ECC Research Atlas Dashboard

Atlas document

Source: 03_papers/chapter10_extension_paper_request_list.md open raw

Chapter 10 Extension Paper Request List

Book anchor: Victor C. Li, Engineered Cementitious Composites (ECC), Springer 2019, DOI 10.1007/978-3-662-58438-5, Chapter 10 "Multi-functional Engineered Cementitious Composites (ECC)".

Purpose: identify latest / post-book research needed to build the Atlas Supporting / Extension layer for Chapter 10 nodes. The 13 already-ingested foundational papers do not cover Chapter 10; the papers listed here need to be acquired, source-noted, paper-carded, and DOI-verified before Atlas nodes are updated with concrete supporting citations. Book-first framing is preserved: extension papers verify or extend book claims, they do not replace the primary anchor.

Citation clues below are transcribed from 00_sources/victor_li_book/extracted_text/10 multi functional.txt references [1]–[49] and from 00_sources/victor_li_book/claim_evidence_tables/10 multi functional_claim_evidence_seed.md. Exact bibliographic details should be re-verified against the printed book before ingestion.

1. Self-healing ECC

Atlas nodes needing support: - 02_concepts/self_healing_mechanisms.md - 02_concepts/self_healing_robustness.md - 04_material_systems/self_healing_ecc.md - 02_concepts/functional_additive_effects.md (partial)

Paper types needed: mechanism papers on autogenous healing in ECC, transport-property recovery, mechanical-property recovery, natural-environment healing.

Citation clues from Chapter 10 references: - [9] Li, V.C., Lim, Y.M., Chan, Y.-W. Feasibility study of a passive smart self-healing cementitious composite. Compos. Part B Eng. 29(6), 819–827 (1998). - [12] Li, V.C., Herbert, E. Robust self-healing concrete for sustainable infrastructure. J. Adv. Concr. Technol. 10(6), 207–218 (2012). - [13] Yildirim, G., Keskin Ö.K., Keskin S.B., Şahmaran M., Lachemi M. A review of intrinsic self-healing capability of engineered cementitious composites. Constr. Build. Mater. 101, 10–21 (2015). - [16] Yang, Y., Lepech, M.D., Yang, E.-H., Li, V.C. Autogenous healing of engineered cementitious composites under wet-dry cycles. Cem. Concr. Res. 39(5), 382–390 (2009). - [17] Fan, S., Li, M. X-ray computed microtomography of three-dimensional microcracks and self-healing in engineered cementitious composites. Smart Mater. Struct. 24(1), 1–14 (2015). - [18] Kan, L.L., Shi, H.S., Sakulich, A.R., Li, V.C. Self-healing characterization of engineered cementitious composite materials. ACI Mater. J. 107(6), 617–624 (2010). - [20] Yıldırım, G. et al. Self-healing performance of aged cementitious composites. Cem. Concr. Compos. 87, 172–186 (2018). - [26] Yang, Y., Yang, E.-H., Li, V.C. Autogenous healing of engineered cementitious composites at early age. Cem. Concr. Res. 41(2), 176–183 (2011). - [33] Li, V.C., Herbert, E.N. Self-healing of microcracks in engineered cementitious composites (ECC) under a natural environment. Materials 6(7), 2831–2845 (2013). - [36] Yildirim, G., Sahmaran, M., Ahmed, H.U. Influence of hydrated lime addition on the self-healing capability of high-volume fly ash incorporated cementitious composites. J. Mater. Civ. Eng. 27(6), 04014187 (2015). - [37] Qiu, J., Tan, H.S., Yang, E.H. Coupled effects of crack width, slag content, and conditioning alkalinity on autogenous healing of engineered cementitious composites. Cem. Concr. Compos. 73, 203–212 (2016).

Priority: high. Reason: self-healing is a signature Chapter 10 function and drives multiple Atlas nodes.

2. Self-sensing ECC

Atlas nodes needing support: - 04_material_systems/self_sensing_ecc.md - 02_concepts/smart_infrastructure.md - 02_concepts/functional_additive_effects.md (partial)

Paper types needed: carbon-black / conductive-additive ECC characterization, resistivity–strain and resistivity–crack relationships, wireless monitoring integration.

Citation clues from Chapter 10 references: - [41] Lynch, J. et al. Overview of a cyber-enabled wireless monitoring system for the protection and management of critical infrastructure systems. SPIE 7294 (2009). - [46] Lin, V., Li, M., Lynch, J.P., Li, V.C. Mechanical and electrical characterization of self-sensing carbon black ECC. Proc. SPIE 7983, 1–12 (2011). - [47] Li, M., Lin, V., Lynch, J., Li, V.C. Carbon Black Engineered Cementitious Composites — Mechanical and Electrical Characterization. ACI Spec. Publ. 292–5, 1–16 (2013).

Priority: high. Reason: enables piezoresistivity and EIT nodes downstream.

3. Piezoresistivity

Atlas nodes needing support: - 02_concepts/piezoresistivity.md

Paper types needed: conductivity-based strain-monitoring of fiber-reinforced cementitious components; microcracking-vs-resistivity coupling.

Citation clues from Chapter 10 references: - [42] Hou, T.-C., Lynch, J.P. Conductivity-based strain monitoring and damage characterization of fiber reinforced cementitious structural components. Proc. SPIE 5765, 419–429 (2005). - [48] Ranade, R., Zhang, J., Lynch, J.P., Li, V.C. Influence of micro-cracking on the composite resistivity of Engineered Cementitious Composites. Cem. Concr. Res. 58, 1–12 (2014).

Priority: high. Reason: piezoresistivity is the physical basis for both self-sensing ECC and EIT.

4. Electrical impedance tomography (EIT)

Atlas nodes needing support: - 02_concepts/electrical_impedance_tomography.md

Paper types needed: EIT imaging of microcrack fields in cementitious composites; impedance response of multiply-cracked ECC.

Citation clues from Chapter 10 references: - [43] Hou, T., Lynch, J.P. Tomographic imaging of crack damage in cementitious structural components. 4th Int. Conf. Earthquake Eng., Paper 162 (2006). - [44] Hou, T.-C., Lynch, J.P. Electrical impedance tomographic methods for sensing strain fields and crack damage in cementitious structures. J. Intell. Mater. Syst. Struct. 20(11), 1363–1379 (2009). - [45] Saraireh, D., Walls, S., Suryanto, B., Starrs, G., Mccarter, W.J. The influence of multiple micro-cracking on the electrical impedance of an engineered cementitious composite. In: SHCC-4, Springer, vol. 15, 292–299 (2018).

Priority: high. Reason: EIT is a dedicated Chapter 10 sub-section and its Atlas node has no non-book support yet.

5. Thermal adaptive / PCM ECC

Atlas nodes needing support: - 04_material_systems/thermal_adaptive_ecc.md - 02_concepts/phase_change_materials.md

Paper types needed: PCM-concrete building energy studies; PCM-ECC development and property characterization.

Citation clues from Chapter 10 references: - [3] Cabeza, L.F., Castellón, C. et al. Use of microencapsulated PCM in concrete walls for energy savings. Energy Build. 39(2), 113–119 (2007). - [4] Alkan, C. Enthalpy of melting and solidification of sulfonated paraffins as phase change materials for thermal energy storage. Thermochim. Acta 451(1–2), 126–130 (2006). - [5] Desai, D., Miller, M., Lynch, J.P., Li, V.C. Development of thermally adaptive Engineered Cementitious Composite for passive heat storage. Constr. Build. Mater. 67(Part C), 366–372 (2014).

Priority: medium-high. Reason: PCM-ECC is the only material-system route offered in Chapter 10 for thermal adaptivity.

6. Photocatalytic ECC

Atlas nodes needing support: - 04_material_systems/photocatalytic_ecc.md - 02_concepts/photocatalytic_function.md

Paper types needed: TiO2 photocatalysis in cementitious materials; self-cleaning ECC characterization.

Citation clues from Chapter 10 references: - [1] Cassar, L. Photocatalysis of cementitious materials: clean buildings and clean air. MRS Bull. 29(05), 328–331 (2004). - [38] Chen, J., sun Poon, C. Photocatalytic construction and building materials: from fundamentals to applications. Build. Environ. 44(9), 1899–1906 (2009). - [39] Hashimoto, K., Irie, H., Fujishima, A. TiO2 photocatalysis: a historical overview and future prospects. Jpn. J. Appl. Phys. 44(12), 8269–8285 (2005). - [40] Zhao, A., Yang, J., Yang, E.-H. Self-cleaning engineered cementitious composites. Cem. Concr. Compos. 64, 74–83 (2015).

Priority: medium. Reason: photocatalytic ECC is a self-contained Chapter 10 sub-section.

7. Broader multifunctional ECC / smart infrastructure

Atlas nodes needing support: - 04_material_systems/multifunctional_ecc.md - 02_concepts/smart_infrastructure.md - 02_concepts/functional_additive_effects.md

Paper types needed: multifunction integration studies, bacteria-based self-healing comparison, capsule-based healing benchmarks, environmental scanning electron microscopy of healed ECC, natural-environment monitoring of smart cementitious composites.

Citation clues from Chapter 10 references: - [2] Jonkers, H.M. et al. Application of bacteria as self-healing agent for the development of sustainable concrete. Ecol. Eng. 36(2), 230–235 (2010). - [6] Van Breugel, K. Is there a market for self-healing cement-based materials. Proc. 1st Int. Conf. Self Healing Materials, 1–9 (2007). - [7] Van Tittelboom, K. et al. Use of bacteria to repair cracks in concrete. Cem. Concr. Res. 40(1), 157–166 (2010). - [10] Van Tittelboom, K. et al. Self-healing efficiency of cementitious materials containing tubular capsules filled with healing agent. Cem. Concr. Compos. 33(4), 497–505 (2011). - [11] Van Tittelboom, K. et al. Comparison of different approaches for self-healing concrete in a large-scale lab test. Constr. Build. Mater. 107, 125–137 (2016). - [19] Suryanto, B. et al. Monitoring microcrack healing in an engineered cementitious composite using the environmental scanning electron microscope. Mater. Charact. 119, 175–185 (2016). - [34] Suryanto, B. et al. Smart cement composites for durable and intelligent infrastructure. Procedia Eng. 125, 796–803 (2015).

Priority: medium. Reason: gives cross-topic context for the multifunctional ECC node.

Acquisition workflow (recommendation)

  1. User (or a follow-up run) acquires PDFs from Springer, ScienceDirect, ACI, SPIE, or via institutional access.
  2. Store under 00_sources/foundational_papers/pdfs/ alongside existing 13 papers, with source notes under 00_sources/foundational_papers/source_notes/ and extracted text under 00_sources/foundational_papers/extracted_text/.
  3. Create paper cards under 03_papers/.
  4. Extend 07_visualization/foundational_papers_claim_evidence_matrix.csv (or a sibling chapter10_extension_claim_evidence_matrix.csv) with rows keyed to the Chapter 10 Atlas nodes.
  5. Replace pending extension-layer verification placeholders in Chapter 10 nodes with concrete supporting-source bullets, preserving ### Primary book anchor.

Note: exact page numbers, figure numbers, and equation numbers must be verified against the printed book — citation extraction needed is the default marker when a bibliographic detail is not present in the extracted text.