Coupled Effects of Tailings Particle Size and Borehole Size on Cement Paste Backfill Fracture Initiation Pressure

dc.contributor.authorArnold, Brian Nicholasen
dc.contributor.committeechairPandey, Rohiten
dc.contributor.committeememberBrand, Alexander S.en
dc.contributor.committeememberWestman, Erik Christianen
dc.contributor.departmentMining Engineeringen
dc.date.accessioned2026-08-01T08:00:21Zen
dc.date.available2026-08-01T08:00:21Zen
dc.date.issued2026-07-31en
dc.description.abstractCement paste backfill (CPB) is a mixture of mine tailings, water, and binder used to support underground openings. Its mechanical strength is a critical design parameter for safety and the current strength testing methods are highly variable and unrepresentative of in-situ conditions. A recently proposed strength testing method, fracture initiation pressure (FIP), uses a hydraulic fracturing technique for estimating the in-situ tensile strength. Previously, the Point Stress (PS) model was used to interpret the FIP values, which indicate that both the material's internal flaws and borehole size govern hydraulic fracturing behavior. Because the particle size distribution (PSD) controls packing, porosity, and flaw size, this thesis investigates the coupled effects of PSD and borehole size on FIP in CPB. Three ground-silica PSDs (Sil-Co-Sil 52, 90, and 106; with D50 of 16.1, 21.5, 32.9 μm, respectively) were initially tested at 4 and 8 wt.% binder and 7, 14, and 28 days of curing for unconfined compressive strength (UCS), Brazilian tensile strength (BTS), Mode I fracture toughness (KIC), FIP, and isothermal calorimetry. Strength generally increased with binder content, curing duration, and particle fineness with the fineness effects being attributed to the filler effect where increased surface area from fine particles leads to increased hydration product formation. Although the FIP results exceed tensile strength significantly, they correlate linearly with conventional strength measurements, confirming that FIP could be used as a strength measurement. Because the PS model indicates that the FIP will approach the true tensile strength as borehole size increases, the FIP was measured across eight borehole diameters (0.125 inch to 2.375 inch) for the same three PSDs. The results reveal a strong borehole size dependence where FIP decreases with increasing diameter size and plateaus beyond a critical size. The PS model and Lecampion mixed criteria models were used to evaluate the data and a modified mixed model incorporating an additional length factor, taken as the fracture process zone length, best fit the observed results. The plateau pressure at large boreholes is proposed as an effective tensile strength that correlates strongly with conventional strength measures, indicating that FIP measured at a significantly large borehole could provide a reliable relative in-situ CPB strength measurement.en
dc.description.abstractgeneralA common method of backfilling underground voids in mines is with cement paste backfill, which is a mixture of crushed waste ore, a binder, and water. The strength of this backfill is of great importance for safety, however, the current methods of determining its strength often rely on samples taken from the preparation plant that often contain a high variability and fail to represent underground conditions. Therefore, mines need a dependable and accurate way to measure the in-situ strength of cement paste backfill. This thesis studies a relatively new in-situ strength testing method known as fracture initiation pressure. The method works by drilling a hole into hardened cement paste backfill and hydraulicly injecting a fluid until the material fails and the pressure drops; the maximum pressure reached at the moment right before failure is considered the fracture initiation pressure. It was initially thought that the pressure would directly measure the material's true tensile strength, however, the pressures were considerably higher than the tensile strength. The Point Stress model suggests that the fracture initiation pressure depends on the characteristic distance, which is a material property related to flaws, and the borehole size used for the hydraulic injection. Understanding the role of the particle size distribution and borehole size on fracture initiation pressure is critical for its practical application. Cement paste backfill samples were made using three different particle sizes and tested for conventional strength measurements alongside the fracture initiation pressure. The initial results indicate the strength of cement paste backfill increases with binder content, curing duration, and particle fineness. The Point Stress model demonstrated challenges in modeling the observed results across different particle sizes, however, it pointed to the critical role that borehole size plays in the fracturing behavior. Using the same three particle size, the fracture initiation tests were repeated across a range of eight borehole sizes from the initial test size of 0.125 inch to 2.375 inch in diameter. The results indicate that the small holes consistently give elevated pressure readings and that the fracture initiation pressure decreases as the hole size increases until a plateau is reached as a large enough borehole. These findings are interpreted through the Point Stress model again as well as Lecampion's mixed criteria model. To further model the observed data, a modification was proposed to the mixed model with the addition of a length scale. The modified mixed model criteria as well as the fracture initiation plateau at large borehole sizes serve to further fracture initiation pressures use as an in-situ cement paste backfill strength measurement.en
dc.description.degreeMaster of Scienceen
dc.format.mediumETDen
dc.identifier.othervt_gsexam:47443en
dc.identifier.urihttps://hdl.handle.net/10919/143694en
dc.language.isoenen
dc.publisherVirginia Techen
dc.rightsIn Copyrighten
dc.rights.urihttp://rightsstatements.org/vocab/InC/1.0/en
dc.subjectcement paste backfillen
dc.subjectparticle size distributionen
dc.subjectfracture initiation pressureen
dc.titleCoupled Effects of Tailings Particle Size and Borehole Size on Cement Paste Backfill Fracture Initiation Pressureen
dc.typeThesisen
thesis.degree.disciplineMining Engineeringen
thesis.degree.grantorVirginia Polytechnic Institute and State Universityen
thesis.degree.levelmastersen
thesis.degree.nameMaster of Scienceen

Files

Original bundle
Now showing 1 - 1 of 1
Loading...
Thumbnail Image
Name:
Arnold_BN_T_2026.pdf
Size:
3.53 MB
Format:
Adobe Portable Document Format
License bundle
Now showing 1 - 1 of 1
Name:
Arnold_BN_T_2026_support_1.pdf
Size:
53.03 KB
Format:
Adobe Portable Document Format
Description:

Collections