| Literature DB >> 27483298 |
Haseog Kim1, Sangki Park2, Hayong Kim3.
Abstract
There has been increased deconstruction and demolition of reinforced concrete structures due to the aging of the structures and redevelopment of urban areas resulting in the generation of massive amounts of construction. The production volume of waste concrete is projected to increase rapidly over 100 million tons by 2020. However, due to the high cement paste content, recycled aggregates have low density and high absorption ratio. They are mostly used for land reclamation purposes with low added value instead of multiple approaches. This study was performed to determine an effective method to remove cement paste from recycled aggregates by using the abrasion and substituting the process water with acidic water. The aim of this study is to analyze the quality of the recycled fine aggregates produced by a complex method and investigate the optimum manufacturing conditions for recycled fine aggregates based on the design of experiment. The experimental parameters considered were water ratio, coarse aggregate ratio, and abrasion time and, as a result of the experiment, data concerning the properties of recycled sand were obtained. It was found that high-quality recycled fine aggregates can be obtained with 8.57 min of abrasion-crusher time and a recycled coarse aggregate ratio of over 1.5.Entities:
Keywords: abrasion-crusher time; acid treatment; design of experiment; orthogonal arrays; recycled fine aggregates; response surface methodology
Mesh:
Substances:
Year: 2016 PMID: 27483298 PMCID: PMC4997455 DOI: 10.3390/ijerph13080769
Source DB: PubMed Journal: Int J Environ Res Public Health ISSN: 1660-4601 Impact factor: 3.390
Figure 1Principle of abrasion crusher.
Experimental plan using the design of experiment.
| Factors | Levels | Test Items | |||
|---|---|---|---|---|---|
| 0 | 1 | 2 | |||
| A | Water ratio 1 (%) | 0.7 | 1.0 | 1.3 | Density |
| B | Coarse aggregate ratio 2 (%) | 0.5 | 1.0 | 1.5 | Absorption ratio |
| C | Abrasion time (min) | 5 | 10 | 15 | Percentage of solid volume |
1 Volume ratio of water to total aggregate; 2 Weight ratio of coarse aggregate to fine aggregate.
The level of experiment.
| ID | A | B | C | Levels 1 |
|---|---|---|---|---|
| Water Ratio (%) | Coarse Aggregate Ratio (%) | Abrasion Time (min) | ||
| A0B0C0 | 0.7 | 0.5 | 5 | A0 = 0.7 |
| A1B0C2 | 1.0 | 0.5 | 15 | A1 = 1.0 |
| A2B0C1 | 1.3 | 0.5 | 10 | A2 = 1.3 |
| A0B1C1 | 0.7 | 1.0 | 10 | B0 = 0.5 |
| A1B1C0 | 1.0 | 1.0 | 5 | B1 = 1.0 |
| A2B1C2 | 1.3 | 1.0 | 15 | B2 = 1.5 |
| A0B2C2 | 0.7 | 1.5 | 15 | C0 = 5 |
| A1B2C1 | 1.0 | 1.5 | 10 | C1 = 10 |
| A2B2C0 | 1.3 | 1.5 | 5 | C2 = 15 |
1 0, 1, and 2 represent the experimental level, respectively.
The physical properties of recycled fine aggregate.
| Density (kg/m3) | Absorption Ratio (%) | Fineness Modulus | Solid Content in Aggregate (%) | Unit Weight (kg/m3) |
|---|---|---|---|---|
| 2270 | 6.56 | 3.40 | 59.6 | 1443 |
Figure 2Experiment process of the manufacture of high-quality of recycled fine aggregate.
Testing items and their measurement methods.
| Item | Experimental Method | Standard of Recycled Fine Aggregate |
|---|---|---|
| Density (kg/m3) | KS F 2503 (ASTM C128) | 2.2 over |
| Absorption ratio (%) | KS F 2504 (ASTM C128) | 5.0 under |
| Solid content in aggregate (%) | KS F 2505 (ASTM C29) | 53 over |
Test results.
| ID | Density (kg/m3) | Absorption Ratio (%) | Solid Content in Aggregate (%) | |
|---|---|---|---|---|
| Oven-Dry | Saturated Surface-Dry | |||
| Base | 2270 | 2420 | 6.56 | 59.6 |
| A0B0C0 | 2410 | 2500 | 3.43 | 60.7 |
| A1B0C2 | 2480 | 2540 | 2.46 | 65.4 |
| A2B0C1 | 2440 | 2520 | 3.20 | 64.6 |
| A0B1C1 | 2460 | 2540 | 3.03 | 64.6 |
| A1B1C0 | 2410 | 2500 | 3.95 | 62.3 |
| A2B1C2 | 2500 | 2550 | 2.02 | 65.3 |
| A0B2C2 | 2530 | 2570 | 1.65 | 65.7 |
| A1B2C1 | 2480 | 2550 | 2.90 | 64.7 |
| A2B2C0 | 2430 | 2500 | 3.24 | 62.7 |
Variance analysis for density of recycled fine aggregate.
| ID | Factors | S 1 | Ø 2 | V 3 | F0 4 | Evaluation |
|---|---|---|---|---|---|---|
| A | Washing water | 0.0002 | 2 | 0.0001 | 3.00 | - |
| B | Coarse aggregate | 0.0021 | 2 | 0.0010 | 31.00 | ** |
| C | Abrasion time | 0.0113 | 2 | 0.0056 | 169.00 | *** |
| Error | 0.0001 | 2 | 0.0000 | |||
| Total | 0.0136 | 8 | ||||
1 S: sum of squares; 2 Ø: degree of freedom; 3 V: mean of the sum of squares; 4 F0: F-statistics value; *** accepted at the 0.01 significance level; ** accepted at the 0.05 significance level; - not accepted.
Figure 3Assumed density of recycled fine aggregate by variance analysis: (a) water ratio; (b) coarse aggregate ratio; and (c) abrasion crusher time.
Variance analysis for absorption ratio of recycled fine aggregate.
| ID | Factors | S | Ø | V | F0 | Evaluation |
|---|---|---|---|---|---|---|
| A | Washing water | 0.2539 | 2 | 0.1269 | 6.4952 | - |
| B | Coarse aggregate | 0.3514 | 2 | 0.1757 | 8.9886 | * |
| C | Abrasion time | 3.4867 | 2 | 1.7433 | 89.1990 | *** |
| Error | 0.0391 | 2 | 0.0195 | |||
| Total | 4.1310 | 8 | ||||
*** accepted at the 0.01 significance level; * accepted at the 0.10 significance level; - not accepted.
Figure 4Assumed absorption ratio of recycled fine aggregate by variance analysis: (a) water ratio; (b) coarse aggregate ratio; and (c) abrasion crusher time.
Variance analysis for the solid volume of recycled fine aggregate.
| ID | Factors | S | Ø | V | F0 | Evaluation |
|---|---|---|---|---|---|---|
| A | Washing water | 0.5067 | 2 | 0.2533 | 0.5984 | - |
| B | Coarse aggregate | 0.9800 | 2 | 0.4900 | 1.1575 | - |
| C | Abrasion time | 20.8867 | 2 | 10.4433 | 24.6693 | *** |
| Error | 0.8467 | 2 | 0.4233 | |||
| Total | 23.2200 | 8 | ||||
*** accepted at the 0.01 significance level; - not accepted.
Variance analysis for the solid volume of recycled fine aggregate after pooling.
| ID | Factors | S | Ø | V | F0 | Evaluation |
|---|---|---|---|---|---|---|
| B | Coarse aggregate | 0.9800 | 2 | 0.4900 | 1.45 | - |
| C | Abrasion time | 20.887 | 2 | 10.443 | 30.9 | *** |
| Error | 1.3534 | 4 | 0.3384 | |||
| Total | 8 | |||||
*** accepted at the 0.01 significance level; - not accepted.
Figure 5Assumed solid volume of recycled fine aggregate by variance analysis: (a) water ratio; (b) coarse aggregate ratio; and (c) abrasion crusher time.
Variance analysis for the density of recycled fine aggregate.
| Factors | S | Ø | V | F0 | Evaluation |
|---|---|---|---|---|---|
| Regression | 0.0136 | 5 | 0.0027 | 195.2400 | *** |
| Error | 0.0000 | 3 | 0.0000 | ||
| Total | 0.0136 | 8 |
*** accepted at the 0.01 significance level.
Figure 6Analysis response surface for the density of recycled fine aggregate drive from coarse aggregate ratio and abrasion time.
Variance analysis for absorption ratio of recycled fine aggregate.
| Factors | S | Ø | V | F0 | Evaluation |
|---|---|---|---|---|---|
| Regression | 3.9341 | 5 | 0.7868 | 11.9896 | ** |
| Error | 0.1969 | 3 | 0.0656 | ||
| Total | 4.1310 | 8 |
** accepted at the 0.05 significance level.
Figure 7Analysis response surface for the absorption ratio of recycled fine aggregate derived from the coarse aggregate ratio and abrasion time.
Figure 8The optimum condition for improved quality of recycled fine aggregate.