No.53 pp.35 53, 2017 Komazawa Journal of Geography Landform and Unconfined Grandwater in the Center of Musashino Upland, Tokyo SUMIDA Kiyomi m

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1 No.53 pp.35 53, 2017 Komazawa Journal of Geography Landform and Unconfined Grandwater in the Center of Musashino Upland, Tokyo SUMIDA Kiyomi m Keywords: Musashino-upland, Musashino-surface, Tachikawa-surface, Thickness of Kantou-loam layer, Kazusa-sougun(Group), Groundwater table map 47 km 30 km 846 km 2 210m 15m 20m m

2 また 不圧地下水を揚水する開放井戸がわずかに残っている 小平市とその周辺地域で測水を行い 水位が最高になった時期と最低になった時期の 不圧地下水面図 水温分布図 そして電気伝導値分布 図を作成し 不圧地下水の賦存状態と流動方向を明らかにした Ϩ 武蔵野台地中央部の地形 なりますめん 狭山丘陵の南東麓に位置する洪積台地は 武蔵野 1 面 成増面 以下 M1 面と表記する 武蔵野 2 面 以下 M2 面と表記する 武蔵野 3 面 以下 M3 面と表記する 武蔵野 立川面 以下 M-Tc 面 と表記する 立川面 1 に区分され 中小の河川に沿っては氾濫低地が分布している 図 1 1 国分寺崖線と付近の関東ローム層の層厚 がいせん 広義の武蔵野面と立川面の境界は国分寺崖線である 福田 羽鳥 1952 国分寺崖線は丘麓にある じゅうにそう 武蔵村山市三ツ木五丁目の十二所神社付近から始まり 比高 m の緩傾斜として東南東方へ向か う 段丘崖下に沿っては 丘陵地内に源を発する久保の川が延びているが 日頃は流水がほとんどな く 水路は十二所神社から約 2 km で末無川となって消滅する 学園三丁目付近からは段丘崖の比高が 約 2.5 m と高くなり ここからは東南東方へ向かうようになるが 西武拝島線 玉川上水駅北口付近で は人工改変の影響もあり 低い段丘崖は不明瞭である 玉川上水の水路の南側で 崖線は再び明瞭になり 段丘崖の比高は 立川市立幸小学校の北側で約 図1 武蔵野台地中央部の地形分類図 1. 狭山丘陵 2. 武蔵野 1 面 M1 面 3. 武蔵野 2 面 M2 面 4. 武蔵野 立川面 M-Tc 面 5. 立川面 6. 氾濫低 地 7. 明瞭な段丘崖 8. 不明瞭な段丘崖及び緩傾斜面 9. 水路及び河川 10. 立川断層 図内の細線は等高線 で 主曲線は 10 m 間隔 数字の単位は m 36

3 4 m 立川市立立川第四中学校の北側で約 4 m 国分寺市立第八小学校の東側で約 7 m 国立駅の東側で 約 10 m と 比高を少しずつ増していく 比高が約 10 m の武蔵自然公園から 国分寺崖線は急角度で向きを変え 東方へ向かうようになる が 黒金公園から東方では 地下水が崖線下の各所から湧出し 細野 1990 ほか 元町用水や野川と して流下するため 流路に沿っては狭長な氾濫低地が分布するようになる 武蔵野面と立川面の比高 は 国分寺跡から東方では約 15 m と ほぼ一定である じゅうにそう 図 2 には 十二所神社から立川市立立川第四中学校付近まで 国分寺崖線付近の関東ローム層の層厚 状態を示した すでに岡崎 1967 が指摘しているように 風成層である関東ローム層に覆われている 地表面はほぼ平坦であっても 河川堆積物の砂礫によって形成されている砂礫層の表面は 1 m 前後の起 伏があるため 関東ローム層の層厚は近くであっても 1 m 前後の違いがある 図2 武蔵野面北西端付近の 国分寺崖線と関東ローム層の層厚 細線は等高線で 主曲線は 2 m 間隔 数字の単位は m スミ模様は段丘崖で 縦線模様は武蔵野面 横線模様は 立川面 37

4 図によると 国分寺崖線と玉川上水が交差する玉川上水駅より北西側では 国分寺崖線の比高が m であるにもかかわらず 崖線を境として関東ローム層の厚さは異なり 武蔵野面では層厚が 4 m 以上であるのに対し 立川面では最も厚い場所でも層厚は 4 m に満たない このことは 厚さ 4 m 以上 の関東ローム層に覆われた武蔵野面を側方へ侵食して 立川面が形成されたことを意味している 図 3 は 1980 年頃 玉川上水に架かる清願院橋の下流側で 土木工事の際に出現した 国分寺崖線と 地層の堆積状態である 露頭は 10 m に満たない延長であったため 見えなかった場所は その後に得 られた付近の地質柱状図で補っている 図によると 武蔵野面と立川面の比高は約 1.8 m で 両段丘面 を覆っているのは立川ローム層である 立川面では立川ローム層の下位には立川礫層が堆積している が 武蔵野面では立川ローム層の下位に約 5 m の武蔵野ローム層が堆積し その下位に武蔵野礫層が堆 積している 露頭の観察から 武蔵野ローム層に覆われた武蔵野礫層を侵食して段丘崖が形成され 武 蔵野礫層と武蔵野ローム層を覆って立川礫層が堆積し その後 武蔵野ローム層と立川礫層を覆って立 川ローム層が堆積したことを示している 図 4 と図 5 は 地形図と地質柱状図を用いて作成した 国分寺崖線の地形 地質断面図である 図3 清願院橋東方の地形地質断面図 スナ模様の位置は柱状図で推定される層序で 露頭の 位置は工事によって露出した層序 断面の位置は図 1 を参照 図4 立川市立立川第四中学校付近の地形 地質断面図 縦の矢印は地質柱状図の位置 断面の位置は図 1 を参照 図5 中央本線 国立駅から東方への地形 地質断面図 縦の矢印は地質柱状図の位置 断面の位置は図 1 を参照 38

5 1 4 4 m 6 7m 2 2.5m 5 11m 11m 2m 6 1.5m 5m 6 7m 10m 39

6 100m 200m 1 2m m 1 3m 2.5km 1km 500m 1 3m M-Tc M 2 M 1 M-Tc M m M 1 7.4m 60cm 9 TP TP 50cm 80cm 2 75m M 2 4.5m 1m TP TP 3 10m TP 7m 8.3m 20cm Pm 4 40

7 2 m TP 83m 2.7m Tn AT 7.5m TP 9.3m 73.7m 4m 5 10cm 18m 73.7m 3 5cm M 1 M 2 M 3 M-Tc M 2 M 1 M-Tc TP m 7 8 1m m 7 11m 9 10m 5 7m m M m M 2 5 7m M-Tc 2m 3 4m M-Tc 100m 200m 41

8 図7 武蔵野台地中央部の 武蔵野面の関東ローム層の層厚 1. 狭山丘陵 2. 武蔵野面 3. 立川面 4. 氾濫低地 5. 明瞭な段丘崖 6. 不明瞭な段丘崖及び緩傾斜面 太線は 関東ローム層の層厚線で 主曲線は 1 m 間隔 数字の単位は m スミ模様は段丘崖で 黒点は地質柱状図の位置 図8 武蔵野台地中央部の 武蔵野砂礫層の表面の地形 太線は砂礫層表面の等高線で 主曲線は 1 m 間隔 数字の単位は m 鎖線は台地上の窪地 スミ模様は段丘崖で 黒点は地質柱状図の位置 閉曲線の窪地記号は 台地上の浅皿状窪地 42

9 m m 100m 1.5m 550m 180m 450m 110m 4 m 1 m 1.5m 180m 160m 2.5 3m 300m 300m 190m 3m 300m 250m 2 m 160m 100m 2.5m 1.5m 8 7 1m 43

10 2m 3 1.5m M 1 M 2 M-Tc km 2m m 44

11 AMeDAS AMeDAS 9 45

12 12.64m 8.23m 4.4m m mm 90mm 100mm 65cm m 3, m m m

13 2m m

14 2 3 m m

15 50 K 18 μ /cm K 18 μ /cm

16 KK EST K 18 μ /cm 450 K 18 μ /cm 200 K 18 μ /cm 200 K 18 μ /cm K 18 μ /cm 250 K 18 μ /cm K 18 μ /cm 1 M 1 2 M 2 M-Tc 1 2 m

17 , LS mm mm 5m mm mm 2.5m 100m 1.3m mm 633mm 750mm 728mm 615mm 581mm 708 3, ,905 4,465 1, ,974 62, ,

18 GIS 52

19 Landform and Unconfined Grandwater in Center of Musashino Upland, Tokyo SUMIDA Kiyomi The area of research is the center of Musashino Upland near the western part of Tokyo. It is rhombus Musashino Upland and stretches 50 km from east to west and 30km from north to south. It consists of some layers created in the different periods and contains Tachikawa surface and Musashino surface. These terrains are formed by gravel and sand of terrace deposit, covered by Kanto loam (volcanic ash) layer. We used huge amounts of result from Geological Boring Data to image the underground, as there is no exposed surface to observe the layer itself. The thickness of Kanto loam layer covering Musashino surface is from 5 m to 11 m. That of 7 11 m is categorized to Musashino- surface, 9 10 is to Musashino-2 surface,and 5 7m is to Musashino-Tachikawa surface (Fig. 1). Musashino- surface is seen in the eastern and western areas. Musashino- surface is seen in the northern and southern areas. Tachikawa surface is located in the western part of Musashino surface and existing lower by 1 5m. The thickness of Kanto loam layer is 1.5 3m. The thicker it is, the more aged it is. Hence, Musashino-1 surface is the oldest and Tachikawa surface is the newest among the research area. It seems that Musashino-1 surface has been formed around 70 centuries ago and Tachikawa surface around 25 centuries ago. It has been revealed that how the rain penetrates into the layers, is stored in the underground and where it goes after transforming to confined groundwater. The automated recorder was set up from 2006 March to 2010 March in order to observe the movement of the water level (Fig.10). As a result, the highest was 8.35 m deep from the ground surface and the lowest was that of 12.5 m deep. Next year, I measured the distances from the ground surface to the ground water table all over the area during the season when it hit 6 m and 10 m to create the groundwater table map (Fig.12) Part-time Lecturer, Department of Geography, Komazawa University 53

No.51 pp.35 58, 2015 Komazawa Journal of Geography Rivers and Hydrological-Environment of Musashino-Upland in Tokyo Metro. SUMIDA Kiyomi Keywords: Mus

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