uld be. Assume no air resistance and that g-10 N/Ng Calculate, diagram, and label all forces. DON'T is situation, take note of how the object is moving and think about what the net force on the object ORGET TO CALCULATE THE GRAVITATIONAL FORCE A string pulls upward on a 1 kg mass with S N of force, but the mass is still in contact with a tabletop and at rest. Check which forces are acting on the mass: Gravitational Force Normal Force Tension Force Friction Force Onnlied Force

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I need help. where g = 10 N / Kg F g = g • m
## Identifying Forces on a Mass in Equilibrium

### Scenario Description:

In this situation, observe how the object (a mass) is moving and consider the net force acting on it. Assume there is no air resistance and that \( g = 10 \, \text{N/kg} \). Calculate, diagram, and label all forces acting on the mass. **Do not forget to calculate the gravitational force!**

**Given:**
A string pulls upward on a \( 1 \, \text{kg} \) mass with a force of \( 5 \, \text{N} \), but the mass is still in contact with a tabletop and at rest.

### Forces Acting on the Mass:

Fill in the appropriate forces acting on the mass:

- **Gravitational Force:** 
- **Normal Force:**
- **Tension Force:**
- **Friction Force:**
- **Applied Force:**

### Diagram of the Forces:

A grid is provided to diagrammatically represent the forces acting on the mass. The grid is a square grid with marked axes to plot force vectors.

**Diagram Explanation:**

- **Downward arrow** represents **Gravitational Force (Weight):** The force due to gravity acting on the mass. For a mass of \( 1 \, \text{kg} \) and \( g = 10 \, \text{N/kg} \), the gravitational force is \( 10 \, \text{N} \) down.

- **Upward arrow** represents **Tension Force:** The force exerted by the string pulling the mass upwards. In this scenario, it is given as \( 5 \, \text{N} \).

- **Upward arrow** represents **Normal Force:** The supporting force exerted by the tabletop on the mass, usually acting perpendicular to the surface. Since the mass is at rest and in contact with the tabletop, the normal force balances the remaining force after considering gravity and tension.

### Analysis:

To find the normal force when the mass is in equilibrium:

1. **Gravitational Force (Weight):** \( F_g = 1 \, \text{kg} \times 10 \, \text{N/kg} = 10 \, \text{N} \)
2. **Tension Force:** \( F_t = 5 \, \text{N} \)
3. **Net Force Required for Equilibrium:**
Transcribed Image Text:## Identifying Forces on a Mass in Equilibrium ### Scenario Description: In this situation, observe how the object (a mass) is moving and consider the net force acting on it. Assume there is no air resistance and that \( g = 10 \, \text{N/kg} \). Calculate, diagram, and label all forces acting on the mass. **Do not forget to calculate the gravitational force!** **Given:** A string pulls upward on a \( 1 \, \text{kg} \) mass with a force of \( 5 \, \text{N} \), but the mass is still in contact with a tabletop and at rest. ### Forces Acting on the Mass: Fill in the appropriate forces acting on the mass: - **Gravitational Force:** - **Normal Force:** - **Tension Force:** - **Friction Force:** - **Applied Force:** ### Diagram of the Forces: A grid is provided to diagrammatically represent the forces acting on the mass. The grid is a square grid with marked axes to plot force vectors. **Diagram Explanation:** - **Downward arrow** represents **Gravitational Force (Weight):** The force due to gravity acting on the mass. For a mass of \( 1 \, \text{kg} \) and \( g = 10 \, \text{N/kg} \), the gravitational force is \( 10 \, \text{N} \) down. - **Upward arrow** represents **Tension Force:** The force exerted by the string pulling the mass upwards. In this scenario, it is given as \( 5 \, \text{N} \). - **Upward arrow** represents **Normal Force:** The supporting force exerted by the tabletop on the mass, usually acting perpendicular to the surface. Since the mass is at rest and in contact with the tabletop, the normal force balances the remaining force after considering gravity and tension. ### Analysis: To find the normal force when the mass is in equilibrium: 1. **Gravitational Force (Weight):** \( F_g = 1 \, \text{kg} \times 10 \, \text{N/kg} = 10 \, \text{N} \) 2. **Tension Force:** \( F_t = 5 \, \text{N} \) 3. **Net Force Required for Equilibrium:**
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