請用此 Handle URI 來引用此文件:
http://tdr.lib.ntu.edu.tw/jspui/handle/123456789/8179
完整後設資料紀錄
DC 欄位 | 值 | 語言 |
---|---|---|
dc.contributor.advisor | 張豐丞(Feng-Cheng Chang) | |
dc.contributor.author | Yi-Hsuan Tsai | en |
dc.contributor.author | 蔡宜軒 | zh_TW |
dc.date.accessioned | 2021-05-20T00:49:38Z | - |
dc.date.available | 2023-06-03 | |
dc.date.available | 2021-05-20T00:49:38Z | - |
dc.date.copyright | 2020-08-28 | |
dc.date.issued | 2020 | |
dc.date.submitted | 2020-08-17 | |
dc.identifier.citation | 于洋、許震宇(2016)古琴共鳴體的聲固耦合模態分析。振動與衝擊 35(16):226-230。 王松永(2018)木材物理學(增訂版):物理性質篇。新學林出版股份有限公司472頁。 安藤由典(1989)樂器的音響學。國立編譯館192頁。 吳釗(2006)絕世清音。古吳軒出版社168頁。 卓志隆、葉小雲(2006)低分子量甲醛樹酯處理隊雲杉平板振動性質之影響。林產工業25(1):21-28。 卓志隆、葉小雲、吳四印(2008)含水率對馬林巴木琴琴鍵振動特性之影響。林產工業27(1):1-11。 林西莉(2009)林西莉古琴的故事。貓頭鷹出版社256頁。 林宗翰、羅盛峰、卓志隆(2017)四種闊葉樹木材作為木琴琴鍵之音響性質評估。林產工業36(2):69-78。 周琬喻、羅盛峰、卓志隆(2016)高溫處理對阿拉斯加雲杉之平板振動性質之影響。林產工業35(4):193-202。 黃彥三、陳欣欣(1997)木理傾斜角與含水率對樂器用材音響性質之影響。台灣林業科學12(3):355-361。 陳璇(2011)古琴共鳴體聲學振動特性的研究和分析。長春理工大學機電工程學院碩士論文。 楊帆(2015)古琴振動體與共鳴體聲學特性研究。中央音樂學院出版社204頁。 鄭德淵(1981)音樂音響學(上冊)。樂韻出版社181頁。 趙美霞、康柳、儲德淼、母軍(2016)超聲/高溫熱處理對古琴面板聲學性能的影響。木材加工機械27(4):45-50。 戴桓青(2017)為何五百年才有正音:從義大利名琴研究看古琴典籍中的木材化學知識。「古琴、音樂美學與人文精神」跨領域、跨文化。朝陽科技大學通識教育中心。日月潭教師會館,106年10月15日。 Benade, A.H. (1990) Fundamentals of Musical Acoustics. Dover Publications. 596pp. Bos, F., S. B. Casagrande (2003) On-line non-destructive evaluation and control of wood-based panels by vibration analysis. Journal of Sound and Vibration 268(2): 403-412. Bucur, V. (2006) Acoustics of Wood. Springer. 393pp. Day, C. (2016) Sounding out the qun. Physics Today 69(6): 22. Guan, C., L. Zhou, H. Zhang and K. Li (2014) Vibration modal analysis of the full-sized medium density fiberboard. Applied Mechanics and Materials 620: 268-273. Guan, C., H. Zhang, X. Wang, H. Miao, L. Zhou and F. Liu (2017) Experimental and theoretical modal analysis of full-sized wood composite panels supported on four nodes. Materials 10(6): 683-697. Gunji, T., E. Obataya and K. Aoyama (2012) Vibrational properties of harp soundboard with respect to its multi-layered structure. Journal of Wood Science 58(4): 322-326. Hearmon, R. F. S. (1961) An introduction to applied anisotropic elasticity. Oxford University. 136 pp. Holz, D. (1984) On some relation between anatomic properties and acoustical qualities of resonance wood. Holztechnologie 25(1): 31-36. Hurlebaus, S. (1999) Nondestructive evaluation of composite laminates. NDT.net 4(3). Larsson, D. (1997) Using modal analysis for estimation of anisotropic material constants. Journal of Engineering Mechanics-ASCE 123(3): 222-229. Nakao, T., T. Okano and I. Asano (1985) Vibration properties of wooden plate. Mokuzai Gakkaishi 31(10): 793-800. Noguchi, T., E. Obataya and K. Ando (2012) Effects of aging on the vibrational properties of woods. Journal of Cultural Heritage 13(3): S21-S25. Obataya, E,. N. Zeniya and K. Endo-Ujiie (2020) Effects of seasoning on the vibrational properties of wood for soundboards of string instruments. The Journal of the Acoustical Society of America 147: 998-1005. Penttinen, H., J. Pakarinen, V. Välimäki, M. Laurson, H. Li and M. Leman (2006) Model-based sound synthesis of the guain. The Journal of the Acoustical Society of America 120: 4052-4063. Schelleng, J. C. (1963) The violin as a circuit. The Journal of the Acoustical Society of America 35: 326-338. Waltham, C., Y. Lan and E. Koster (2016) An acoustical study of the qin. The Journal of the Acoustical Society of America 139(4): 1592-1600. Wang, B.-T., S.-W. Liang and Y.-H. Wu (2018) Development of customized sound measurement program and application to product noise evaluation. 25th International Congress on Sound and Vibration 2018. International Institute of Acoustics and Vibration. Hiroshima, 8-12 July 2018. Wegst, U. G. K. (2008) Bamboo and wood in musical instruments. Annual Review of Materials Research 38: 323-349. Yoshikawa, Shigeru (2007) Acoustical classification of woods for string instrument. The Journal of the Acoustical Society of America 122(1): 568-573. Zhou, J., Y. H. Chui, M. Gong and L. Hu (2016) Simultaneous measurement of elastic constants of full-size engineered wood-based panels by modal testing. Holzforschung 70(7): 673-682. | |
dc.identifier.uri | http://tdr.lib.ntu.edu.tw/jspui/handle/123456789/8179 | - |
dc.description.abstract | 古琴為中國傳統木質樂器,通常以梓樹木材(Catalpa ovata,簡稱梓木)作為背板、泡桐木材(Paulownia tomentosa)作為面板。由於古琴具有個人風格與多元特色,在材料選擇上以斲琴師的個人經驗為主要依據,缺乏系統化、科學化的方法,因此本研究目的為探討梓木背板對於古琴發聲之影響,討論不同背板材料產生的結果,進而作為未來挑選古琴材料時的依據。本研究先以板振動法測量梓木機械性質,再製作成簡易琴,並利用頻譜分析法剖析彈撥琴弦所發出的聲音。結果顯示密度越大的梓木平板可以更有效地傳遞振動能量至材料內的每一處,但不容易轉換成聲波放射至空氣中。製作成簡易琴後,由頻譜結果可以發現彈撥簡易琴1弦與彈撥4弦的頻譜峰值分佈大致呈現M字形,具有2個較高峰值的區域,彈撥7弦的頻譜峰值分佈則呈現山峰狀,僅有1個區域;而從峰值隨時間變化的結果得知,縱向動彈性模數較高的背板在高頻率區域的衰減程度較明顯。比較梓木性質與簡易琴聲音特徵的結果,梓木背板的異方性較低時,反而可以在部分頻率範圍具有較高的特徵峰;而泡桐面板與梓木背板之間的穿透率越大時,在1175.0 Hz的特徵峰峰值較高,1300.0–1400.0 Hz之間的峰值較低;當聲音輻射率與損失係數的比值較小時,彈撥1弦與彈撥4弦的聲音在588.0 Hz具有較高的峰值,1176.0 Hz具有較低的峰值。 | zh_TW |
dc.description.abstract | Catalpa ovata is the traditional material of the back plate of guqin, which is the prominent musical instrument in ancient China. Since there is a lack of scientific and systematic method of selecting materials of guqin, the guqin luthiers’ experience and craftsmanship dominate the procedure. Thus, the aim of this study is to evaluate the effects of back plate materials on the sound characteristic of guqin and try to form a basis for choosing materials of guqin in the future. This study used the plate vibration method to measure vibrational properties of Catalpa ovata, which simplified guqins were assembled with after testing, and acoustical properties of simplified guqins were obtained with the spectral analysis. According to the results, the high-density Catalpa ovata plate could easily transmit energy around the plate itself but radiate to the air obstructively. Observing the Auto Power Spectrum, the distribution of peaks was M-shape when plucking the 1st and 4th strings and was mountain-shape when plucking the 7th string. Depending on the difference between peak values, we could find the peaks of back plates whose longitudinal dynamic elastic modulus was higher decayed fastly at high frequency. Comparing the properties of Catalpa ovata and the characteristic of guqin, there were higher peaks at partial frequency range if the back plate was less anisotropic. When the ratio of the transmitted sound intensity was higher, the peak value was higher at 1175.0 Hz and was lower at 1300.0–1400.0 Hz. As a result of the higher ratio of sound radiation coefficient to loss coefficient, sound of plucking the 1st string and the 4th string would have higher peak value at 588.0 Hz and lower peak value at 1176.0 Hz. | en |
dc.description.provenance | Made available in DSpace on 2021-05-20T00:49:38Z (GMT). No. of bitstreams: 1 U0001-1608202020422000.pdf: 5081089 bytes, checksum: 8879cb4ea87e7fea606dcb3dac9935be (MD5) Previous issue date: 2020 | en |
dc.description.tableofcontents | 誌謝 i 摘要 ii ABSTRACT iii 目錄 iv 圖目錄 vi 表目錄 viii 壹、前言 1 貳、文獻回顧 3 一、木材的振動 3 (一)材料振動性質 3 (二)平板振動性質 7 (三)木材振動性質 13 (四)木材振動性質在非破壞性檢測上的應用-以板振動法為例 16 二、木材在樂器上的應用 18 (一)音響指標 18 (二)樂器用木材的特性 21 (三)古琴用木材的特性 23 參、材料與方法 25 一、木材平板振動性質 25 (一)梓木 25 (二)梧桐 25 (三)板振動法與音響指標 26 二、簡易琴的聲學性質 28 (一)簡易琴製作 28 (二)簡易琴聲音訊號量測 29 (三)頻譜分析 32 (四)集群分析 33 肆、結果與討論 35 一、木材性質 35 (一)振動性質 35 (二)音響性質 38 二、簡易琴聲音特性 41 (一)彈撥1弦的聲音 44 (二)彈撥4弦的聲音 50 (三)彈撥7弦的聲音 55 (四)時間變化對於頻譜組成之影響 60 三、梓木木材性質對於簡易琴聲音特徵之影響 68 (一)密度 68 (二)聲波速度與木材異方性 71 (三)音波抵抗與穿透率 77 (四)聲音輻射率以及損失係數 78 伍、結論 80 參考文獻 82 | |
dc.language.iso | zh-TW | |
dc.title | 梓樹木材應用於古琴背板之音響性質探討 | zh_TW |
dc.title | Acoustical Properties of Catalpa ovata for the Back Plate of Guqin | en |
dc.type | Thesis | |
dc.date.schoolyear | 108-2 | |
dc.description.degree | 碩士 | |
dc.contributor.oralexamcommittee | 卓志隆(Chih-Lung Cho),吳四印(Shih-Yin Wu),龍暐(Way Long) | |
dc.subject.keyword | 古琴,梓樹木材,板振動法,自身功率頻譜,音響指標, | zh_TW |
dc.subject.keyword | Guqin,Catalpa ovata,plate vibration method,Auto Power Spectrum,acoustical properties, | en |
dc.relation.page | 84 | |
dc.identifier.doi | 10.6342/NTU202003613 | |
dc.rights.note | 同意授權(全球公開) | |
dc.date.accepted | 2020-08-18 | |
dc.contributor.author-college | 生物資源暨農學院 | zh_TW |
dc.contributor.author-dept | 森林環境暨資源學研究所 | zh_TW |
dc.date.embargo-lift | 2023-06-03 | - |
顯示於系所單位: | 森林環境暨資源學系 |
文件中的檔案:
檔案 | 大小 | 格式 | |
---|---|---|---|
U0001-1608202020422000.pdf | 4.96 MB | Adobe PDF | 檢視/開啟 |
系統中的文件,除了特別指名其著作權條款之外,均受到著作權保護,並且保留所有的權利。