- Oct 05 Sat 2013 19:06
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中時電子報 – 2013年10月5日 - 彰化農地驗出鎘汙染
- Jun 28 Fri 2013 13:19
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利用上流式淋洗都市垃圾焚化爐底渣中氯鹽之研究
- Jan 15 Tue 2013 21:32
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論文著述
(A)期刊論文:
英文期刊論文
1. Lo, Huang-Mu, Min-Hsin Liu, Tzu-Yi Pai, Kuo-Ching Lin, Shun-Cheng Wang, Peng-Hung Cheng, Hsun-Ying Chiu, Hsiao-Hsien Hsu, Kuan-Chung Wu, and Chi-Ying Hsieh, “Preparation and Characterization of Micro-nanoscale MSWI Ash and Their Metal Release on MSW Anaerobic Digestion,” International Journal of Applied Science and Engineering, 6 (1), pp. 29-37, April 2008.
2. Lo, H.M., K.C. Lin, M.H. Liu, T.Z. Pai, C.Y. Lin, W.F. Liu, G.C. Fang, C. Lu, C.F. Chiang, S.C. Wang, P.H. Chen, J.K. Chen, H.Y. Chiu, K.C. Wu, “Solubility of heavy metals added to MSW,” Journal of Hazardous Materials, Volume 161, Issue 1, 15 January 2009, pp. 294-299.(SCI, 2008 Impact factor = 2.975)
3. Lo, H. M., M. H. Liu, T. Y. Pai, W. F. Liu,C. Y. Lin, S. C. Wang, C. J. Banks, C. H. Hung, C. F. Chiang, K. C. Lin, P. H. Chen, J. K. Chen, H. Y. Chiu, M. H. Su, T. A. Kurniawan,K. C. Wu, C. Y. Hsieh, H. S. Hsu, “Biostabilization assessment of MSW co-disposed with MSWI fly ash in anaerobic bioreactors,” Journal of Hazardous Materials, Volume 162, Issues 2-3, 15 March 2009, pp. 1233-1242.(SCI, 2008 Impact factor = 2.975)
4. Liu, M. H., H. M. Lo, R. Y. Weng and C. E. Lin, 2009, “Reduction of Nitrogen Oxide with Hydrocarbon by Using Zeolite Contained Metal Catalyst,” Journal of the Air & Waste Management Association.
5. Pai, T.Y., S.C. Wang , H.M. Lo, C.F. Chiang, M.H. Liu, R.J. Chiou, W.Y. Chen, P. S. Hung, W.C. Liao and H.G. Leu, 2009, “Novel modeling concept for evaluating the effects of cadmium and copper on heterotrophic growth and lysis rates in activated sludge process,” Journal of Hazardous Materials, Volume 166 (1), 2009, pp. 200-206.(SCI, 2008 Impact factor = 2.975)
6. Pai T.Y., Chiang C.F., Lo H.M., Liu M.H., Wang S.C., Chen C.L., Chung H. and Sung P.J., 2009, “Using grey model and neural network to predict the effluent quality from a small deep oxidation ditch plant,” 3rd IWA-ASPIRE Regional Conference and Exhibition, October 18-22, Taipei, Taiwan.
7. Lo, H.M., Kurniawan, T.A., Sillanpää, M.E.T., Pai, T.Y., Chiang, C.F., Chao, K.P., Liu, M.H., Chuang, S.H., Banks, C.J., Wang, S.C., Lin, K.C., Lin, C.Y., Liu, W.F., Cheng, P.H., Chen, C.K., Chiu, H.Y., Wu, H.Y., 2010, “Modeling biogas production from organic fraction of MSW co-digested with MSWI ashes in anaerobic bioreactors,” Bioresour. Technol., 101 (16), 6329-6335. (SCI, March 11, 2010), Impact Factor: 4.253. (21/150=14%, Biotechnology & Applied Microbiology, 2009)
8. Lo, H.M., Chiang, C.F., Tsao, H.C., Pai, T.Y., Liu, M.H., Kurniawan, T.A., Chao, K.P., Liou, C.T., Lin, K.C., Chang, C.Y., Wang, S.C., Banks, C.J., Lin, C.Y., Liu, W.F., Chen, P.H., Chen, C.K., Chiu, H.Y., Wu, H.Y., Chao, T.W., Chen, Y.R., Liu, D.W., Lo, F.C., 2012. Effects of spiked metals on the MSW anaerobic digestion. Waste Manag. Res., 30 (1), 32-48. (SCI). Impact Factor: 1.193. (29/45=64.44%, Engineering, Environmental, 2011;130/205=63.41%, Environmental Science, 2011)
9. Lo, H.M., Chiu, H.Y., Pai, T.Y., Liu, M.H., Wang, W.Y., Chuang, S.H., Wang, S.C., Wu, J.J., Liou, D.W., Lu, D.X., Zeng, Y.S., Lo, F.C., Lo, S.W., Wu, H.Y., Chu, Y.L., 2012. Anaerobic digestion of MSW spiked with BPA. Int. J. Appl. Sci. Eng., 10 (4), pp. 281-291.
10. Lo, H.M., Pai, T.Y., Chiu, H.Y., Liu, W.F., You, Y. D., Chao, K.P., Wu, M.C., Hung, C.H., Liu, M.H., Wang, S.C., Lo, S.W., Lo, F.C., Wu, H.Y., Liou, D.W., Wu, J.J., Lu, D.X., Zeng, Y.S., 2012. The effect of BPA on MSW anaerobic digestion. Journal of Biobased Materials and Bioenergy. Accepted (SCI, April 2, 2012), Impact Factor: 1.037. (39/71=54.93%, Chemistry, Applied, 2011; 48/81=59.26%, Energy & Fuels, 2011; 21/25=84%, Materials Science, Biomaterials, 2011)
英文期刊論文
1. Lo, Huang-Mu, Min-Hsin Liu, Tzu-Yi Pai, Kuo-Ching Lin, Shun-Cheng Wang, Peng-Hung Cheng, Hsun-Ying Chiu, Hsiao-Hsien Hsu, Kuan-Chung Wu, and Chi-Ying Hsieh, “Preparation and Characterization of Micro-nanoscale MSWI Ash and Their Metal Release on MSW Anaerobic Digestion,” International Journal of Applied Science and Engineering, 6 (1), pp. 29-37, April 2008.
2. Lo, H.M., K.C. Lin, M.H. Liu, T.Z. Pai, C.Y. Lin, W.F. Liu, G.C. Fang, C. Lu, C.F. Chiang, S.C. Wang, P.H. Chen, J.K. Chen, H.Y. Chiu, K.C. Wu, “Solubility of heavy metals added to MSW,” Journal of Hazardous Materials, Volume 161, Issue 1, 15 January 2009, pp. 294-299.(SCI, 2008 Impact factor = 2.975)
3. Lo, H. M., M. H. Liu, T. Y. Pai, W. F. Liu,C. Y. Lin, S. C. Wang, C. J. Banks, C. H. Hung, C. F. Chiang, K. C. Lin, P. H. Chen, J. K. Chen, H. Y. Chiu, M. H. Su, T. A. Kurniawan,K. C. Wu, C. Y. Hsieh, H. S. Hsu, “Biostabilization assessment of MSW co-disposed with MSWI fly ash in anaerobic bioreactors,” Journal of Hazardous Materials, Volume 162, Issues 2-3, 15 March 2009, pp. 1233-1242.(SCI, 2008 Impact factor = 2.975)
4. Liu, M. H., H. M. Lo, R. Y. Weng and C. E. Lin, 2009, “Reduction of Nitrogen Oxide with Hydrocarbon by Using Zeolite Contained Metal Catalyst,” Journal of the Air & Waste Management Association.
5. Pai, T.Y., S.C. Wang , H.M. Lo, C.F. Chiang, M.H. Liu, R.J. Chiou, W.Y. Chen, P. S. Hung, W.C. Liao and H.G. Leu, 2009, “Novel modeling concept for evaluating the effects of cadmium and copper on heterotrophic growth and lysis rates in activated sludge process,” Journal of Hazardous Materials, Volume 166 (1), 2009, pp. 200-206.(SCI, 2008 Impact factor = 2.975)
6. Pai T.Y., Chiang C.F., Lo H.M., Liu M.H., Wang S.C., Chen C.L., Chung H. and Sung P.J., 2009, “Using grey model and neural network to predict the effluent quality from a small deep oxidation ditch plant,” 3rd IWA-ASPIRE Regional Conference and Exhibition, October 18-22, Taipei, Taiwan.
7. Lo, H.M., Kurniawan, T.A., Sillanpää, M.E.T., Pai, T.Y., Chiang, C.F., Chao, K.P., Liu, M.H., Chuang, S.H., Banks, C.J., Wang, S.C., Lin, K.C., Lin, C.Y., Liu, W.F., Cheng, P.H., Chen, C.K., Chiu, H.Y., Wu, H.Y., 2010, “Modeling biogas production from organic fraction of MSW co-digested with MSWI ashes in anaerobic bioreactors,” Bioresour. Technol., 101 (16), 6329-6335. (SCI, March 11, 2010), Impact Factor: 4.253. (21/150=14%, Biotechnology & Applied Microbiology, 2009)
8. Lo, H.M., Chiang, C.F., Tsao, H.C., Pai, T.Y., Liu, M.H., Kurniawan, T.A., Chao, K.P., Liou, C.T., Lin, K.C., Chang, C.Y., Wang, S.C., Banks, C.J., Lin, C.Y., Liu, W.F., Chen, P.H., Chen, C.K., Chiu, H.Y., Wu, H.Y., Chao, T.W., Chen, Y.R., Liu, D.W., Lo, F.C., 2012. Effects of spiked metals on the MSW anaerobic digestion. Waste Manag. Res., 30 (1), 32-48. (SCI). Impact Factor: 1.193. (29/45=64.44%, Engineering, Environmental, 2011;130/205=63.41%, Environmental Science, 2011)
9. Lo, H.M., Chiu, H.Y., Pai, T.Y., Liu, M.H., Wang, W.Y., Chuang, S.H., Wang, S.C., Wu, J.J., Liou, D.W., Lu, D.X., Zeng, Y.S., Lo, F.C., Lo, S.W., Wu, H.Y., Chu, Y.L., 2012. Anaerobic digestion of MSW spiked with BPA. Int. J. Appl. Sci. Eng., 10 (4), pp. 281-291.
10. Lo, H.M., Pai, T.Y., Chiu, H.Y., Liu, W.F., You, Y. D., Chao, K.P., Wu, M.C., Hung, C.H., Liu, M.H., Wang, S.C., Lo, S.W., Lo, F.C., Wu, H.Y., Liou, D.W., Wu, J.J., Lu, D.X., Zeng, Y.S., 2012. The effect of BPA on MSW anaerobic digestion. Journal of Biobased Materials and Bioenergy. Accepted (SCI, April 2, 2012), Impact Factor: 1.037. (39/71=54.93%, Chemistry, Applied, 2011; 48/81=59.26%, Energy & Fuels, 2011; 21/25=84%, Materials Science, Biomaterials, 2011)
- Dec 28 Fri 2012 13:17
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整治程序最佳化方法於污染場址調查復育之應用A4
台灣近期對土壤及地下水污染場址的調查及整治復育工作正積極的展開,卻是步上了美國污染防治漏洞的後塵,需要付出更多的代價,方能還原國土及環境的原貌。而污染場址調查及整治復育計畫往往需要龐大的經費與時間,因此如何節省經費,並能達到整治的目標,乃為一大挑戰的課題。美國環保署(USEPA)估計美國約有294,000污染場址,包括已被發覺之77,000場址,而217,000個場址預計未來將被確認,預計整治復育這些污染場將花費2,000億美金(USEPA, 2004)。美國於1990年代開始發展整治程序最佳化(Remedial process optimization, RPO)方法的概念,作為土壤及地下水整治計畫考量元素之一,可稱之為價值工程(Value engineering),達成節省整治計畫經費之目的,並使整治與監測系統更具備適當性。美國Interstate Technology & Regulatory Council (ITRC)定義PRO為“起始目標之系統再評估,並持續對整治科技與技術進行改善及最佳化 (Systematic reevaluation of initial objectives and the continuous improvement and optimization of remediation technologies and techniques)”(ITRC, 2007)。目前PRO概念已廣泛地應用於政府機構及私人企業的計畫執行中,有別於傳統式的整治系統最佳化規劃,PRO強調持續性的評估污染場址之整治目標與方式。而詳細的效益分析及風險分析往往是複雜的PRO中的評估項目,而RPO建議新增的硬體資產費用,在設備系統生命週期多年的運用下所節省的金額,促使PRO計畫更具備執行的可行性。
- Oct 26 Fri 2012 13:14
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都市焚化爐推動溫室氣體減量管理之探討-以后里廠為例
- Jun 20 Wed 2012 13:13
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利用超臨界流體搭配分散劑製備零價鐵還原地下水中 六價鉻之研究
- Mar 01 Thu 2012 13:12
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利用超臨界流體搭配分散劑製備零價鐵及複合雙金屬
- Jan 10 Tue 2012 05:11
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移除都市垃圾焚化爐底渣氯鹽之研究
- Dec 30 Fri 2011 05:10
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利用亞鐵及UV光催化過硫酸鹽降解地下水中五氯酚之研究
- Sep 30 Fri 2011 13:09
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自來水污泥壓濾式脫水效率評估
- May 25 Wed 2011 05:07
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土壤中石油碳氫化合物PID/FID測值與檢驗分析濃度之關係研究
- Feb 28 Mon 2011 13:05
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自來水廠淨水污泥壓濾式脫水之研究
劉敏信、游乙剛、陳柏諺、林儀玲、郭子維、李冠賢
朝陽科技大學環境工程與管理系
摘要
本研究將針對台灣自來水公司豐原給水廠廢水系統中之污泥脫水效能進行評估,並組裝一試驗型壓濾式脫水機,利用不同透氣性聚丙烯濾布在進料污泥濃度分別為5%、10%、15%與37.3%(實場污泥濃度)條件下,改變壓濾時間分別為30 min、60 min、90 min),而脫水機濾室厚度設定為2.5 cm、3.0 cm、3.5 cm、4.0 cm、4.5 cm,調整進料壓力在 4 kg/cm2、5.5 kg/cm2、7 kg/cm2以上進行連續式進料脫水實驗,並探討卸料後污泥餅之重量、含水率及壓濾濾液之變化情形,進一步了解壓濾式脫水機設定及操作條件與壓濾泥餅特性之關係。
朝陽科技大學環境工程與管理系
摘要
本研究將針對台灣自來水公司豐原給水廠廢水系統中之污泥脫水效能進行評估,並組裝一試驗型壓濾式脫水機,利用不同透氣性聚丙烯濾布在進料污泥濃度分別為5%、10%、15%與37.3%(實場污泥濃度)條件下,改變壓濾時間分別為30 min、60 min、90 min),而脫水機濾室厚度設定為2.5 cm、3.0 cm、3.5 cm、4.0 cm、4.5 cm,調整進料壓力在 4 kg/cm2、5.5 kg/cm2、7 kg/cm2以上進行連續式進料脫水實驗,並探討卸料後污泥餅之重量、含水率及壓濾濾液之變化情形,進一步了解壓濾式脫水機設定及操作條件與壓濾泥餅特性之關係。
