A TRIZ-Integrated Conceptual Design Process of a Smart Lawnmower for Uneven Grassland
Abstract
:1. Introduction
1.1. Problem Statement
1.2. Limitations in Smart Lawnmower Design
1.3. Smart Lawnmower Design
1.3.1. Configuration
1.3.2. Cutting Blade
1.3.3. Sensor
1.4. TRIZ Application in Design
2. Methodology
- Step 1: TRIZ analysis of the main problem;
- Cause-effect chain analysis;
- Technical contradiction;
- Physical contradiction;
- Substance field analysis;
- Step 2: Scoring of proposed solutions;
- Step 3: Combining selected solutions with the base model of the smart lawnmower;
- Step 4: Final concept generation;
- Step 5: Design and analysis.
3. Results
3.1. RQ1: Resolving Limitations of a Smart Lawnmower Using the TRIZ Approach
Step 1: TRIZ Analysis of the Main Problem
- (a)
- Use motors with higher power or torque.
- Use periodic actions and also increase the power if necessary.
- Use other types of power supply (solar energy).
- (b)
- Use other types of locomotion.
- Gliding locomotion.
- (c)
- Centre pivot.
- (d)
- Larger rear wheels.
- i.
- Space:
- ii.
- Time:
- i.
- Space:
- ii.
- Time:
- (a)
- Provide holes in the body of the mower wherever possible to reduce weight.
- (b)
- Use a solar charge controller.
- i.
- Place:
- ii.
- Time:
- iii.
- Condition:
- (a)
- Use other materials or technologies to minimise cost.
- (b)
- Use a modular design concept to reduce maintenance costs.
- i.
- Space:
- ii.
- Time:
- iii.
- Condition:
3.2. RQ2: TRIZ-Integrated Conceptual Design Process of a Smart Lawnmower
3.2.1. Step 2: Scoring of Propose Solutions
- Score 1: much worse than expected;
- Score 2: worse than expected;
- Score 3: met expectations;
- Score 4: exceeded expectations;
- Score 5: greatly exceeded expectations.
3.2.2. Step 3: Combining Selected Solutions with Base Model of Smart Lawnmower
4. Discussion
4.1. Final Concept Generation
4.2. Design and Analysis
5. Conclusions
Future Work
Author Contributions
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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No. | Constraints |
---|---|
1 | Cannot move smoothly on uneven grassland or ground with tall grass |
2 | Needs to be recharged frequently |
3 | Availability in the local Malaysian market is estimated to be low |
TC | Manipulative Variable | Responding Variables | System Parameters |
---|---|---|---|
1 | If motors with higher power or torque are used | Improving: Then the movement of the mower will be smoother | #35 Adaptability |
Worsening: However, more energy will be consumed | #19 Energy spent by a moving object | ||
2 | If another type of locomotion is used | Improving: Then the movement of the lawnmower will be smoother | #35 Adaptability |
Worsening: However, the complexity of the design increases | #36 Complexity of device |
Technical Contradiction (TC) | Pairs of System Parameters | Inventive Principles |
---|---|---|
TC1: If motors with higher power or torque are used, then the movement of the mower will be smoother, but more energy will be consumed | #35 Adaptability (improving) #19 Energy spent by a moving object (worsening) | #19 Periodic action #35 Parameter changes #29 Pneumatic and hydraulic #13 The other way around |
TC2: If another type of locomotion is used, then the movement of the lawnmower will be smoother, but the complexity of the design increases | #35 Adaptability (improving) #36 Complexity of device (worsening) | #15 Dynamisation #29 Pneumatic and hydraulic #37 Thermal expansion #28 Mechanical substitution |
Inventive Principles | Proposed Solutions |
---|---|
| N/A |
| Utilise a different type of energy supply other than the battery. |
| Adjustable wheel height through pneumatic or hydraulic control. |
| Swap front and rear wheels. |
Inventive Principles | Proposed Solutions |
---|---|
| Use track belt or slip locomotion. |
| Adjustable wheel height through pneumatic or hydraulic control. |
| N/A |
| N/A |
Inventive Principles | Proposed Solutions |
---|---|
| N/A |
| N/A |
| N/A |
| Use bigger wheels |
| Swap the configuration of the front wheels with the rear wheels |
| N/A |
| N/A |
| Centre pivot design |
| N/A |
| N/A |
| N/A |
Manipulative Variable | Responding Variables | System Parameters |
---|---|---|
If a battery with a higher capacity (or more batteries) is used | Improving: Then the lawnmower can work longer | #19 Use of energy by the moving object |
Worsening: However, the weight of the lawnmower is increased as a result | #1 Weight of the moving object |
Technical Contradiction (TC) | Pairs of System Parameters | Inventive Principles |
---|---|---|
If a battery with a higher capacity (or more batteries) is used, then the lawnmower can work longer, but the weight of the lawnmower is increased as a result | #19 Use of energy by the moving object (improving) #1 Weight of the moving object (worsening) | #12 Equipotentiality #18 Mechanical Vibration #28 Mechanical Substitution/Another Sense #13 Porous Material/Holes |
Inventive Principles | Proposed Solutions |
---|---|
| Use track belt or slip locomotion. |
| Adjustable wheel height through pneumatic or hydraulic control. |
| N/A |
| N/A |
Inventive Principles | Proposed Solutions |
---|---|
| N/A |
| N/A |
| N/A |
| Intentionally make holes wherever possible to reduce weight (optimisation) |
| N/A |
| N/A |
| Use solar charging |
| N/A |
Manipulative Variable | Responding Variables | System Parameters |
---|---|---|
If new or advanced technologies are used | Improving: Then the lawnmower can perform better | #27 Reliability |
Worsening: However, the complexity of the lawnmower is increased | #36 Device complexity |
Technical Contradiction (TC) | Pairs of System Parameters | Inventive Principles |
---|---|---|
If new or advanced technologies are used, then the lawnmower can perform better, but the complexity of the lawnmower is increased | #27 Reliability (improving) #36 Device complexity (worsening) | #13 The other way around #35 Parameter changes #1 Segmentation |
Inventive Principles | Proposed Solutions |
---|---|
| Use other materials or technologies to minimise costs |
| N/A |
| Use the modular design concept to reduce maintenance costs |
No. | Limitation | Proposed Solution | Advantages | Disadvantages |
---|---|---|---|---|
1 | Unable to move smoothly on uneven grassland or ground with tall grass. |
| High effectiveness with minimal modification. | Higher energy consumption. |
| Can handle most types of grasses. | Difficulties in production. | ||
| Simpler in design. | Low effectiveness. | ||
| Can adapt to uneven grassland. | Complicated design. | ||
2 | Must be charged quite frequently. |
| With minimal and simple change. | May affect performance in terms of water resistance or waterproofing. |
| Use of renewable energies. | Higher cost. | ||
3 | The availability of these products in local Malaysian markets is considered low. |
| Reduce costs and complexity. | May reduce working efficiency and overall performance of the mower. |
| Reduce maintenance costs and improve design sustainability. | More parts need to be assembled. |
Key Features | Selection Criteria | Total Score | Rank | Continue? | ||||
---|---|---|---|---|---|---|---|---|
Cost (30%) | Simplicity (20%) | Feasibility (30%) | Suitability (20%) | |||||
1 | Rating | 3 | 4 | 5 | 4 | 4.0 | 1 | Yes |
Weighted Score | 0.9 | 0.8 | 1.5 | 0.8 | ||||
2 | Rating | 1 | 1 | 2 | 3 | 1.7 | 5 | No |
Weighted Score | 0.3 | 0.2 | 0.6 | 0.6 | ||||
3 | Rating | 2 | 2 | 5 | 4 | 3.3 | 3 | Yes |
Weighted Score | 0.6 | 0.4 | 1.5 | 0.8 | ||||
4 | Rating | 4 | 2 | 2 | 4 | 3.0 | 4 | Yes |
Weighted Score | 1.2 | 0.4 | 0.6 | 0.8 | ||||
5 | Rating | 4 | 4 | 4 | 1 | 3.4 | 2 | Yes |
Weighted Score | 1.2 | 0.8 | 1.2 | 0.2 | ||||
6 | Rating | 2 | 2 | 4 | 4 | 3.0 | 4 | Yes |
Weighted Score | 0.6 | 0.4 | 1.2 | 0.8 | ||||
7 | Rating | 2 | 2 | 4 | 4 | 3.0 | 4 | Yes |
Weighted Score | 0.6 | 0.4 | 1.2 | 0.8 | ||||
8 | Rating | 4 | 2 | 2 | 4 | 3.0 | 4 | Yes |
Weighted Score | 1.2 | 0.4 | 0.6 | 0.8 |
Constraint | Selected Lawnmower Features |
---|---|
Unable to move smoothly on uneven grassland or ground with tall grass. | Use motors with higher power or torque |
Use larger wheels. | |
Use a pivot design. | |
Must be charged quite frequently. | Deliberately make holes in the body of the lawnmower wherever possible to reduce weight. |
Use the possibility of solar charging. | |
The availability of these products in local Malaysian markets is considered low. | Use other materials or technologies to minimise costs. |
Use the modular design concept to reduce maintenance costs. |
No. | Product | Features |
---|---|---|
1 | Robomow RC 308U Pro [24] |
|
2 | Honda Miimo 40 Live [25] |
|
3 | Bosch Indego M+ 700 [26] |
|
4 | Gardena Smart Sileno+ [27] |
|
Product | L × W × H (cm) | Mowing Width (Disc width) | Material Type (Casing) | Battery Type | Blade Type | Configuration |
---|---|---|---|---|---|---|
Robomow RC 308U Pro | 63 × 46 × 21 | 28 cm | Plastic | Lithium | 1-piece triangular blade | 2 driving wheels and a front wheel |
Honda Miimo 40 Live | 45 × 36 × 20 | 19 cm | Plastic | Lithium | 3 pivoting blades | 2 driving wheels and 2 front wheels |
Bosch Indego M+ 700 | 45 × 36 × 20 | 19 cm | Plastic | Lithium | 3 pivoting blades | 2 driving wheels and 2 front wheels |
Gardena Smart Sileno+ | 63 × 51 × 25 | 22 cm | Plastic | Lithium | 3 pivoting blades | 2 driving wheels and 2 front wheels |
Final decision | 54 × 42 × 22 | 22 cm | Plastic | Lithium | 3 pivoting blades | 4 driving wheels with same size |
Method/ Reason | Averaging | Averaging | Selection of common material. However, wood will be used for prototype | Rechargeable, lower self-discharge rate and more stable | Lower maintenance cost | To accommodate proposed solution no. 4 and solve constraint 1 |
Drawing | Isometric View | Bottom View |
---|---|---|
Shell | ||
Assembly |
Part | Stress Analysis | ||
---|---|---|---|
Von Mises Stress (MPa) | Displacement (mm) | Safety Factor | |
Casing |
Before Optimisation | After Optimisation | ||||||
---|---|---|---|---|---|---|---|
Thickness (mm) | Max Stress (MPa) | Max Deflection (mm) | Safety Factor | Thickness (mm) | Max Stress (MPa) | Max Deflection (mm) | Safety Factor |
6 | 0.1695 | 0.0006086 | 15 | 3 | 3.536 | 0.01343 | 15 |
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Kang, C.Q.; Ng, P.K.; Liew, K.W. A TRIZ-Integrated Conceptual Design Process of a Smart Lawnmower for Uneven Grassland. Agronomy 2022, 12, 2728. https://doi.org/10.3390/agronomy12112728
Kang CQ, Ng PK, Liew KW. A TRIZ-Integrated Conceptual Design Process of a Smart Lawnmower for Uneven Grassland. Agronomy. 2022; 12(11):2728. https://doi.org/10.3390/agronomy12112728
Chicago/Turabian StyleKang, Chun Quan, Poh Kiat Ng, and Kia Wai Liew. 2022. "A TRIZ-Integrated Conceptual Design Process of a Smart Lawnmower for Uneven Grassland" Agronomy 12, no. 11: 2728. https://doi.org/10.3390/agronomy12112728
APA StyleKang, C. Q., Ng, P. K., & Liew, K. W. (2022). A TRIZ-Integrated Conceptual Design Process of a Smart Lawnmower for Uneven Grassland. Agronomy, 12(11), 2728. https://doi.org/10.3390/agronomy12112728