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QUANTIFYING POTENTIAL RECHARGE IN MANTLED SINKHOLES USING ERT 授授授授 授授授授授 授授:79842025 授授授 授授授 Benjamin F. Schwartz and Madeline E. Schreiber

QUANTIFYING POTENTIAL RECHARGE IN MANTLED SINKHOLES USING ERT

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Benjamin F. Schwartz and Madeline E. Schreiber. QUANTIFYING POTENTIAL RECHARGE IN MANTLED SINKHOLES USING ERT. 授課老師:鄭皆達老師 學號:79842025 報告者 蕭仲富. 大綱. 前言 試區介紹 材料與方法 結果與討論 結論. 前言. - PowerPoint PPT Presentation

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Page 1: QUANTIFYING POTENTIAL RECHARGE IN MANTLED SINKHOLES USING ERT

QUANTIFYING POTENTIAL RECHARGE IN MANTLED SINKHOLES USING ERT

授課老師:鄭皆達老師學號:79842025報告者 蕭仲富

Benjamin F. Schwartz and Madeline E. Schreiber

Page 2: QUANTIFYING POTENTIAL RECHARGE IN MANTLED SINKHOLES USING ERT

大綱 前言 試區介紹 材料與方法 結果與討論 結論

Page 3: QUANTIFYING POTENTIAL RECHARGE IN MANTLED SINKHOLES USING ERT

前言

水分補充和入滲是重要的水文過程,同時也是相當不好理解和定量化體積與滲透率。使用野外測量得到的 2D ERT(electrical resistivity tomography) 資料轉換為體積含水量配合降雨及去除表層的蒸發散量的影響,使用 ERT 推估地下水分移動的情形。

Page 4: QUANTIFYING POTENTIAL RECHARGE IN MANTLED SINKHOLES USING ERT

試區介紹

Page 5: QUANTIFYING POTENTIAL RECHARGE IN MANTLED SINKHOLES USING ERT

試區介紹

Page 6: QUANTIFYING POTENTIAL RECHARGE IN MANTLED SINKHOLES USING ERT

試區介紹

Page 7: QUANTIFYING POTENTIAL RECHARGE IN MANTLED SINKHOLES USING ERT

材料與方法

Page 8: QUANTIFYING POTENTIAL RECHARGE IN MANTLED SINKHOLES USING ERT

材料與方法

Page 9: QUANTIFYING POTENTIAL RECHARGE IN MANTLED SINKHOLES USING ERT

材料與方法

施測時間 2006/05/17-2006/10/09

施測次數 10

電極排列方法 Dipole-Dipole

間距 3m

電極根數 25

測線總長 72m

ERT modeling

Page 10: QUANTIFYING POTENTIAL RECHARGE IN MANTLED SINKHOLES USING ERT

材料與方法

#1(H)

#1(V)

#5

ERT modeling

Page 11: QUANTIFYING POTENTIAL RECHARGE IN MANTLED SINKHOLES USING ERT

材料與方法

mw

b

c

1

)(

(%)體積含水量 電導度 b 孔隙水電導度 w

參數 m, c

Archie’s law

Page 12: QUANTIFYING POTENTIAL RECHARGE IN MANTLED SINKHOLES USING ERT

材料與方法

mw

b

c

1

)(

(%)體積含水量 體積電導度 b 孔隙水電導度 w

參數 m, c

Archie’s law

Page 13: QUANTIFYING POTENTIAL RECHARGE IN MANTLED SINKHOLES USING ERT

材料與方法

m

608.20.00873C layc

08183.04848.0 Claym

Archie’s law

*Clay 為顆粒小於 2mm 以下之土壤重量百分比

Page 14: QUANTIFYING POTENTIAL RECHARGE IN MANTLED SINKHOLES USING ERT

材料與方法

PET modeling PENMAN-MONTEITH METHOD

)(

)()]([

an EGRE

)dm

MJ(

2蒸發潛熱通量E

)kg

MJ(蒸發潛熱)(

T

e

邊坡的飽和蒸氣曲線

)(2dm

MJRn 太陽淨輻射

)(2dm

MJG 土壤的感熱通量

)(C

kPa溼度含量

)(d

mmEa 蒸散運輸通量

Page 15: QUANTIFYING POTENTIAL RECHARGE IN MANTLED SINKHOLES USING ERT

材料與方法

PET modeling ASCE-EWRI STANDARDIZED PENMAN-

MONTEITH METHOD

)1(

)(273

)(408.0

2

20

UC

eeUTC

GRET

d

asn

n

sz

)d

mm(標準參考作物蒸散量szET 長母 間步常數參考作物種類和時分dC

)(飽和蒸氣壓 kPaea

長母 間步常數參考作物種類和時分nC

)s

m(

2

2 風速U

(kPa)空氣中水氣壓力ae

Page 16: QUANTIFYING POTENTIAL RECHARGE IN MANTLED SINKHOLES USING ERT

材料與方法

m

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材料與方法

m

Page 18: QUANTIFYING POTENTIAL RECHARGE IN MANTLED SINKHOLES USING ERT

結果與討論

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結果與討論

Page 20: QUANTIFYING POTENTIAL RECHARGE IN MANTLED SINKHOLES USING ERT

結果與討論

Page 21: QUANTIFYING POTENTIAL RECHARGE IN MANTLED SINKHOLES USING ERT

結果與討論

Page 22: QUANTIFYING POTENTIAL RECHARGE IN MANTLED SINKHOLES USING ERT

結論 使用這個水文模式有利於量化水位補充,是相

對容易應用於長時間野外試區研究 這些綜合結果、 PET 模式與降雨量,結果表示

這些補充率是可以相對比較的。 結果顯示風化的灰岩坑為高異質材料和底層為

能夠影響補充速率的喀斯特含水層,這也說明不能將全灰岩坑視為快速滲透和補給。

Page 23: QUANTIFYING POTENTIAL RECHARGE IN MANTLED SINKHOLES USING ERT

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