BRONZE
BRONZE 등급의 판매자 자료

무선통신기기의 전파원리

전기공학에서의 무선통신기기의 전파원리에 대한 리포트
29 페이지
한컴오피스
최초등록일 2010.06.12 최종저작일 2009.05
29P 미리보기
무선통신기기의 전파원리
  • 미리보기

    소개

    전기공학에서의 무선통신기기의 전파원리에 대한 리포트

    목차

    1. 전파와 무선통신 개념이해
    1) 전파의 존재를 최초로 예언한 맥스웰 ··················································································· 3
    2) 사바르, 헨리, 에디슨과 전파 ······································································································ 3
    3) 전파를 확인한 헤르츠 ··················································································································· 3
    2. 전파의 발견
    1) 전파의 복사 모양 ···························································································································· 4
    2) 헤르츠 전파기초 실험 ··················································································································· 5
    3) 헤르츠의 전파 송·수신 장치 ······································································································· 5
    4) 전파의 발생 원리 ···························································································································· 6
    3. 주파수란 무엇인가?
    1) 주파수와 파장이란? ························································································································ 6
    2) 전파의 진행 속도 ···························································································································· 7
    3) 주파수에 의한 전파 분류 ············································································································ 7
    4. 전파의 발생 ········································································································································ 10
    5. 전파의 파동 및 성질
    1) 전파의 파동 ····································································································································· 11
    2) 전파의 직진, 반사, 굴절 ············································································································ 12
    3) 전파의 회절 ····································································································································· 13
    4) 전파의 간섭 ····································································································································· 13
    6. 이동통신과 다양한 정보통신망 서비스 개요
    1) 무선통신 ············································································································································ 18
    2) 무선통신을 이용한 이용분야 ··································································································· 19
    3) 이동통신(Mobile Telecommunication) ················································································ 19
    4) 이동통신서비스의 진화과정 ····································································································· 20
    7. 이동전화 시스템의 구성
    1) 이동전화기 ··········································································································································20
    2) 기지국 ················································································································································· 21
    3) 이동전화국 ········································································································································ 22
    8. 셀룰러 아날로그 이동전화
    1) 셀룰러 아날로그 이동전화란? ································································································· 23
    2) 셀의 의미와 형태 ·························································································································· 23
    9. 다중접속방식
    1) 다중접속방식이란? ························································································································ 23
    2) 다중접속방식의 종류
    ① 아날로그 방식 1세대 ················································································································ 24
    -주파수분할(FDMA) 다중접속 방식
    -디지털화의 장점과 단점
    ② 디지털방식 2세대 ······················································································································· 25
    -시분할 다중접속(TDMA)방식
    -부호분할 다중접속(CDMA)방식
    ③ FPLMTS/IMT-2000 3세대 ··········································································································27
    -FPLMTS/IMT-2000
    -3세대통신 의 출현 배경
    -3세대와 2세대
    ※ 참고자료 및 문헌 ···························································································································· 29

    본문내용

    1) 전파의 존재를 최초로 예언한 맥스웰
    오늘날 이동통신, 방송 등에서 활발하게 이용하고 있는 전파, 이 전파의 존재를 최초로 예언한 사람은 영국의 맥스웰입니다. 맥스웰은 패러데이의 법칙에 변위전류를 추가하여, 전계가 시간적으로 변하면 자계가 생기고, 자계는 또 전계를 발생시켜 파동(전파)이 발생한다고 1871년에 발표했습니다. 이렇게 발생되는 전파는 이미 태고부터 존재하고 있었지만, 우리 인간이 인지하지 못하고 있었을 뿐입니다. 하지만, 맥스웰도 오늘날 전파가 이렇게 넓은 범위에 활용되어 우리 인간에게 엄청난 도움을 주리라고는 미처 생각지 못했을 것입니다.
    2) 사바르, 헨리, 에디슨과 전파
    ① 사바르 (1824년)
    전기 실험을 위해 고안된 콘덴서의 원형인 "라이든(Leyden)병"에 저장된 전기를 방전할 때 불꽃이 점멸하며 진동하고 있는 것처럼 보인다고 말만 했습니다.
    ② 헨리 (1842년)
    "라이든 병"으로부터 30미터나 떨어진 곳에서도 쇳조각이 자화하는 사실을 발견하고 놀랬을 뿐 그것이 전파인 줄은 몰랐습니다.
    ③ 에디슨 (1875년)
    모르스의 키를 두드릴 때에 가까이 있는 금속에서 불꽃이 튀는 것을 볼 수 있었다고 하였으나, 역시 그것이 전파인 줄은 에디슨도 알지 못했습니다.
    3) 전파를 확인한 헤르츠




    6. 이동통신과 다양한 정보통신망 서비스 개요
    다양한 정보 통신망과 서비스의 종류
    1) 무선통신
    물리적인 회선을 이용하지 않고 지구 대기에서 전자기파를 이용해 데이터를 전송하는 비유도체인 무선 선로를 이용. 전자기파를 이용할 때는 신호의 주파수와 대역폭이 전기적인 특성을 결정짓는 요인이 되고 이 전자기파는 전파라고도 함.
    2) 무선통신을 이용한 이용분야
    3) 이동통신(Mobile Telecommunication)
    이동통신은 항공기, 선박, 열차, 자동차처럼 움직이는 대상과 일반전화간의 통신이나 이동체 상호간의 무선통신, 이동체 통신이라고도 하며 고정통신과 반대되는 개념.
    4) 이동통신 서비스의 진화 과정
    이동통신은 아래 표와 같이 제1세대, 제2세대, 제2.5세대, 제3세대, 제 4세대로 구분할 수 있다. 셀룰러 이동통신, 무선전화, 무선 호출 등의 경계는 3세대부터 사라진다.
    7. 이동전화 시스템의 구성
    이동전화시스템은 흔히 이동전화기라고 부르는 이동단말기와 신호를 송수신하는 기지국, 이동전화국 등이 있다.
    1) 이동단말기
    카폰, 휴대폰, 숄더폰 등을 말한다.

    참고자료

    · · http://blog.naver.com/hjo0075 (IT, 컴퓨터 블로그)
    · · http://blog.daum.net/royal5 (IT, 컴퓨터 블로그)
    · · 전파와 CDMA란 무엇인가 -이형국 지음| 포인트 펴냄-
    · · http://news.naver.com/main/read.nhn?mode=LSD&mid=sec&sid1=105&oid=016&aid=
    · 0000164521 (네이버뉴스)
  • 자료후기

    Ai 리뷰
    지식판매자의 자료는 항상 기대 이상의 정보를 제공합니다. 특히 학업에도 활용할 수 있어 매우 만족스럽습니다. 여러분께도 추천합니다!
    왼쪽 화살표
    오른쪽 화살표
  • 자주묻는질문의 답변을 확인해 주세요

    해피캠퍼스 FAQ 더보기

    꼭 알아주세요

    • 자료의 정보 및 내용의 진실성에 대하여 해피캠퍼스는 보증하지 않으며, 해당 정보 및 게시물 저작권과 기타 법적 책임은 자료 등록자에게 있습니다.
      자료 및 게시물 내용의 불법적 이용, 무단 전재∙배포는 금지되어 있습니다.
      저작권침해, 명예훼손 등 분쟁 요소 발견 시 고객센터의 저작권침해 신고센터를 이용해 주시기 바랍니다.
    • 해피캠퍼스는 구매자와 판매자 모두가 만족하는 서비스가 되도록 노력하고 있으며, 아래의 4가지 자료환불 조건을 꼭 확인해주시기 바랍니다.
      파일오류 중복자료 저작권 없음 설명과 실제 내용 불일치
      파일의 다운로드가 제대로 되지 않거나 파일형식에 맞는 프로그램으로 정상 작동하지 않는 경우 다른 자료와 70% 이상 내용이 일치하는 경우 (중복임을 확인할 수 있는 근거 필요함) 인터넷의 다른 사이트, 연구기관, 학교, 서적 등의 자료를 도용한 경우 자료의 설명과 실제 자료의 내용이 일치하지 않는 경우

함께 구매한 자료도 확인해 보세요!

찾으시던 자료가 아닌가요?

지금 보는 자료와 연관되어 있어요!
왼쪽 화살표
오른쪽 화살표
문서 초안을 생성해주는 EasyAI
안녕하세요. 해피캠퍼스의 방대한 자료 중에서 선별하여 당신만의 초안을 만들어주는 EasyAI 입니다.
저는 아래와 같이 작업을 도와드립니다.
- 주제만 입력하면 목차부터 본문내용까지 자동 생성해 드립니다.
- 장문의 콘텐츠를 쉽고 빠르게 작성해 드립니다.
- 스토어에서 무료 캐시를 계정별로 1회 발급 받을 수 있습니다. 지금 바로 체험해 보세요!
이런 주제들을 입력해 보세요.
- 유아에게 적합한 문학작품의 기준과 특성
- 한국인의 가치관 중에서 정신적 가치관을 이루는 것들을 문화적 문법으로 정리하고, 현대한국사회에서 일어나는 사건과 사고를 비교하여 자신의 의견으로 기술하세요
- 작별인사 독후감
해캠 AI 챗봇과 대화하기
챗봇으로 간편하게 상담해보세요.
2025년 05월 12일 월요일
AI 챗봇
안녕하세요. 해피캠퍼스 AI 챗봇입니다. 무엇이 궁금하신가요?
4:28 오전