KR20110055539A - Led가 종방향으로 배향되는 형광등 대체품 - Google Patents
Led가 종방향으로 배향되는 형광등 대체품 Download PDFInfo
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Abstract
본 발명에 따르면, 고정부에서 통상의 형광등을 대체하기 위한 LED 기반의 광원이 제공된다. LED 기반의 광원은 보어를 형성하는 가늘고 긴 광 전달용 로드 및 로드의 일단부 또는 양단부에 위치설정되고 보어의 반경방향 외측을 향해 로드의 소정 부분 내로 종방향으로 광을 생성하기 위해 배향되는 적어도 하나의 LED를 포함한다. 적어도 하나의 커넥터는 로드의 단부에 물리적으로 결합되고 적어도 하나의 LED에 전기적으로 커플링된다. 상기 적어도 하나의 커넥터는 고정부에 대해 물리적 연결 및 전기 접속을 제공하도록 되어 있다. 작동 중에, 적어도 하나의 LED에 의해 생성되는 지향성 광은, 밝은 스팟의 발생을 줄이기 위해 로드를 통해 종방향으로 진행하는 동안 반사, 굴절, 및/또는 확산에 의해 분산된다.
Description
본 발명은 형광등 고정부에서 통상의 형광등을 대체하기 위한 LED 기반의 광원에 관한 것이다.
발광 다이오드(LED)는 형광등에 비해 다수의 장점을 갖는다. LED는 보다 효율적이고, 오래 유지되며, 진동 및 저온에도 덜 민감하다. LED의 이점을 이용하기 위해, 통상의 형광등 형상의 광원은 LED를 포함하도록 되어 있다. LED를 이용하는 공지된 형광등 형상의 광원은, 형광등의 균일한 무지향성 광 출력과 대조되며 LED의 지향성 광 출력에 의해 제한을 받는다.
본 발명은 형광등 고정부에서 통상의 형광등을 대체하기 위한 LED 기반의 광원을 제공하는 것을 목적으로 한다.
LED를 포함하는 공지된 광원은 광에 밝은 스팟(spot)이 나타나는 결과를 초래할 수 있는 지향성 광 출력을 제공한다. 따라서, LED를 포함하는 공지된 광원은, 그 균일한 광 분포를 특징으로 하는 형광등과는 상이하게 보일 수 있다. 본 발명에 따른 LED 기반의 광원은, 형광등의 광 분포에 더욱 근접하게 매칭되도록 하기 위해 LED를 포함하는 공지된 일부 광원보다 균일한 광 출력을 제공할 수 있다. 일반적으로, 고정부에서 통상의 형광등을 대체하기 위한 LED 기반의 광원은, 보어를 형성하는 가늘고 긴 광 전달용 로드를 포함한다. 적어도 하나의 LED가 로드의 일단부 또는 양단부에 위치설정되고, 보어의 반경방향 외측을 향해 로드의 소정 부분 내로 종방향으로 광을 생성하도록 배향된다. 적어도 하나의 커넥터가 로드의 단부에 물리적으로 결합되며 상기 적어도 하나의 LED에 전기적으로 커플링되고, 상기 적어도 하나의 커넥터는 고정부에 대한 물리적 연결 및 전기 접속을 위해 적합하게 되어 있다.
다른 실시예에 있어서, 고정부에서 통상의 형광등을 대체하기 위한 LED 기반의 광원을 설명한다. 가늘고 긴 광 전달용 로드는 보어를 형성한다. 다수의 LED가 로드의 일단부 또는 양단부에 위치설정되고, 보어의 반경방향 외측을 향해 로드의 소정 부분 내로 종방향으로 광을 생성하도록 배향된다. 한 쌍의 바이핀(bi-pin) 단부캡은 로드의 양단부에 결합되고, 바이핀 단부캡들 중 적어도 하나의 바이핀 단부캡은 다수의 LED와 전기가 통한다.
또 다른 실시예에 있어서, 고정부에서 통상의 형광등을 대체하기 위한 LED 기반의 광원을 형성하는 방법은, 보어를 형성하는 가늘고 긴 광 전달용 로드를 제공하는 것, 보어의 반경방향 외측을 향해 로드의 소정 부분 내로 종방향으로 광을 생성하도록 적어도 하나의 LED의 위치를 설정하는 것, 그리고 로드의 양단부에 한 쌍의 바이핀 단부캡을 부착하는 것을 포함하며, 단부캡들 중 적어도 하나의 단부캡은 적어도 하나의 LED와 전기가 통한다.
본 발명에 따르면, 형광등 고정부에서 통상의 형광등을 대체하기 위한 LED 기반의 광원을 얻을 수 있다.
본 명세서에서의 설명은, 여러 도면 전반에 걸쳐 동일한 도면부호가 동일한 부품을 지시하는 첨부 도면을 참고한다.
도 1은 본 발명에 따른 LED 기반의 광원의 사시도이다.
도 2는 도 1의 LED 기반의 광원의 로드의 사시도이다.
도 3은 그 내측 둘레에 불균일한 광 굴절용 텍스쳐를 갖춘, 보어가 형성된 로드를 포함하는 LED 기반의 광원의 사시도이다.
도 4는 보어가 형성된 로드 및 보어 내에 위치설정된 반사기를 포함하는 LED 기반의 광원의 사시도이다.
도 5는 보어가 형성된 로드 및 보어 내의 광 확산용 재료를 포함하는 LED 기반의 광원의 사시도이다.
도 6은, 보어가 형성되어 있으며 외측면에 텍스쳐가 형성되는 로드를 포함하는 LED 기반의 광원의 사시도이다.
도 7은, 보어가 형성되어 있으며 단어 "LOGO"의 형상으로 외측면에 텍스쳐가 형성되는 로드를 포함하는 LED 기반의 광원의 사시도이다.
도 1은 본 발명에 따른 LED 기반의 광원의 사시도이다.
도 2는 도 1의 LED 기반의 광원의 로드의 사시도이다.
도 3은 그 내측 둘레에 불균일한 광 굴절용 텍스쳐를 갖춘, 보어가 형성된 로드를 포함하는 LED 기반의 광원의 사시도이다.
도 4는 보어가 형성된 로드 및 보어 내에 위치설정된 반사기를 포함하는 LED 기반의 광원의 사시도이다.
도 5는 보어가 형성된 로드 및 보어 내의 광 확산용 재료를 포함하는 LED 기반의 광원의 사시도이다.
도 6은, 보어가 형성되어 있으며 외측면에 텍스쳐가 형성되는 로드를 포함하는 LED 기반의 광원의 사시도이다.
도 7은, 보어가 형성되어 있으며 단어 "LOGO"의 형상으로 외측면에 텍스쳐가 형성되는 로드를 포함하는 LED 기반의 광원의 사시도이다.
고정부에서 통상의 형광등을 대체하기 위한 LED 기반의 광원의 실시예가 도 1 내지 도 7에 도시되어 있다. 도 1은 통상의 형광등을 수용하도록 구성된 고정부(12)에서 사용하기 위한 LED 기반의 광원(10)을 도시한 것이다. 광원(10)은 가늘고 긴 광 전달용 로드(14), 바이핀 단부캡(16) 및 단부캡(16)들 중 하나와 로드(14) 사이에 위치설정되는 LED(18)를 포함한다.
도 2에 도시된 바와 같은 로드(14)는 종항향 축(15), 외측면(17), 내측면(19) 및 2개의 단부면(21)을 형성하며, 이 단부면은 외측면(17)과 내측면(19) 사이에서 반경방향으로 연장된다. 중실 본체 부분(22)은 외측면(17)과 내측면(19) 사이의 질량부이다. 축척에 맞게 도시되어 있지는 않지만, 로드(14)는 형광등 고정부(12)와의 결합을 위해 직경이 0.625", 1.0" 또는 1.5"일 때 길이가 대략 48"일 수 있다. 로드(14)는 폴리카보네이트, 아크릴, 유리 또는 다른 광 전달용 재료로 제작될 수 있다. 즉, 로드(14)는 투명할 수도 있고 반투명할 수도 있다. 예를 들면, 반투명한 로드(14)는, 광 굴절용 재료의 입자가 내부에 배치(interspersion)되는 것인 폴리카보네이트와 같은 복합재료로 제작될 수 있다. 로드(14)가 원통형으로 도시되어 있지만, 로드(14)는 대안으로 정사각형, 삼각형, 다각형, 또는 다른 단면 형상을 가질 수 있다. 마찬가지로, 로드(14)는 선형으로 도시되어 있지만, 로드(14)는 대안적인 형상, 예컨대 U자형일 수 있다. 또한, 각각의 광원(10)은 끝과 끝을 붙여 배치되는 다수의 로드(14)를 포함할 수 있으며, 이 경우 LED(18)는 이 로드(14)들 사이에 위치설정될 수 있다.
도 2에 도시된 바와 같이, 로드(14)는 또한 보어(20)를 형성한다. 도시된 바와 같은 보어(20)는 원통형이며 로드(14)와 동축이다. 대안으로, 보어(20)는 정사각형, 삼각형, 다각형 또는 다른 형상과 같은 상이한 단면 형상을 가질 수 있다. 보어(20)의 단면 형상은 로드(14)의 길이에 걸쳐 변할 수 있다. 예를 들면, 보어(20)의 직경은 LED(18)에 인접하여 작아질 수 있고, 로드(14)의 길이를 따라 아래로 이동하면서 점점 커질 수 있다. 더욱이, 보어(20)는 로드(14)의 길이의 단지 일부를 연장시킬 수 있으며, 보어(20)는 중심으로부터 벗어나 있을 수 있고, 즉 로드(14)의 종방향 축(15)과 정렬되어 있지 않을 수 있다.
다시 도 1을 참고하면, LED 기반의 광원(10)은, 고정부(12)에 광원(10)을 물리적으로 연결하고 전기적으로 접속시키기 위한 각각의 광원의 단부(21)에서 바이핀 단부캡(16)들 중 하나를 포함한다. 바이핀 단부캡(16)은 LED(18)에 대한 물리적 연결 및 전기 접속을 위한 요소를 수용할 수 있다. 예를 들면, 단부캡(16)은, 반사기, 히트 싱크, 및/또는 회로판을 포함하는 전기 회로를 수용할 수 있다. 금속 코어 회로판과 같이, LED(18)를 물리적으로 연결하고 전기적으로 접속시키거나, LED(18)를 로드(14)에 직접 물리적으로 부착하고 LED(18)를 함께 배선하기 위한 대안적인 장치를 사용할 수 있다. 각각의 단부캡(16)은 총 4개의 핀에 대해 2개의 핀(16a 및 16b)을 포함한다. 그러나, 4개의 핀 중 단지 2개의 핀이 고정부(12)와 LED(18) 사이의 전기 접속을 제공해야만 하며, 나머지 2개의 핀은 "더미 핀(dummy pin)"일 수 있다. 또한, 단부캡(16)은 로드(14)의 단부(21)에 걸쳐 단부캡(16)이 슬라이딩하도록 함으로써 로드(14)와 결합되는 컵 형상의 본체(16c)를 포함하는 것으로 도시되어 있지만, 단부캡은 상이하게 성형된 본체(16c)를 구비할 수 있다. 예를 들면, 단부캡(16)은 로드(14)에 연결하기 위해 보어(20) 내에 압입 끼워맞춤(press-fit)되는 돌출부를 포함할 수도 있고, 단부캡(16)은 로드(14)에 스크류로 결합될 수도 있다. 추가적으로, 고정부(12)의 구조에 따라 다른 유형의 커넥터, 예컨대 싱글핀 커넥터를 구비하는 단부캡이 사용될 수 있다.
도 1에 도시된 바와 같은 LED(18)는 로드(14)의 단부(21)들 중 하나에 위치설정되며, 로드의 종방향 축(15)에 대해 평행하게 향하도록 배향된다. LED(18)의 이러한 위치설정의 결과로서, LED(18)는 로드의 단부(21)들 중 하나를 통해 로드(14)의 중실 본체 부분(22) 내로 종방향으로 진행하는 광을 생성할 수 있다. 그러나, LED(18)는 여전히 로드(14) 내로 종방향으로 진행하는 광을 생성하면서도 종방향 축(15)에 대해 다양한 각도로 배향될 수 있다. 종방향 축(15)에 대해 LED(18)가 배향될 수 있는 각도는, LED(18)의 시야각, 광이 진행하도록 요구되는 종방향 거리, 및 로드(14)의 광 안내 특성의 함수일 수 있다. 추가적으로, LED(18)는 도 1에 도시된 바와 같이 단지 로드의 일단부 대신 로드(14)의 양단부에 위치설정될 수 있다.
LED(18)의 개수는 광원(10)의 요구되는 파워 및 LED(18)의 파워의 함수일 수 있으며, LED(18)는 도 1에 도시된 바와 같이 보어(20) 주위에 원형 패턴으로 균일하게 이격될 수 있다. 그러나, LED(18)는, 대안으로 다른 간격으로, 예컨대 조명 대상 공간을 향하여 배향되는 광원(10)의 측부에 클러스터링되는 것과 같이 이격될 수 있다. LED(18)는 추가적으로 로드(12)의 길이를 따라 다양한 위치에 위치설정될 수 있다. 예를 들면, LED(18)는 양단부로부터 로드(14)에 진입하는 광을 생성하기 위해 로드(14)의 양단부에 부착될 수 있다. 광원(10)이 다수의 로드(14)를 포함한다면, LED(18)는 로드(14) 접합부에 위치설정될 수 있다.
LED(18)는, 다른 유형의 LED가 대안으로 사용될 수도 있지만, 니치아(Nichia)로부터 입수 가능한 유형의 표면장착형 장치일 수 있다. 예를 들면, 표면장착형 LED(18)가 도시되어 있지만, 그 대신에 또는 이에 더하여 하나 이상의 유기 LED가 사용될 수 있다. LED(18)는 전술한 바와 같이 단부캡(16)들 중 하나에서 인쇄 회로 기판에 부착될 수 있으며, LED(18)는 백색광을 방출하는 LED 광원 조립체(14)에 포함될 수 있다. 그러나, 백색광을 방출하는 LED(18) 대신에 청색광, 자외선광 또는 다른 파장의 광을 방출하는 LED가 사용될 수 있다.
보어가 형성된 로드(14)의 형상 및 LED(18)의 위치와 배향으로 인해, LED(18)에 의해 생성된 광은 도 1에서 광선(24)으로 도시된 바와 같이 로드(14)의 중실 본체 부분(22)에 진입한다. 도 1에 도시된 광선뿐만 아니라 도 3 내지 도 7에 포함된 임의의 광선(24)은 단지 설명을 목적으로 한 것이며, LED로부터의 광의 실제 분산을 정확하게 묘사하려는 의도는 아니다. 각각의 LED(18)는 대체로 원추형 패턴으로 광을 생성하며, 모든 광이 로드(14)의 종방향 축(15)에 대해 평행하게 진행하는 것은 아니다. 결과적으로, 광이 로드(14)에 진입한 이후, 광의 일부는 굴절을 위해 요구되는 입사각보다 큰 각도로 외측면(17)에 충돌하며, 내측면(19)을 향해 다시 반사된다. 광의 다른 부분은 로드에 진입한 직후 외측면(17)을 통해 굴절된다. 마찬가지로, 광의 일부는 로드(14)에 진입한 이후 내측면(19)으로부터 반사된다. 광이 입사각보다 작은 각도로 외측면(17)에 충돌한다면 이러한 광은 외측면(17)을 통해 빠져나갈 수도 있고, 광은 내측면(19)을 향해 다시 반사될 수도 있다. 외측면(17)과 내측면(19) 사이에서의 광 반사의 결과로서, 광의 상이한 부분들은 로드를 빠져나가기 이전에 로드(14)를 통해 상이한 거리만큼 진행한다. 다시 말하면, 광은 로드의 종방향 축(15)을 따라 다양한 거리만큼 로드(14)로부터 방출된다. 따라서, 광원(10)은 형광등을 모사하기 위해 적절히 균일하게 분포된 광을 제공할 수 있다.
도 3은, 로드(14)의 내측면(19)이 균일하지 않은 광 반사용 텍스쳐(28)를 포함한다는 것을 제외하고는 도 1의 광원(10)과 유사한 광원(26)을 도시한 것이다. 텍스쳐(28)는 내측면(19)에 대한 광선(24)의 입사각을 변경시킨다. 결과적으로, 광 반사용 텍스쳐(28)는 보어(20) 내로 굴절되는 광량을 줄임으로써 광원(26)의 효율을 높일 수 있다. 텍스쳐(28)는 릿지(ridge), 도트(dot), 범프(bump), 딤플(dimple) 및/또는 균일하지 않은 다른 표면과 같은 광 안내 구조를 포함한다. 광 안내 구조는 로드(14)의 길이를 가로질러 밀도가 변할 수 있으며, 상기 광 안내 구조는 LED(18)에 인접할 때 밀도가 더 낮고 LED(18)로부터 종방향으로 및/또는 둘레방향으로 이격되어 있을 때 밀도가 더 높다. 광 안내 구조의 밀도가 변함에 따라, 광량이 클 때[즉, LED(18)에 인접한 경우]에는 보다 적은 비율의 광이 분산되고 광량이 적을 때[즉, LED(14)로부터 종방향으로 이격되어 있는 경우]에는 보다 높은 비율의 광이 분산된다. 광 분산이 커질수록 로드(14)를 빠져나가는 광량이 증가하며, 이에 따라 로드(14)의 전체 길이를 따라 광의 실질적으로 균일한 분포를 달성하게 된다. 마찬가지로, 텍스쳐(28)는 LED(18)에 인접하여 종방향 축(15)에 대해 약간 경사진 표면을 포함할 수 있고, LED(18)로부터 이격되고 종방향 축(15)에 대해 더 많이 경사진 표면을 포함할 수 있다. 광 안내용 텍스쳐(28)를 구성하는 구조의 배치는, 손으로 계산하거나 또는 실험함으로써 다른 방식으로 결정될 수도 있지만, 마이클 졸러스(Michael Zollers)의 "Integrated Optimization Capabilities Provide a Robust Tool for LED Backlight Design," LEDs Magazine (Oct. 2006), pp. 27-29에 개시된 소프트웨어와 같은 소프트웨어에 의해 결정될 수 있으며, 이 문헌은 인용함으로써 포함된다.
도 4는, 광원(30)이 보어(20) 내에 위치설정되는 반사기(32)를 포함한다는 것을 제외하고는 광원(10)과 유사한 광원(30)을 도시한 것이다. 반사기(32)는 그 후면이 금속 코팅되어 있는 플라스틱 또는 유리로 제작되는 거울일 수 있으며, 필요에 따라 확산면(도시되지 않음)을 포함할 수 있다. 전술한 바와 같이, LED(18)는 보어(20) 주위에 이격되며, 로드(14) 내로 종방향으로 광을 방출한다. 광의 일부는 내측면(19)에 닿으며, 이 광의 일부는 내측면(19)을 통해 보어(20) 내로 굴절된다. 보어(20) 내로 진입하는 광은 반사기(32)에 의해 로드(14) 내로 다시 반사될 수 있으며, 이때 상기 광은 외측면(17)을 통과할 수 있고 조명 대상 공간을 조명할 수 있다. 결과적으로, 반사기(32)는 광원(30)의 효율을 높인다.
도 5는, 광원(34)의 보어(20)가 광 확산용 재료(36)를 포함한다는 것을 제외하고는 광원(10)과 유사한 광원(34)을 도시한 것이다. 광 확산용 재료(36)는, 예를 들면 실리콘, 에폭시 또는 투명한 폴리우레탄일 수 있다. 광 확산용 재료(36)는 보어(20)로 진입하는 광을 확산시킨다. 확산된 광은, 광이 다시 로드(14) 내로 굴절되도록 소정 각도로 내측면(19)에 닿을 때까지 보어(20)를 통해 진행한다. 보어(20)에 진입하는 광을 분산시킴으로써, 광 확산용 재료(36)는 로드(14)로부터 광을 더욱 균일하게 분포시키는 데 도움이 될 수 있다. 또한, 광 확산용 재료(36)는, 실리콘이 광 확산용 재료(36)로 사용될 때와 같이 로드(14)보다 높은 열전도계수를 가질 수 있다. 결과적으로, 광 확산용 재료(36)는 LED(18)에 의해 생성되는 열을 소산시킴으로써 히트 싱크로서 작용할 수 있다.
도 6은, 이전에 설명한 텍스쳐(28)와 유사하게 균일하지 않은 광 반사용 텍스쳐(40)가 외측면(17)에 포함된다는 것을 제외하고는 광원(10)과 유사한 광원(38)을 도시한 것이다. 텍스쳐(40)는, 예컨대 텍스쳐(28)를 참고하여 전술한 바와 같이 텍스쳐(40)를 구성하는 구조의 밀도 또는 기하학적 형상을 변경함으로써, 로드(14)의 길이에 따라 변경될 수 있다. 추가적으로, 텍스쳐(40)는 영숫자 문자, 그림 또는 다른 형상을 형성하도록 성형될 수 있다. 예를 들면, 도 7에 도시된 바와 같이, 단어 "LOGO"(42)가 텍스쳐(40)로부터 형성된다. 영숫자 문자 및/또는 그림의 형상으로 광 반사용 텍스쳐(40)를 형성함으로써, 외측면(17)의 다른 영역보다 "LOGO"(42)를 통해 더욱 많은 광량이 로드(14)를 빠져나가게 된다. 따라서, 영숫자 문자 및/또는 그림은 로드(14)의 외측면(17)의 나머지보다 더욱 밝게 빛나는 것으로 보이게 된다. 단어 "LOGO"(42)를 포함하지 않는 외측면(17) 부분은, "LOGO"(42)를 형성하는 텍스쳐(40)와 상이한 텍스쳐를 통해 외측면(14)의 나머지를 통한 광의 통과를 제어하기 위해 역시 텍스쳐 처리될 수 있다.
도 1 및 도 3 내지 도 7 각각에 도시된 광원은, 도시되지 않은 추가적인 특징을 포함할 수 있다. 예를 들면, 확산 층은 로드(14)의 외부 주위에서 둘러싸여 있을 수도 있고, 보어(20)를 라이닝하도록 위치설정될 수도 있다.
전술한 실시예는 본 발명의 이해를 용이하게 하기 위해 설명된 것이며, 본 발명을 한정하지 않는다. 오히려, 본 발명은 첨부된 청구범위의 범위에 포함되는 다양한 변형 및 등가의 장치를 포괄하도록 의도되고, 상기 범위는 법에서 허용되는 한 모든 이러한 변형 및 등가의 구조를 포함하도록 가장 넓은 해석에 따른 것이어야 한다.
10 : 광원
12 : 고정부
14 : 로드
15 : 종방향 축
16 : 바이핀 단부캡
17 : 외측면
18 : LED
19 : 내측면
20 : 보어
21 : 단부면
22 : 중실 본체 부분
12 : 고정부
14 : 로드
15 : 종방향 축
16 : 바이핀 단부캡
17 : 외측면
18 : LED
19 : 내측면
20 : 보어
21 : 단부면
22 : 중실 본체 부분
Claims (20)
- 고정부에서 통상의 형광등을 대체하기 위한 LED 기반의 광원으로서, 상기 LED 기반의 광원은
보어를 형성하는 가늘고 긴 광 전달용 로드;
로드의 일단부 또는 양단부에 위치설정되고 보어의 반경방향 외측을 향해 로드의 일부 내로 종방향으로 광을 생성하도록 배향되는 적어도 하나의 LED; 및
로드의 단부에 물리적으로 결합되고 상기 적어도 하나의 LED에 전기적으로 커플링되는 적어도 하나의 커넥터
를 포함하며, 상기 적어도 하나의 커넥터는 고정부에 대해 물리적 연결 및 전기 접속을 제공하도록 되어 있는 것인 LED 기반의 광원. - 제1항에 있어서, 상기 로드는 균일하지 않은 광 굴절용 텍스쳐를 포함하는 것인 LED 기반의 광원.
- 제2항에 있어서, 상기 광 굴절용 텍스쳐는 보어의 길이를 따라 변경되는 것인 LED 기반의 광원.
- 제2항에 있어서, 상기 광 굴절용 텍스쳐는 적어도 하나의 LED에 인접할 때 밀도가 더 작고, 적어도 하나의 LED로부터 더욱 멀어질수록 밀도가 더 높은 것인 LED 기반의 광원.
- 제2항에 있어서, 상기 광 굴절용 텍스쳐는 영숫자 문자 및 그림 중 하나의 형태로 성형되는 것인 LED 기반의 광원.
- 제1항에 있어서, 상기 보어는 반사기를 둘러싸는 것인 LED 기반의 광원.
- 제1항에 있어서, 상기 보어는 광 확산용 재료를 둘러싸는 것인 LED 기반의 광원.
- 제7항에 있어서, 상기 광 확산용 재료는 실리콘을 포함하는 것인 LED 기반의 광원.
- 고정부에서 통상의 형광등을 대체하기 위한 LED 기반의 광원으로서, 상기 LED 기반의 광원은
보어를 형성하는 가늘고 긴 광 전달용 로드;
로드의 일단부 또는 양단부에 위치설정되고 보어의 반경방향 외측을 향해 로드의 일부 내로 종방향으로 광을 생성하도록 배향되는 다수의 LED; 및
로드의 양단부에 결합되는 한 쌍의 바이핀 단부캡
을 포함하며, 상기 바이핀 단부캡들 중 적어도 하나는 상기 다수의 LED와 전기가 통하는 것인 LED 기반의 광원. - 제9항에 있어서, 상기 로드는 균일하지 않은 광 굴절용 텍스쳐를 포함하는 것인 LED 기반의 광원.
- 제10항에 있어서, 상기 광 굴절용 텍스쳐는 보어의 길이를 따라 변경되는 것인 LED 기반의 광원.
- 제10항에 있어서, 상기 광 굴절용 텍스쳐는 LED에 인접할 때 밀도가 더 작고, LED로부터 더욱 멀어질수록 밀도가 더 높은 것인 LED 기반의 광원.
- 제10항에 있어서, 상기 광 굴절용 텍스쳐는 영숫자 문자 및 그림 중 하나의 형태로 성형되는 것인 LED 기반의 광원.
- 제9항에 있어서, 상기 보어는 반사기를 둘러싸는 것인 LED 기반의 광원.
- 제9항에 있어서, 상기 보어는 광 확산용 재료를 둘러싸는 것인 LED 기반의 광원.
- 제15항에 있어서, 상기 광 확산용 재료는 실리콘을 포함하는 것인 LED 기반의 광원.
- 고정부에서 통상의 형광등을 대체하기 위한 LED 기반의 광원을 형성하는 방법으로서, 상기 방법은,
보어를 형성하는 가늘고 긴 광 전달용 로드를 마련하는 것,
보어의 반경방향 외측을 향해 로드의 소정 부분 내로 종방향으로 광을 생성하도록 적어도 하나의 LED의 위치를 설정하는 것, 그리고
단부캡들 중 적어도 하나의 단부캡은 적어도 하나의 LED와 전기가 통하도록 로드의 양단부에 한 쌍의 바이핀 단부캡을 부착하는 것
을 포함하는 것인 LED 기반의 광원 형성 방법. - 제17항에 있어서,
상기 로드 상에 균일하지 않은 광 반사용 텍스쳐를 형성하는 것
을 더 포함하는 LED 기반의 광원 형성 방법. - 제17항에 있어서,
상기 보어 내에 반사기를 배치하는 것
을 더 포함하는 LED 기반의 광원 형성 방법. - 제17항에 있어서,
상기 보어를 실리콘으로 충전하는 것
을 더 포함하는 LED 기반의 광원 형성 방법.
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KR20110055539A true KR20110055539A (ko) | 2011-05-25 |
KR101594198B1 KR101594198B1 (ko) | 2016-02-15 |
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KR1020117002745A KR101594198B1 (ko) | 2008-07-31 | 2009-07-17 | Led가 종방향으로 배향되는 형광등 대체품 |
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US (1) | US7946729B2 (ko) |
KR (1) | KR101594198B1 (ko) |
CN (1) | CN102105742B (ko) |
CA (1) | CA2729669C (ko) |
GB (1) | GB2474158B (ko) |
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CA2729669A1 (en) | 2010-02-04 |
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