博碩士論文 103521104 詳細資訊




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姓名 呂世宇(Shih-Yu Lu)  查詢紙本館藏   畢業系所 電機工程學系
論文名稱 應用於4G LTE/WWAN系統之微小型天線設計
(Design of Small Antenna for 4G LTE/WWAN Mobile Devices)
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摘要(中) 本研究論文所探討的設計是應用在手持行動通訊設備之4G LTE多頻段天線,LTE多頻段之天線設計理念是由單極天線的基礎理論加以改良。首先,調整單極天線之幾何圖形,並在天線共振路徑上以晶片電容與晶片電感取代耦合式饋入所需之電容值及天線共振路徑所需之電感值,此作法主要目的是為了縮小天線整體之面積。在設計低頻 (LTE 700/GSM 850/GSM 900) 時,發現單極天線所產生的單一共振頻率點無法達到目標所需的阻抗頻寬,欲使低頻的阻抗頻寬增加,則於單極天線路徑加上一段接地的Ground Strip,並在此Ground Strip路徑上放置晶片電感,以達到天線在低頻所需之電感值,使單極天線與接地端產生接地路徑,這樣能使低頻產生雙重共振及改善阻抗頻寬。而設計高頻 (GSM 1800/GSM 1900/UMTS 2100/ LTE 2300/LTE 2500) 時,則是利用在高頻主要路徑上增加一迴圈路徑以及一彎曲分支路徑並在天線主要路徑前段做阻抗匹配之挖槽,藉以調整天線匹配並達到此應用高達1 GHz頻寬的需求。

本研究論文設計之LTE天線產生操作頻率在0.73 GHz、0.91 GHz、2.03 GHz、2.25 GHz及2.66 GHz等五個共振頻率點。此五個共振頻率點能夠於-6 dB頻寬涵蓋 LTE 700 (698~787 MHz)、GSM 850 (824~894 MHz)、GSM 900 (880~960 MHz)、GSM 1800 (1.71~1.88 GHz)、GSM 1900 (1.85~1.99 GHz)、UMTS 2100 (1.92~2.17 GHz)、LTE 2300 (2.3~2.4 GHz)、LTE 2500 (2.5~2.69 GHz)等八個頻段。本研究論文提出之LTE天線設計於厚度為1 mm之FR4電路基板上,天線尺寸為24 x 16 x 1 mm3。而詳細的天線設計模擬分析以及量測結果將在本文中逐一介紹。
摘要(英) This thesis mainly discusses the designs of 4G LTE multi-band antenna for the applications of the smart mobile devices. The idea of LTE multi-band antenna design is improved by the basic theory of monopole antenna. First, by adjusting the geometry of the monopole antenna, replacing the effect of the coupling feed by the chip capacitors, and replacing the antenna resonance path by the chip inductors, the overall area of the antenna is reduced. When designing the lower frequency (LTE 700 / GSM 850 / GSM 900), it is found that the generation of the single resonant frequency of the monopole antenna is not sufficient to achieve the desired system specification. When designing the higher frequency (GSM 1800/GSM 1900/UMTS 2100/ LTE 2300/LTE 2500), by adding a loop and a bending branch on the main resonance path of the higher frequency, the required 1 GHz bandwidth is achieved.

In this thesis, the LTE antenna operates at five frequencies of 0.73 GHz, 0.91 GHz, 2.03 GHz, 2.25 GHz, and 2.66 GHz, which covering LTE 700 (698~787 MHz), GSM 850 (824~894 MHz), GSM 900 (880~960 MHz), GSM 1800 (1.71~1.88 GHz), GSM 1900 (1.85~1.99 GHz), UMTS 2100 (1.92~2.17 GHz), LTE 2300 (2.3~2.4 GHz), and LTE 2500 (2.5~2.69 GHz) with sufficient -6 dB bandwidths. The LTE antenna is designed on the FR4 circuit board with thickness of 1 mm, and area of the antenna is 24 x 16 x 1 mm3. Detailed antenna designs and experimental results are presented in the thesis.
關鍵字(中) ★ 天線
★ 微小型天線
★ 應用
★ 智慧型手機
★ 手持行動裝置
★ 長期演進技術
關鍵字(英) ★ Antenna
★ LTE
★ WWAN
★ 4G
★ Mobile Devices
★ Smart Phone
論文目次 摘要 i
Abstract ii
誌謝 iii
圖目錄 Vi
表目錄 Xi
第一章 緒論 1
1-1 前言 1
1-2 研究動機 2
1-3 文獻回顧 3
1-4 章節介紹 4
第二章 天線基本原理與特性參數 5
2-1 天線基本原理 5
2-1-1 單極天線 7
2-1-2 偶極天線 15
2-1-3 倒L型天線 19
2-1-4 倒F型天線 20
2-2 天線特性參數 21
第三章 LTE天線設計 25
3-1 天線設計目標 25
3-2 天線設計流程與結構分析 26
3-3 天線參數分析與討論 47
第四章 LTE天線實作與量測結果探討 64
第五章 總結 75
附錄 77
參考文獻 80
參考文獻 [1] Y. Wang, Z. W. Du, “Wideband Monopole Antenna With Less Nonground Portion For Octa-Band WWAN/LTE Mobile Phones,” IEEE Transactions on Antennas and Propagation., vol. 64, no. 1, pp. 383-388, Jan. 2016.
[2] K. L. Wong, C. Y. Tsai, “Low-Profile Dual-Wideband Inverted-T Open Slot Antenna for the LTE/WWAN Tablet Computer With a Metallic Frame,” IEEE Transactions on Antennas and Propagation., vol. 63, no. 7, pp. 2879-2886, July 2015.
[3] K. L. Wong, Y. C. Chen, “Small-Size Hybrid Loop/Open-Slot Antenna for the LTE Smartphone,” IEEE Transactions on Antennas and Propagation., vol. 63, no. 7, pp. 5837-5841, July 2015.
[4] T. W. Kang, K. L. Wong, L. C. Chou, and M. R. Hsu, “Coupled-fed shorted monopole with a radiating feed structure for eight-band LTE/WWAN operation in the laptop computer,” IEEE Transactions on Antennas Propagation., vol. 58, pp. 3464–3470, Nov. 2010.
[5] L. J. Ying, Y. L. Ban, and J. H. Chen, “Low-profile coupled-feed printed PIFA for internal seven-band LTE/GSM/UMTS mobile phone antenna,” Cross Strait Quad-Regional Radio Science and Wireless Technology Conference., vol. 1, pp. 418-421, July 2011.
[6] J.-H. Lu, Z.-W. Lin, “Planar Compact LTE/WWAN Monopole Antenna for Tablet Computer Application,” IEEE Antennas and Wireless Propagation Letters., vol. 12, pp. 147-150, 2013.
[7] K. L. Wong, T. W. Weng, “Small-Size Triple-Wideband LTE/WWAN Tablet Device Antenna,” IEEE Antennas and Wireless Propagation Letters., vol. 12, pp. 1516-1519, 2013.
[8] K. L. Wong, L. C. Chou, and C. Wang, “Integrated wideband metal-plate antenna for WLAN/WMAN operation for laptops”, 2005 IEEE Antennas and Propagation Society International Symposium., vol. 4A, pp. 235–238, July 2005.
[9] C. L. Hu, D. L. Huang, H. L. Kuo, C. F. Yang, C. L. Liao, and S. T. Lin, “Compact Multibranch Inverted-F Antenna to be Embedded in a Laptop Computer for LTE/WWAN/IMT-E Applications”, IEEE Antennas and Wireless Propagation Letters., vol. 9, pp. 838–841, July 2010.
[10] C. W. Chiu, Y. J. Chi, and S. M. Deng, “An internal multiband antenna for WLAN and WWAN applications”, Microwave and Optical Technology Letters., vol. 51, no. 8, pp. 1803–1807, Aug. 2009.
[11] C. Zhang, S. Yang, S. El-Ghazaly, A. E. Fathy, and V. K. Nair, “A Low-Profile Branched Monopole Laptop Reconfigurable Multiband Antenna for Wireless Applications”, IEEE Antennas and Wireless Propagation Letters., vol. 8, pp. 216–219, 2009.
[12] X. Wang, W. Chen, and Z. Feng, “Multiband antenna with parasitic branches for laptop applications”, Electronics Letters., vol. 43, no. 19, pp. 1012–1013, Sep. 2007.
[13] K. L. Wong, L. C. Chou, and C. M. Su, “Dual-band flat-plate antenna with a shorted parasitic element for laptop applications”, IEEE Transactions on Antennas and Propagation., vol. 53, no.1, pp. 539–544, Jan. 2005.
[14] H. W. Liu and C. F. Yang, “Miniature multiband monopole antenna for WWAN operation in laptop computer”, Electronics Letters., vol. 46, no. 1, pp. 21–23, Jan. 2010.
[15] C. H. Kuo, K. L. Wong, and F. S. Chang, “Internal GSM/DCS dual-band open-loop antenna for laptop application,” Microwave and Optical Technology Letters., vol. 49, no. 3, pp. 680–684, March 2007.
[16] C. W. Chiu and Y. J. Chi, “Printed Loop Antenna With a U-shaped Tuning Element for Hepta-Band Laptop Applications”, IEEE Transactions on Antennas and Propagation., vol. 58, no.11, pp. 3464–3470, Nov. 2010.
[17] K. L. Wong and P. J. Ma, “Coupled-fed loop antenna with branch radiators for internal LTE/WWAN laptop computer antenna”, Microwave and Optical Technology Letters., vol. 52, no. 12, pp. 2662–2667, Dec. 2010.
[18] T. W. Kang and K. L. Wong, “Internal printed loop/monopole combo antenna for LTE/GSM/UMTS operation in the laptop computer”, Microwave and Optical Technology Letters., vol. 52, no. 7, pp. 1673–1678, July 2010.
[19] C. T. Lee and K. L. Wong, “Study of a uniplanar printed internal WWAN laptop computer antenna including user’s hand effects”, Microwave and Optical Technology Letters., vol. 51, no. 10, pp. 2341–2346, Oct. 2009.
[20] K. L. Wong and S. J. Liao, “Uniplanar coupled-fed printed PIFA for WWAN operation in the laptop computer”, Microwave and Optical Technology Letters., vol. 51, no. 2, pp. 549–554, Feb. 2009.
[21] C. H. Chang and K. L. Wong, “Internal Coupled-Fed Shorted Monopole Antenna for GSM850/900/1800/1900/UMTS Operation in the Laptop Computer”, IEEE Transactions on Antennas and Propagation., vol. 56, no. 11, pp. 3600–3604, Nov. 2008.
[22] K. L. Wong and L. C. Lee, “Bandwidth enhancement of small-size internal WWAN laptop computer antenna using a resonant open slot embedded in the ground plane”, Microwave and Optical Technology Letters., vol. 52, no. 5, pp. 1137–1142, May 2010.
[23] K. L. Wong and F. H. Chu, “Internal planar WWAN laptop computer antenna using monopole slot elements”, Microwave and Optical Technology Letters., vol. 51, no. 5, pp.1274–1279, May 2009.
[24] K. L. Wong and L. C. Lee, “Multiband Printed Monopole Slot Antenna for WWAN Operation in the Laptop Computer”, IEEE Transactions on Antennas and Propagation., vol. 57, no. 2, pp. 324–330, Feb. 2009.
指導教授 丘增杰(Tsen-Chieh Chiu) 審核日期 2016-7-21
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