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Module 10 Subnetting Class A, B and C addresses. Solutions to the Lab Exercises a, b, c and d

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Module 10 Subnetting Class A, B and C addresses

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10.3.5a Basic Subnetting

Use the following information and answer the following subnet related questions A company has applied for and received a Class C network address of 197.15.22.0. The physical network is to be divided into 4 subnets, which will be interconnected by routers. At least 25 hosts will be needed per subnet. A Class C custom subnet mask needs to be used and a router is needed between the subnets to route packets from one subnet to another. Determine the number of bits that need to be borrowed from the host portion of the network address and the number of bits that will be left for host addresses.

Note: There will be 8 possible subnets, of which 6 can be used.

(By borrowing two bits, only 4 subnets can be created (2^2 = 4) of which only 2 can be used. So three bits have to be borrowed.)

Default subnet mask: 255.255.255.0

Subnet Mask in binary form: 11111111 11111111 11111111 00000000 Bits borrowed: 3

New Subnet Mask in binary form: 11111111 11111111 11111111 11100000 Decimal format: 255.255.255.224

Number of usable subnets: (2^3) – 2 = 6 Number of usable hosts: (2^5) – 2 = 30

Fill in the following table and answer the following questions: Subnet No. Subnet Bits Borrowed Binary Value Subnet Bits Decimal and Subnet No.

Host Bits Possible Binary Values (Range) (5 Bits) Subnet/Host Decimal Range Use? Subnet 0 000 0 00000 - 11111 0 - 31 No Subnet 1 001 32 00000 - 11111 32 - 63 Yes Subnet 2 010 64 00000 - 11111 64 - 95 Yes Subnet 3 011 96 00000 - 11111 96 - 127 Yes Subnet 4 100 128 00000 - 11111 128 – 159 Yes Subnet 5 101 160 00000 - 11111 160 – 191 Yes

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Subnet 6 110 192 00000 - 11111 192- 223 Yes

Subnet 7 111 224 00000 - 11111 224 – 255 No

There are 32 hosts in each of the 8 subnets. Subnet Ranges: Subnet Number Subnet Range 1st subnet 197.15.22.0 ~ 197.15.22.31 2nd subnet 197.15.22.32 ~ 197.15.22.63 3rd subnet 197.15.22.64 ~ 197.15.22.95 4th subnet 197.15.22.96 ~ 197.15.22.127 5th subnet 197.15.22.128 ~ 197.15.22.159 6th subnet 197.15.22.160 ~ 197.15.22.191 7th subnet 197.15.22.192 ~ 197.15.22.223 8th subnet 197.15.22.224 ~ 197.15.22.255

1. Which octet(s) represent the network portion of a Class C IP address?

First three octets

2. Which octet(s) represent the host portion of a Class C IP address?

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3. What is the binary equivalent of the Class C network address in the scenario? 197.15.22.0

Decimal network address: 197.15.22.0

Binary network address: 11000101 00001111 00010110 00000000

4. How many high-order bits were borrowed from the host bits in the fourth octet?

Three

5. What subnet mask must be used? Show the subnet mask in decimal and binary.

Decimal subnet mask: 255.255.255.224

Binary subnet mask: 11111111 11111111 11111111 11100000

6. What is the maximum number of subnets that can be created with this subnet mask?

Eight

7. What is the maximum number of usable subnets that can be created with this mask?

Six

8. How many bits were left in the fourth octet for host IDs?

Five

9. How many hosts per subnet can be defined with this subnet mask?

30 hosts (usable)

10. What is the maximum number of hosts that can be defined for all subnets with this scenario?

30 hosts per subnet * 6 usable subnets = 180hosts

11. Is 197.15.22.63 a valid host IP address with this scenario?

No

12. Why or why not?

Broadcast address of 2nd subnet

13. Is 197.15.22.160 a valid host IP address with this scenario?

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14. Why or why not?

Network address of 6th subnet

15. Host A has an IP address of 197.15.22.126. Host B has an IP address of 197.15.22.129. Are these hosts on the same subnet?

No.

Host A (197.15.22.126) belongs to 4th subnet and Host B (197.15.22.129) belongs to 5th subnet.

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10.3.5b Subnetting a Class A Network

Given a Class A network address of 10.0.0.0 / 24 answer the following questions The default subnet mask for Class A network is 255.0.0.0

Binary Format: 11111111 00000000 00000000 00000000 The new subnet mask has 24 1’s in it.

New subnet mask in binary format: 11111111 11111111 11111111 00000000 It can be observed that 16 bits have been borrowed into the network portion. Number of subnets created: 2^16 = 65536

Number of usable subnets: 65536 – 2 = 65534 Number of host bits: 8

Number of hosts in each subnet: 2^8 = 256 Number of usable hosts: 256 – 2 = 254 Subnet Range for the first 6 subnets:

Subnet Number Subnet Range 1st subnet 10.0.0.0 ~ 10.0.0.255 2nd subnet 10.0.1.0 ~ 10.0.1.255 3rd subnet 10.0.2.0 ~ 10.0.2.255 4th subnet 10.0.3.0 ~ 10.0.3.255 5th subnet 10.0.4.0 ~ 10.0.4.255 6th subnet 10.0.5.0 ~ 10.0.5.255

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1. How many bits were borrowed from the host portion of this address?

Sixteen

2. What is the subnet mask for this network?

255.255.255.0

3. How many usable subnets are there?

65534 usable subnets

4. How many usable hosts are there?

254 usable hosts

5. What is the host range for usable subnet sixteen?

From the subnet range table above, the host range for 4th usable subnet (5th subnet) is 10.0.4.0 ~ 10.0.4.255

Likewise, the host range for 16th usable subnet will be 10.0.16.0 ~ 10.0.16.255

6. What is the network address for usable subnet sixteen?

10.0.16.0

7. What is the broadcast address for usable subnet sixteen?

10.0.16.255

8. What is the broadcast address for the last usable subnet?

The host range for the last subnet is 10.255.255.0 ~ 10.255.255.255. The network address for this subnet is 10.255.255.0. So the broadcast address of the previous subnet (last usable subnet) is 10.255.254.255.

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10.3.5c Subnetting a Class B Network

ABC Manufacturing has acquired a Class B address, 172.16.0.0. The company needs to create a subnetting scheme to provide the following:

36 subnets with at least 100 hosts 24 subnets with at least 255 hosts 10 subnets with at least 50 hosts

It is not necessary to supply an address for the WAN connection since it is supplied by the Internet service provider.

Regardless of the number of hosts in each subnet, the total number of subnets that need to be created is 70 (36+24+10)

Number of bits to be borrowed to create atleast 70 subnets is 7. Default subnet mask: 255.255.0.0

Subnet mask for this network: 255.255.254.0 1. How many subnets are needed for this network?

70

2. What is the minimum number of bits that can be borrowed?

Seven

3. What is the subnet mask for this network?

Dotted decimal: 255.255.254.0

Binary format: 11111111 11111111 11111110 00000000 Slash format: 172.16.0.0/23

4. How many usable subnets are there?

(2^7)-2 = 126

5. How many usable hosts are there per subnet?

(2^9) – 2 = 510

The first subnet range is 172.16.0.0 ~ 172.16.1.255.

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Subnet ranges for the 1st three and the last four usable subnets:

Subnetwork ID (Network

Address)

Subnet# Host Range Broadcast ID

(Broadcast Address) 172.16.2.0 1 172.16.2.1 ~ 172.16.3.254 172.16.3.255 172.16.4.0 2 172.16.4.1 ~ 172.16.5.254 172.16.5.255 172.16.6.0 3 172.16.6.1 ~ 172.16.7.254 172.16.7.255 172.16.246.0 123 172.16.246.1 ~ 172.16.247.254 172.16.247.255 172.16.248.0 124 172.16.248.1 ~ 172.16.249.254 172.16.249.255 172.16.250.0 125 172.16.250.1 ~ 172.16.251.254 172.16.251.255 172.16.252.0 126 172.16.252.1 ~ 172.16.253.254 172.16.253.255

What is the host range for subnet 2?

172.16.4.1 ~ 172.16.5.254

What is the broadcast address for 126th subnet?

172.16.253.255

What is the broadcast address for the major network?

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10.3.5d Subnetting a Class C Network

The Classical Academy has acquired a Class C address, 192.168.1.0. The academy needs to create subnets to provide low level security and broadcast control on the LAN. It is not necessary to supply an address for the WAN connection. It is supplied by the Internet service provider.

The LAN consists of the following, each of which will require its own subnet: Classroom #1 28 nodes

Classroom #2 22 nodes Computer lab 30 nodes Instructors 12 nodes Administration 8 nodes

From above, it is understood that 5 subnets need to be created. 1. What is the subnet mask for this network?

The default subnet mask is 255.255.255.0. By borrowing 3 bits into the network portion, the subnet mask for this network becomes 255.255.255.224

Binary: 11111111 11111111 111111111 11100000 Slash format: /27

2. How many usable hosts are there per subnet?

(2^5) – 2 = 30 hosts

Subnet# Subnetwork ID Host Range Broadcast ID

0 192.168.1.0 192.168.1.1 ~ 192.168.1.30 192.168.1.31 1 192.168.1.32 192.168.1.33 ~ 192.168.1.62 192.168.1.63 2 192.168.1.64 192.168.1.65 ~ 192.168.1.94 192.168.1.95 3 192.168.1.96 192.168.1.97 ~ 192.168.1.126 192.168.1.127 4 192.168.1.128 192.168.1.129 ~ 192.168.1.158 192.168.1.159 5 192.168.1.160 192.168.1.161 ~ 192.168.1.190 192.168.1.191

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6 192.168.1.192 192.168.1.193 ~ 192.168.1.222 192.168.1.223

7 192.168.1.224 192.168.1.225 ~ 192.168.1.254 192.168.1.255

3. What is the host range for subnet six?

192.168.1.193 ~ 192.168.1.222

4. What is the broadcast address for 3rd subnet?

192.168.1.127

5. What is the broadcast address for the major network?

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