Search engine for discovering works of Art, research articles, and books related to Art and Culture
ShareThis
Javascript must be enabled to continue!

Smart Cement Performance Enhancement with NanoAl2O3 for Real Time Monitoring Applications Using Vipulanandan Models

View through CrossRef
Abstract Nano aluminum oxide (NanoAl2O3) up to 1% was added to the smart cement with a water-to-cement ratio of 0.38 to investigate the effects on the sensing properties and compressive strength. Series of physical, curing and compressive loading experiments evaluated the smart cement behavior with and without NanoAl2O3 up to 28 days of curing. The addition of 0.5% and 1% NanoAl2O3 increased the initial sensing property (electrical resistivity) of the smart cement by 10% and 30% respectively. In a one day of curing, the maximum change in the electrical resistivity (RI24hr) for the smart cement without NanoAl2O3 was 375%. The RI24hr for the smart cement with NanoAl2O3 increased with the amount of NanoAl2O3. Addition of 1% NanoAl2O3 increased the compressive strength of the smart cement by 14% and 42% after 1 day and 28 days of curing respectively. The nonlinear Vipulanandan p-q curing model was used to predict the changes in electrical resistivity with curing time. The piezoresistivity of smart cement with the addition of NanoAl2O3 was over 500 times (50,000%) higher than the regular cement depending on the curing time and NanoAl2O3 content. Also a gage factor correlation model was used to relate the strain to the resistivity changes under compressive loading. The Vipulanandan p-q stress-strain and the piezoresistivity models also predicted the experimental results very well. A linear correlation was obtained between the RI24hr and the compressive strength of the modified smart cement based on the curing time.
Title: Smart Cement Performance Enhancement with NanoAl2O3 for Real Time Monitoring Applications Using Vipulanandan Models
Description:
Abstract Nano aluminum oxide (NanoAl2O3) up to 1% was added to the smart cement with a water-to-cement ratio of 0.
38 to investigate the effects on the sensing properties and compressive strength.
Series of physical, curing and compressive loading experiments evaluated the smart cement behavior with and without NanoAl2O3 up to 28 days of curing.
The addition of 0.
5% and 1% NanoAl2O3 increased the initial sensing property (electrical resistivity) of the smart cement by 10% and 30% respectively.
In a one day of curing, the maximum change in the electrical resistivity (RI24hr) for the smart cement without NanoAl2O3 was 375%.
The RI24hr for the smart cement with NanoAl2O3 increased with the amount of NanoAl2O3.
Addition of 1% NanoAl2O3 increased the compressive strength of the smart cement by 14% and 42% after 1 day and 28 days of curing respectively.
The nonlinear Vipulanandan p-q curing model was used to predict the changes in electrical resistivity with curing time.
The piezoresistivity of smart cement with the addition of NanoAl2O3 was over 500 times (50,000%) higher than the regular cement depending on the curing time and NanoAl2O3 content.
Also a gage factor correlation model was used to relate the strain to the resistivity changes under compressive loading.
The Vipulanandan p-q stress-strain and the piezoresistivity models also predicted the experimental results very well.
A linear correlation was obtained between the RI24hr and the compressive strength of the modified smart cement based on the curing time.

Related Results

Behavior of Nano Calcium Carbonate Modified Smart Cement Contaminated with Oil Based Drilling Mud
Behavior of Nano Calcium Carbonate Modified Smart Cement Contaminated with Oil Based Drilling Mud
Abstract As oil and gas exploration and production expands around the world, there are unique challenges in well construction beginning at the seafloor. There are se...
The cement-bone bond is weaker than cement-cement bond in cement-in-cement revision arthroplasty. A comparative biomechanical study
The cement-bone bond is weaker than cement-cement bond in cement-in-cement revision arthroplasty. A comparative biomechanical study
This study compares the strength of the native bone-cement bond and the old-new cement bond under cyclic loading, using third generation cementing technique, rasping and contaminat...
Real-Time Distributed Fiber Optic Sensing for Cement Sheath Integrity Monitoring
Real-Time Distributed Fiber Optic Sensing for Cement Sheath Integrity Monitoring
ABSTRACT: The integrity of cement sheath is critical to oil and gas effective extraction, in which the cement displacement efficiency and solidify quality are the...
Smart Cement Behavior with Aggregates, Silicate, Clay, Carbon Dioxide and Real-Time Monitoring Characterized Using Vipulanandan Models
Smart Cement Behavior with Aggregates, Silicate, Clay, Carbon Dioxide and Real-Time Monitoring Characterized Using Vipulanandan Models
Chemo-thermo-piezoresistive smart cement is a highly sensing binder that was recently developed to be used in multiple infrastructure applications in new constructions and also int...
[RETRACTED] Rhino XL Male Enhancement v1
[RETRACTED] Rhino XL Male Enhancement v1
[RETRACTED]Rhino XL Reviews, NY USA: Studies show that testosterone levels in males decrease constantly with growing age. There are also many other problems that males face due ...
FLY ASH FOUNDATION REINFORCED BY CEMENT–SOIL MIXING PILES
FLY ASH FOUNDATION REINFORCED BY CEMENT–SOIL MIXING PILES
Cement-soil mixing piles have been commonly used to enhance the bearing capacity of fly ash stratum and mitigate the settlement damage to the surrounding environment. However, only...

Back to Top