Table DR1. Whole-rock geochemical data for representative samples from the Western Hill of Beijing, North China Craton.

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1 GSA Data Repository Item He, X.-F., Santosh, M., and Ganguly, S., 2016, Mesozoic felsic volcanic rocks from the North China Craton: Intraplate magmatism associated with craton destruction: GSA Bulletin, doi: /b DATA REPOSITORY TABLES Table DR1. Whole-rock geochemical data for representative samples from the Western Hill of Beijing, North China Craton. Table DR2. LA-ICP-MS LU-HF isotope data on zircons from representative samples from the Western Hills of Beijing, Eastern Block, North China Craton. Table DR3. Complied geochronological age data of Mesozoic igneous rocks from the North China Craton and adjacent areas. 3.1 Petrography and Mineral Chemistry Polished thin sections were prepared for petrographic study at the Geological department of Peking University. Representative samples were chosen for detailed petrological observations (Table 1). 3.2 Bulk Chemistry The least altered and homogeneous portions of rock samples were crushed and powdered to 200 mesh for geochemical analyses after detailed petrographic observation. Major and trace (including rare earth elements) elements analyses were conducted in the National Research Center for Geoanalysis, Beijing. The major elements were determined by X-ray fluorescence (XRF), with analytical uncertainties ranging from 1 to 3%. Loss on ignition (LOI) was obtained using ~1 g of sample powder heated at 980 C for 30 min. The trace elements were determined as solute by Agilent 7500ce inductively coupled plasma mass spectrometry (ICP-MS). About 50 mg of powder was dissolved for ~7 days at ~100 C using HF-HNO 3 (10:1) mixtures in screwtop Teflon beakers, followed by evaporation to dryness. The material was dissolved in 7N HNO 3 and taken to incipient dryness again, and then was re-dissolved in 2% HNO 3 to a sample/solution weight ratio of 1:1000. The analytical errors vary from 5 to 10% depending on the concentration of any given element. An internal standard was used for monitoring drift during analysis. Whole rock geochemical data, including major, minor, trace and rare earth elements on twelve samples are given in Table DR Zircon U-Pb LA-ICP-MS Geochronology Zircon grains were separated using standard procedures for U-Pb dating and Hf analyses at the Yu neng Geological and Mineral Separation Survey Centre, Langfang City, Hebei Province, China. The CL imaging was carried out at the Beijing Geoanalysis Centre. Individual grains were mounted along with the standard TEMORA 1, with 206 Pb/ 238 U age of 417 Ma (Black et al., 2004), onto double-sided adhesive tape and enclosed in epoxy resin disks. The disks were Page 1 of 4

2 polished to a certain depth and gold coated for cathodoluminescence (CL) imaging and U-Pb isotope analysis. Zircon morphology, inner structure and texture were examined by using a JSM Scanning Electron Microscope (SEM) equipped with a backscatter probe and a Chroma CL probe. The zircon grains were also examined under transmitted and reflected light images using a petrological microscope. U-Pb dating and trace element analyses of zircon were conducted synchronously by LA- ICP-MS at Tianjin Institute of Geology and Mineral Resources, China. Detailed operating conditions for the laser ablation system, the ICP-MS instrument, and the data reduction process are described by Liu et al. (2008, 2010). Laser sampling was performed using a GeoLas An Agilent 7500a ICP-MS instrument was used to acquire ion-signal intensities. Each analysis incorporated a background acquisition of ~20 30 s (gas blank) followed by 50 s data acquisition from the sample. The Agilent Chemstation was utilized for the acquisition of each individual analysis. Off-line selection and integration of background and analytic signals, time-drift correction, and quantitative calibration for trace element analyses and U-Pb dating were performed by ICPMSDataCal (Liu et al., 2008, 2010). Zircon was used as external standard for U-Pb dating, and was analyzed twice in between every 5 analyses. Time-dependent drifts of U-Th-Pb isotopic ratios were corrected using a linear interpolation (with time) for every five analyses according to the variations of (i.e., 2 zircon samples + 2 zircon91500) (Liu et al., 2010). Preferred U-Th-Pb isotopic ratios used for are from Wiedenbeck et al. (1995). Uncertainty of preferred values for the external standard was propagated to the ultimate results of the samples. Raw data were processed using the ICPMSDataCal program to calculate isotopic ratios and ages of 207 Pb/ 206 Pb, 206 Pb/ 238 U, and 207 Pb/ 235 U. Concordia diagrams and weighted mean calculations were made using ISOPLOT 4.15 software (Ludwig, 2003). The results are presented in Table DR Lu-Hf Isotopes Analysis In situ zircon Hf isotopic analyses were conducted on the same spots or in the adjacent domains where U-Pb dating was done. The analytical procedures followed those described by Yuan et al. (2008). The energy density of J/cm 2 and a spot size of 45 m were used. The flattest, most stable portions of the signal were selected for analysis. Adjustment for the isobaric interference of 176 Yb on 176 Hf was performed in real time as advocated by Woodhead et al. (2004), which involved measuring the interference-free 172 Yb and 173 Yb during the analysis, calculating mean Yb values from 172 Yb and 173 Yb and using the 176 Yb/ 172 Yb ratio of (Chu et al., 2002). Zircon was used as the reference standard with a 176 Hf/ 177 Hf ratio of ± 10 (Woodhead et al., 2004). All the Lu-Hf isotope analysis results were reported with an error of 1. The decay constant of 176 Lu of year 1 was adopted (Scherer et al., 2001; Söderlund et al., 2004). Initial 176 Hf/ 177 Hf ratios Hf(t) were calculated with reference to the chondritic reservoir (CHUR) of (Blichert-Toft and Albarède, 1997) at the time of zircon growth from the magma. Single-stage Hf model age (T DM ) was calculated with respect to the depleted mantle with present-day 176 Lu/ 177 Hf = and 176 Lu/ 177 Hf = (Griffin et al., 2000). Two-stage Hf model age (T DM C ) was calculated with respect to the average continental crust with a 176 Lu/ 177 Hf ratio of (Griffin et al., 2002). The results are presented in Table 2. Page 2 of 4

3 REFERENCES CITED Black, L.P., Kamo, S.L., Allen, C.M., Davis, D.W., Aleinikoff, J.N., Valley, J.W., Mundil, R., Campbell, I.H., Korsch, R.J., and Williams, I.S., 2004, Improved 206 Pb/ 238 U microprobe geochronology by the monitoring of a trace-element related matrix effect; SHRIMP, ID- TIMS, ELA-ICP-MS and oxygen isotope documentation for a series of zircon standards: Chemical Geology, v. 205, p , doi: /j.chemgeo Blichert-Toft, J., and Albarède, F., 1997, The Lu-Hf geochemistry of chondrites and the evolution of the mantle crust system: Earth and Planetary Science Letters, v. 148, p , doi: /s x(97)00040-x. Chu, N.C., Taylor, R.N., Chavagnac, V., Nesbitt, R.W., Boela, R.M., Milton, J.A., Germain, C.R., Bayon, G., and Burton, K., 2002, Hf isotope ratio an analysis using multi-collector inductively coupled plasma mass spectrometry: an evaluation of isobaric interference corrections: Journal of Analytical Atomic Spectrometry, v. 17, p , doi: /b206707b. Griffin, W.L., Pearson, N.J., Belousova, E., Jackson, S.E., van Achterbergh, E., O Reilly, S.Y., and Shee, S.R., 2000, The Hf isotope composition of cratonic mantle: LA-MC-ICPMS analysis of zircon megacrysts in kimberlites: Geochimica et Cosmochimica Acta, v. 64, p , doi: /s (99) Griffin, W.L., Wang, X., Jackson, S.E., Pearson, N.J., O Reilly, S.Y., Xu, X., and Zhou, X., 2002, Zircon chemistry and magma mixing, SE China: in-situ analysis of Hf isotopes.tonglu and Pingtan igneous complexes: Lithos, v. 61, p , doi: /s (02) Liu, Y.S., Hu, Z.C., Gao, S., Günther, D., Xu, J., Gao, C.G., and Chen, H.H., 2008, In situ analysis of major and trace elements of anhydrous minerals by LA-ICP-MS without applying an internal standard: Chemical Geology, v. 257, p , doi: /j.chemgeo Liu, Y.S., Gao, S., Hu, Z.C., Gao, C.G., Zong, K., and Wang, D., 2010, Continental and oceanic crust recycling-induced melt-peridotite interactions in the Trans-North China Orogen: U-Pb dating, Hf isotopes and trace elements in zircons of mantle xenoliths: Journal of Petrology, v. 51, p , doi: /petrology/egp082. Ludwig, K.R., 2003, User s manual for Isoplot 3.00, a geochronological toolkit for Microsoft Excel: Geochronological Center, Special Publication No. 4, Berkeley, p Scherer, E., Munker, C., and Mezger, K., 2001, Calibration of the lutetium hafnium clock: Science, v. 293, p , doi: /science Söderlund, U., Patchett, P.J., Vervoort, J.D., and Isachsen, C.E., 2004, The 176 Lu decay constant determined by Lu-Hf and U-Pb isotope systematics of Precambrian mafic intrusions: Earth and Planetary Science Letters, v. 219, no. 3-4, p , doi: /s x(04) Wiedenbeck, M., Alle, P., Corfu, F., Griffin, W.L., Meier, M., Oberli, F., Quadt, A.V., Roddick, J.C., and Spiegel, W., 1995, Three natural zircon standards for U-Th-Pb, Lu-Hf, trace element and REE analyses: Geostandards Newsletter, v. 19, p. 1 23, doi: /j x.1995.tb00147.x. Woodhead, J., Hergt, J., Shelley, M., Eggins, S., and Kemp, R., 2004, Zircon Hf-isotope analysis with an excimer laser, depth profiling, ablation of complex geometries,and concomitant age estimation: Chemical Geology, v. 209, p , doi: /j.chemgeo Page 3 of 4

4 Yuan, H.L., Gao, S., Dai, M.N., Zong, C.L., Günther, D., Fontaine, G.H., Liu, X.M., Diwu, C.R., 2008, Simultaneous determinations of U Pb age, Hf isotopes and trace element compositions of zircon by excimer laser-ablation quadrupole and multiple-collector ICP- MS: Chemical Geology, v. 247, p Page 4 of 4

5 TABLE DR1. WHOLE-ROCK GEOCHEMICAL DATA FOR REPRESENTATIVE SAMPLES FROM THE WESTERN HILL OF BEIJING, NORTH CHINA CRATON Series no Sample no. BJ-12/2 BJ-4/1 BJ-2/2 BJ-5/2 BJ-6/1 BJ-3/2 BJ-7/1 BJ-7/2 BJ-7/3 BJ-7/4 BJ-1/1 BJ-1/3 BJ-2/1 BJ-2/3 BJ-11/1 BJ-12/1 BJ-5/1 BJ-1/2 BJ-3/1 Rock type basalt basaltic basaltic basaltic basaltic andesite andesite andesite andesite andesite dacite dacite dacite dacite dacite dacite trachydacite rhyolite rhyolite andesite trachyandesite trachyandesite trachyandesite wt. % SiO TiO Al 2 O FeO Fe 2 O MnO MgO CaO Na 2 O K 2 O P 2 O LOI Total FeO T Mg# ppm Cr Co Ni Li Rb Sr Cs Ba Sc V

6 Ta Nb Zr Hf Th U Y La Ce Pr Nd Sm Eu Gd Tb Dy Ho Er Tm Yb Lu Be Mn Cu Zn Ga Mo Cd < < In <0.05 < < < Tl Pb Bi < < <

7 Sn Sb Ti W As <

8 TABLE DR2. LA-ICP-MS LU-HF ISOTOPE DATA ON ZIRCONS FROM REPRESENTATIVE SAMPLES FROM THE WESTERN HILLS OF BEIJING, EASTERN BLOCK, NORTH CHINA CRATON Sample Element concentration(ppm) Isotope ratios(±1σ) Age(Ma±1σ) Concordance spots Pb C 232 T 238 U Th/U 207 Pb/ 206 Pb 207 Pb/ 235 U 206 Pb/ 238 U rho 208 Pb/ 232 Th 207 Pb/ 206 Pb 207 Pb/ 235 U 206 Pb/ 238 U 208 Pb/ 232 Th (%) h BJ BJ BJ BJ BJ BJ BJ BJ BJ BJ BJ BJ BJ BJ BJ BJ BJ BJ BJ BJ BJ BJ BJ BJ BJ BJ BJ BJ BJ BJ BJ BJ BJ BJ BJ BJ BJ

9 BJ BJ BJ BJ BJ BJ BJ BJ BJ BJ BJ BJ BJ BJ BJ BJ BJ BJ BJ BJ BJ BJ BJ BJ BJ BJ BJ BJ BJ BJ BJ BJ BJ BJ BJ BJ BJ BJ BJ BJ BJ BJ BJ

10 BJ BJ BJ BJ BJ BJ BJ BJ BJ BJ BJ BJ BJ BJ BJ BJ BJ BJ BJ BJ BJ BJ BJ BJ BJ BJ BJ BJ BJ BJ BJ BJ BJ BJ BJ BJ BJ BJ BJ BJ BJ BJ BJ

11 BJ BJ BJ BJ BJ BJ BJ BJ BJ BJ BJ BJ BJ BJ BJ BJ BJ BJ BJ BJ BJ BJ BJ BJ BJ BJ BJ BJ BJ BJ BJ BJ BJ BJ BJ BJ BJ BJ Note: Errors are 1-sigma; Pb C common lead. 4

12 Table DR3. Complied geochronological age data of Mesozoic igneous rocks from the North China Craton and adjacent areas. Sample name Latitude Longtitude Location Pluton name Rock type Age (Ma) Methods References CF '52'' 119 3'19'' NNCC Chaoyanggou Granitic mylonite 150 ± 1 LA-ICP-MS Wang et al. (2010a) CF '59'' '54'' NNCC Molihaigou Mylonite diorite 128 ± 3 SHRIMP Wang et al. (2010a) CF '16'' 119 3'1'' NNCC Chaoyanggou Gneissic granite 150 ± 1 SHRIMP Wang et al. (2010a, 2010b, 2010c) CF '59'' '54'' NNCC Molihaigou Gneissic granite 128 ± 3 SHRIMP Wang et al. (2010a, 2010b, 2010c) Sanguliu NNCC Sanguliu Granite 129 ± 3 TIMS Wei et al. (2003) FW '38'' '57'' NNCC Gudaoling Diorite enclave 120 ± 1 LA-ICP-MS Wu et al. (2005a) FW '38'' '57'' NNCC Gudaoling Diorite enclave 121 ± 2 LA-ICP-MS Wu et al. (2005a) FW '38'' '57'' NNCC Gudaoling Monzogranite 121 ± 1 LA-ICP-MS Wu et al. (2005a) FW '6'' '39'' NNCC Liangjiatai Granite dyke 128 ± 2 LA-ICP-MS Wu et al. (2005a) FW '13'' 123 9'13'' NNCC Dafangshen Quartz diorite 124 ± 3 LA-ICP-MS Wu et al. (2005a) FW '9'' '51'' NNCC Guanshui Granodiorite 131 ± 1 LA-ICP-MS Wu et al. (2005a) JH '38'' '57'' NNCC Gudaoling Diorite enclave 121 ± 3 LA-ICP-MS Wu et al. (2005a) 03JH '51'' '29'' NNCC Haitangshan Granite 176 ± 1 LA-ICP-MS Wu et al. (2006) 03JH '43'' '19'' NNCC Haitangshan Granite 163 ± 1 LA-ICP-MS Wu et al. (2006) 03JH '43'' '19'' NNCC Haitangshan Granite 152 ± 1 LA-ICP-MS Wu et al. (2006) FW '17'' '13'' NNCC Jianchang Quartz monzodiorite 157 ± 1 LA-ICP-MS Wu et al. (2006) FW '7'' '2'' NNCC Jianchang Granodiorite 185 ± 2 LA-ICP-MS Wu et al. (2006) FW '7'' '2'' NNCC Jianchang Granite 190 ± 3 LA-ICP-MS Wu et al. (2006) FW '22'' '47'' NNCC Yangjiazhangzi Monzogranite 188 ± 2 LA-ICP-MS Wu et al. (2006) FW '22'' '47'' NNCC Yangjiazhangzi Monzogranite 189 ± 4 LA-ICP-MS Wu et al. (2006) FW '0'' '26'' NNCC Yangjiazhangzi Monzogranite 182 ± 2 LA-ICP-MS Wu et al. (2006) FW '36'' '10'' NNCC Jianlazi Two-mica granite 154 ± 2 LA-ICP-MS Wu et al. (2006) FW '21'' '23'' NNCC Jianlazi Two-mica granite 169 ± 10 LA-ICP-MS Wu et al. (2006) FW '21'' '23'' NNCC Jianlazi Granite dyke 182 ± 3 LA-ICP-MS Wu et al. (2006) FW '49'' '3'' NNCC Yiwulvshan Two-mica granite 163 ± 3 LA-ICP-MS Wu et al. (2006) FW '49'' '3'' NNCC Yiwulvshan Granodiorite enclave 153 ± 2 LA-ICP-MS Wu et al. (2006) FW '14'' '5'' NNCC Shishan Monzogranite 123 ± 3 LA-ICP-MS Wu et al. (2006) FW '9'' 120 5'53'' NNCC Kuangbang Quartz monzodiorite 182 ± 2 LA-ICP-MS Wu et al. (2006) FW '11'' '51'' NNCC Jianchang Monzogranite 153 ± 1 LA-ICP-MS Wu et al. (2006) CBL19 NNCC Chaobuleng Bi-granite 137 ± 2 SHRIMP Xu et al. (2010) XJY NNCC Xiaojiayingzi Syengranite 170 ± 1 SHRIMP Dai et al. (2009) PRC '0'' '0'' NNCC Daqingshan Syengranite Granodiorite 119 ± 2 TIMS Davis and Darby (2010) PRC '30'' '30'' NNCC Daqingshan porphyry Potassicalteration rock 112 ± 2 TIMS Davis and Darby (2010) PRC '6'' 112 4'56'' NNCC Shenshuiling Granodioriteporphyry dyke 136 ± 4 TIMS Davis and Darby (2010) PRC-1 NNCC Shatuozi Pyroxene 151 ± 2 quartzdiorite TIMS Davis et al. (2001) PRC-10 NNCC Fangshan Alkali-feldspar granite 129 ± 1.5 TIMS Davis et al. (2001) PRC-11 NNCC Wulingshan Granite porphyry 129 ± 1.5 TIMS Davis et al. (2001) PRC-12 NNCC Wulingshan Granite 132 ± 1.5 TIMS Davis et al. (2001) PRC-13 NNCC Panjiadian Monzogranite 130 ± 1.5 TIMS Davis et al. (2001) PRC-15 NNCC Yangfang Granitic mylonite 118 ± 1.5 TIMS Davis et al. (2001) PRC-17 NNCC Dahaituo Mylonite diorite 119 ± 2 TIMS Davis et al. (2001) PRC ' ' NNCC Naobaoshang Gneissic granite 119 ± 2 TIMS Davis et al. (2001)

13 PRC-19 NNCC Daguikou Gneissic granite 117 ± 3 TIMS Davis et al. (2001) PRC-2 NNCC Dadonggou Granite 127 ± 2 TIMS Davis et al. (2001) PRC-20 NNCC Jiashan Dioritee enclave 113 ± 2 TIMS Davis et al. (2001) PRC-21 NNCC Guozhangzi Diorite enclave 111 ± 4 TIMS Davis et al. (2001) PRC-3 NNCC Wudaohe Monzogranite 141 ± 2 TIMS Davis et al. (2001) PRC-4 NNCC Yunmengshan Granite dyke 142 ± 2 TIMS Davis et al. (2001) PRC-5 NNCC Shimenshan Quartz diorite 143 ± 3 TIMS Davis et al. (2001) PRC-6 NNCC Yunmengshan Granodiorite 143 ± 3 TIMS Davis et al. (2001) PRC-7 NNCC Changyuan Diorite enclave 151 ± 2 TIMS Davis et al. (2001) PRC-8 NNCC Beishicheng Granite 159 ± 2 TIMS Davis et al. (2001) PRC-9 NNCC Xuejiashiliang Granite 127 ± 1.5 TIMS Davis et al. (2001) Heixiongshan NNCC Heixiongshan Granite 124 ± 1.1 SHRIMP Deng et al. (2004) Humen NNCC Humen Quartz monzodiorit 124 ± 1.8 SHRIMP Deng et al. (2004) Heishanzhai NNCC Heishanzhai Granodiorite 125 ± 1.5 SHRIMP Deng et al. (2004) Baicha NNCC Baicha Granite 127 ± 0.7 SHRIMP Deng et al. (2004) Xuejiashiliang NNCC Xuejiashiliang Monzogranite 130 ± 1.7 SHRIMP Deng et al. (2004) Hanjiachuan NNCC Hanjiachuan Monzogranite 138 ± 1.2 SHRIMP Deng et al. (2004) Duijiuyu NNCC Duijiuyu Monzogranite 138 ± 3.6 SHRIMP Deng et al. (2004) Yunmengshan NNCC Yunmengshan Two-mica granite 145 ± 2.7 SHRIMP Deng et al. (2004) Changyuan NNCC Changyuan Two-mica granite 153 ± 3.2 SHRIMP Deng et al. (2004) Shicheng NNCC Shicheng Granite Dyke 156 ± 1.5 SHRIMP Deng et al. (2004) Siganding NNCC Siganding Two-mica Granite 159 ± 1.9 SHRIMP Deng et al. (2004) Dashipo NNCC Dashipo Granodiorite enclave 197 ± 1.9 SHRIMP Deng et al. (2004) BHG4 NNCC Duimiangou Monzogranite 128 ± 1 LA-ICP-MS Fu et al. (2012a, 2012b) XL03 NNCC Xinglonggou Quartz monzodiorit 144 ± 9 SHRIMP Gao et al. (2004) DQ '25'' 112 3'49'' NNCC Shenshuiling Monzogranite 140 ± 1 LA-ICP-MS Guo et al. (2012) DQ '41'' 112 1'24'' NNCC Shenshuiling Bi-granite 148 ± 1 LA-ICP-MS Guo et al. (2012) DQ '14'' '28'' NNCC Kuisucun Bi-monzogranite 142 ± 1 LA-ICP-MS Guo et al. (2012) DQ '44'' '49'' NNCC Daqingshan Granodiorite 142 ± 1 SHRIMP Guo et al. (2012) DQ '25'' '28'' NNCC Daqingshan Alkali feldspar granite 132 ± 2 LA-ICP-MS Guo et al. (2012) DQ '30'' '6'' NNCC Kuisucun Monzogranite 114 ± 1 LA-ICP-MS Guo et al. (2012) Hu '29'' 112 6'56'' NNCC Shenshuiling Quartzdiorite 138 ± 1 LA-ICP-MS Guo et al. (2012) YX270 NNCC Zhangwu Alkalifeldspargranite 126 ± 1 LA-ICP-MS Huang et al. (2007) JN0743 NNCC Shangshuiquan Monzogranite 143 ± 1 LA-ICP-MS Jiang et al. (2009) 20-KL-37 NNCC Anjiayingzi Monzogranite 135 ± 5 TIMS Li et al. (2004) 20-KL-58 NNCC Anjiayingzi Monzogranite 132 ± 5 TIMS Li et al. (2004) LJ023 NNCC Jiuliancheng Monzogranite 157 ± 6 SHRIMP Li et al. (2004) LJ037 NNCC Gaoliduntai Syenogranite 156 ± 5 SHRIMP Li et al. (2004) Wangtufang NNCC Wangtufang Dolerite 190 ± 1 LA-ICP-MS Liu et al. (2012b) WC08-06 NNCC Deshengying Monzogranite 131 ± 1 SIMS Meng et al. (2014) WC08-08 NNCC Xunisuba Syenogranite 140 ± 4 SIMS Meng et al. (2014) WC08-11 NNCC Guluban Monzogranite 145 ± 1 SIMS Meng et al. (2014) WC08-12 NNCC Kuisu Monzogranite 142 ± 2 SIMS Meng et al. (2014) SHSHQ-1 NNCC Shangshuiquan Monzogranite 142 ± 1 SHRIMP Miao et al. (2002) C-49 NNCC Haoying Granodiorite 134 ± 1 SHRIMP Niu et al. (2004) DZZ-3 NNCC Dengzhazi Diorite 140 ± 2 SHRIMP Niu et al. (2011)

14 07FS02 NNCC Fangshan Monzogranite 132 ± 2 LA-ICP-MS Sun et al. (2010) 07FS02 NNCC Fangshan Monzogranite 133 ± 1 SI-MS Sun et al. (2010) 07FS09 NNCC Fangshan Bi-amphibole plagiogneiss 130 ± 1 LA-ICP-MS Sun et al. (2010) 07FS09 NNCC Fangshan Muscovite granite 132 ± 3 SI-MS Sun et al. (2010) 07FS11 NNCC Fangshan Bi-granite 134 ± 2 LA-ICP-MS Sun et al. (2010) 07FS11 NNCC Fangshan Granite porphyry 130 ± 1 SI-MS Sun et al. (2010) 08FS02 NNCC Fangshan Granite porphyry 134 ± 1 SI-MS Sun et al. (2010) 08FS10 NNCC Fangshan Syenogranite 132 ± 1 SI-MS Sun et al. (2010) Ln NNCC Liaonan Quartz-monzonite porphyry 115 ± 1 LA-ICP-MS Wang et al. (2012a) Ln NNCC Wanfu Syenogranite 170 ± 1 LA-ICP-MS Wang et al. (2012a) Ln805012b NNCC Liaonan Quartz porphyry 129 ± 2 LA-ICP-MS Wang et al. (2012a) 05FW '33'' '30'' NNCC Jingpeng Syenogranite 141 ± 1 LA-ICP-MS Wu et al. (2011a, 2011b) F NNCC Xiangshan Monzogranite 117 ± 1 LA-ICP-MS Yang et al. (2008a) F NNCC Houhushan Quartz-monzonite porphyry 120 ± 1 LA-ICP-MS Yang et al. (2008a) F NNCC Houhushan Monzogranite 118 ± 1 LA-ICP-MS Yang et al. (2008a) F NNCC Qiancengbei Granodiorite porphyry 129 ± 1 LA-ICP-MS Yang et al. (2008a) F NNCC Wulingshan Granite porphyry 129 ± 1 LA-ICP-MS Yang et al. (2008a) F NNCC Wulingshan Granite porphyry 130 ± 1 LA-ICP-MS Yang et al. (2008a) F NNCC Wulingshan Granite porphyry 130 ± 1 LA-ICP-MS Yang et al. (2008a) FX18 NNCC Gangjia Granodiorite 153 ± 5 SHRIMP Zhang et al. (2008a, 2008b) HP9 NNCC Hengshan Granodiorite 167 ± 6 SHRIMP Zhang et al. (2010a, 2010b, 2010c, 2010d, 2010e, 2010f) 1021 NNCC Qianzhangzi Bi-Granite 164 ± 4 SHRIMP Zhang et al. (2014) 07D '56'' 119 7'34'' NNCC Zhoujiawopu Pegmatite 159 ± 2 LA-ICP-MS Zhang et al. (2014) 07D '39'' '52'' NNCC Gangzi Pegmatite 138 ± 2 LA-ICP-MS Zhang et al. (2014) 07D '8'' '19'' NNCC Jianchang Pegmatite 171 ± 3 LA-ICP-MS Zhang et al. (2014) '39'' 118 8'47'' NNCC Chengde Pegmatite 159 ± 2 LA-ICP-MS Zhang et al. (2014) '4'' '4'' NNCC Nianziyu Pegmatite 165 ± 2 LA-ICP-MS Zhang et al. (2014) '44'' '6'' NNCC Liuguanyingzi Pegmatite 124 ± 2 LA-ICP-MS Zhang et al. (2014) '14'' '48'' NNCC Chengjiawopu Peralkaline granite 164 ± 1 LA-ICP-MS Zhang et al. (2014) '53'' '35'' NNCC Shouwangfen Sheared amphibole Bi-quartz diorite 133 ± 1 LA-ICP-MS Zhang et al. (2014) '47'' 118 7'45'' NNCC Chengde Hornblende subalka quartz diorite 161 ± 2 LA-ICP-MS Zhang et al. (2014) NNCC Yunwushan Hornblende subalka quartz diorite 138 ± 1 LA-ICP-MS Zhang et al. (2014) HPQ NNCC Qianzhangzi Peralkaline granite 166 ± 2 SHRIMP Zhang et al. (2014) LLX '5'' '57'' NNCC Xingzhangzi Two-Mica pegmatite 165 ± 2 SHRIMP Zhang et al. (2014) SGD '34'' 117 7'17'' NNCC Siganding Bt-amph granite 160 ± 5 SHRIMP Zhang et al. (2014) Fangshan NNCC Fangshan Granosyenite 131 ± 1 SHRIMP Cai et al. (2005) ZKD NNCC Fangshan Leucocratic granites 131 ± 1 SHRIMP Cai et al. (2005) ZB-1 NNCC Banlashan Granite 132 ± 1 SHRIMP Zeng et al. (2009) Lanjiagou NNCC Lanjiagou Mylonitic granite 189 ± 1 SHRIMP Dai et al. (2008) HH-1 NNCC Niuxinshan Granite 173 ± 2 SHRIMP Guo et al. (2009) T-1 NNCC Tangzhangzi Granite 173 ± 2 SHRIMP Guo et al. (2009) WC08-06 NNCC Hutoushan Bi-syenogranite 131 ± 1 SIMS He et al. (2010) DB101 NNCC Huanghuacheng Bi-monzogranite 133 ± 1 LA-ICP-MS Jiao et al. (2013) DB104 NNCC Fenshuiling Bi-monzogranite 129 ± 1 LA-ICP-MS Jiao et al. (2013) DB107-2 NNCC Tieluzi Bi-monzogranite 137 ± 1 LA-ICP-MS Jiao et al. (2013)

15 DB101 NNCC Huanghuacheng Granite porphyry 133 ± 1 LA-ICP-MS Jiao et al. (2013) DB104 NNCC Fenshuiling Bi-plagiogranite 129 ± 1 LA-ICP-MS Jiao et al. (2013) DB107-2 NNCC Tieluzi Monzogranite 137 ± 1 LA-ICP-MS Jiao et al. (2013) DH-23 NNCC Daolanghuduge Syenogranite 139 ± 2 SHRIMP Xie et al. (2012) SBZ '18'' '28'' NNCC Sibozi-Liubozi Granite porphyry 190 ± 1 LA-ICP-MS Li et al. (2012a) SBZ '14'' '4'' NNCC Sibozi-Liubozi Monzogranite 160 ± 1 LA-ICP-MS Li et al. (2012a) SBZ '48'' '31'' NNCC Sibozi-Liubozi Monzogranite 177 ± 1 LA-ICP-MS Li et al. (2012a) SBZ '51'' '31'' NNCC Sibozi-Liubozi Granite porphyry 196 ± 1 LA-ICP-MS Li et al. (2012a) WY-48 NNCC Yunmengshan Gneissic granite 144 ± 4 SHRIMP Liu et al. (2004a, 2004b) No. 1 NNCC Hongdunliang Granite 144 ± 2 SHRIMP Liu et al. (2010) No. 4 NNCC Donggoulou Granite 138 ± 2 SHRIMP Liu et al. (2010) 1 NNCC Hongdunliang Bi-monzogranite 144 ± 2 SHRIMP Liu et al. (2010) 4 NNCC Donggoulou Bi-monzogranite 138 ± 2 SHRIMP Liu et al. (2010) QSHK-2 NNCC Qingshankou Granite 199 ± 2 SHRIMP Luo et al. (2001a) NXSH-2 NNCC Niuxinshan Granite 172 ± 2 SHRIMP Luo et al. (2001b) YEY-3 NNCC Yuerya Granite 175 ± 1 SHRIMP Luo et al. (2001b) YEY-8 NNCC Yuerya Granite 174 ± 3 SHRIMP Luo et al. (2001b) PSHL-1 NNCC Paishanlou Dioritic porphyrite 126 ± 2 SHRIMP Luo et al. (2001c) PSHL-10 NNCC Paishanlou Dioritic porphyrite 125 ± 1 SHRIMP Luo et al. (2001c) PSHL-2 NNCC Paishanlou Granite porphyry 124 ± 1 SHRIMP Luo et al. (2001c) PSHL-4 NNCC Paishanlou Bi-granite 124 ± 1 SHRIMP Luo et al. (2001c) NXSH-2 NNCC Niuxinshan Monzogranite 172 ± 2 SHRIMP Luo et al. (2001d) PSHL-1 NNCC Paishanlou Dioritic porphyrite dyke 126 ± 2 SHRIMP Luo et al. (2001d) PSHL-10 NNCC Paishanlou Dioritic porphyrite 125 ± 1 SHRIMP Luo et al. (2001d) PSHL-2 NNCC Paishanlou Granite porphyry dyke 124 ± 1 SHRIMP Luo et al. (2001d) QSHAK-2 NNCC Qingshankou Bi-granite 199 ± 2 SHRIMP Luo et al. (2001d) YEY-3 NNCC Yuerya Granite 175 ± 1 SHRIMP Luo et al. (2001d) By98055 NNCC Beichagoumen Bi-adamellite 146 ± 1 TIMS Mao et al. (2003) By98076 NNCC Beichagoumen Adamellite 139 ± 1 TIMS Mao et al. (2003) By99077 NNCC Beichagoumen Adamellite 148 ± 2 TIMS Mao et al. (2003) By NNCC Beichagoumen Syengranite 139 ± 1 TIMS Mao et al. (2003) Zk201G NNCC Beichagoumen Granodiorite porphyry 146 ± 4 TIMS Mao et al. (2003) HDMG-19 NNCC Hadamengou Potassic plteration Rock 132 ± 2 SHRIMP Miao et al. (2000) EDG-3 NNCC Xiduimiangou Granodiorite porphyry dyke 126 ± 1 SHRIMP Miao et al. (2003) EDG-7 NNCC Loushang Pyroxene quartzdiorite 161 ± 1 SHRIMP Miao et al. (2003) WB08-N3 NNCC Narenwula Alkali-feldspar Granite 145 ± 1 LA-ICP-MS Qin et al. (2012) WB08-N8 NNCC Baiqi Granite porphyry 135 ± 1 LA-ICP-MS Qin et al. (2012) 21T-46 NNCC Xiaodonggou Granite 142 ± 2 SHRIMP Tan et al. (2009) ZK NNCC Luoguhe Monzogranite 131 ± 2 LA-ICP-MS Wang et al. (2010a, 2010b, 2010c) Nianzigou NNCC Nianzigou Bi-monzogranite 152 ± 2 SHRIMP Zhang et al. (2011) '34.62'' '3.06'' NCC Yunwushan Monzogranite 247 ± 2 LA-ICP-MS Zhang et al. (2014) '54.12'' '27.42'' NCC Yunwushan Monzogranite 244 ± 2 LA-ICP-MS Zhang et al. (2014) '24'' '9.18'' NCC Shadegai Alkaline granite 235 ± 3 LA-ICP-MS Zhang et al. (2014) D '5.88'' '2.52'' NCC Jizhazi Monzogranite 229 ± 5 LA-ICP-MS Zhang et al. (2014) 07D '25.44'' 119 3'24.48'' NCC Zhoujiawopu Quartz trachyandesite 169 ± 1 LA-ICP-MS Zhang et al. (2014) 07D '56.22'' 119 7'33.84'' NCC Zhoujiawopu Quartz monzodiorite 159 ± 2 LA-ICP-MS Zhang et al. (2014)

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