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uni/mmme/2044_design_manufacture_and_project/MMME2044.apkg
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uni/mmme/2044_design_manufacture_and_project/MMME2044.apkg
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@@ -5,6 +5,7 @@ title: MMME2044 // Bearings
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tags: [ bearings ]
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uuid: 94cac3fd-c352-4fdd-833d-6129cb484b8a
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lecture_slides: [ ./lecture_slides/Lecture 7 - Bearings 1 – Plain Hydrodynamic Bearings 1.pdf ]
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anki_deck_tags: [ bearings ]
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---
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> I don't think I ever finished these notes.
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@@ -14,7 +15,7 @@ lecture_slides: [ ./lecture_slides/Lecture 7 - Bearings 1 – Plain Hydrodynamic
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<details>
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<summary>
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## Plain Journal Bearings
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### Plain Journal Bearings
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</summary>
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@@ -24,7 +25,7 @@ lecture_slides: [ ./lecture_slides/Lecture 7 - Bearings 1 – Plain Hydrodynamic
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- the insert provides lower friction and less wear than if just rotating in the support
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- the bearing may be dry rubbing or lubricated
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### Lubrication
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#### Lubrication
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- hydrodynamic---a shaft continuously in oil. the load is carried by pressure generated in the oil
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as a result of the rotation
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@@ -38,7 +39,7 @@ lecture_slides: [ ./lecture_slides/Lecture 7 - Bearings 1 – Plain Hydrodynamic
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<details>
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<summary>
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## Ball and Roller Bearings (Rolling Element Bearings)
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### Ball and Roller Bearings (Rolling Element Bearings)
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</summary>
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@@ -54,7 +55,7 @@ lecture_slides: [ ./lecture_slides/Lecture 7 - Bearings 1 – Plain Hydrodynamic
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<details>
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<summary>
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## Plain Rubbing Bearings (Dry Sliding)
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### Plain Rubbing Bearings (Dry Sliding)
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</summary>
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@@ -68,7 +69,7 @@ lecture_slides: [ ./lecture_slides/Lecture 7 - Bearings 1 – Plain Hydrodynamic
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<details>
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<summary>
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## Oil Lubricated Porous Bearings
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### Oil Lubricated Porous Bearings
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</summary>
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@@ -82,7 +83,7 @@ lecture_slides: [ ./lecture_slides/Lecture 7 - Bearings 1 – Plain Hydrodynamic
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<details>
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<summary>
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# Hydrodynamic Bearings
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### Hydrodynamic Bearings
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</summary>
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@@ -94,6 +95,7 @@ lecture_slides: [ ./lecture_slides/Lecture 7 - Bearings 1 – Plain Hydrodynamic
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</details>
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# fun graphs that may be useful for bearing selection
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@@ -127,7 +129,7 @@ $$p = \frac{F_\text{radial}}{bD}$$
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$$V = \omega\frac D2$$
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## Axial Sliding Bearing
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@@ -136,7 +138,23 @@ $$p = \frac{4F_\text{axial}}{\pi(D^2-d^2)}$$
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$$V = \omega\frac{D+d}{4}$$
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## Plain Rubbing Bearings
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- does not rely on liquid lubricaton
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- usually made of polymers and moulded to final shape
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- dry lubricants like ptfe are added
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- reinforcements like glass fibres can be added
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- pressure is limited by strength
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- speed is limited by temperature
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## Oil Lubricated Porous Bearings
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- manufactured from sintered metal powders
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- porous & oil impregnated
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- more porous bearings are weaker but can run at higher speeds
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- lubricant needs to be replenished at regular intervals
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# Wear
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