Analysis of Harvesting Methods of Moso Bamboo
Abstract
:1. Introduction
2. Materials and Methods
2.1. Test Materials and Equipment
2.2. Method of Experiments
3. Results and Discussion
3.1. Experiment Results
3.2. Mechanism Analysis
3.3. Discussion
4. Practical Experience
- (1)
- When the original bamboo is used for construction after harvesting, the distance between the cutting section and the bamboo diaphragm should be reasonably chosen according to the requirements of the end strength of the bamboo pole.
- (2)
- If a clamped saw occurs, or the bamboo cutting saw enters the bamboo cavity from the bamboo skin, reducing the feed speed to obtain a higher surface quality is suggested.
- (3)
- Clogging of the bamboo sawtooth gullet area often occurs, which is an unfavorable factor affecting cutting. In the cutting operation of bamboo, it is expected that chips be cleaned up in time.
- (4)
- The hand-held tools are inevitably unstable during applications. Therefore, the bamboo cutting mechanism needs a stable support device to achieve stability of feed speed and direction, such as a multi-functional chassis.
- (5)
- In order to improve the quality of the cutting surface of the reciprocating saw, the number of swarf pockets and the width of the spring set tooth shall be appropriately increased.
- (6)
- The cutting efficiency of the chain saw is higher, and the surface roughness of the reciprocating saw is worse. For thick and strong bamboos, the operation shall be carried out with chain saws under the condition of low roughness requirements. However, for complex terrain, the chain saw operation is inconvenient and hand-held operation is unstable. The reciprocating saw is more portable and precise. At the same time, reciprocating sawing has more advantages for cutting bamboo branches.
5. Conclusions
- (1)
- The weight of the factors affecting the roughness is in the order of types of cutting saws > cutting direction > state of bamboo > cutting position. The weight of the factors affecting the efficiency of cutting is in the order of types of cutting saws > cutting position > state of bamboo > cutting direction.
- (2)
- The direct external factor of the ladder-shaped damage on the bamboo surface is the dislocation and offset of the cutter cutting path, as well as the planeness of the side surface of the saw. It is important to design a structure with cutting path stability on the cutter.
- (3)
- From the perspective of bamboo structure parameters, the direct factors affecting surface roughness are the swarf thickness and the contact size between the side edge and the saw kerf wall. When designing the cutter structure, the hollow structure of bamboo should be considered because it causes instability of the above factors.
- (4)
- There are interactions between the state of bamboo and the cutting direction, bamboo state and cutting position.
- (5)
- For bamboo in the free-standing state, the optimal level of surface roughness is A1C2D1 (Reciprocating Saw, Obliquely Upward, Upper and Near Sheath Node), and the optimal level of bamboo cutting efficiency is A2C1D2 (Chain Saw, Horizontal, Lower and Near Culm Node). For bamboo in chop down state, the optimal level of surface roughness is A1C3D3 (Reciprocating Saw, Inclined Down, Middle of Bamboo Internode), and the optimal level of bamboo cutting efficiency is A2C3D3 (Chain Saw, Inclined Down, Middle of Bamboo Internode).
Author Contributions
Funding
Conflicts of Interest
Nomenclature
G | Gravity |
F1 | The downward thrust of the saw |
F2 | The forward thrust of the saw |
N1 | The pressure of swarf on the front cutter surface |
N2 | The pressure on corner (contact arc) |
N3 | The pressure on the side edge |
f1 | The friction of sawing kerf wall |
ft1 | The friction on the front tooth face |
ft2 | The friction on the flank tooth surface |
ft3 | The friction on the corner of the tooth |
N4 | The pressure on the front tooth surface |
N5 | The pressure on the flank tooth surface |
α | The relief angle of saw |
θ | The wedge angle of saw |
β | The anterior angle of saw |
b | The width of swarf |
r | The radius of saw corner |
m | The thickness of swarf |
h | The length of swarf |
l | The elasticity recovery of bamboo |
n, d | The length of contact |
q | Load collection degree |
p | The curvature radius of contact arc |
Ra | Roughness of surface |
η | The efficiency of cutting |
t | Time |
Ri | The outside diameter of bamboo |
ri | The inner diameter of bamboo |
Δr | The thickness of the bamboo |
r1, r2 | The distance from the tooth corner to the bamboo center |
r0 | The inner diameter of bamboo |
R | The outside diameter of bamboo |
ε | The circular arc angle |
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Height | Width | Thickness | Height of Tooth | Pith of Tooth | |
---|---|---|---|---|---|
Chain Saw | 100 | 400 | 5 | 5 | 20 |
Reciprocating Saw | 27 | 220 | 1 | 4 | 3 |
Level | Experiment Factors | |||
---|---|---|---|---|
A | B | C | D | |
1 | Reciprocating Saw | Free-Standing | Horizontal | Upper and Near Sheath Node |
2 | Chain Saw | Chop Down | Obliquely Upward | Lower and Near Culm Node |
3 | Hand Saw | Inclined Down | Middle of Bamboo Internode |
NO. | Factors | Evaluation Indices | ||||
---|---|---|---|---|---|---|
A | B | C | D | Ra | η | |
1 | 1 | 2 | 1 | 3 | 6.81 | 1.28 |
2 | 1 | 3 (2) | 3 | 2 | 7.49 | 0.97 |
3 | 1 | 1 | 2 | 1 | 7.87 | 0.71 |
4 | 2 | 3 (2) | 2 | 3 | 11.62 | 1.66 |
5 | 2 | 1 | 1 | 2 | 9.17 | 1.32 |
6 | 2 | 2 | 3 | 1 | 10.33 | 1.76 |
7 | 3 | 2 | 2 | 2 | 15.34 | 0.24 |
8 | 3 | 1 | 3 | 3 | 12.10 | 0.42 |
9 | 3 | 3 (2) | 1 | 1 | 13.22 | 0.63 |
Indicator | Results | A | B | C | D |
---|---|---|---|---|---|
Surface Roughness (Ra) | K1 | 22.2 | 29.1 | 29.2 | 31.4 |
K2 | 31.1 | 64.8 | 34.9 | 32.1 | |
K3 | 40.6 | 29.8 | 30.4 | ||
k1 | 7.40 | 9.70 | 9.73 | 10.47 | |
k2 | 10.37 | 10.80 | 11.63 | 10.70 | |
k3 | 13.53 | 9.93 | 10.13 | ||
R1 | 6.16 | 1.09 | 1.88 | 0.49 | |
Cutting Efficiency (η) | K1 | 2.96 | 2.45 | 3.23 | 3.1 |
K2 | 4.74 | 6.54 | 2.61 | 2.53 | |
K3 | 1.29 | 3.15 | 3.36 | ||
k1 | 0.99 | 0.82 | 1.08 | 1.03 | |
k2 | 1.58 | 1.09 | 0.87 | 0.84 | |
k3 | 0.43 | 1.05 | 1.12 | ||
R2 | 1.15 | 0.27 | 0.21 | 0.28 |
Items | Source of Variance | Sum of Squares | df | Mean Square | F-Value | p-Value | Significant |
---|---|---|---|---|---|---|---|
Surface Roughness | A | 56.999 | 2 | 28.5 | 7599.914 | 0.008 | *** |
C | 6.258 | 2 | 3.1295 | 834.421 | 0.025 | ** | |
D | 0.365 | 2 | 0.183 | 48.732 | 0.101 | - | |
B | 2.369 | 1 | 2.369 | 631.717 | 0.025 | ** | |
Pure Error | 0.00375 | 1 | 0.00375 | ||||
Cor Total | 65.996 | 8 | 65.996 | ||||
Cutting Efficiency | A | 1.984 | 2 | 0.992 | 14,883.17 | 0.0057 | *** |
D | 0.121 | 2 | 0.06 | 901.167 | 0.0235 | ** | |
B | 0.15 | 1 | 0.15 | 2241.333 | 0.0134 | ** | |
C | 0.076 | 2 | 0.038 | 568.667 | 0.0296 | ** | |
Pure Error | 6.67 × 10−5 | 1 | 6.67 × 10−5 | ||||
Cor Total | 2.33 | 8 |
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Wang, G.; Zhang, W.; Diao, X.; Ji, M.; Fei, B.; Miao, H. Analysis of Harvesting Methods of Moso Bamboo. Buildings 2023, 13, 365. https://doi.org/10.3390/buildings13020365
Wang G, Zhang W, Diao X, Ji M, Fei B, Miao H. Analysis of Harvesting Methods of Moso Bamboo. Buildings. 2023; 13(2):365. https://doi.org/10.3390/buildings13020365
Chicago/Turabian StyleWang, Guofu, Wei Zhang, Xingliang Diao, Min Ji, Benhua Fei, and Hu Miao. 2023. "Analysis of Harvesting Methods of Moso Bamboo" Buildings 13, no. 2: 365. https://doi.org/10.3390/buildings13020365
APA StyleWang, G., Zhang, W., Diao, X., Ji, M., Fei, B., & Miao, H. (2023). Analysis of Harvesting Methods of Moso Bamboo. Buildings, 13(2), 365. https://doi.org/10.3390/buildings13020365