diel\u00e9ctrica y el comportamiento del aislamiento pueden cambiar a medida que la temperatura supera la Tg. Para el dise\u00f1o y montaje de placas de circuito impreso, conocer la Tg ayuda a elegir los materiales y procesos adecuados.<\/div><h2 class=\"header-vfC6AV auto-hide-last-sibling-br\">Categor\u00edas de valores Tg de PCB<\/h2><div class=\"auto-hide-last-sibling-br paragraph-JOTKXA paragraph-element br-paragraph-space\">Los fabricantes dividen los materiales de los tableros por rangos de Tg. Los grupos t\u00edpicos son:<\/div><ul class=\"auto-hide-last-sibling-br\"><li><strong>Tablas Tg normales<\/strong>: 130 \u00b0C a 150 \u00b0C. Ejemplos: KB-6164F (140 \u00b0C), S1141 (140 \u00b0C).<\/li><li><strong>Tablas Tg medianas<\/strong>: 150 \u00b0C a 170 \u00b0C. Ejemplos: KB-6165F (150 \u00b0C), S1141-150 (150 \u00b0C).<\/li><li><strong>Tableros de alta Tg (mayor coste)<\/strong>: 170 \u00b0C y superiores. Ejemplos: KB-6167F (170 \u00b0C), S1170 (170 \u00b0C).<\/li><\/ul><div class=\"auto-hide-last-sibling-br paragraph-JOTKXA paragraph-element br-paragraph-space\">Nota: Para algunos productos de consumo y de red, S1141 era com\u00fan. En los informes de control de calidad a veces muestra Tg = 130 \u00b0C y a veces Tg = 135 \u00b0C. Esto demuestra que las pruebas y la denominaci\u00f3n de los grados pueden variar.<\/div><h2 class=\"header-vfC6AV auto-hide-last-sibling-br\">Ventajas de los materiales de alta Tg<\/h2><ol class=\"auto-hide-last-sibling-br\"><li><strong>Mayor estabilidad<\/strong>: Si aumenta la Tg del sustrato de la placa de circuito impreso, aumenta tambi\u00e9n la resistencia al calor, la resistencia qu\u00edmica, la resistencia a la humedad y la estabilidad del dispositivo.<\/li><li><strong>Mejor para dise\u00f1os de alta densidad de potencia<\/strong>: Si un dispositivo tiene una alta densidad de potencia y una gran generaci\u00f3n de calor, las placas de circuito impreso de alta Tg ayudan a gestionar el calor.<\/li><li><strong>Flexibilidad de dise\u00f1o<\/strong>: Con mejores propiedades t\u00e9rmicas, puede cambiar el tama\u00f1o o la disposici\u00f3n de la placa y seguir satisfaciendo las necesidades t\u00e9rmicas y de potencia. Cuando el calor se gestiona mejor, se pueden utilizar placas de circuito impreso m\u00e1s grandes o apilamientos diferentes.<\/li><li><strong>Ideal para placas de circuito impreso multicapa y HDI<\/strong>: Las placas multicapa y HDI son densas. Generan mayores niveles de calor. Las placas de alta Tg ayudan a mantener la fabricaci\u00f3n y la fiabilidad del producto.<\/li><li><strong>Mayor resistencia<\/strong>: Cuando aumenta la Tg, mejora la resistencia de la placa al calor, la humedad y los productos qu\u00edmicos. Tambi\u00e9n mejora la estabilidad en servicio.<\/li><li><strong>Mejor para soldadura sin plomo<\/strong>: El reflujo sin plomo utiliza temperaturas m\u00e1s altas. Las placas con mayor Tg soportan mejor estas temperaturas.<\/li><li><strong>Menor alabeo en SMT<\/strong>: Los materiales de alta Tg se deforman menos durante la SMT y el reflujo. Ofrecen una mayor fiabilidad. Los riesgos como el agrietamiento a alta temperatura y la formaci\u00f3n de ampollas de cobre son menores que con las placas de bajo Tg. En la manipulaci\u00f3n normal, el material de alta Tg puede parecer m\u00e1s quebradizo, pero a alta temperatura su resistencia y estabilidad dimensional (comportamiento CTE) son mejores que los materiales de baja Tg.<\/li><\/ol><h2 class=\"header-vfC6AV auto-hide-last-sibling-br\">Rendimiento de los PCB de alta Tg<\/h2><div class=\"auto-hide-last-sibling-br paragraph-JOTKXA paragraph-element br-paragraph-space\">Con el r\u00e1pido crecimiento de la electr\u00f3nica, los materiales de alta Tg se utilizan ampliamente en ordenadores, dispositivos de comunicaci\u00f3n, instrumentos de precisi\u00f3n y equipos de prueba. Para alcanzar mayores funciones y m\u00e1s capas, los sustratos de PCB necesitan una mayor resistencia al calor como requisito b\u00e1sico. Adem\u00e1s, con el ensamblaje de alta densidad, como las tecnolog\u00edas SMT y de montaje de chips, y con la tendencia a placas m\u00e1s finas, agujeros m\u00e1s peque\u00f1os y un trazado m\u00e1s fino, la resistencia t\u00e9rmica del sustrato se convierte en un factor cr\u00edtico.<\/div><div class=\"auto-hide-last-sibling-br paragraph-JOTKXA paragraph-element br-paragraph-space\">La diferencia entre el FR-4 t\u00edpico y el FR-4 de alta Tg se manifiesta de muchas maneras. La resistencia mec\u00e1nica, la adherencia, la absorci\u00f3n de agua, la estabilidad dimensional y el comportamiento t\u00e9rmico tras la absorci\u00f3n de humedad var\u00edan. Bajo estr\u00e9s t\u00e9rmico y dilataci\u00f3n t\u00e9rmica, las placas con alto contenido en Tg mantienen su forma y funcionan mejor. Por esta raz\u00f3n, ha aumentado la demanda de tableros con alto contenido en Tg. Su precio es superior al de los tableros est\u00e1ndar.<\/div><div class=\"auto-hide-last-sibling-br paragraph-JOTKXA paragraph-element br-paragraph-space\">Los materiales de alta Tg son populares en la iluminaci\u00f3n LED. Los paquetes de LED disipan m\u00e1s calor que las piezas normales. Una placa FR-4 con la estructura adecuada puede ser mucho m\u00e1s barata que una placa de n\u00facleo met\u00e1lico y seguir satisfaciendo las necesidades t\u00e9rmicas en algunos dise\u00f1os.<\/div><h2 class=\"header-vfC6AV auto-hide-last-sibling-br\">\u00bfPor qu\u00e9 utilizar FR-4 para fabricar placas de circuito impreso de alta tg?<\/h2><div class=\"auto-hide-last-sibling-br paragraph-JOTKXA paragraph-element br-paragraph-space\">Algunas aplicaciones necesitan placas de circuito impreso que funcionen a 200 \u00b0C o m\u00e1s. Para funcionar con fiabilidad a esas temperaturas, hay que utilizar materiales fabricados para altas temperaturas. Una elecci\u00f3n habitual es el FR-4. Las placas FR-4 de alta Tg pueden soportar temperaturas de transici\u00f3n v\u00edtrea mucho m\u00e1s altas y seguir ofreciendo propiedades \u00fatiles:<\/div><ul class=\"auto-hide-last-sibling-br\"><li>Mejor control de la impedancia.<\/li><li>Mejor gesti\u00f3n t\u00e9rmica.<\/li><li>Menor absorci\u00f3n de humedad.<\/li><li>Rendimiento estable en servicio.<\/li><\/ul><div class=\"auto-hide-last-sibling-br paragraph-JOTKXA paragraph-element br-paragraph-space\">FR-4 es un epoxi ign\u00edfugo reforzado con fibra de vidrio. Tiene muchas ventajas que se adaptan a las necesidades de los PCB de alta Tg:<\/div><ul class=\"auto-hide-last-sibling-br\"><li>Resiste muchos ciclos de laminaci\u00f3n y se adapta a procesos complejos de PCB.<\/li><li>Admite el montaje sin plomo.<\/li><li>Existen muchos tipos de FR-4. Hay tipos de PTFE, PTFE relleno de cer\u00e1mica y bases de hidrocarburos termoestables. Se elige en funci\u00f3n de las necesidades.<\/li><\/ul><h2 class=\"header-vfC6AV auto-hide-last-sibling-br\">FR-4 Propiedades especiales<\/h2><div class=\"auto-hide-last-sibling-br paragraph-JOTKXA paragraph-element br-paragraph-space\">FR-4 ofrece puntos fuertes clave para usos de alta demanda:<\/div><ul class=\"auto-hide-last-sibling-br\"><li><strong>Buen rendimiento el\u00e9ctrico<\/strong>: Mantiene la calidad de la se\u00f1al en alta frecuencia y alta temperatura.<\/li><li>Puede realizar taladrados especiales y procesos de metalizado de agujeros pasantes (PTH) para placas complejas.<\/li><li><strong>La fiabilidad de la HTP es buena<\/strong>: Esto reduce el riesgo de fallo de conexi\u00f3n a alta temperatura.<\/li><li><strong>El coste es inferior al de muchos materiales de gama alta<\/strong>\u00a0mientras que el rendimiento es bueno.<\/li><li><strong>Factor de disipaci\u00f3n estable (Df)<\/strong>\u00a0en comparaci\u00f3n con otros materiales. Esto reduce la p\u00e9rdida de se\u00f1al.<\/li><li><strong>Buena resistencia qu\u00edmica<\/strong>\u00a0para resistir los productos qu\u00edmicos del proceso y la exposici\u00f3n en el campo.<\/li><li><strong>Resistencia a los golpes y a las vibraciones, adem\u00e1s de ign\u00edfugo<\/strong>: Hacer las tablas m\u00e1s seguras en uso rudo.<\/li><li>Se adapta a los dise\u00f1os de PCB que necesitan un control estricto de la impedancia para se\u00f1ales de alta velocidad.<\/li><\/ul><h2 class=\"header-vfC6AV auto-hide-last-sibling-br\">FR-4 High-Tg PCB \u00c1reas de aplicaci\u00f3n<\/h2><div class=\"auto-hide-last-sibling-br paragraph-JOTKXA paragraph-element br-paragraph-space\">Dado que las placas FR-4 de alta Tg manejan bien el calor, sirven para muchas industrias que necesitan un comportamiento t\u00e9rmico estable. Las \u00e1reas t\u00edpicas incluyen:<\/div><ul class=\"auto-hide-last-sibling-br\"><li>Inform\u00e1tica, almacenamiento y perif\u00e9ricos.<\/li><li>Electr\u00f3nica de consumo.<\/li><li>Redes y sistemas de telecomunicaciones.<\/li><li>Aeroespacial y defensa.<\/li><li>Productos sanitarios.<\/li><li>Control e instrumentos industriales.<\/li><li>Automoci\u00f3n y transporte.<\/li><\/ul><h2 class=\"header-vfC6AV auto-hide-last-sibling-br\">C\u00f3mo elegir el material FR-4 adecuado<\/h2><div class=\"auto-hide-last-sibling-br paragraph-JOTKXA paragraph-element br-paragraph-space\">Existen muchas variantes de FR-4. Elegir el adecuado es clave porque la elecci\u00f3n del material determina la estabilidad final de la placa de circuito impreso y su mejor rendimiento. Antes de seleccionar un sustrato, compruebe estos factores:<\/div><ul class=\"auto-hide-last-sibling-br\"><li><strong>Constante diel\u00e9ctrica<\/strong>: Afecta a la velocidad de la se\u00f1al y a la impedancia.<\/li><li><strong>Tangente de p\u00e9rdida o factor de disipaci\u00f3n<\/strong>: Afecta a la p\u00e9rdida de se\u00f1al.<\/li><li><strong>Conductividad t\u00e9rmica<\/strong>: Afecta a la evacuaci\u00f3n del calor.<\/li><li><strong>Temperatura de transici\u00f3n v\u00edtrea (Tg)<\/strong>: Este es el indicador principal que establece el l\u00edmite superior de calor.<\/li><li><strong>Coeficiente de dilataci\u00f3n t\u00e9rmica (CTE)<\/strong>: Afecta a la estabilidad dimensional a alta temperatura.<\/li><li><strong>Propiedades el\u00e9ctricas<\/strong>\u00a0como la resistencia de aislamiento y la tensi\u00f3n de ruptura.<\/li><\/ul><h2 class=\"header-vfC6AV auto-hide-last-sibling-br\">\u00bfCu\u00e1ndo se necesita un PCB de alta Tg?<\/h2><div class=\"auto-hide-last-sibling-br paragraph-JOTKXA paragraph-element br-paragraph-space\">Si su placa debe soportar cargas t\u00e9rmicas que alcancen aproximadamente Tg + 25 \u00b0C, entonces necesita material de alto Tg. Si un producto funciona a 130 \u00b0C o m\u00e1s, las placas de alto Tg a\u00f1aden seguridad y fiabilidad. Un factor importante es la soldadura sin plomo. Los procesos sin plomo utilizan picos de temperatura m\u00e1s altos. Por este motivo, muchos fabricantes de placas de circuito impreso utilizan ahora materiales de alto Tg.<\/div><h2 class=\"header-vfC6AV auto-hide-last-sibling-br\">Usos t\u00edpicos de los PCB de alto contenido en tg<\/h2><div class=\"auto-hide-last-sibling-br paragraph-JOTKXA paragraph-element br-paragraph-space\">Si un producto tiene una mayor densidad de potencia y el calor afectar\u00e1 al disipador t\u00e9rmico o a otras piezas, las placas de alto Tg son una buena elecci\u00f3n. A medida que aumente la popularidad de las placas de alto Tg, las ver\u00e1 donde los componentes electr\u00f3nicos funcionen a temperaturas m\u00e1s elevadas. PHILIFAST ofrece placas de circuito impreso de alta temperatura para satisfacer muchas necesidades de la industria y cumplir las especificaciones del cliente con plazos de entrega cortos. Algunos ejemplos de aplicaciones son:<\/div><ul class=\"auto-hide-last-sibling-br\"><li>Pasarelas y routers.<\/li><li>Lectores y etiquetas RFID.<\/li><li>Inversores de potencia.<\/li><li>Placas de antena y RF.<\/li><li>Repetidores y amplificadores inal\u00e1mbricos.<\/li><li>Servicios de fabricaci\u00f3n por contrato (PCBA para clientes).<\/li><li>PLC y unidades de control de bajo coste.<\/li><li>Placas de desarrollo de sistemas integrados.<\/li><li>Sistemas inform\u00e1ticos integrados.<\/li><li>M\u00f3dulos de alimentaci\u00f3n de CA y fuente de alimentaci\u00f3n.<\/li><\/ul><h2 class=\"header-vfC6AV auto-hide-last-sibling-br\">Materiales PHILIFAST High-Tg<\/h2><div class=\"auto-hide-last-sibling-br paragraph-JOTKXA paragraph-element br-paragraph-space\">PHILIFAST almacena y utiliza varios materiales de alta Tg y materiales relacionados. A continuaci\u00f3n se indican los nombres y tipos m\u00e1s comunes utilizados en la industria. Estos nombres son nombres comerciales y c\u00f3digos de grado de los proveedores de resinas y laminados.<\/div><p>\u00a0<\/p><table><thead><tr><th>Categor\u00eda de material<\/th><th>Modelos espec\u00edficos\/Nombres comerciales<\/th><\/tr><\/thead><tbody><tr><td>High-Tg FR-4 (sin hal\u00f3genos)<\/td><td>Shengyi S1165, Kingboard HF-170<\/td><\/tr><tr><td>Tg normal FR-4 (sin hal\u00f3genos)<\/td><td>Shengyi S1155, KB-6165G<\/td><\/tr><tr><td>Tipos de CTI elevados<\/td><td>Shengyi S1600L, KB-6165GC, KB-6169GT<\/td><\/tr><tr><td>Otros grados y nombres comerciales de FR-4 de alta Tg<\/td><td>FR408, FR408HR, IS410, FR406, GETEK, PCL-370HR; S1000-2, IT180A, IT-150DA; N4000-13, N4000-13EP, N4000-13SI, N4000-13EP SI; Megtron4, Megtron6 (Panasonic); EM-827 (Taiguang); GA-170 (Hongren); NP-180 (Nanya); TU-752, TU-662 (Taiaoyao); TU-872; MCL-BE-67G(H); MCL-E-679(W); MCL-E-679F(J) (Hitachi) y calidades afines como IT180A, GETEK, PCL-370HR, serie N4000-13, S1000-2 y S1000-2M.<\/td><\/tr><\/tbody><\/table><p>\u00a0<\/p><div class=\"auto-hide-last-sibling-br paragraph-JOTKXA paragraph-element br-paragraph-space\">Estas listas cubren muchos laminados comerciales y preimpregnados utilizados para placas de alto Tg y alto rendimiento. Puede elegir un grado en funci\u00f3n de los datos de ensayo y de sus necesidades de proceso.<\/div><h2 class=\"header-vfC6AV auto-hide-last-sibling-br\">Notas clave sobre procesamiento y fiabilidad<\/h2><ul class=\"auto-hide-last-sibling-br\"><li>Los materiales de alta Tg resisten el reflujo y los m\u00faltiples ciclos de laminaci\u00f3n. Esto facilita las construcciones multicapa complejas.<\/li><li>Una Tg m\u00e1s alta reduce la posibilidad de delaminaci\u00f3n durante los ciclos t\u00e9rmicos, pero a\u00fan as\u00ed hay que controlar variables del proceso como la presi\u00f3n, el perfil de temperatura y el relleno de resina.<\/li><li>La absorci\u00f3n de humedad es importante. Incluso los materiales de alta Tg pueden absorber humedad. Los procedimientos de secado y almacenamiento siguen siendo importantes para un montaje fiable.<\/li><li>La coincidencia del CTE es importante. El CTE de la placa debe coincidir con el comportamiento del componente y del laminado para reducir la tensi\u00f3n de la uni\u00f3n soldada, especialmente en el caso de los BGA y los chips de gran tama\u00f1o.<\/li><li>Para HDI y trabajos de paso fino, elija materiales con diel\u00e9ctrico estable y baja p\u00e9rdida para la integridad de la se\u00f1al.<\/li><\/ul><h2 class=\"header-vfC6AV auto-hide-last-sibling-br\">Resumen<\/h2><div class=\"auto-hide-last-sibling-br paragraph-JOTKXA paragraph-element br-paragraph-space\">Tg es la temperatura a la que el pl\u00e1stico pasa de ser duro y vidrioso a blando y gomoso. Los materiales de PCB de alta Tg mantienen su estructura y funcionamiento a temperaturas m\u00e1s elevadas. Ayudan a la soldadura sin plomo, a la alta densidad de potencia y a las necesidades de dise\u00f1o ajustadas, como multicapa y HDI. El FR-4 sigue siendo una opci\u00f3n com\u00fan y rentable para las placas de alto Tg. Debe elegir el grado de material que se adapte a sus necesidades el\u00e9ctricas, t\u00e9rmicas y mec\u00e1nicas. PHILIFAST ofrece muchas opciones de alto Tg para satisfacer los diferentes requisitos de la industria.<\/div>\t\t\t\t\t\t\t\t<\/div>\n\t\t\t\t<\/div>\n\t\t\t\t\t<\/div>\n\t\t\t\t<\/div>\n\t\t\t\t<\/div>","protected":false},"excerpt":{"rendered":"<p>What is a high-Tg PCB? What is Glass Transition Temperature (Tg)? Glass transition temperature, called\u00a0Tg, is one of the most 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temperature, called\\u00a0<strong>Tg<\\\/strong>, is one of the most important properties of plastics and epoxy materials. Tg also shows the quality of the glass fiber cloth used in PCBs. Compared with HDT (Heat Deflection Temperature), Tg is not always more important, but it still matters. Tg is the temperature when the long chains in a plastic gain larger segmental motion.<\\\/div><div class=\\\"auto-hide-last-sibling-br paragraph-JOTKXA paragraph-element br-paragraph-space\\\">When the use temperature is below Tg, the motion of polymer chain segments is mostly frozen. The material shows more ordered, lattice-like structure. The plastic is hard, stiff, and brittle. We call this the\\u00a0<strong>glassy state<\\\/strong>.<\\\/div><div class=\\\"auto-hide-last-sibling-br paragraph-JOTKXA paragraph-element br-paragraph-space\\\">When the use temperature is above Tg, the polymer chain segments have more freedom to move. The plastic becomes softer and more flexible. We call this the\\u00a0<strong>rubbery state<\\\/strong>.<\\\/div><div class=\\\"auto-hide-last-sibling-br paragraph-JOTKXA paragraph-element br-paragraph-space\\\">So Tg is the temperature where the material shifts from glassy to rubbery. Tg is the highest temperature at which a substrate keeps its rigidity. In other words, ordinary PCB substrate materials will soften, deform, or even melt at high temperature. At the same time, their mechanical and electrical properties fall fast.<\\\/div><h2 class=\\\"header-vfC6AV auto-hide-last-sibling-br\\\">Tg and Board Behavior<\\\/h2><div class=\\\"auto-hide-last-sibling-br paragraph-JOTKXA paragraph-element br-paragraph-space\\\">Tg marks a clear change in material behavior. Below Tg, the board keeps its shape and mechanical strength. Above Tg, the board may bend and lose stiffness. This change also affects electrical properties. Dielectric loss and insulation behavior can change as temperature moves across Tg. For PCB design and assembly, knowing the Tg helps choose proper materials and processes.<\\\/div><h2 class=\\\"header-vfC6AV auto-hide-last-sibling-br\\\">Categories of PCB Tg Values<\\\/h2><div class=\\\"auto-hide-last-sibling-br paragraph-JOTKXA paragraph-element br-paragraph-space\\\">Manufacturers divide board materials by Tg ranges. Typical groups are:<\\\/div><ul class=\\\"auto-hide-last-sibling-br\\\"><li><strong>Normal Tg boards<\\\/strong>: 130 \\u00b0C to 150 \\u00b0C. Examples: KB-6164F (140 \\u00b0C), S1141 (140 \\u00b0C).<\\\/li><li><strong>Medium Tg boards<\\\/strong>: 150 \\u00b0C to 170 \\u00b0C. Examples: KB-6165F (150 \\u00b0C), S1141-150 (150 \\u00b0C).<\\\/li><li><strong>High Tg boards (higher cost)<\\\/strong>: 170 \\u00b0C and above. Examples: KB-6167F (170 \\u00b0C), S1170 (170 \\u00b0C).<\\\/li><\\\/ul><div class=\\\"auto-hide-last-sibling-br paragraph-JOTKXA paragraph-element br-paragraph-space\\\">Note: For some consumer and network products, S1141 was common. In QC reports it sometimes shows Tg = 130 \\u00b0C and sometimes Tg = 135 \\u00b0C. This shows that testing and grade naming can vary.<\\\/div><h2 class=\\\"header-vfC6AV auto-hide-last-sibling-br\\\">Advantages of High-Tg Materials<\\\/h2><ol class=\\\"auto-hide-last-sibling-br\\\"><li><strong>Higher stability<\\\/strong>: If you raise the Tg of the PCB substrate, you also raise heat resistance, chemical resistance, moisture resistance, and device stability.<\\\/li><li><strong>Better for high power density designs<\\\/strong>: If a device has high power density and large heat generation, high-Tg PCBs help manage heat.<\\\/li><li><strong>Design flexibility<\\\/strong>: With better thermal properties, you can change board size or layout and still meet power and thermal needs. You can use bigger PCBs or different stackups when heat is better managed.<\\\/li><li><strong>Ideal for multilayer and HDI PCBs<\\\/strong>: Multilayer and HDI boards are dense. They create higher heat levels. High-Tg boards help keep manufacturing and product reliability.<\\\/li><li><strong>Improved resistance<\\\/strong>: When Tg rises, the board\\u2019s resistance to heat, moisture, and chemicals improves. Stability in service also improves.<\\\/li><li><strong>Better for lead-free soldering<\\\/strong>: Lead-free reflow uses higher temperatures. Boards with higher Tg handle these temperatures better.<\\\/li><li><strong>Lower warpage in SMT<\\\/strong>: High-Tg materials deform less during SMT and reflow. They give higher reliability. Risks like high-temperature cracking and copper blistering are lower than with low-Tg boards. In normal handling, high-Tg material can feel more brittle, but at high temperature its strength and dimensional stability (CTE behavior) are better than low-Tg materials.<\\\/li><\\\/ol><h2 class=\\\"header-vfC6AV auto-hide-last-sibling-br\\\">Performance of High-Tg PCBs<\\\/h2><div class=\\\"auto-hide-last-sibling-br paragraph-JOTKXA paragraph-element br-paragraph-space\\\">With fast growth in electronics, high-Tg materials are widely used in computers, communication devices, precision instruments, and test equipment. To reach higher functions and more layers, PCB substrates need higher heat resistance as a basic requirement. Also, with high-density assembly like SMT and chip mounting technologies, and with trends to thinner boards, smaller holes, and finer routing, substrate heat resistance becomes critical.<\\\/div><div class=\\\"auto-hide-last-sibling-br paragraph-JOTKXA paragraph-element br-paragraph-space\\\">The difference between typical FR-4 and high-Tg FR-4 shows in many ways. Mechanical strength, adhesion, water absorption, dimensional stability, and thermal behavior after moisture uptake all vary. Under thermal stress and thermal expansion, high-Tg boards keep shape and function better. For this reason, demand for high-Tg boards has risen. Their price is higher than standard boards.<\\\/div><div class=\\\"auto-hide-last-sibling-br paragraph-JOTKXA paragraph-element br-paragraph-space\\\">High-Tg materials are popular in LED lighting. LED packages dissipate more heat than ordinary parts. An FR-4 board with the right structure can be much cheaper than a metal core board and still meet thermal needs in some designs.<\\\/div><h2 class=\\\"header-vfC6AV auto-hide-last-sibling-br\\\">Why Use FR-4 to Make High-Tg PCBs?<\\\/h2><div class=\\\"auto-hide-last-sibling-br paragraph-JOTKXA paragraph-element br-paragraph-space\\\">Some applications need PCBs that work at 200 \\u00b0C or higher. To run reliably at such temperatures, we must use materials made for high temperature. One common choice is FR-4. High-Tg FR-4 boards can handle much higher glass transition temperatures and still give useful properties:<\\\/div><ul class=\\\"auto-hide-last-sibling-br\\\"><li>Improved impedance control.<\\\/li><li>Better thermal management.<\\\/li><li>Lower moisture uptake.<\\\/li><li>Stable performance in service.<\\\/li><\\\/ul><div class=\\\"auto-hide-last-sibling-br paragraph-JOTKXA paragraph-element br-paragraph-space\\\">FR-4 is a flame-retardant, glass-fiber-reinforced epoxy. It has many benefits that suit high-Tg PCB needs:<\\\/div><ul class=\\\"auto-hide-last-sibling-br\\\"><li>It resists many lamination cycles and fits complex PCB processes.<\\\/li><li>It supports lead-free assembly.<\\\/li><li>FR-4 types are many. There are PTFE types, ceramic-filled PTFE, and thermoset hydrocarbon bases. You choose by need.<\\\/li><\\\/ul><h2 class=\\\"header-vfC6AV auto-hide-last-sibling-br\\\">FR-4 Special Properties<\\\/h2><div class=\\\"auto-hide-last-sibling-br paragraph-JOTKXA paragraph-element br-paragraph-space\\\">FR-4 offers key strengths for high demand uses:<\\\/div><ul class=\\\"auto-hide-last-sibling-br\\\"><li><strong>Good electrical performance<\\\/strong>: This keeps signal quality in high frequency and high temperature.<\\\/li><li>It can handle special drilling and plated through-hole (PTH) processes for complex boards.<\\\/li><li><strong>PTH reliability is good<\\\/strong>: This lowers the risk of connection failure at high temperature.<\\\/li><li><strong>The cost is lower than many high-end materials<\\\/strong>\\u00a0while performance is good.<\\\/li><li><strong>Stable dissipation factor (Df)<\\\/strong>\\u00a0compared with some other materials. This reduces signal loss.<\\\/li><li><strong>Good chemical resistance<\\\/strong>\\u00a0to resist process chemicals and field exposure.<\\\/li><li><strong>Shock and vibration resistance, plus flame retardancy<\\\/strong>: Make boards safer in rough use.<\\\/li><li>It fits PCB designs that need tight impedance control for high speed signals.<\\\/li><\\\/ul><h2 class=\\\"header-vfC6AV auto-hide-last-sibling-br\\\">FR-4 High-Tg PCB Application Areas<\\\/h2><div class=\\\"auto-hide-last-sibling-br paragraph-JOTKXA paragraph-element br-paragraph-space\\\">Because FR-4 high-Tg boards handle heat well, they serve many industries that need stable thermal behavior. Typical areas include:<\\\/div><ul class=\\\"auto-hide-last-sibling-br\\\"><li>Computing, storage, and peripherals.<\\\/li><li>Consumer electronics.<\\\/li><li>Networking and telecom systems.<\\\/li><li>Aerospace and defense.<\\\/li><li>Medical devices.<\\\/li><li>Industrial control and instruments.<\\\/li><li>Automotive and transport.<\\\/li><\\\/ul><h2 class=\\\"header-vfC6AV auto-hide-last-sibling-br\\\">How to Choose the Right FR-4 Material<\\\/h2><div class=\\\"auto-hide-last-sibling-br paragraph-JOTKXA paragraph-element br-paragraph-space\\\">There are many FR-4 variants. Choosing the right one is key because material choice sets the final PCB stability and best performance. Before selecting a substrate, check these factors:<\\\/div><ul class=\\\"auto-hide-last-sibling-br\\\"><li><strong>Dielectric constant<\\\/strong>: It affects signal speed and impedance.<\\\/li><li><strong>Loss tangent or dissipation factor<\\\/strong>: It affects signal loss.<\\\/li><li><strong>Thermal conductivity<\\\/strong>: It affects heat removal.<\\\/li><li><strong>Glass transition temperature (Tg)<\\\/strong>: This is the core indicator that sets the upper heat limit.<\\\/li><li><strong>Coefficient of thermal expansion (CTE)<\\\/strong>: It affects dimensional stability at high temperature.<\\\/li><li><strong>Electrical properties<\\\/strong>\\u00a0like insulation resistance and breakdown voltage.<\\\/li><\\\/ul><h2 class=\\\"header-vfC6AV auto-hide-last-sibling-br\\\">When Do You Need a High-Tg PCB?<\\\/h2><div class=\\\"auto-hide-last-sibling-br paragraph-JOTKXA paragraph-element br-paragraph-space\\\">If your board must withstand heat loads that reach about Tg + 25 \\u00b0C, then you need high-Tg material. If a product runs at 130 \\u00b0C or higher, high-Tg boards add safety and reliability. A main driver is lead-free soldering. Lead-free processes use higher peak temperatures. For this reason many PCB makers now use high-Tg materials.<\\\/div><h2 class=\\\"header-vfC6AV auto-hide-last-sibling-br\\\">Typical Uses of High-Tg PCBs<\\\/h2><div class=\\\"auto-hide-last-sibling-br paragraph-JOTKXA paragraph-element br-paragraph-space\\\">If a product has higher power density and heat will affect the heatsink or other parts, high-Tg boards are a good choice. As high-Tg boards grow in popularity, you will see them where electronics run at higher temperatures. PHILIFAST offers high-heat PCBs to meet many industry needs and to meet customer specs with short lead times. Example applications include:<\\\/div><ul class=\\\"auto-hide-last-sibling-br\\\"><li>Gateways and routers.<\\\/li><li>RFID readers and tags.<\\\/li><li>Power inverters.<\\\/li><li>Antenna and RF boards.<\\\/li><li>Wireless repeaters and boosters.<\\\/li><li>Contract manufacturing services (PCBA for clients).<\\\/li><li>Low-cost PLC and control units.<\\\/li><li>Embedded system development boards.<\\\/li><li>Embedded computer systems.<\\\/li><li>AC power and power supply modules.<\\\/li><\\\/ul><h2 class=\\\"header-vfC6AV auto-hide-last-sibling-br\\\">PHILIFAST High-Tg Materials<\\\/h2><div class=\\\"auto-hide-last-sibling-br paragraph-JOTKXA paragraph-element br-paragraph-space\\\">PHILIFAST stocks and uses several high-Tg and related materials. Below are common names and types used in the industry. These names are trade names and grade codes from resin and laminate suppliers.<\\\/div><p>\\u00a0<\\\/p><table><thead><tr><th>Material Category<\\\/th><th>Specific Models\\\/Trade Names<\\\/th><\\\/tr><\\\/thead><tbody><tr><td>High-Tg FR-4 (halogen-free)<\\\/td><td>Shengyi S1165, Kingboard HF-170<\\\/td><\\\/tr><tr><td>Normal Tg FR-4 (halogen-free)<\\\/td><td>Shengyi S1155, KB-6165G<\\\/td><\\\/tr><tr><td>High CTI types<\\\/td><td>Shengyi S1600L, KB-6165GC, KB-6169GT<\\\/td><\\\/tr><tr><td>Other high-Tg FR-4 grades and trade names<\\\/td><td>FR408, FR408HR, IS410, FR406, GETEK, PCL-370HR; S1000-2, IT180A, IT-150DA; N4000-13, N4000-13EP, N4000-13SI, N4000-13EP SI; Megtron4, Megtron6 (Panasonic); EM-827 (Taiguang); GA-170 (Hongren); NP-180 (Nanya); TU-752, TU-662 (Taiaoyao); TU-872; MCL-BE-67G(H); MCL-E-679(W); MCL-E-679F(J) (Hitachi) and related grades such as IT180A, GETEK, PCL-370HR, N4000-13 series, S1000-2 and S1000-2M<\\\/td><\\\/tr><\\\/tbody><\\\/table><p>\\u00a0<\\\/p><div class=\\\"auto-hide-last-sibling-br paragraph-JOTKXA paragraph-element br-paragraph-space\\\">These lists cover many commercial laminates and prepregs used for high-Tg and high-performance boards. You can pick a grade by test data and by your process needs.<\\\/div><h2 class=\\\"header-vfC6AV auto-hide-last-sibling-br\\\">Key Processing and Reliability Notes<\\\/h2><ul class=\\\"auto-hide-last-sibling-br\\\"><li>High-Tg materials resist reflow and multiple lamination cycles. This helps complex multilayer builds.<\\\/li><li>Higher Tg reduces the chance of delamination during thermal cycles, but you must still control process variables like pressure, temperature profile, and resin fill.<\\\/li><li>Moisture absorption matters. Even high-Tg materials can take on moisture. Drying and storage procedures still matter for reliable assembly.<\\\/li><li>CTE match is important. The board CTE should match component and laminate behavior to reduce solder joint stress, especially for BGAs and large chips.<\\\/li><li>For HDI and fine pitch work, choose materials with stable dielectric and low loss for signal integrity.<\\\/li><\\\/ul><h2 class=\\\"header-vfC6AV auto-hide-last-sibling-br\\\">Summary<\\\/h2><div class=\\\"auto-hide-last-sibling-br paragraph-JOTKXA paragraph-element br-paragraph-space\\\">Tg is the temperature where plastic changes from hard and glassy to soft and rubbery. High-Tg PCB materials keep structure and function at higher temperatures. They help with lead-free soldering, high power density, and tight design needs like multilayer and HDI. FR-4 remains a common and cost-effective choice for high-Tg boards. You must pick the material grade that fits your electrical, thermal, and mechanical needs. 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