Optimal Design of Fluid Flow and Heat Transfer in Pipe Jackets Having Bow Cross-Sections
Abstract
:1. Introduction
2. Numerical Simulation
2.1. Geometrical Model
2.2. Governing Equations and Boundary Conditions
2.3. Data Reduction
2.4. Mesh and Simulation Verification
3. Results and Discussion
3.1. Optimal Design of Pipe Cross-Sections
3.2. Modification of Nu and f Correlation Formulas for Bow Cross-Section Pipes
4. Conclusions
- (1)
- For a given volume flow rate, by decreasing the central angle α of the bow cross-sections in the range of 90–180°, Re and Nu for both straight pipes and helical pipes increase, meaning that the bow cross-sections can enhance heat transfer in the pipes. However, at the same time, the flow resistance will also increase.
- (2)
- Compared with half-pipes with the central angle α being 180°, the comprehensive performance evaluation factor pec for both straight pipes and helical pipes having bow cross-sections is greater than 1, meaning that bow cross-sectional pipes have better comprehensive heat transfer performance. Specifically, for the helical pipes, when α is 90°, the pec can reach 1.68 times that with α being 180°.
- (3)
- Compared with the half-pipe with α equal to 180°, less weight of the bow cross-sectional pipe is needed for transferring the same amount of heat. For the helical pipe having a bow cross-section with α being 90°, the weight of the pipe can be reduced by about 80%, a significant saving of the material or the manufacturing cost;
- (4)
- Correlation formulas for Nu and f of the whole straight pipe and the helical pipe were modified to include the influence of the central angle α of the bow cross-sections. With relative errors of less than 10%, the modified formulas can be applied in engineering to construct jackets with bow cross-sectional pipes.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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Parameter | Value |
---|---|
Cp | 4182 J·(kg·K)−1 |
μ | 0.001003 Pa·s |
ρ | 998.2 kg·m−3 |
λ | 0.6 W (m·K)−1 |
Mesh Number | Nu | Error (%) | f | Error (%) |
---|---|---|---|---|
929,583 | 168.52 | 0.38 | 0.0237 | −1.66 |
1,920,556 | 168.36 | 0.29 | 0.0239 | −0.83 |
3,945,627 | 167.88 | 0 | 0.0241 | 0 |
Mesh Number | Nu | Error (%) | f | Error (%) |
---|---|---|---|---|
1,164,672 | 84.502 | −0.75 | 0.00720 | −2.04 |
2,326,812 | 84.846 | −0.34 | 0.00726 | −1.22 |
4,628,355 | 85.138 | 0 | 0.00735 | 0 |
α (°) | Re | d (mm) | Nu (Simulation) | Nu with Equation (11) | Relative Error (%) | f (Simulation) | f with Equation (12) | Relative Error (%) |
---|---|---|---|---|---|---|---|---|
100 | 18,000 | 45 | 120.43 | 117.83 | −2.16% | 0.02288 | 0.02285 | −0.12% |
155 | 22,000 | 40 | 151.86 | 148.07 | −2.49% | 0.02326 | 0.02336 | 0.44% |
90 | 22,000 | 60 | 141.22 | 136.11 | −3.76% | 0.02155 | 0.02136 | −0.89% |
120 | 16,000 | 60 | 112.72 | 110.31 | −2.19% | 0.02464 | 0.02425 | −1.58% |
95 | 23,000 | 55 | 148.04 | 142.22 | −3.93% | 0.02159 | 0.02131 | −1.3% |
145 | 12,000 | 50 | 90.23 | 90.24 | 0.005% | 0.02695 | 0.02689 | −0.21% |
140 | 17,000 | 32 | 117.92 | 118.59 | 0.57% | 0.02401 | 0.02451 | 2.08% |
135 | 14,000 | 35 | 99.27 | 100.96 | 1.70% | 0.02527 | 0.02557 | 1.21% |
170 | 15,000 | 30 | 108.02 | 110.57 | 2.36% | 0.02519 | 0.02611 | 3.64% |
180 | 24,000 | 53 | 164.12 | 162.47 | −1.00% | 0.02285 | 0.02343 | 2.53% |
α (°) | Re | d (mm) | Dc (mm) | Nu (Simulation) | Nu with Equation (13) | Relative Error (%) | f (Simulation) | f with Equation (15) | Relative Error (%) |
---|---|---|---|---|---|---|---|---|---|
100 | 22,000 | 70 | 900 | 137.13 | 139.28 | 1.57% | 0.0055 | 0.00563 | 2.36% |
90 | 16,000 | 32 | 450 | 104.13 | 104.47 | 0.32% | 0.00596 | 0.0059 | −1.03% |
150 | 23,000 | 32 | 1000 | 147.79 | 137.41 | −7.02% | 0.00587 | 0.00581 | −1.03% |
140 | 17,000 | 40 | 600 | 113.89 | 112.97 | −0.81% | 0.00636 | 0.00634 | −0.42% |
95 | 13,000 | 65 | 700 | 86.43 | 90.3 | 4.48% | 0.00613 | 0.00633 | 3.28% |
110 | 19,000 | 55 | 950 | 121.78 | 120.24 | −1.27% | 0.00576 | 0.0058 | 0.80% |
120 | 24,000 | 81 | 450 | 153.33 | 165.34 | 7.83% | 0.00619 | 0.00629 | 1.67% |
160 | 24,000 | 81 | 1000 | 155.38 | 155.98 | 0.38% | 0.00637 | 0.0063 | −1.10% |
180 | 12,000 | 50 | 680 | 84.52 | 86.46 | 2.30% | 0.00732 | 0.00739 | 0.83% |
170 | 20,000 | 45 | 800 | 132.23 | 129.39 | −2.15% | 0.00644 | 0.00639 | −0.69% |
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Li, W.; Yin, X.; Li, H.; Qian, C.; Wu, Z. Optimal Design of Fluid Flow and Heat Transfer in Pipe Jackets Having Bow Cross-Sections. Appl. Sci. 2022, 12, 7179. https://doi.org/10.3390/app12147179
Li W, Yin X, Li H, Qian C, Wu Z. Optimal Design of Fluid Flow and Heat Transfer in Pipe Jackets Having Bow Cross-Sections. Applied Sciences. 2022; 12(14):7179. https://doi.org/10.3390/app12147179
Chicago/Turabian StyleLi, Weicong, Xia Yin, Huifang Li, Caifu Qian, and Zhiwei Wu. 2022. "Optimal Design of Fluid Flow and Heat Transfer in Pipe Jackets Having Bow Cross-Sections" Applied Sciences 12, no. 14: 7179. https://doi.org/10.3390/app12147179
APA StyleLi, W., Yin, X., Li, H., Qian, C., & Wu, Z. (2022). Optimal Design of Fluid Flow and Heat Transfer in Pipe Jackets Having Bow Cross-Sections. Applied Sciences, 12(14), 7179. https://doi.org/10.3390/app12147179