Geochemical Heterogeneity of Fracture-Filling Vein Pyrobitumen in Tectonically Reworked Reservoirs of the Western Jiangnan–Xuefeng Uplift, South China
Abstract
1. Introduction
2. Geological Setting

3. Samples and Methods
3.1. Sample Collection
3.2. Sample Preparation
3.3. Analytical Methods
3.3.1. Rock-Eval Pyrolysis Analysis
3.3.2. Pyrobitumen Reflectance Analysis
3.3.3. Extractable Organic Matter and Molecular Characterization
3.3.4. Structural and Mineralogical Characterization
3.3.5. Trace Element and Fluid Inclusion Analysis
4. Results
4.1. Organic Geochemical Characteristics and Thermal Maturity Constraints
4.2. Molecular Composition and Heterogeneity
4.3. Structural Characteristics
4.4. Rare Earth Element Model and Supplementary Fluid Inclusion Data
5. Discussion
5.1. Thermal Maturity and Carbon Structural Ordering
5.2. Evaluation of Controlling Factors for Molecular Heterogeneity
5.3. Structural Framework and Spatial Geochemical Heterogeneity
5.4. Trace Elements and REE Constraints on Fluid–Rock–Structure Interactions
6. Conclusions
- (1)
- Vein-type pyrobitumen from the western margin of the Jiangnan–Xuefeng Uplift is characterized by a uniform thermal state, as suggested primarily by vitrinite reflectance equivalent values (2.52–3.10% Ro), which is supported by consistently low S1 and HI values and elevated Tmax values (527–594 °C). Raman and XRD analyses reveal a poorly ordered turbostratic carbon structure with defect-rich aromatic domains, with La values of 13.8–17.2 nm and Lc values of 2.16–4.39 nm, confirming a non-graphitic and weakly ordered carbon framework despite advanced thermal evolution.
- (2)
- Pronounced molecular heterogeneity is observed among the analyzed samples, particularly in n-alkane distributions, NSO contents, asphaltene abundance, and aromatic hydrocarbon parameters. Variations in ΣnC10–20/ΣnC21+, Phe/ΣNaph, and DBT/Phe are not systematically correlated with thermal maturity, suggesting that phase-selective redistribution contributed to the observed molecular compositional heterogeneity. Variable mobilization and retention efficiency within fracture systems likely promoted selective redistribution of low-molecular-weight hydrocarbons, whereas relatively polar and aromatic fractions were preferentially retained within residual pyrobitumen.
- (3)
- The results suggest that structural reworking and associated fluid activity played a role in hydrocarbon redistribution and preservation. Variable Eu anomalies (Eu/Eu* = 0.39–1.74), elevated V/Ni and Ni/Co ratios, and homogenization temperatures up to 260 °C collectively suggest localized fluid–rock interaction and hydrothermal-related fluid overprinting during post-accumulation evolution. The fracture network therefore acted not only as a pathway for fluid circulation and pyrobituminous material emplacement but also as an important influence on fluid redistribution and geochemical modification.
- (4)
- Compositional heterogeneity can persist even within uniformly overmature petroleum systems. In the study area, structurally mediated remobilization and migration-influenced fractionation within fracture networks are interpreted as the important contributors to the redistribution and preservation of residual hydrocarbons, with additional contributions from phase-selective processes and late-stage fluid activity. While multiple source inputs and episodic charging events cannot be fully excluded, the integrated geochemical and petrographic evidence does not suggest that they played a major role in the observed molecular compositional variability.
Author Contributions
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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| Sample ID | Sampling Source | TOC (%) | S1 (mg/g) | S2 (mg/g) | S4 (mg/g) | Tmax (°C) | HI (mg/g.TOC) | PI |
|---|---|---|---|---|---|---|---|---|
| JL-V01 | UG | 51.68 | 0.06 | 2.10 | 515.03 | 553 | 4.00 | 0.03 |
| JL-V02 | UG | 48.58 | 0.09 | 1.78 | 484.29 | 548 | 4.00 | 0.05 |
| JL-V03 | UG | 35.41 | 0.10 | 2.53 | 351.88 | 527 | 7.00 | 0.04 |
| JL-V04 | UG | 40.48 | 0.22 | 2.82 | 402.32 | 559 | 7.00 | 0.07 |
| JL-V05 | UG | 41.96 | 0.09 | 2.68 | 417.33 | 549 | 6.00 | 0.03 |
| JL-T02 | UG | 15.08 | 0.17 | 1.15 | 149.72 | 567 | 8.00 | 0.13 |
| JL-T03 | UG | 14.12 | 0.04 | 0.73 | 140.6 | 550 | 5.00 | 0.05 |
| DTP-S01 | OC | 34.13 | 0.21 | 0.91 | 340.33 | 554 | 3.00 | 0.19 |
| WRJ-V01 | UG | 45.03 | 0.10 | 2.16 | 448.45 | 551 | 5.00 | 0.04 |
| WRJ-V02 | UG | 47.16 | 0.15 | 1.94 | 469.82 | 547 | 4.00 | 0.07 |
| WRJ-V03 | UG | 49.51 | 0.21 | 2.22 | 493.04 | 555 | 4.00 | 0.09 |
| WRJ-V04 | UG | 33.73 | 0.12 | 1.48 | 335.96 | 565 | 4.00 | 0.08 |
| WRJ-V05 | UG | 34.05 | 0.18 | 3.32 | 337.56 | 542 | 10.00 | 0.05 |
| WRJ-V06 | UG | 39.36 | 0.26 | 2.39 | 391.41 | 588 | 6.00 | 0.10 |
| WRJ-V07 | UG | 43.44 | 0.10 | 1.59 | 433.04 | 546 | 4.00 | 0.06 |
| DAP-S01 | OC | 11.09 | 0.32 | 0.47 | 110.21 | 594 | 4.00 | 0.41 |
| DAP-S02 | OC | 12.41 | 0.11 | 0.35 | 123.73 | 583 | 3.00 | 0.24 |
| Sample ID | Sampling Source | Rb% | Ro% | Number of Measurement Points (n) | Pyrobitumen Filling Event |
|---|---|---|---|---|---|
| JL-V01 | UG | 2.70 | 2.76 | 45 | — |
| JL-V02 | UG | 2.42 | 2.52 | 32 | — |
| JL-V03 | UG | 2.89 | 2.93 | 52 | Single |
| JL-V04 | UG | 2.49 | 2.58 | 52 | Single |
| JL-V05 | UG | 2.81 | 2.86 | 52 | Single |
| DTP-S01 | OC | 2.65 | 2.72 | 34 | — |
| WRJ-V01 | UG | 2.65 | 2.72 | 38 | — |
| WRJ-V02 | UG | 2.85 | 2.89 | 34 | — |
| WRJ-V03 | UG | 3.03 | 3.05 | 33 | — |
| WRJ-V04 | UG | 2.99 | 3.02 | 36 | — |
| WRJ-V05 | UG | 2.66 | 2.73 | 52 | Single |
| WRJ-V06 | UG | 3.03 | 3.05 | 53 | Single |
| WRJ-V07 | UG | 3.09 | 3.10 | 53 | Single |
| DAP-S01 | OC | 2.82 | 2.87 | 34 | — |
| DAP-S02 | OC | 2.94 | 2.97 | 35 | — |
| Sample ID | Sampling Source | EOM (wt.%) | Sat. (%) | Arom. (%) | NSO (%) | Asp. (%) | MPCN | Pr/Ph | Pr/nC17 | Ph/nC18 | CPI | ΣnC10–20 (%) | ΣnC21–25 (%) | ΣnC26+ (%) | ΣnC10–20/ ΣnC21+ |
|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|
| JL-V01 | UG | 0.0232 | 57.12 | 15.81 | 15.65 | 11.42 | nC18 | 0.76 | 0.84 | 0.78 | 0.86 | 50.90 | 22.07 | 11.03 | 1.54 |
| JL-V02 | UG | 0.0105 | 65.73 | 18.66 | 8.23 | 7.38 | nC16 | 0.91 | 0.83 | 0.90 | 0.95 | 44.26 | 27.46 | 10.84 | 1.16 |
| JL-V03 | UG | 0.1150 | 17.78 | 0.88 | 38.05 | 43.29 | nC16 | 1.08 | 0.72 | 0.87 | 0.80 | 49.02 | 12.78 | 11.29 | 2.04 |
| JL-V04 | UG | 0.0775 | 55.05 | 8.70 | 25.66 | 10.59 | nC16 | 0.98 | 0.54 | 0.62 | 0.72 | 77.88 | 5.62 | 3.06 | 8.97 |
| JL-V05 | UG | 0.0373 | 64.32 | 18.75 | 13.51 | 3.42 | nC16 | 1.08 | 1.56 | 1.22 | 0.53 | 45.27 | — | — | — |
| JL-T02 | UG | 0.0673 | 72.79 | 18.70 | 5.12 | 3.39 | nC13 | 0.92 | 0.63 | 0.78 | 0.81 | 58.77 | 14.19 | 16.48 | 1.92 |
| JL-T03 | UG | 0.0188 | 56.32 | 12.60 | 20.14 | 10.94 | nC16 | 0.88 | 0.6 | 0.73 | 0.82 | 66.51 | 9.7 | 5.04 | 4.51 |
| DTP-S01 | OC | 0.0486 | 62.59 | 9.59 | 23.66 | 4.17 | nC16 | 1.01 | 0.79 | 0.81 | 0.82 | 60.52 | 7.99 | 17.78 | 2.35 |
| WRJ-V01 | UG | 0.0383 | 39.23 | 10.98 | 33.65 | 16.14 | nC16 | 1.14 | 0.79 | 0.74 | 0.80 | 63.43 | 10.91 | 6.34 | 3.68 |
| WRJ-V03 | UG | 0.0236 | 68.47 | 11.11 | 12.47 | 7.95 | nC16 | 0.97 | 0.74 | 0.83 | 0.85 | 69.05 | 9.71 | 3.24 | 5.41 |
| WRJ-V04 | UG | 0.0228 | 61.93 | 15.55 | 15.69 | 6.82 | nC13 | 0.95 | 0.90 | 0.77 | 0.81 | 69.86 | 10.96 | 2.86 | 5.05 |
| WRJ-V05 | UG | 0.0560 | 61.54 | 17.28 | 12.95 | 8.23 | nC16 | 0.87 | 0.82 | 0.94 | 0.77 | 60.67 | 14.56 | 4.08 | 3.25 |
| WRJ-V06 | UG | 0.2083 | 64.42 | 5.65 | 21.09 | 8.84 | nC16 | 1.06 | 0.72 | 0.71 | 0.66 | 53.00 | — | — | — |
| WRJ-V07 | UG | 0.0313 | 66.38 | 8.34 | 18.38 | 6.90 | nC16 | 0.99 | 0.70 | 0.74 | 0.77 | 60.39 | 12.39 | 6.12 | 3.26 |
| DAP-S01 | OC | 0.0720 | 80.32 | 13.67 | 4.45 | 1.57 | nC16 | 1.11 | 0.75 | 0.68 | 0.77 | 67.75 | 10.28 | 6.73 | 3.99 |
| DAP-S02 | OC | 0.0180 | 58.91 | 16.74 | 19.23 | 5.12 | nC16 | 1.06 | 0.83 | 0.80 | 0.88 | 54.37 | 11.80 | 7.11 | 2.88 |
| Sample ID | Sampling Source | Phe (Peak Area) | Ant (Peak Area) | Pyrene (Peak Area) | DBT (Peak Area) | Ant/(Ant+Phe) | MPI-1 | Phe/ΣNaph | Pyrene/Phe | DBT/Phe |
|---|---|---|---|---|---|---|---|---|---|---|
| JL-V03 | UG | 5171654 | 177977 | 543595 | 374342 | 0.033 | 0.62 | 4.8 | 0.11 | 0.07 |
| DTP-S01 | OC | 1169033 | 25446 | 127453 | 229074 | 0.021 | 0.79 | 6.5 | 0.11 | 0.20 |
| DAP-S01 | OC | 2424797 | 41120 | 1451521 | 3980468 | 0.017 | 0.83 | 12.4 | 0.60 | 1.64 |
| JL-T02 | UG | 1095081 | 57561 | 246799 | 49181 | 0.050 | 0.70 | 2.7 | 0.23 | 0.045 |
| Sample ID | Sampling Source | D (cm−1) | G (cm−1) | Δω(G−D) | FWHMD | FWHMG | ID/IG | AD/AG | La (λ = 514.5 nm) |
|---|---|---|---|---|---|---|---|---|---|
| JL-V03(1) | UG | 1322.08 | 1599.85 | 277.77 | 116.96 | 41.9 | 1.065 | 1.065 | 15.91 |
| JL-V03(2) | UG | 1322.36 | 1591.72 | 269.36 | 122.18 | 57.04 | 0.992 | 0.992 | 17.08 |
| JL-V04(1) | UG | 1330.91 | 1594.12 | 263.21 | 138.55 | 72.44 | 1.082 | 1.082 | 15.66 |
| JL-V04(2) | UG | 1334.22 | 1591.37 | 257.15 | 141.23 | 75.19 | 1.018 | 1.018 | 16.66 |
| JL-V04(3) | UG | 1337.04 | 1588.92 | 251.88 | 144.9 | 79.33 | 0.984 | 0.984 | 17.22 |
| JL-V05(1) | UG | 1341.66 | 1595.02 | 253.36 | 152.77 | 82.41 | 1.109 | 1.109 | 15.28 |
| JL-V05(2) | UG | 1340.11 | 1592.44 | 252.33 | 149.88 | 80.55 | 1.042 | 1.042 | 16.26 |
| WRJ-V01(1) | UG | 1345.37 | 1589.84 | 244.47 | 165.2 | 91.03 | 1.152 | 1.152 | 14.7 |
| WRJ-V01(2) | UG | 1343.98 | 1587.92 | 243.94 | 162.44 | 89.77 | 1.097 | 1.097 | 15.45 |
| WRJ-V06(1) | UG | 1349.82 | 1586.51 | 236.69 | 178.33 | 102.14 | 1.208 | 1.208 | 14.03 |
| WRJ-V06(2) | UG | 1348.11 | 1584.98 | 236.87 | 174.88 | 100.21 | 1.169 | 1.169 | 14.49 |
| WRJ-V07(1) | UG | 1352.77 | 1583.74 | 230.97 | 182.66 | 108.55 | 1.231 | 1.231 | 13.76 |
| WRJ-V07(2) | UG | 1351.28 | 1582.21 | 230.93 | 180.12 | 105.77 | 1.191 | 1.191 | 14.24 |
| Sample ID | Sampling Source | 2θ (002) | d002 (nm) | FWHM (°) | Lc (nm) |
|---|---|---|---|---|---|
| JL-V03 | UG | 25.9050 | 0.3437 | 1.8344 | 4.3945 |
| JL-V04 | UG | 26.2901 | 0.3387 | 2.8761 | 2.8050 |
| JL-V05 | UG | 26.3636 | 0.3378 | 2.6950 | 2.9939 |
| WRJ-V01 | UG | 25.9803 | 0.3427 | 1.9447 | 4.1457 |
| WRJ-V06 | UG | 26.2774 | 0.3389 | 3.7356 | 2.1595 |
| WRJ-V07 | UG | 25.8530 | 0.3443 | 2.0899 | 3.8568 |
| Sample ID | Sampling Source | V | Ni | Co | V/Ni | V/(V+Ni) | Ni/Co | ΣREE | Eu/Eu * | LREE | HREE | LREE/HREE |
|---|---|---|---|---|---|---|---|---|---|---|---|---|
| JL-V03 | UG | 1234 | 391 | 1.43 | 3.16 | 0.76 | 273.43 | 15.002 | 1.27 | 10.59 | 3.88 | 2.73 |
| JL-V04 | UG | 1178 | 398 | 1.57 | 2.96 | 0.75 | 253.50 | 10.921 | 1.35 | 7.02 | 3.45 | 2.04 |
| JL-V05 | UG | 861 | 305 | 1.22 | 2.82 | 0.74 | 250.00 | 8.462 | 1.74 | 5.99 | 2.06 | 2.90 |
| DTP-S01 | OC | 1437 | 470 | 1.7 | 3.06 | 0.75 | 276.47 | 13.202 | 0.72 | 11.72 | 1.38 | 8.48 |
| WRJ-V01 | UG | 1335 | 410 | 0.987 | 3.26 | 0.77 | 415.40 | 4.947 | 1.32 | 4.11 | 0.74 | 5.53 |
| WRJ-V02 | UG | 1526 | 481 | 0.736 | 3.17 | 0.76 | 653.53 | 1.709 | 0.76 | 1.38 | 0.31 | 4.47 |
| WRJ-V03 | UG | 1334 | 430 | 0.712 | 3.10 | 0.76 | 603.93 | 10.135 | 0.75 | 9.18 | 0.88 | 10.41 |
| WRJ-V04 | UG | 845 | 274 | 0.71 | 3.08 | 0.76 | 385.92 | 11.419 | 0.67 | 8.42 | 2.85 | 2.96 |
| WRJ-V05 | UG | 1332 | 407 | 1.02 | 3.27 | 0.77 | 399.02 | 16.056 | 1.17 | 14.56 | 1.32 | 11.02 |
| DAP-S01 | OC | 299 | 146 | 0.756 | 2.05 | 0.67 | 193.12 | 26.617 | 0.39 | 23.25 | 3.22 | 7.21 |
| DAP-S02 | OC | 539 | 228 | 0.726 | 2.36 | 0.70 | 314.05 | 16.297 | 0.51 | 14.34 | 1.85 | 7.74 |
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Wang, C.; Cao, D.; Huang, G. Geochemical Heterogeneity of Fracture-Filling Vein Pyrobitumen in Tectonically Reworked Reservoirs of the Western Jiangnan–Xuefeng Uplift, South China. Minerals 2026, 16, 753. https://doi.org/10.3390/min16070753
Wang C, Cao D, Huang G. Geochemical Heterogeneity of Fracture-Filling Vein Pyrobitumen in Tectonically Reworked Reservoirs of the Western Jiangnan–Xuefeng Uplift, South China. Minerals. 2026; 16(7):753. https://doi.org/10.3390/min16070753
Chicago/Turabian StyleWang, Chongjing, Daiyong Cao, and Guoshu Huang. 2026. "Geochemical Heterogeneity of Fracture-Filling Vein Pyrobitumen in Tectonically Reworked Reservoirs of the Western Jiangnan–Xuefeng Uplift, South China" Minerals 16, no. 7: 753. https://doi.org/10.3390/min16070753
APA StyleWang, C., Cao, D., & Huang, G. (2026). Geochemical Heterogeneity of Fracture-Filling Vein Pyrobitumen in Tectonically Reworked Reservoirs of the Western Jiangnan–Xuefeng Uplift, South China. Minerals, 16(7), 753. https://doi.org/10.3390/min16070753

